upgrade all the dependencies

This commit is contained in:
Cadey Ratio 2018-01-03 11:19:49 -08:00
parent 7ea63913b9
commit 792c0a9e81
732 changed files with 99225 additions and 25065 deletions

94
Gopkg.lock generated
View File

@ -23,7 +23,7 @@
branch = "master"
name = "github.com/Xe/x"
packages = ["tools/svc/credentials/jwt"]
revision = "2e7ad18cbac67114f92ca1e1d1dc780ae21ea61f"
revision = "860ea0dedb8beb93b60717510eabca2ef5ffe150"
[[projects]]
branch = "master"
@ -82,8 +82,8 @@
[[projects]]
name = "github.com/aws/aws-sdk-go"
packages = ["aws","aws/awserr","aws/awsutil","aws/client","aws/client/metadata","aws/corehandlers","aws/credentials","aws/credentials/ec2rolecreds","aws/credentials/endpointcreds","aws/credentials/stscreds","aws/defaults","aws/ec2metadata","aws/endpoints","aws/request","aws/session","aws/signer/v4","internal/shareddefaults","private/protocol","private/protocol/query","private/protocol/query/queryutil","private/protocol/rest","private/protocol/restxml","private/protocol/xml/xmlutil","service/s3","service/sts"]
revision = "388e6676807f5968ad5eaaec0c70002f80c20b84"
version = "v1.12.39"
revision = "f62f7b7c5425f2b1a630932617477bdeac6dc371"
version = "v1.12.55"
[[projects]]
branch = "master"
@ -97,6 +97,12 @@
revision = "4aabc24848ce5fd31929f7d1e4ea74d3709c14cd"
version = "v0.1.0"
[[projects]]
branch = "master"
name = "github.com/bifurcation/mint"
packages = [".","syntax"]
revision = "d5dd291d400abddb674b2b2acfee6881c1c8f8e5"
[[projects]]
name = "github.com/blang/semver"
packages = ["."]
@ -118,8 +124,8 @@
[[projects]]
name = "github.com/caarlos0/env"
packages = ["."]
revision = "0cf029d5748c52beb2c9d20c81880cb4bdf8f788"
version = "v3.0"
revision = "7cd7992b3bc86f920394f8de92c13900da1a46b7"
version = "v3.2.0"
[[projects]]
branch = "master"
@ -155,7 +161,7 @@
branch = "master"
name = "github.com/golang/protobuf"
packages = ["proto","ptypes","ptypes/any","ptypes/duration","ptypes/timestamp"]
revision = "130e6b02ab059e7b717a096f397c5b60111cae74"
revision = "1e59b77b52bf8e4b449a57e6f79f21226d571845"
[[projects]]
name = "github.com/google/gops"
@ -173,13 +179,13 @@
branch = "master"
name = "github.com/hashicorp/go-cleanhttp"
packages = ["."]
revision = "06c9ea3a335b7443026f8124b22619524420291b"
revision = "d5fe4b57a186c716b0e00b8c301cbd9b4182694d"
[[projects]]
branch = "master"
name = "github.com/hashicorp/go-getter"
packages = [".","helper/url"]
revision = "2f449c791e6af9e532bc1aca36d1d3865b8537f9"
revision = "994f50a6f071b07cfbea9eca9618c9674091ca51"
[[projects]]
branch = "master"
@ -191,7 +197,7 @@
branch = "master"
name = "github.com/hashicorp/go-multierror"
packages = ["."]
revision = "83588e72410abfbe4df460eeb6f30841ae47d4c4"
revision = "b7773ae218740a7be65057fc60b366a49b538a44"
[[projects]]
branch = "master"
@ -245,7 +251,7 @@
branch = "master"
name = "github.com/hashicorp/yamux"
packages = ["."]
revision = "f5742cb6b85602e7fa834e9d5d91a7d7fa850824"
revision = "683f49123a33db61abfb241b7ac5e4af4dc54d55"
[[projects]]
name = "github.com/jmespath/go-jmespath"
@ -270,6 +276,18 @@
packages = ["."]
revision = "ae77be60afb1dcacde03767a8c37337fad28ac14"
[[projects]]
name = "github.com/klauspost/cpuid"
packages = ["."]
revision = "ae7887de9fa5d2db4eaa8174a7eff2c1ac00f2da"
version = "v1.1"
[[projects]]
name = "github.com/klauspost/reedsolomon"
packages = ["."]
revision = "6bb6130ff6a76a904c1841707d65603aec9cc288"
version = "v1.6"
[[projects]]
branch = "master"
name = "github.com/kr/pretty"
@ -296,9 +314,9 @@
[[projects]]
name = "github.com/lucas-clemente/quic-go"
packages = [".","ackhandler","congestion","crypto","flowcontrol","frames","h2quic","handshake","protocol","qerr","utils"]
revision = "d51a4a1ba70df8c2d5c4522c071aaa225690a11d"
version = "v0.5.0"
packages = [".","ackhandler","congestion","h2quic","internal/crypto","internal/flowcontrol","internal/handshake","internal/protocol","internal/utils","internal/wire","qerr"]
revision = "ded0eb4f6f30a8049bd334a26ff7ff728648fe13"
version = "v0.6.0"
[[projects]]
branch = "master"
@ -309,8 +327,8 @@
[[projects]]
branch = "master"
name = "github.com/magefile/mage"
packages = ["mg"]
revision = "ca568f7054407930250eb570b76ee41c27c130ab"
packages = ["mg","types"]
revision = "63768081a3236a7c6c53ef72e402ae1fe1664b61"
[[projects]]
name = "github.com/mattn/go-isatty"
@ -388,7 +406,7 @@
branch = "master"
name = "github.com/olekukonko/tablewriter"
packages = ["."]
revision = "a7a4c189eb47ed33ce7b35f2880070a0c82a67d4"
revision = "65fec0d89a572b4367094e2058d3ebe667de3b60"
[[projects]]
name = "github.com/pkg/errors"
@ -420,18 +438,18 @@
packages = ["."]
revision = "3794dfbfb04749f896b521032f69383f24c3687e"
[[projects]]
name = "github.com/templexxx/reedsolomon"
packages = ["."]
revision = "5e06b81a1c7628d9c8d4fb7c3c4e401e37db39b4"
version = "0.1.1"
[[projects]]
name = "github.com/templexxx/xor"
packages = ["."]
revision = "0af8e873c554da75f37f2049cdffda804533d44c"
version = "0.1.2"
[[projects]]
name = "github.com/tjfoc/gmsm"
packages = ["sm4"]
revision = "98aa888b79d8de04afe0fccf45ed10594efc858b"
version = "v1.1"
[[projects]]
name = "github.com/ulikunitz/xz"
packages = [".","internal/hash","internal/xlog","lzma"]
@ -441,8 +459,8 @@
[[projects]]
name = "github.com/xtaci/kcp-go"
packages = ["."]
revision = "44c3d76a6b5cc9e3687f829078a52f372928e776"
version = "v3.19"
revision = "86eebd5cadb519b7c9306082c7eb3bcee2c49a7b"
version = "v3.23"
[[projects]]
name = "github.com/xtaci/smux"
@ -454,59 +472,59 @@
branch = "master"
name = "github.com/zclconf/go-cty"
packages = ["cty","cty/convert","cty/function","cty/function/stdlib","cty/gocty","cty/json","cty/set"]
revision = "8bf222d6d03b7b336d013978f3acbfd877da428f"
revision = "48ce95f3a00f37ac934ff90a62e377146f9428e1"
[[projects]]
name = "go.uber.org/atomic"
packages = ["."]
revision = "4e336646b2ef9fc6e47be8e21594178f98e5ebcf"
version = "v1.2.0"
revision = "8474b86a5a6f79c443ce4b2992817ff32cf208b8"
version = "v1.3.1"
[[projects]]
branch = "master"
name = "golang.org/x/crypto"
packages = ["acme","acme/autocert","bcrypt","blowfish","cast5","curve25519","hkdf","nacl/secretbox","openpgp","openpgp/armor","openpgp/elgamal","openpgp/errors","openpgp/packet","openpgp/s2k","pbkdf2","poly1305","salsa20","salsa20/salsa","tea","twofish","xtea"]
revision = "9419663f5a44be8b34ca85f08abc5fe1be11f8a3"
revision = "0fcca4842a8d74bfddc2c96a073bd2a4d2a7a2e8"
[[projects]]
branch = "master"
name = "golang.org/x/net"
packages = ["bpf","context","html","html/atom","http2","http2/hpack","idna","internal/iana","internal/socket","internal/timeseries","ipv4","lex/httplex","trace"]
revision = "a04bdaca5b32abe1c069418fb7088ae607de5bd0"
revision = "d866cfc389cec985d6fda2859936a575a55a3ab6"
[[projects]]
branch = "master"
name = "golang.org/x/sys"
packages = ["unix"]
revision = "314a259e304ff91bd6985da2a7149bbf91237993"
revision = "28a7276518d399b9634904daad79e18b44d481bc"
[[projects]]
branch = "master"
name = "golang.org/x/text"
packages = ["collate","collate/build","internal/colltab","internal/gen","internal/tag","internal/triegen","internal/ucd","language","secure/bidirule","transform","unicode/bidi","unicode/cldr","unicode/norm","unicode/rangetable"]
revision = "825fc78a2fd6fa0a5447e300189e3219e05e1f25"
revision = "e19ae1496984b1c655b8044a65c0300a3c878dd3"
[[projects]]
branch = "master"
name = "google.golang.org/genproto"
packages = ["googleapis/rpc/status"]
revision = "f676e0f3ac6395ff1a529ae59a6670878a8371a6"
revision = "a8101f21cf983e773d0c1133ebc5424792003214"
[[projects]]
name = "google.golang.org/grpc"
packages = [".","codes","connectivity","credentials","grpclb/grpc_lb_v1/messages","grpclog","health","health/grpc_health_v1","internal","keepalive","metadata","naming","peer","stats","status","tap","transport"]
revision = "f92cdcd7dcdc69e81b2d7b338479a19a8723cfa3"
version = "v1.6.0"
packages = [".","balancer","balancer/base","balancer/roundrobin","codes","connectivity","credentials","encoding","grpclb/grpc_lb_v1/messages","grpclog","health","health/grpc_health_v1","internal","keepalive","metadata","naming","peer","resolver","resolver/dns","resolver/passthrough","stats","status","tap","transport"]
revision = "f3955b8e9e244dd4dd4bc4f7b7a23a8445400a76"
version = "v1.9.0"
[[projects]]
name = "gopkg.in/alecthomas/kingpin.v2"
packages = ["."]
revision = "1087e65c9441605df944fb12c33f0fe7072d18ca"
version = "v2.2.5"
revision = "947dcec5ba9c011838740e680966fd7087a71d0d"
version = "v2.2.6"
[solve-meta]
analyzer-name = "dep"
analyzer-version = 1
inputs-digest = "4afa28f3bd4cc58dcc7474b1f476bb98f523241a5e998c1c0671a0eaad7fbf41"
inputs-digest = "207902d7a1c84bb5bca1b004cbb19f67e06f2231f9ad48b2129698bf47f115a7"
solver-name = "gps-cdcl"
solver-version = 1

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@ -1,3 +1,159 @@
Release v1.12.55 (2018-01-02)
===
### Service Client Updates
* `service/rds`: Updates service documentation
* Documentation updates for rds
Release v1.12.54 (2017-12-29)
===
### Service Client Updates
* `aws/endpoints`: Updated Regions and Endpoints metadata.
* `service/workspaces`: Updates service API and documentation
* Modify WorkSpaces have been updated with flexible storage and switching of hardware bundles feature. The following configurations have been added to ModifyWorkSpacesProperties: storage and compute. This update provides the capability to configure the storage of a WorkSpace. It also adds the capability of switching hardware bundle of a WorkSpace by specifying an eligible compute (Value, Standard, Performance, Power).
Release v1.12.53 (2017-12-22)
===
### Service Client Updates
* `service/ec2`: Updates service API
* This release fixes an issue with tags not showing in DescribeAddresses responses.
* `service/ecs`: Updates service API and documentation
* Amazon ECS users can now set a health check initialization wait period of their ECS services, the services that are associated with an Elastic Load Balancer (ELB) will wait for a period of time before the ELB become healthy. You can now configure this in Create and Update Service.
* `service/inspector`: Updates service API and documentation
* PreviewAgents API now returns additional fields within the AgentPreview data type. The API now shows the agent health and availability status for all instances included in the assessment target. This allows users to check the health status of Inspector Agents before running an assessment. In addition, it shows the instance ID, hostname, and IP address of the targeted instances.
* `service/sagemaker`: Updates service API and documentation
* SageMaker Models no longer support SupplementalContainers. API's that have been affected are CreateModel and DescribeModel.
Release v1.12.52 (2017-12-21)
===
### Service Client Updates
* `service/codebuild`: Updates service API and documentation
* Adding support allowing AWS CodeBuild customers to select specific curated image versions.
* `service/ec2`: Updates service API and documentation
* Elastic IP tagging enables you to add key and value metadata to your Elastic IPs so that you can search, filter, and organize them according to your organization's needs.
* `aws/endpoints`: Updated Regions and Endpoints metadata.
* `service/kinesisanalytics`: Updates service API and documentation
* Kinesis Analytics now supports AWS Lambda functions as output.
Release v1.12.51 (2017-12-21)
===
### Service Client Updates
* `service/config`: Updates service API
* `aws/endpoints`: Updated Regions and Endpoints metadata.
* `service/iot`: Updates service API and documentation
* This release adds support for code signed Over-the-air update functionality for Amazon FreeRTOS. Users can now create and schedule Over-the-air updates to their Amazon FreeRTOS devices using these new APIs.
Release v1.12.50 (2017-12-19)
===
### Service Client Updates
* `service/apigateway`: Updates service API and documentation
* API Gateway now adds support for calling API with compressed payloads using one of the supported content codings, tagging an API stage for cost allocation, and returning API keys from a custom authorizer for use with a usage plan.
* `aws/endpoints`: Updated Regions and Endpoints metadata.
* `service/mediastore-data`: Updates service documentation
* `service/route53`: Updates service API and documentation
* Route 53 added support for a new China (Ningxia) region, cn-northwest-1. You can now specify cn-northwest-1 as the region for latency-based or geoproximity routing. Route 53 also added support for a new EU (Paris) region, eu-west-3. You can now associate VPCs in eu-west-3 with private hosted zones and create alias records that route traffic to resources in eu-west-3.
Release v1.12.49 (2017-12-19)
===
### Service Client Updates
* `aws/endpoints`: Updated Regions and Endpoints metadata.
* `service/monitoring`: Updates service documentation
* Documentation updates for monitoring
Release v1.12.48 (2017-12-15)
===
### Service Client Updates
* `service/appstream`: Updates service API and documentation
* This API update is to enable customers to add tags to their Amazon AppStream 2.0 resources
Release v1.12.47 (2017-12-14)
===
### Service Client Updates
* `service/apigateway`: Updates service API and documentation
* Adds support for Cognito Authorizer scopes at the API method level.
* `service/email`: Updates service documentation
* Added information about the maximum number of transactions per second for the SendCustomVerificationEmail operation.
* `aws/endpoints`: Updated Regions and Endpoints metadata.
Release v1.12.46 (2017-12-12)
===
### Service Client Updates
* `service/workmail`: Adds new service
* Today, Amazon WorkMail released an administrative SDK and enabled AWS CloudTrail integration. With the administrative SDK, you can natively integrate WorkMail with your existing services. The SDK enables programmatic user, resource, and group management through API calls. This means your existing IT tools and workflows can now automate WorkMail management, and third party applications can streamline WorkMail migrations and account actions.
Release v1.12.45 (2017-12-11)
===
### Service Client Updates
* `service/cognito-idp`: Updates service API and documentation
* `aws/endpoints`: Updated Regions and Endpoints metadata.
* `service/lex-models`: Updates service API and documentation
* `service/sagemaker`: Updates service API
* CreateModel API Update: The request parameter 'ExecutionRoleArn' has changed from optional to required.
Release v1.12.44 (2017-12-08)
===
### Service Client Updates
* `service/appstream`: Updates service API and documentation
* This API update is to support the feature that allows customers to automatically consume the latest Amazon AppStream 2.0 agent as and when published by AWS.
* `service/ecs`: Updates service documentation
* Documentation updates for Windows containers.
* `service/monitoring`: Updates service API and documentation
* With this launch, you can now create a CloudWatch alarm that alerts you when M out of N datapoints of a metric are breaching your predefined threshold, such as three out of five times in any given five minutes interval or two out of six times in a thirty minutes interval. When M out of N datapoints are not breaching your threshold in an interval, the alarm will be in OK state. Please note that the M datapoints out of N datapoints in an interval can be of any order and does not need to be consecutive. Consequently, you can now get alerted even when the spikes in your metrics are intermittent over an interval.
Release v1.12.43 (2017-12-07)
===
### Service Client Updates
* `service/email`: Updates service API, documentation, and paginators
* Customers can customize the emails that Amazon SES sends when verifying new identities. This feature is helpful for developers whose applications send email through Amazon SES on behalf of their customers.
* `service/es`: Updates service API and documentation
* Added support for encryption of data at rest on Amazon Elasticsearch Service using AWS KMS
### SDK Bugs
* `models/apis` Fixes removes colliding sagemaker models folders ([#1686](https://github.com/aws/aws-sdk-go/pull/1686))
* Fixes Release v1.12.42's SageMaker vs sagemaker model folders.
Release v1.12.42 (2017-12-06)
===
### Service Client Updates
* `service/clouddirectory`: Updates service API and documentation
* Amazon Cloud Directory makes it easier for you to apply schema changes across your directories with in-place schema upgrades. Your directories now remain available while backward-compatible schema changes are being applied, such as the addition of new fields. You also can view the history of your schema changes in Cloud Directory by using both major and minor version identifiers, which can help you track and audit schema versions across directories.
* `service/elasticbeanstalk`: Updates service documentation
* Documentation updates for AWS Elastic Beanstalk.
* `service/sagemaker`: Adds new service
* Initial waiters for common SageMaker workflows.
Release v1.12.41 (2017-12-05)
===
### Service Client Updates
* `service/iot`: Updates service API and documentation
* Add error action API for RulesEngine.
* `service/servicecatalog`: Updates service API and documentation
* ServiceCatalog has two distinct personas for its use, an "admin" persona (who creates sets of products with different versions and prescribes who has access to them) and an "end-user" persona (who can launch cloud resources based on the configuration data their admins have given them access to). This API update will allow admin users to deactivate/activate product versions, end-user will only be able to access and launch active product versions.
* `service/servicediscovery`: Adds new service
* Amazon Route 53 Auto Naming lets you configure public or private namespaces that your microservice applications run in. When instances of the service become available, you can call the Auto Naming API to register the instance, and Amazon Route 53 automatically creates up to five DNS records and an optional health check. Clients that submit DNS queries for the service receive an answer that contains up to eight healthy records.
Release v1.12.40 (2017-12-04)
===
### Service Client Updates
* `service/budgets`: Updates service API and documentation
* Add additional costTypes to support finer control for different charges included in a cost budget.
* `service/ecs`: Updates service documentation
* Documentation updates for ecs
Release v1.12.39 (2017-12-01)
===

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@ -6,6 +6,8 @@ aws-sdk-go is the official AWS SDK for the Go programming language.
Checkout our [release notes](https://github.com/aws/aws-sdk-go/releases) for information about the latest bug fixes, updates, and features added to the SDK.
We [announced](https://aws.amazon.com/blogs/developer/aws-sdk-for-go-2-0-developer-preview/) the Developer Preview for the [v2 AWS SDK for Go](). The v2 SDK is available at https://github.com/aws/aws-sdk-go-v2, and `go get github.com/aws/aws-sdk-go-v2` via `go get`. Check out the v2 SDK's [changes and updates](https://github.com/aws/aws-sdk-go-v2/blob/master/CHANGELOG.md), and let us know what you think. We want your feedback.
## Installing
If you are using Go 1.5 with the `GO15VENDOREXPERIMENT=1` vendoring flag, or 1.6 and higher you can use the following command to retrieve the SDK. The SDK's non-testing dependencies will be included and are vendored in the `vendor` folder.
@ -305,7 +307,7 @@ documentation for the errors that could be returned.
// will leak connections.
defer result.Body.Close()
fmt.Println("Object Size:", aws.StringValue(result.ContentLength))
fmt.Println("Object Size:", aws.Int64Value(result.ContentLength))
```
### API Request Pagination and Resource Waiters

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@ -168,7 +168,7 @@ type Config struct {
//
EC2MetadataDisableTimeoutOverride *bool
// Instructs the endpiont to be generated for a service client to
// Instructs the endpoint to be generated for a service client to
// be the dual stack endpoint. The dual stack endpoint will support
// both IPv4 and IPv6 addressing.
//

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@ -9,6 +9,7 @@ package defaults
import (
"fmt"
"net"
"net/http"
"net/url"
"os"
@ -118,14 +119,43 @@ func RemoteCredProvider(cfg aws.Config, handlers request.Handlers) credentials.P
return ec2RoleProvider(cfg, handlers)
}
var lookupHostFn = net.LookupHost
func isLoopbackHost(host string) (bool, error) {
ip := net.ParseIP(host)
if ip != nil {
return ip.IsLoopback(), nil
}
// Host is not an ip, perform lookup
addrs, err := lookupHostFn(host)
if err != nil {
return false, err
}
for _, addr := range addrs {
if !net.ParseIP(addr).IsLoopback() {
return false, nil
}
}
return true, nil
}
func localHTTPCredProvider(cfg aws.Config, handlers request.Handlers, u string) credentials.Provider {
var errMsg string
parsed, err := url.Parse(u)
if err != nil {
errMsg = fmt.Sprintf("invalid URL, %v", err)
} else if host := aws.URLHostname(parsed); !(host == "localhost" || host == "127.0.0.1") {
errMsg = fmt.Sprintf("invalid host address, %q, only localhost and 127.0.0.1 are valid.", host)
} else {
host := aws.URLHostname(parsed)
if len(host) == 0 {
errMsg = "unable to parse host from local HTTP cred provider URL"
} else if isLoopback, loopbackErr := isLoopbackHost(host); loopbackErr != nil {
errMsg = fmt.Sprintf("failed to resolve host %q, %v", host, loopbackErr)
} else if !isLoopback {
errMsg = fmt.Sprintf("invalid endpoint host, %q, only loopback hosts are allowed.", host)
}
}
if len(errMsg) > 0 {

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@ -13,12 +13,40 @@ import (
)
func TestHTTPCredProvider(t *testing.T) {
origFn := lookupHostFn
defer func() { lookupHostFn = origFn }()
lookupHostFn = func(host string) ([]string, error) {
m := map[string]struct {
Addrs []string
Err error
}{
"localhost": {Addrs: []string{"::1", "127.0.0.1"}},
"actuallylocal": {Addrs: []string{"127.0.0.2"}},
"notlocal": {Addrs: []string{"::1", "127.0.0.1", "192.168.1.10"}},
"www.example.com": {Addrs: []string{"10.10.10.10"}},
}
h, ok := m[host]
if !ok {
t.Fatalf("unknown host in test, %v", host)
return nil, fmt.Errorf("unknown host")
}
return h.Addrs, h.Err
}
cases := []struct {
Host string
Fail bool
}{
{"localhost", false}, {"127.0.0.1", false},
{"www.example.com", true}, {"169.254.170.2", true},
{"localhost", false},
{"actuallylocal", false},
{"127.0.0.1", false},
{"127.1.1.1", false},
{"[::1]", false},
{"www.example.com", true},
{"169.254.170.2", true},
}
defer os.Clearenv()

View File

@ -24,6 +24,7 @@ const (
EuCentral1RegionID = "eu-central-1" // EU (Frankfurt).
EuWest1RegionID = "eu-west-1" // EU (Ireland).
EuWest2RegionID = "eu-west-2" // EU (London).
EuWest3RegionID = "eu-west-3" // EU (Paris).
SaEast1RegionID = "sa-east-1" // South America (Sao Paulo).
UsEast1RegionID = "us-east-1" // US East (N. Virginia).
UsEast2RegionID = "us-east-2" // US East (Ohio).
@ -33,7 +34,8 @@ const (
// AWS China partition's regions.
const (
CnNorth1RegionID = "cn-north-1" // China (Beijing).
CnNorth1RegionID = "cn-north-1" // China (Beijing).
CnNorthwest1RegionID = "cn-northwest-1" // China (Ningxia).
)
// AWS GovCloud (US) partition's regions.
@ -222,6 +224,9 @@ var awsPartition = partition{
"eu-west-2": region{
Description: "EU (London)",
},
"eu-west-3": region{
Description: "EU (Paris)",
},
"sa-east-1": region{
Description: "South America (Sao Paulo)",
},
@ -251,6 +256,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -281,6 +287,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -306,6 +313,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -354,6 +362,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -412,6 +421,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -491,6 +501,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -502,6 +513,7 @@ var awsPartition = partition{
Endpoints: endpoints{
"ap-northeast-1": endpoint{},
"ap-northeast-2": endpoint{},
"ap-southeast-1": endpoint{},
"ap-southeast-2": endpoint{},
"ca-central-1": endpoint{},
@ -545,6 +557,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -574,8 +587,10 @@ var awsPartition = partition{
"codestar": service{
Endpoints: endpoints{
"ap-northeast-1": endpoint{},
"ap-southeast-1": endpoint{},
"ap-southeast-2": endpoint{},
"ca-central-1": endpoint{},
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
@ -645,6 +660,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -698,6 +714,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -735,6 +752,7 @@ var awsPartition = partition{
Endpoints: endpoints{
"ap-northeast-1": endpoint{},
"ap-northeast-2": endpoint{},
"ap-south-1": endpoint{},
"ap-southeast-1": endpoint{},
"ap-southeast-2": endpoint{},
"ca-central-1": endpoint{},
@ -762,6 +780,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"local": endpoint{
Hostname: "localhost:8000",
Protocols: []string{"http"},
@ -790,6 +809,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -813,12 +833,15 @@ var awsPartition = partition{
Endpoints: endpoints{
"ap-northeast-1": endpoint{},
"ap-northeast-2": endpoint{},
"ap-south-1": endpoint{},
"ap-southeast-1": endpoint{},
"ap-southeast-2": endpoint{},
"ca-central-1": endpoint{},
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
"us-west-1": endpoint{},
@ -830,12 +853,15 @@ var awsPartition = partition{
Endpoints: endpoints{
"ap-northeast-1": endpoint{},
"ap-northeast-2": endpoint{},
"ap-south-1": endpoint{},
"ap-southeast-1": endpoint{},
"ap-southeast-2": endpoint{},
"ca-central-1": endpoint{},
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
"us-west-1": endpoint{},
@ -854,6 +880,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -873,6 +900,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -905,6 +933,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -929,6 +958,7 @@ var awsPartition = partition{
},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{
SSLCommonName: "{service}.{region}.{dnsSuffix}",
@ -981,6 +1011,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1000,6 +1031,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1051,6 +1083,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
"us-west-1": endpoint{},
@ -1060,6 +1093,7 @@ var awsPartition = partition{
"glue": service{
Endpoints: endpoints{
"eu-west-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
"us-west-2": endpoint{},
@ -1119,6 +1153,7 @@ var awsPartition = partition{
"ap-northeast-2": endpoint{},
"ap-south-1": endpoint{},
"ap-southeast-2": endpoint{},
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"us-east-1": endpoint{},
"us-west-1": endpoint{},
@ -1156,6 +1191,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1183,6 +1219,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1202,6 +1239,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1236,6 +1274,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1315,6 +1354,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1343,6 +1383,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1393,6 +1434,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1412,6 +1454,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{
SSLCommonName: "{service}.{dnsSuffix}",
@ -1433,6 +1476,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1510,6 +1554,7 @@ var awsPartition = partition{
SignatureVersions: []string{"s3", "s3v4"},
},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"s3-external-1": endpoint{
Hostname: "s3-external-1.amazonaws.com",
SignatureVersions: []string{"s3", "s3v4"},
@ -1566,6 +1611,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1592,8 +1638,10 @@ var awsPartition = partition{
"ap-southeast-2": endpoint{},
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-3": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
"us-west-1": endpoint{},
"us-west-2": endpoint{},
},
},
@ -1606,6 +1654,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1627,6 +1676,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1649,6 +1699,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{
SSLCommonName: "queue.{dnsSuffix}",
@ -1670,6 +1721,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1702,6 +1754,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1726,6 +1779,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"local": endpoint{
Hostname: "localhost:8000",
Protocols: []string{"http"},
@ -1764,6 +1818,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-1-fips": endpoint{
@ -1813,6 +1868,7 @@ var awsPartition = partition{
"eu-central-1": endpoint{},
"eu-west-1": endpoint{},
"eu-west-2": endpoint{},
"eu-west-3": endpoint{},
"sa-east-1": endpoint{},
"us-east-1": endpoint{},
"us-east-2": endpoint{},
@ -1932,6 +1988,9 @@ var awscnPartition = partition{
"cn-north-1": region{
Description: "China (Beijing)",
},
"cn-northwest-1": region{
Description: "China (Ningxia)",
},
},
Services: services{
"apigateway": service{
@ -1949,7 +2008,8 @@ var awscnPartition = partition{
},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"autoscaling": service{
@ -1957,25 +2017,29 @@ var awscnPartition = partition{
Protocols: []string{"http", "https"},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"cloudformation": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"cloudtrail": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"codedeploy": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"cognito-identity": service{
@ -1987,13 +2051,15 @@ var awscnPartition = partition{
"config": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"directconnect": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"dynamodb": service{
@ -2001,7 +2067,8 @@ var awscnPartition = partition{
Protocols: []string{"http", "https"},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"ec2": service{
@ -2009,7 +2076,8 @@ var awscnPartition = partition{
Protocols: []string{"http", "https"},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"ec2metadata": service{
@ -2038,13 +2106,15 @@ var awscnPartition = partition{
"elasticache": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"elasticbeanstalk": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"elasticloadbalancing": service{
@ -2052,7 +2122,8 @@ var awscnPartition = partition{
Protocols: []string{"https"},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"elasticmapreduce": service{
@ -2060,14 +2131,21 @@ var awscnPartition = partition{
Protocols: []string{"http", "https"},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"es": service{
Endpoints: endpoints{
"cn-northwest-1": endpoint{},
},
},
"es": service{},
"events": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"glacier": service{
@ -2075,7 +2153,8 @@ var awscnPartition = partition{
Protocols: []string{"http", "https"},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"iam": service{
@ -2104,7 +2183,8 @@ var awscnPartition = partition{
"kinesis": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"lambda": service{
@ -2116,7 +2196,8 @@ var awscnPartition = partition{
"logs": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"monitoring": service{
@ -2124,19 +2205,22 @@ var awscnPartition = partition{
Protocols: []string{"http", "https"},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"rds": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"redshift": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"s3": service{
@ -2145,7 +2229,8 @@ var awscnPartition = partition{
SignatureVersions: []string{"s3v4"},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"snowball": service{
@ -2159,7 +2244,8 @@ var awscnPartition = partition{
Protocols: []string{"http", "https"},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"sqs": service{
@ -2168,13 +2254,15 @@ var awscnPartition = partition{
Protocols: []string{"http", "https"},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"ssm": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"storagegateway": service{
@ -2191,19 +2279,22 @@ var awscnPartition = partition{
},
},
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"sts": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"swf": service{
Endpoints: endpoints{
"cn-north-1": endpoint{},
"cn-north-1": endpoint{},
"cn-northwest-1": endpoint{},
},
},
"tagging": service{

View File

@ -5,4 +5,4 @@ package aws
const SDKName = "aws-sdk-go"
// SDKVersion is the version of this SDK
const SDKVersion = "1.12.39"
const SDKVersion = "1.12.55"

View File

@ -197,7 +197,7 @@
// regions different from the Session's region.
//
// svc := s3.New(sess, &aws.Config{
// Region: aws.String(ednpoints.UsWest2RegionID),
// Region: aws.String(endpoints.UsWest2RegionID),
// })
//
// See the Config type in the aws package for more information and additional

View File

@ -2905,6 +2905,318 @@ type InputService14TestShapeInputService14TestCaseOperation2Output struct {
_ struct{} `type:"structure"`
}
// InputService15ProtocolTest provides the API operation methods for making requests to
// . See this package's package overview docs
// for details on the service.
//
// InputService15ProtocolTest methods are safe to use concurrently. It is not safe to
// modify mutate any of the struct's properties though.
type InputService15ProtocolTest struct {
*client.Client
}
// New creates a new instance of the InputService15ProtocolTest client with a session.
// If additional configuration is needed for the client instance use the optional
// aws.Config parameter to add your extra config.
//
// Example:
// // Create a InputService15ProtocolTest client from just a session.
// svc := inputservice15protocoltest.New(mySession)
//
// // Create a InputService15ProtocolTest client with additional configuration
// svc := inputservice15protocoltest.New(mySession, aws.NewConfig().WithRegion("us-west-2"))
func NewInputService15ProtocolTest(p client.ConfigProvider, cfgs ...*aws.Config) *InputService15ProtocolTest {
c := p.ClientConfig("inputservice15protocoltest", cfgs...)
return newInputService15ProtocolTestClient(*c.Config, c.Handlers, c.Endpoint, c.SigningRegion, c.SigningName)
}
// newClient creates, initializes and returns a new service client instance.
func newInputService15ProtocolTestClient(cfg aws.Config, handlers request.Handlers, endpoint, signingRegion, signingName string) *InputService15ProtocolTest {
svc := &InputService15ProtocolTest{
Client: client.New(
cfg,
metadata.ClientInfo{
ServiceName: "inputservice15protocoltest",
SigningName: signingName,
SigningRegion: signingRegion,
Endpoint: endpoint,
APIVersion: "2014-01-01",
},
handlers,
),
}
// Handlers
svc.Handlers.Sign.PushBackNamed(v4.SignRequestHandler)
svc.Handlers.Build.PushBackNamed(query.BuildHandler)
svc.Handlers.Unmarshal.PushBackNamed(query.UnmarshalHandler)
svc.Handlers.UnmarshalMeta.PushBackNamed(query.UnmarshalMetaHandler)
svc.Handlers.UnmarshalError.PushBackNamed(query.UnmarshalErrorHandler)
return svc
}
// newRequest creates a new request for a InputService15ProtocolTest operation and runs any
// custom request initialization.
func (c *InputService15ProtocolTest) newRequest(op *request.Operation, params, data interface{}) *request.Request {
req := c.NewRequest(op, params, data)
return req
}
const opInputService15TestCaseOperation1 = "OperationName"
// InputService15TestCaseOperation1Request generates a "aws/request.Request" representing the
// client's request for the InputService15TestCaseOperation1 operation. The "output" return
// value will be populated with the request's response once the request complets
// successfuly.
//
// Use "Send" method on the returned Request to send the API call to the service.
// the "output" return value is not valid until after Send returns without error.
//
// See InputService15TestCaseOperation1 for more information on using the InputService15TestCaseOperation1
// API call, and error handling.
//
// This method is useful when you want to inject custom logic or configuration
// into the SDK's request lifecycle. Such as custom headers, or retry logic.
//
//
// // Example sending a request using the InputService15TestCaseOperation1Request method.
// req, resp := client.InputService15TestCaseOperation1Request(params)
//
// err := req.Send()
// if err == nil { // resp is now filled
// fmt.Println(resp)
// }
func (c *InputService15ProtocolTest) InputService15TestCaseOperation1Request(input *InputService15TestShapeInputService15TestCaseOperation3Input) (req *request.Request, output *InputService15TestShapeInputService15TestCaseOperation1Output) {
op := &request.Operation{
Name: opInputService15TestCaseOperation1,
HTTPMethod: "POST",
HTTPPath: "/",
}
if input == nil {
input = &InputService15TestShapeInputService15TestCaseOperation3Input{}
}
output = &InputService15TestShapeInputService15TestCaseOperation1Output{}
req = c.newRequest(op, input, output)
req.Handlers.Unmarshal.Remove(query.UnmarshalHandler)
req.Handlers.Unmarshal.PushBackNamed(protocol.UnmarshalDiscardBodyHandler)
return
}
// InputService15TestCaseOperation1 API operation for .
//
// Returns awserr.Error for service API and SDK errors. Use runtime type assertions
// with awserr.Error's Code and Message methods to get detailed information about
// the error.
//
// See the AWS API reference guide for 's
// API operation InputService15TestCaseOperation1 for usage and error information.
func (c *InputService15ProtocolTest) InputService15TestCaseOperation1(input *InputService15TestShapeInputService15TestCaseOperation3Input) (*InputService15TestShapeInputService15TestCaseOperation1Output, error) {
req, out := c.InputService15TestCaseOperation1Request(input)
return out, req.Send()
}
// InputService15TestCaseOperation1WithContext is the same as InputService15TestCaseOperation1 with the addition of
// the ability to pass a context and additional request options.
//
// See InputService15TestCaseOperation1 for details on how to use this API operation.
//
// The context must be non-nil and will be used for request cancellation. If
// the context is nil a panic will occur. In the future the SDK may create
// sub-contexts for http.Requests. See https://golang.org/pkg/context/
// for more information on using Contexts.
func (c *InputService15ProtocolTest) InputService15TestCaseOperation1WithContext(ctx aws.Context, input *InputService15TestShapeInputService15TestCaseOperation3Input, opts ...request.Option) (*InputService15TestShapeInputService15TestCaseOperation1Output, error) {
req, out := c.InputService15TestCaseOperation1Request(input)
req.SetContext(ctx)
req.ApplyOptions(opts...)
return out, req.Send()
}
const opInputService15TestCaseOperation2 = "OperationName"
// InputService15TestCaseOperation2Request generates a "aws/request.Request" representing the
// client's request for the InputService15TestCaseOperation2 operation. The "output" return
// value will be populated with the request's response once the request complets
// successfuly.
//
// Use "Send" method on the returned Request to send the API call to the service.
// the "output" return value is not valid until after Send returns without error.
//
// See InputService15TestCaseOperation2 for more information on using the InputService15TestCaseOperation2
// API call, and error handling.
//
// This method is useful when you want to inject custom logic or configuration
// into the SDK's request lifecycle. Such as custom headers, or retry logic.
//
//
// // Example sending a request using the InputService15TestCaseOperation2Request method.
// req, resp := client.InputService15TestCaseOperation2Request(params)
//
// err := req.Send()
// if err == nil { // resp is now filled
// fmt.Println(resp)
// }
func (c *InputService15ProtocolTest) InputService15TestCaseOperation2Request(input *InputService15TestShapeInputService15TestCaseOperation3Input) (req *request.Request, output *InputService15TestShapeInputService15TestCaseOperation2Output) {
op := &request.Operation{
Name: opInputService15TestCaseOperation2,
HTTPMethod: "POST",
HTTPPath: "/",
}
if input == nil {
input = &InputService15TestShapeInputService15TestCaseOperation3Input{}
}
output = &InputService15TestShapeInputService15TestCaseOperation2Output{}
req = c.newRequest(op, input, output)
req.Handlers.Unmarshal.Remove(query.UnmarshalHandler)
req.Handlers.Unmarshal.PushBackNamed(protocol.UnmarshalDiscardBodyHandler)
return
}
// InputService15TestCaseOperation2 API operation for .
//
// Returns awserr.Error for service API and SDK errors. Use runtime type assertions
// with awserr.Error's Code and Message methods to get detailed information about
// the error.
//
// See the AWS API reference guide for 's
// API operation InputService15TestCaseOperation2 for usage and error information.
func (c *InputService15ProtocolTest) InputService15TestCaseOperation2(input *InputService15TestShapeInputService15TestCaseOperation3Input) (*InputService15TestShapeInputService15TestCaseOperation2Output, error) {
req, out := c.InputService15TestCaseOperation2Request(input)
return out, req.Send()
}
// InputService15TestCaseOperation2WithContext is the same as InputService15TestCaseOperation2 with the addition of
// the ability to pass a context and additional request options.
//
// See InputService15TestCaseOperation2 for details on how to use this API operation.
//
// The context must be non-nil and will be used for request cancellation. If
// the context is nil a panic will occur. In the future the SDK may create
// sub-contexts for http.Requests. See https://golang.org/pkg/context/
// for more information on using Contexts.
func (c *InputService15ProtocolTest) InputService15TestCaseOperation2WithContext(ctx aws.Context, input *InputService15TestShapeInputService15TestCaseOperation3Input, opts ...request.Option) (*InputService15TestShapeInputService15TestCaseOperation2Output, error) {
req, out := c.InputService15TestCaseOperation2Request(input)
req.SetContext(ctx)
req.ApplyOptions(opts...)
return out, req.Send()
}
const opInputService15TestCaseOperation3 = "OperationName"
// InputService15TestCaseOperation3Request generates a "aws/request.Request" representing the
// client's request for the InputService15TestCaseOperation3 operation. The "output" return
// value will be populated with the request's response once the request complets
// successfuly.
//
// Use "Send" method on the returned Request to send the API call to the service.
// the "output" return value is not valid until after Send returns without error.
//
// See InputService15TestCaseOperation3 for more information on using the InputService15TestCaseOperation3
// API call, and error handling.
//
// This method is useful when you want to inject custom logic or configuration
// into the SDK's request lifecycle. Such as custom headers, or retry logic.
//
//
// // Example sending a request using the InputService15TestCaseOperation3Request method.
// req, resp := client.InputService15TestCaseOperation3Request(params)
//
// err := req.Send()
// if err == nil { // resp is now filled
// fmt.Println(resp)
// }
func (c *InputService15ProtocolTest) InputService15TestCaseOperation3Request(input *InputService15TestShapeInputService15TestCaseOperation3Input) (req *request.Request, output *InputService15TestShapeInputService15TestCaseOperation3Output) {
op := &request.Operation{
Name: opInputService15TestCaseOperation3,
HTTPMethod: "POST",
HTTPPath: "/",
}
if input == nil {
input = &InputService15TestShapeInputService15TestCaseOperation3Input{}
}
output = &InputService15TestShapeInputService15TestCaseOperation3Output{}
req = c.newRequest(op, input, output)
req.Handlers.Unmarshal.Remove(query.UnmarshalHandler)
req.Handlers.Unmarshal.PushBackNamed(protocol.UnmarshalDiscardBodyHandler)
return
}
// InputService15TestCaseOperation3 API operation for .
//
// Returns awserr.Error for service API and SDK errors. Use runtime type assertions
// with awserr.Error's Code and Message methods to get detailed information about
// the error.
//
// See the AWS API reference guide for 's
// API operation InputService15TestCaseOperation3 for usage and error information.
func (c *InputService15ProtocolTest) InputService15TestCaseOperation3(input *InputService15TestShapeInputService15TestCaseOperation3Input) (*InputService15TestShapeInputService15TestCaseOperation3Output, error) {
req, out := c.InputService15TestCaseOperation3Request(input)
return out, req.Send()
}
// InputService15TestCaseOperation3WithContext is the same as InputService15TestCaseOperation3 with the addition of
// the ability to pass a context and additional request options.
//
// See InputService15TestCaseOperation3 for details on how to use this API operation.
//
// The context must be non-nil and will be used for request cancellation. If
// the context is nil a panic will occur. In the future the SDK may create
// sub-contexts for http.Requests. See https://golang.org/pkg/context/
// for more information on using Contexts.
func (c *InputService15ProtocolTest) InputService15TestCaseOperation3WithContext(ctx aws.Context, input *InputService15TestShapeInputService15TestCaseOperation3Input, opts ...request.Option) (*InputService15TestShapeInputService15TestCaseOperation3Output, error) {
req, out := c.InputService15TestCaseOperation3Request(input)
req.SetContext(ctx)
req.ApplyOptions(opts...)
return out, req.Send()
}
type InputService15TestShapeInputService15TestCaseOperation1Output struct {
_ struct{} `type:"structure"`
}
type InputService15TestShapeInputService15TestCaseOperation2Output struct {
_ struct{} `type:"structure"`
}
type InputService15TestShapeInputService15TestCaseOperation3Input struct {
_ struct{} `type:"structure"`
FooEnum *string `type:"string" enum:"InputService15TestShapeEnumType"`
ListEnums []*string `type:"list"`
}
// SetFooEnum sets the FooEnum field's value.
func (s *InputService15TestShapeInputService15TestCaseOperation3Input) SetFooEnum(v string) *InputService15TestShapeInputService15TestCaseOperation3Input {
s.FooEnum = &v
return s
}
// SetListEnums sets the ListEnums field's value.
func (s *InputService15TestShapeInputService15TestCaseOperation3Input) SetListEnums(v []*string) *InputService15TestShapeInputService15TestCaseOperation3Input {
s.ListEnums = v
return s
}
type InputService15TestShapeInputService15TestCaseOperation3Output struct {
_ struct{} `type:"structure"`
}
const (
// EnumTypeFoo is a InputService15TestShapeEnumType enum value
EnumTypeFoo = "foo"
// EnumTypeBar is a InputService15TestShapeEnumType enum value
EnumTypeBar = "bar"
)
//
// Tests begin here
//
@ -3655,3 +3967,90 @@ func TestInputService14ProtocolTestIdempotencyTokenAutoFillCase2(t *testing.T) {
// assert headers
}
func TestInputService15ProtocolTestEnumCase1(t *testing.T) {
svc := NewInputService15ProtocolTest(unit.Session, &aws.Config{Endpoint: aws.String("https://test")})
input := &InputService15TestShapeInputService15TestCaseOperation3Input{
FooEnum: aws.String("foo"),
ListEnums: []*string{
aws.String("foo"),
aws.String(""),
aws.String("bar"),
},
}
req, _ := svc.InputService15TestCaseOperation1Request(input)
r := req.HTTPRequest
// build request
query.Build(req)
if req.Error != nil {
t.Errorf("expect no error, got %v", req.Error)
}
// assert body
if r.Body == nil {
t.Errorf("expect body not to be nil")
}
body, _ := ioutil.ReadAll(r.Body)
awstesting.AssertQuery(t, `Action=OperationName&FooEnum=foo&ListEnums.member.1=foo&ListEnums.member.2=&ListEnums.member.3=bar&Version=2014-01-01`, util.Trim(string(body)))
// assert URL
awstesting.AssertURL(t, "https://test/", r.URL.String())
// assert headers
}
func TestInputService15ProtocolTestEnumCase2(t *testing.T) {
svc := NewInputService15ProtocolTest(unit.Session, &aws.Config{Endpoint: aws.String("https://test")})
input := &InputService15TestShapeInputService15TestCaseOperation3Input{
FooEnum: aws.String("foo"),
}
req, _ := svc.InputService15TestCaseOperation2Request(input)
r := req.HTTPRequest
// build request
query.Build(req)
if req.Error != nil {
t.Errorf("expect no error, got %v", req.Error)
}
// assert body
if r.Body == nil {
t.Errorf("expect body not to be nil")
}
body, _ := ioutil.ReadAll(r.Body)
awstesting.AssertQuery(t, `Action=OperationName&FooEnum=foo&Version=2014-01-01`, util.Trim(string(body)))
// assert URL
awstesting.AssertURL(t, "https://test/", r.URL.String())
// assert headers
}
func TestInputService15ProtocolTestEnumCase3(t *testing.T) {
svc := NewInputService15ProtocolTest(unit.Session, &aws.Config{Endpoint: aws.String("https://test")})
input := &InputService15TestShapeInputService15TestCaseOperation3Input{}
req, _ := svc.InputService15TestCaseOperation3Request(input)
r := req.HTTPRequest
// build request
query.Build(req)
if req.Error != nil {
t.Errorf("expect no error, got %v", req.Error)
}
// assert body
if r.Body == nil {
t.Errorf("expect body not to be nil")
}
body, _ := ioutil.ReadAll(r.Body)
awstesting.AssertQuery(t, `Action=OperationName&Version=2014-01-01`, util.Trim(string(body)))
// assert URL
awstesting.AssertURL(t, "https://test/", r.URL.String())
// assert headers
}

View File

@ -2330,6 +2330,165 @@ func (s *OutputService15TestShapeOutputService15TestCaseOperation1Output) SetFoo
return s
}
// OutputService16ProtocolTest provides the API operation methods for making requests to
// . See this package's package overview docs
// for details on the service.
//
// OutputService16ProtocolTest methods are safe to use concurrently. It is not safe to
// modify mutate any of the struct's properties though.
type OutputService16ProtocolTest struct {
*client.Client
}
// New creates a new instance of the OutputService16ProtocolTest client with a session.
// If additional configuration is needed for the client instance use the optional
// aws.Config parameter to add your extra config.
//
// Example:
// // Create a OutputService16ProtocolTest client from just a session.
// svc := outputservice16protocoltest.New(mySession)
//
// // Create a OutputService16ProtocolTest client with additional configuration
// svc := outputservice16protocoltest.New(mySession, aws.NewConfig().WithRegion("us-west-2"))
func NewOutputService16ProtocolTest(p client.ConfigProvider, cfgs ...*aws.Config) *OutputService16ProtocolTest {
c := p.ClientConfig("outputservice16protocoltest", cfgs...)
return newOutputService16ProtocolTestClient(*c.Config, c.Handlers, c.Endpoint, c.SigningRegion, c.SigningName)
}
// newClient creates, initializes and returns a new service client instance.
func newOutputService16ProtocolTestClient(cfg aws.Config, handlers request.Handlers, endpoint, signingRegion, signingName string) *OutputService16ProtocolTest {
svc := &OutputService16ProtocolTest{
Client: client.New(
cfg,
metadata.ClientInfo{
ServiceName: "outputservice16protocoltest",
SigningName: signingName,
SigningRegion: signingRegion,
Endpoint: endpoint,
APIVersion: "",
},
handlers,
),
}
// Handlers
svc.Handlers.Sign.PushBackNamed(v4.SignRequestHandler)
svc.Handlers.Build.PushBackNamed(query.BuildHandler)
svc.Handlers.Unmarshal.PushBackNamed(query.UnmarshalHandler)
svc.Handlers.UnmarshalMeta.PushBackNamed(query.UnmarshalMetaHandler)
svc.Handlers.UnmarshalError.PushBackNamed(query.UnmarshalErrorHandler)
return svc
}
// newRequest creates a new request for a OutputService16ProtocolTest operation and runs any
// custom request initialization.
func (c *OutputService16ProtocolTest) newRequest(op *request.Operation, params, data interface{}) *request.Request {
req := c.NewRequest(op, params, data)
return req
}
const opOutputService16TestCaseOperation1 = "OperationName"
// OutputService16TestCaseOperation1Request generates a "aws/request.Request" representing the
// client's request for the OutputService16TestCaseOperation1 operation. The "output" return
// value will be populated with the request's response once the request complets
// successfuly.
//
// Use "Send" method on the returned Request to send the API call to the service.
// the "output" return value is not valid until after Send returns without error.
//
// See OutputService16TestCaseOperation1 for more information on using the OutputService16TestCaseOperation1
// API call, and error handling.
//
// This method is useful when you want to inject custom logic or configuration
// into the SDK's request lifecycle. Such as custom headers, or retry logic.
//
//
// // Example sending a request using the OutputService16TestCaseOperation1Request method.
// req, resp := client.OutputService16TestCaseOperation1Request(params)
//
// err := req.Send()
// if err == nil { // resp is now filled
// fmt.Println(resp)
// }
func (c *OutputService16ProtocolTest) OutputService16TestCaseOperation1Request(input *OutputService16TestShapeOutputService16TestCaseOperation1Input) (req *request.Request, output *OutputService16TestShapeOutputService16TestCaseOperation1Output) {
op := &request.Operation{
Name: opOutputService16TestCaseOperation1,
HTTPPath: "/",
}
if input == nil {
input = &OutputService16TestShapeOutputService16TestCaseOperation1Input{}
}
output = &OutputService16TestShapeOutputService16TestCaseOperation1Output{}
req = c.newRequest(op, input, output)
return
}
// OutputService16TestCaseOperation1 API operation for .
//
// Returns awserr.Error for service API and SDK errors. Use runtime type assertions
// with awserr.Error's Code and Message methods to get detailed information about
// the error.
//
// See the AWS API reference guide for 's
// API operation OutputService16TestCaseOperation1 for usage and error information.
func (c *OutputService16ProtocolTest) OutputService16TestCaseOperation1(input *OutputService16TestShapeOutputService16TestCaseOperation1Input) (*OutputService16TestShapeOutputService16TestCaseOperation1Output, error) {
req, out := c.OutputService16TestCaseOperation1Request(input)
return out, req.Send()
}
// OutputService16TestCaseOperation1WithContext is the same as OutputService16TestCaseOperation1 with the addition of
// the ability to pass a context and additional request options.
//
// See OutputService16TestCaseOperation1 for details on how to use this API operation.
//
// The context must be non-nil and will be used for request cancellation. If
// the context is nil a panic will occur. In the future the SDK may create
// sub-contexts for http.Requests. See https://golang.org/pkg/context/
// for more information on using Contexts.
func (c *OutputService16ProtocolTest) OutputService16TestCaseOperation1WithContext(ctx aws.Context, input *OutputService16TestShapeOutputService16TestCaseOperation1Input, opts ...request.Option) (*OutputService16TestShapeOutputService16TestCaseOperation1Output, error) {
req, out := c.OutputService16TestCaseOperation1Request(input)
req.SetContext(ctx)
req.ApplyOptions(opts...)
return out, req.Send()
}
type OutputService16TestShapeOutputService16TestCaseOperation1Input struct {
_ struct{} `type:"structure"`
}
type OutputService16TestShapeOutputService16TestCaseOperation1Output struct {
_ struct{} `type:"structure"`
FooEnum *string `type:"string" enum:"OutputService16TestShapeEC2EnumType"`
ListEnums []*string `type:"list"`
}
// SetFooEnum sets the FooEnum field's value.
func (s *OutputService16TestShapeOutputService16TestCaseOperation1Output) SetFooEnum(v string) *OutputService16TestShapeOutputService16TestCaseOperation1Output {
s.FooEnum = &v
return s
}
// SetListEnums sets the ListEnums field's value.
func (s *OutputService16TestShapeOutputService16TestCaseOperation1Output) SetListEnums(v []*string) *OutputService16TestShapeOutputService16TestCaseOperation1Output {
s.ListEnums = v
return s
}
const (
// EC2EnumTypeFoo is a OutputService16TestShapeEC2EnumType enum value
EC2EnumTypeFoo = "foo"
// EC2EnumTypeBar is a OutputService16TestShapeEC2EnumType enum value
EC2EnumTypeBar = "bar"
)
//
// Tests begin here
//
@ -2798,3 +2957,35 @@ func TestOutputService15ProtocolTestEmptyStringCase1(t *testing.T) {
}
}
func TestOutputService16ProtocolTestEnumOutputCase1(t *testing.T) {
svc := NewOutputService16ProtocolTest(unit.Session, &aws.Config{Endpoint: aws.String("https://test")})
buf := bytes.NewReader([]byte("<OperationNameResponse><FooEnum>foo</FooEnum><ListEnums><member>foo</member><member>bar</member></ListEnums></OperationNameResponse>"))
req, out := svc.OutputService16TestCaseOperation1Request(nil)
req.HTTPResponse = &http.Response{StatusCode: 200, Body: ioutil.NopCloser(buf), Header: http.Header{}}
// set headers
// unmarshal response
query.UnmarshalMeta(req)
query.Unmarshal(req)
if req.Error != nil {
t.Errorf("expect not error, got %v", req.Error)
}
// assert response
if out == nil {
t.Errorf("expect not to be nil")
}
if e, a := "foo", *out.FooEnum; e != a {
t.Errorf("expect %v, got %v", e, a)
}
if e, a := "foo", *out.ListEnums[0]; e != a {
t.Errorf("expect %v, got %v", e, a)
}
if e, a := "bar", *out.ListEnums[1]; e != a {
t.Errorf("expect %v, got %v", e, a)
}
}

View File

@ -4902,6 +4902,273 @@ type InputService24TestShapeInputService24TestCaseOperation2Output struct {
_ struct{} `type:"structure"`
}
// InputService25ProtocolTest provides the API operation methods for making requests to
// . See this package's package overview docs
// for details on the service.
//
// InputService25ProtocolTest methods are safe to use concurrently. It is not safe to
// modify mutate any of the struct's properties though.
type InputService25ProtocolTest struct {
*client.Client
}
// New creates a new instance of the InputService25ProtocolTest client with a session.
// If additional configuration is needed for the client instance use the optional
// aws.Config parameter to add your extra config.
//
// Example:
// // Create a InputService25ProtocolTest client from just a session.
// svc := inputservice25protocoltest.New(mySession)
//
// // Create a InputService25ProtocolTest client with additional configuration
// svc := inputservice25protocoltest.New(mySession, aws.NewConfig().WithRegion("us-west-2"))
func NewInputService25ProtocolTest(p client.ConfigProvider, cfgs ...*aws.Config) *InputService25ProtocolTest {
c := p.ClientConfig("inputservice25protocoltest", cfgs...)
return newInputService25ProtocolTestClient(*c.Config, c.Handlers, c.Endpoint, c.SigningRegion, c.SigningName)
}
// newClient creates, initializes and returns a new service client instance.
func newInputService25ProtocolTestClient(cfg aws.Config, handlers request.Handlers, endpoint, signingRegion, signingName string) *InputService25ProtocolTest {
svc := &InputService25ProtocolTest{
Client: client.New(
cfg,
metadata.ClientInfo{
ServiceName: "inputservice25protocoltest",
SigningName: signingName,
SigningRegion: signingRegion,
Endpoint: endpoint,
APIVersion: "2014-01-01",
},
handlers,
),
}
// Handlers
svc.Handlers.Sign.PushBackNamed(v4.SignRequestHandler)
svc.Handlers.Build.PushBackNamed(restxml.BuildHandler)
svc.Handlers.Unmarshal.PushBackNamed(restxml.UnmarshalHandler)
svc.Handlers.UnmarshalMeta.PushBackNamed(restxml.UnmarshalMetaHandler)
svc.Handlers.UnmarshalError.PushBackNamed(restxml.UnmarshalErrorHandler)
return svc
}
// newRequest creates a new request for a InputService25ProtocolTest operation and runs any
// custom request initialization.
func (c *InputService25ProtocolTest) newRequest(op *request.Operation, params, data interface{}) *request.Request {
req := c.NewRequest(op, params, data)
return req
}
const opInputService25TestCaseOperation1 = "OperationName"
// InputService25TestCaseOperation1Request generates a "aws/request.Request" representing the
// client's request for the InputService25TestCaseOperation1 operation. The "output" return
// value will be populated with the request's response once the request complets
// successfuly.
//
// Use "Send" method on the returned Request to send the API call to the service.
// the "output" return value is not valid until after Send returns without error.
//
// See InputService25TestCaseOperation1 for more information on using the InputService25TestCaseOperation1
// API call, and error handling.
//
// This method is useful when you want to inject custom logic or configuration
// into the SDK's request lifecycle. Such as custom headers, or retry logic.
//
//
// // Example sending a request using the InputService25TestCaseOperation1Request method.
// req, resp := client.InputService25TestCaseOperation1Request(params)
//
// err := req.Send()
// if err == nil { // resp is now filled
// fmt.Println(resp)
// }
func (c *InputService25ProtocolTest) InputService25TestCaseOperation1Request(input *InputService25TestShapeInputService25TestCaseOperation2Input) (req *request.Request, output *InputService25TestShapeInputService25TestCaseOperation1Output) {
op := &request.Operation{
Name: opInputService25TestCaseOperation1,
HTTPMethod: "POST",
HTTPPath: "/Enum/{URIEnum}",
}
if input == nil {
input = &InputService25TestShapeInputService25TestCaseOperation2Input{}
}
output = &InputService25TestShapeInputService25TestCaseOperation1Output{}
req = c.newRequest(op, input, output)
req.Handlers.Unmarshal.Remove(restxml.UnmarshalHandler)
req.Handlers.Unmarshal.PushBackNamed(protocol.UnmarshalDiscardBodyHandler)
return
}
// InputService25TestCaseOperation1 API operation for .
//
// Returns awserr.Error for service API and SDK errors. Use runtime type assertions
// with awserr.Error's Code and Message methods to get detailed information about
// the error.
//
// See the AWS API reference guide for 's
// API operation InputService25TestCaseOperation1 for usage and error information.
func (c *InputService25ProtocolTest) InputService25TestCaseOperation1(input *InputService25TestShapeInputService25TestCaseOperation2Input) (*InputService25TestShapeInputService25TestCaseOperation1Output, error) {
req, out := c.InputService25TestCaseOperation1Request(input)
return out, req.Send()
}
// InputService25TestCaseOperation1WithContext is the same as InputService25TestCaseOperation1 with the addition of
// the ability to pass a context and additional request options.
//
// See InputService25TestCaseOperation1 for details on how to use this API operation.
//
// The context must be non-nil and will be used for request cancellation. If
// the context is nil a panic will occur. In the future the SDK may create
// sub-contexts for http.Requests. See https://golang.org/pkg/context/
// for more information on using Contexts.
func (c *InputService25ProtocolTest) InputService25TestCaseOperation1WithContext(ctx aws.Context, input *InputService25TestShapeInputService25TestCaseOperation2Input, opts ...request.Option) (*InputService25TestShapeInputService25TestCaseOperation1Output, error) {
req, out := c.InputService25TestCaseOperation1Request(input)
req.SetContext(ctx)
req.ApplyOptions(opts...)
return out, req.Send()
}
const opInputService25TestCaseOperation2 = "OperationName"
// InputService25TestCaseOperation2Request generates a "aws/request.Request" representing the
// client's request for the InputService25TestCaseOperation2 operation. The "output" return
// value will be populated with the request's response once the request complets
// successfuly.
//
// Use "Send" method on the returned Request to send the API call to the service.
// the "output" return value is not valid until after Send returns without error.
//
// See InputService25TestCaseOperation2 for more information on using the InputService25TestCaseOperation2
// API call, and error handling.
//
// This method is useful when you want to inject custom logic or configuration
// into the SDK's request lifecycle. Such as custom headers, or retry logic.
//
//
// // Example sending a request using the InputService25TestCaseOperation2Request method.
// req, resp := client.InputService25TestCaseOperation2Request(params)
//
// err := req.Send()
// if err == nil { // resp is now filled
// fmt.Println(resp)
// }
func (c *InputService25ProtocolTest) InputService25TestCaseOperation2Request(input *InputService25TestShapeInputService25TestCaseOperation2Input) (req *request.Request, output *InputService25TestShapeInputService25TestCaseOperation2Output) {
op := &request.Operation{
Name: opInputService25TestCaseOperation2,
HTTPMethod: "POST",
HTTPPath: "/path",
}
if input == nil {
input = &InputService25TestShapeInputService25TestCaseOperation2Input{}
}
output = &InputService25TestShapeInputService25TestCaseOperation2Output{}
req = c.newRequest(op, input, output)
req.Handlers.Unmarshal.Remove(restxml.UnmarshalHandler)
req.Handlers.Unmarshal.PushBackNamed(protocol.UnmarshalDiscardBodyHandler)
return
}
// InputService25TestCaseOperation2 API operation for .
//
// Returns awserr.Error for service API and SDK errors. Use runtime type assertions
// with awserr.Error's Code and Message methods to get detailed information about
// the error.
//
// See the AWS API reference guide for 's
// API operation InputService25TestCaseOperation2 for usage and error information.
func (c *InputService25ProtocolTest) InputService25TestCaseOperation2(input *InputService25TestShapeInputService25TestCaseOperation2Input) (*InputService25TestShapeInputService25TestCaseOperation2Output, error) {
req, out := c.InputService25TestCaseOperation2Request(input)
return out, req.Send()
}
// InputService25TestCaseOperation2WithContext is the same as InputService25TestCaseOperation2 with the addition of
// the ability to pass a context and additional request options.
//
// See InputService25TestCaseOperation2 for details on how to use this API operation.
//
// The context must be non-nil and will be used for request cancellation. If
// the context is nil a panic will occur. In the future the SDK may create
// sub-contexts for http.Requests. See https://golang.org/pkg/context/
// for more information on using Contexts.
func (c *InputService25ProtocolTest) InputService25TestCaseOperation2WithContext(ctx aws.Context, input *InputService25TestShapeInputService25TestCaseOperation2Input, opts ...request.Option) (*InputService25TestShapeInputService25TestCaseOperation2Output, error) {
req, out := c.InputService25TestCaseOperation2Request(input)
req.SetContext(ctx)
req.ApplyOptions(opts...)
return out, req.Send()
}
type InputService25TestShapeInputService25TestCaseOperation1Output struct {
_ struct{} `type:"structure"`
}
type InputService25TestShapeInputService25TestCaseOperation2Input struct {
_ struct{} `type:"structure"`
FooEnum *string `type:"string" enum:"InputService25TestShapeEnumType"`
HeaderEnum *string `location:"header" locationName:"x-amz-enum" type:"string" enum:"InputService25TestShapeEnumType"`
ListEnums []*string `type:"list"`
URIFooEnum *string `location:"uri" locationName:"URIEnum" type:"string" enum:"InputService25TestShapeEnumType"`
URIListEnums []*string `location:"querystring" locationName:"ListEnums" type:"list"`
}
// SetFooEnum sets the FooEnum field's value.
func (s *InputService25TestShapeInputService25TestCaseOperation2Input) SetFooEnum(v string) *InputService25TestShapeInputService25TestCaseOperation2Input {
s.FooEnum = &v
return s
}
// SetHeaderEnum sets the HeaderEnum field's value.
func (s *InputService25TestShapeInputService25TestCaseOperation2Input) SetHeaderEnum(v string) *InputService25TestShapeInputService25TestCaseOperation2Input {
s.HeaderEnum = &v
return s
}
// SetListEnums sets the ListEnums field's value.
func (s *InputService25TestShapeInputService25TestCaseOperation2Input) SetListEnums(v []*string) *InputService25TestShapeInputService25TestCaseOperation2Input {
s.ListEnums = v
return s
}
// SetURIFooEnum sets the URIFooEnum field's value.
func (s *InputService25TestShapeInputService25TestCaseOperation2Input) SetURIFooEnum(v string) *InputService25TestShapeInputService25TestCaseOperation2Input {
s.URIFooEnum = &v
return s
}
// SetURIListEnums sets the URIListEnums field's value.
func (s *InputService25TestShapeInputService25TestCaseOperation2Input) SetURIListEnums(v []*string) *InputService25TestShapeInputService25TestCaseOperation2Input {
s.URIListEnums = v
return s
}
type InputService25TestShapeInputService25TestCaseOperation2Output struct {
_ struct{} `type:"structure"`
}
const (
// EnumTypeFoo is a InputService25TestShapeEnumType enum value
EnumTypeFoo = "foo"
// EnumTypeBar is a InputService25TestShapeEnumType enum value
EnumTypeBar = "bar"
// EnumType0 is a InputService25TestShapeEnumType enum value
EnumType0 = "0"
// EnumType1 is a InputService25TestShapeEnumType enum value
EnumType1 = "1"
)
//
// Tests begin here
//
@ -6013,3 +6280,65 @@ func TestInputService24ProtocolTestIdempotencyTokenAutoFillCase2(t *testing.T) {
// assert headers
}
func TestInputService25ProtocolTestEnumCase1(t *testing.T) {
svc := NewInputService25ProtocolTest(unit.Session, &aws.Config{Endpoint: aws.String("https://test")})
input := &InputService25TestShapeInputService25TestCaseOperation2Input{
FooEnum: aws.String("foo"),
HeaderEnum: aws.String("baz"),
ListEnums: []*string{
aws.String("foo"),
aws.String(""),
aws.String("bar"),
},
URIFooEnum: aws.String("bar"),
URIListEnums: []*string{
aws.String("0"),
aws.String(""),
aws.String("1"),
},
}
req, _ := svc.InputService25TestCaseOperation1Request(input)
r := req.HTTPRequest
// build request
restxml.Build(req)
if req.Error != nil {
t.Errorf("expect no error, got %v", req.Error)
}
// assert body
if r.Body == nil {
t.Errorf("expect body not to be nil")
}
body := util.SortXML(r.Body)
awstesting.AssertXML(t, `<InputShape><FooEnum>foo</FooEnum><ListEnums><member>foo</member><member></member><member>bar</member></ListEnums></InputShape>`, util.Trim(string(body)), InputService25TestShapeInputService25TestCaseOperation2Input{})
// assert URL
awstesting.AssertURL(t, "https://test/Enum/bar?ListEnums=0&ListEnums=&ListEnums=1", r.URL.String())
// assert headers
if e, a := "baz", r.Header.Get("x-amz-enum"); e != a {
t.Errorf("expect %v to be %v", e, a)
}
}
func TestInputService25ProtocolTestEnumCase2(t *testing.T) {
svc := NewInputService25ProtocolTest(unit.Session, &aws.Config{Endpoint: aws.String("https://test")})
input := &InputService25TestShapeInputService25TestCaseOperation2Input{}
req, _ := svc.InputService25TestCaseOperation2Request(input)
r := req.HTTPRequest
// build request
restxml.Build(req)
if req.Error != nil {
t.Errorf("expect no error, got %v", req.Error)
}
// assert URL
awstesting.AssertURL(t, "https://test/path", r.URL.String())
// assert headers
}

View File

@ -2009,6 +2009,443 @@ func (s *OutputService12TestShapeOutputService12TestCaseOperation1Output) SetFoo
return s
}
// OutputService13ProtocolTest provides the API operation methods for making requests to
// . See this package's package overview docs
// for details on the service.
//
// OutputService13ProtocolTest methods are safe to use concurrently. It is not safe to
// modify mutate any of the struct's properties though.
type OutputService13ProtocolTest struct {
*client.Client
}
// New creates a new instance of the OutputService13ProtocolTest client with a session.
// If additional configuration is needed for the client instance use the optional
// aws.Config parameter to add your extra config.
//
// Example:
// // Create a OutputService13ProtocolTest client from just a session.
// svc := outputservice13protocoltest.New(mySession)
//
// // Create a OutputService13ProtocolTest client with additional configuration
// svc := outputservice13protocoltest.New(mySession, aws.NewConfig().WithRegion("us-west-2"))
func NewOutputService13ProtocolTest(p client.ConfigProvider, cfgs ...*aws.Config) *OutputService13ProtocolTest {
c := p.ClientConfig("outputservice13protocoltest", cfgs...)
return newOutputService13ProtocolTestClient(*c.Config, c.Handlers, c.Endpoint, c.SigningRegion, c.SigningName)
}
// newClient creates, initializes and returns a new service client instance.
func newOutputService13ProtocolTestClient(cfg aws.Config, handlers request.Handlers, endpoint, signingRegion, signingName string) *OutputService13ProtocolTest {
svc := &OutputService13ProtocolTest{
Client: client.New(
cfg,
metadata.ClientInfo{
ServiceName: "outputservice13protocoltest",
SigningName: signingName,
SigningRegion: signingRegion,
Endpoint: endpoint,
APIVersion: "",
},
handlers,
),
}
// Handlers
svc.Handlers.Sign.PushBackNamed(v4.SignRequestHandler)
svc.Handlers.Build.PushBackNamed(restxml.BuildHandler)
svc.Handlers.Unmarshal.PushBackNamed(restxml.UnmarshalHandler)
svc.Handlers.UnmarshalMeta.PushBackNamed(restxml.UnmarshalMetaHandler)
svc.Handlers.UnmarshalError.PushBackNamed(restxml.UnmarshalErrorHandler)
return svc
}
// newRequest creates a new request for a OutputService13ProtocolTest operation and runs any
// custom request initialization.
func (c *OutputService13ProtocolTest) newRequest(op *request.Operation, params, data interface{}) *request.Request {
req := c.NewRequest(op, params, data)
return req
}
const opOutputService13TestCaseOperation1 = "OperationName"
// OutputService13TestCaseOperation1Request generates a "aws/request.Request" representing the
// client's request for the OutputService13TestCaseOperation1 operation. The "output" return
// value will be populated with the request's response once the request complets
// successfuly.
//
// Use "Send" method on the returned Request to send the API call to the service.
// the "output" return value is not valid until after Send returns without error.
//
// See OutputService13TestCaseOperation1 for more information on using the OutputService13TestCaseOperation1
// API call, and error handling.
//
// This method is useful when you want to inject custom logic or configuration
// into the SDK's request lifecycle. Such as custom headers, or retry logic.
//
//
// // Example sending a request using the OutputService13TestCaseOperation1Request method.
// req, resp := client.OutputService13TestCaseOperation1Request(params)
//
// err := req.Send()
// if err == nil { // resp is now filled
// fmt.Println(resp)
// }
func (c *OutputService13ProtocolTest) OutputService13TestCaseOperation1Request(input *OutputService13TestShapeOutputService13TestCaseOperation1Input) (req *request.Request, output *OutputService13TestShapeOutputService13TestCaseOperation2Input) {
op := &request.Operation{
Name: opOutputService13TestCaseOperation1,
HTTPMethod: "POST",
HTTPPath: "/path",
}
if input == nil {
input = &OutputService13TestShapeOutputService13TestCaseOperation1Input{}
}
output = &OutputService13TestShapeOutputService13TestCaseOperation2Input{}
req = c.newRequest(op, input, output)
return
}
// OutputService13TestCaseOperation1 API operation for .
//
// Returns awserr.Error for service API and SDK errors. Use runtime type assertions
// with awserr.Error's Code and Message methods to get detailed information about
// the error.
//
// See the AWS API reference guide for 's
// API operation OutputService13TestCaseOperation1 for usage and error information.
func (c *OutputService13ProtocolTest) OutputService13TestCaseOperation1(input *OutputService13TestShapeOutputService13TestCaseOperation1Input) (*OutputService13TestShapeOutputService13TestCaseOperation2Input, error) {
req, out := c.OutputService13TestCaseOperation1Request(input)
return out, req.Send()
}
// OutputService13TestCaseOperation1WithContext is the same as OutputService13TestCaseOperation1 with the addition of
// the ability to pass a context and additional request options.
//
// See OutputService13TestCaseOperation1 for details on how to use this API operation.
//
// The context must be non-nil and will be used for request cancellation. If
// the context is nil a panic will occur. In the future the SDK may create
// sub-contexts for http.Requests. See https://golang.org/pkg/context/
// for more information on using Contexts.
func (c *OutputService13ProtocolTest) OutputService13TestCaseOperation1WithContext(ctx aws.Context, input *OutputService13TestShapeOutputService13TestCaseOperation1Input, opts ...request.Option) (*OutputService13TestShapeOutputService13TestCaseOperation2Input, error) {
req, out := c.OutputService13TestCaseOperation1Request(input)
req.SetContext(ctx)
req.ApplyOptions(opts...)
return out, req.Send()
}
const opOutputService13TestCaseOperation2 = "OperationName"
// OutputService13TestCaseOperation2Request generates a "aws/request.Request" representing the
// client's request for the OutputService13TestCaseOperation2 operation. The "output" return
// value will be populated with the request's response once the request complets
// successfuly.
//
// Use "Send" method on the returned Request to send the API call to the service.
// the "output" return value is not valid until after Send returns without error.
//
// See OutputService13TestCaseOperation2 for more information on using the OutputService13TestCaseOperation2
// API call, and error handling.
//
// This method is useful when you want to inject custom logic or configuration
// into the SDK's request lifecycle. Such as custom headers, or retry logic.
//
//
// // Example sending a request using the OutputService13TestCaseOperation2Request method.
// req, resp := client.OutputService13TestCaseOperation2Request(params)
//
// err := req.Send()
// if err == nil { // resp is now filled
// fmt.Println(resp)
// }
func (c *OutputService13ProtocolTest) OutputService13TestCaseOperation2Request(input *OutputService13TestShapeOutputService13TestCaseOperation2Input) (req *request.Request, output *OutputService13TestShapeOutputService13TestCaseOperation2Output) {
op := &request.Operation{
Name: opOutputService13TestCaseOperation2,
HTTPMethod: "POST",
HTTPPath: "/path",
}
if input == nil {
input = &OutputService13TestShapeOutputService13TestCaseOperation2Input{}
}
output = &OutputService13TestShapeOutputService13TestCaseOperation2Output{}
req = c.newRequest(op, input, output)
req.Handlers.Unmarshal.Remove(restxml.UnmarshalHandler)
req.Handlers.Unmarshal.PushBackNamed(protocol.UnmarshalDiscardBodyHandler)
return
}
// OutputService13TestCaseOperation2 API operation for .
//
// Returns awserr.Error for service API and SDK errors. Use runtime type assertions
// with awserr.Error's Code and Message methods to get detailed information about
// the error.
//
// See the AWS API reference guide for 's
// API operation OutputService13TestCaseOperation2 for usage and error information.
func (c *OutputService13ProtocolTest) OutputService13TestCaseOperation2(input *OutputService13TestShapeOutputService13TestCaseOperation2Input) (*OutputService13TestShapeOutputService13TestCaseOperation2Output, error) {
req, out := c.OutputService13TestCaseOperation2Request(input)
return out, req.Send()
}
// OutputService13TestCaseOperation2WithContext is the same as OutputService13TestCaseOperation2 with the addition of
// the ability to pass a context and additional request options.
//
// See OutputService13TestCaseOperation2 for details on how to use this API operation.
//
// The context must be non-nil and will be used for request cancellation. If
// the context is nil a panic will occur. In the future the SDK may create
// sub-contexts for http.Requests. See https://golang.org/pkg/context/
// for more information on using Contexts.
func (c *OutputService13ProtocolTest) OutputService13TestCaseOperation2WithContext(ctx aws.Context, input *OutputService13TestShapeOutputService13TestCaseOperation2Input, opts ...request.Option) (*OutputService13TestShapeOutputService13TestCaseOperation2Output, error) {
req, out := c.OutputService13TestCaseOperation2Request(input)
req.SetContext(ctx)
req.ApplyOptions(opts...)
return out, req.Send()
}
type OutputService13TestShapeOutputService13TestCaseOperation1Input struct {
_ struct{} `type:"structure"`
}
type OutputService13TestShapeOutputService13TestCaseOperation2Input struct {
_ struct{} `type:"structure"`
FooEnum *string `type:"string" enum:"OutputService13TestShapeRESTJSONEnumType"`
HeaderEnum *string `location:"header" locationName:"x-amz-enum" type:"string" enum:"OutputService13TestShapeRESTJSONEnumType"`
ListEnums []*string `type:"list"`
}
// SetFooEnum sets the FooEnum field's value.
func (s *OutputService13TestShapeOutputService13TestCaseOperation2Input) SetFooEnum(v string) *OutputService13TestShapeOutputService13TestCaseOperation2Input {
s.FooEnum = &v
return s
}
// SetHeaderEnum sets the HeaderEnum field's value.
func (s *OutputService13TestShapeOutputService13TestCaseOperation2Input) SetHeaderEnum(v string) *OutputService13TestShapeOutputService13TestCaseOperation2Input {
s.HeaderEnum = &v
return s
}
// SetListEnums sets the ListEnums field's value.
func (s *OutputService13TestShapeOutputService13TestCaseOperation2Input) SetListEnums(v []*string) *OutputService13TestShapeOutputService13TestCaseOperation2Input {
s.ListEnums = v
return s
}
type OutputService13TestShapeOutputService13TestCaseOperation2Output struct {
_ struct{} `type:"structure"`
}
const (
// RESTJSONEnumTypeFoo is a OutputService13TestShapeRESTJSONEnumType enum value
RESTJSONEnumTypeFoo = "foo"
// RESTJSONEnumTypeBar is a OutputService13TestShapeRESTJSONEnumType enum value
RESTJSONEnumTypeBar = "bar"
// RESTJSONEnumType0 is a OutputService13TestShapeRESTJSONEnumType enum value
RESTJSONEnumType0 = "0"
// RESTJSONEnumType1 is a OutputService13TestShapeRESTJSONEnumType enum value
RESTJSONEnumType1 = "1"
)
// OutputService14ProtocolTest provides the API operation methods for making requests to
// . See this package's package overview docs
// for details on the service.
//
// OutputService14ProtocolTest methods are safe to use concurrently. It is not safe to
// modify mutate any of the struct's properties though.
type OutputService14ProtocolTest struct {
*client.Client
}
// New creates a new instance of the OutputService14ProtocolTest client with a session.
// If additional configuration is needed for the client instance use the optional
// aws.Config parameter to add your extra config.
//
// Example:
// // Create a OutputService14ProtocolTest client from just a session.
// svc := outputservice14protocoltest.New(mySession)
//
// // Create a OutputService14ProtocolTest client with additional configuration
// svc := outputservice14protocoltest.New(mySession, aws.NewConfig().WithRegion("us-west-2"))
func NewOutputService14ProtocolTest(p client.ConfigProvider, cfgs ...*aws.Config) *OutputService14ProtocolTest {
c := p.ClientConfig("outputservice14protocoltest", cfgs...)
return newOutputService14ProtocolTestClient(*c.Config, c.Handlers, c.Endpoint, c.SigningRegion, c.SigningName)
}
// newClient creates, initializes and returns a new service client instance.
func newOutputService14ProtocolTestClient(cfg aws.Config, handlers request.Handlers, endpoint, signingRegion, signingName string) *OutputService14ProtocolTest {
svc := &OutputService14ProtocolTest{
Client: client.New(
cfg,
metadata.ClientInfo{
ServiceName: "outputservice14protocoltest",
SigningName: signingName,
SigningRegion: signingRegion,
Endpoint: endpoint,
APIVersion: "",
},
handlers,
),
}
// Handlers
svc.Handlers.Sign.PushBackNamed(v4.SignRequestHandler)
svc.Handlers.Build.PushBackNamed(restxml.BuildHandler)
svc.Handlers.Unmarshal.PushBackNamed(restxml.UnmarshalHandler)
svc.Handlers.UnmarshalMeta.PushBackNamed(restxml.UnmarshalMetaHandler)
svc.Handlers.UnmarshalError.PushBackNamed(restxml.UnmarshalErrorHandler)
return svc
}
// newRequest creates a new request for a OutputService14ProtocolTest operation and runs any
// custom request initialization.
func (c *OutputService14ProtocolTest) newRequest(op *request.Operation, params, data interface{}) *request.Request {
req := c.NewRequest(op, params, data)
return req
}
const opOutputService14TestCaseOperation1 = "OperationName"
// OutputService14TestCaseOperation1Request generates a "aws/request.Request" representing the
// client's request for the OutputService14TestCaseOperation1 operation. The "output" return
// value will be populated with the request's response once the request complets
// successfuly.
//
// Use "Send" method on the returned Request to send the API call to the service.
// the "output" return value is not valid until after Send returns without error.
//
// See OutputService14TestCaseOperation1 for more information on using the OutputService14TestCaseOperation1
// API call, and error handling.
//
// This method is useful when you want to inject custom logic or configuration
// into the SDK's request lifecycle. Such as custom headers, or retry logic.
//
//
// // Example sending a request using the OutputService14TestCaseOperation1Request method.
// req, resp := client.OutputService14TestCaseOperation1Request(params)
//
// err := req.Send()
// if err == nil { // resp is now filled
// fmt.Println(resp)
// }
func (c *OutputService14ProtocolTest) OutputService14TestCaseOperation1Request(input *OutputService14TestShapeOutputService14TestCaseOperation1Input) (req *request.Request, output *OutputService14TestShapeOutputService14TestCaseOperation1Output) {
op := &request.Operation{
Name: opOutputService14TestCaseOperation1,
HTTPMethod: "GET",
HTTPPath: "/path",
}
if input == nil {
input = &OutputService14TestShapeOutputService14TestCaseOperation1Input{}
}
output = &OutputService14TestShapeOutputService14TestCaseOperation1Output{}
req = c.newRequest(op, input, output)
return
}
// OutputService14TestCaseOperation1 API operation for .
//
// Returns awserr.Error for service API and SDK errors. Use runtime type assertions
// with awserr.Error's Code and Message methods to get detailed information about
// the error.
//
// See the AWS API reference guide for 's
// API operation OutputService14TestCaseOperation1 for usage and error information.
func (c *OutputService14ProtocolTest) OutputService14TestCaseOperation1(input *OutputService14TestShapeOutputService14TestCaseOperation1Input) (*OutputService14TestShapeOutputService14TestCaseOperation1Output, error) {
req, out := c.OutputService14TestCaseOperation1Request(input)
return out, req.Send()
}
// OutputService14TestCaseOperation1WithContext is the same as OutputService14TestCaseOperation1 with the addition of
// the ability to pass a context and additional request options.
//
// See OutputService14TestCaseOperation1 for details on how to use this API operation.
//
// The context must be non-nil and will be used for request cancellation. If
// the context is nil a panic will occur. In the future the SDK may create
// sub-contexts for http.Requests. See https://golang.org/pkg/context/
// for more information on using Contexts.
func (c *OutputService14ProtocolTest) OutputService14TestCaseOperation1WithContext(ctx aws.Context, input *OutputService14TestShapeOutputService14TestCaseOperation1Input, opts ...request.Option) (*OutputService14TestShapeOutputService14TestCaseOperation1Output, error) {
req, out := c.OutputService14TestCaseOperation1Request(input)
req.SetContext(ctx)
req.ApplyOptions(opts...)
return out, req.Send()
}
type OutputService14TestShapeItemDetailShape struct {
_ struct{} `type:"structure" xmlPrefix:"xsi" xmlURI:"http://www.w3.org/2001/XMLSchema-instance"`
ID *string `type:"string"`
// Type is a required field
Type *string `locationName:"xsi:type" type:"string" xmlAttribute:"true" required:"true" enum:"OutputService14TestShapeItemType"`
}
// SetID sets the ID field's value.
func (s *OutputService14TestShapeItemDetailShape) SetID(v string) *OutputService14TestShapeItemDetailShape {
s.ID = &v
return s
}
// SetType sets the Type field's value.
func (s *OutputService14TestShapeItemDetailShape) SetType(v string) *OutputService14TestShapeItemDetailShape {
s.Type = &v
return s
}
type OutputService14TestShapeItemShape struct {
_ struct{} `type:"structure"`
ItemDetail *OutputService14TestShapeItemDetailShape `type:"structure" xmlPrefix:"xsi" xmlURI:"http://www.w3.org/2001/XMLSchema-instance"`
}
// SetItemDetail sets the ItemDetail field's value.
func (s *OutputService14TestShapeItemShape) SetItemDetail(v *OutputService14TestShapeItemDetailShape) *OutputService14TestShapeItemShape {
s.ItemDetail = v
return s
}
type OutputService14TestShapeOutputService14TestCaseOperation1Input struct {
_ struct{} `type:"structure"`
}
type OutputService14TestShapeOutputService14TestCaseOperation1Output struct {
_ struct{} `type:"structure"`
ListItems []*OutputService14TestShapeItemShape `locationName:"ItemsList" locationNameList:"Item" type:"list"`
}
// SetListItems sets the ListItems field's value.
func (s *OutputService14TestShapeOutputService14TestCaseOperation1Output) SetListItems(v []*OutputService14TestShapeItemShape) *OutputService14TestShapeOutputService14TestCaseOperation1Output {
s.ListItems = v
return s
}
const (
// ItemTypeType1 is a OutputService14TestShapeItemType enum value
ItemTypeType1 = "Type1"
// ItemTypeType2 is a OutputService14TestShapeItemType enum value
ItemTypeType2 = "Type2"
// ItemTypeType3 is a OutputService14TestShapeItemType enum value
ItemTypeType3 = "Type3"
)
//
// Tests begin here
//
@ -2469,3 +2906,103 @@ func TestOutputService12ProtocolTestEmptyStringCase1(t *testing.T) {
}
}
func TestOutputService13ProtocolTestEnumCase1(t *testing.T) {
svc := NewOutputService13ProtocolTest(unit.Session, &aws.Config{Endpoint: aws.String("https://test")})
buf := bytes.NewReader([]byte("<OperationNameResponse><FooEnum>foo</FooEnum><ListEnums><member>0</member><member>1</member></ListEnums></OperationNameResponse>"))
req, out := svc.OutputService13TestCaseOperation1Request(nil)
req.HTTPResponse = &http.Response{StatusCode: 200, Body: ioutil.NopCloser(buf), Header: http.Header{}}
// set headers
req.HTTPResponse.Header.Set("x-amz-enum", "baz")
// unmarshal response
restxml.UnmarshalMeta(req)
restxml.Unmarshal(req)
if req.Error != nil {
t.Errorf("expect not error, got %v", req.Error)
}
// assert response
if out == nil {
t.Errorf("expect not to be nil")
}
if e, a := "foo", *out.FooEnum; e != a {
t.Errorf("expect %v, got %v", e, a)
}
if e, a := "baz", *out.HeaderEnum; e != a {
t.Errorf("expect %v, got %v", e, a)
}
if e, a := "0", *out.ListEnums[0]; e != a {
t.Errorf("expect %v, got %v", e, a)
}
if e, a := "1", *out.ListEnums[1]; e != a {
t.Errorf("expect %v, got %v", e, a)
}
}
func TestOutputService13ProtocolTestEnumCase2(t *testing.T) {
svc := NewOutputService13ProtocolTest(unit.Session, &aws.Config{Endpoint: aws.String("https://test")})
buf := bytes.NewReader([]byte(""))
req, out := svc.OutputService13TestCaseOperation2Request(nil)
req.HTTPResponse = &http.Response{StatusCode: 200, Body: ioutil.NopCloser(buf), Header: http.Header{}}
// set headers
// unmarshal response
restxml.UnmarshalMeta(req)
restxml.Unmarshal(req)
if req.Error != nil {
t.Errorf("expect not error, got %v", req.Error)
}
// assert response
if out == nil {
t.Errorf("expect not to be nil")
}
}
func TestOutputService14ProtocolTestXMLAttributesCase1(t *testing.T) {
svc := NewOutputService14ProtocolTest(unit.Session, &aws.Config{Endpoint: aws.String("https://test")})
buf := bytes.NewReader([]byte("<SomeOutputDoc xmlns=\"http://s3.amazonaws.com/doc/2006-03-01/\"><ItemsList><Item><ItemDetail xmlns:xsi=\"http://www.w3.org/2001/XMLSchema-instance\" xsi:type=\"Type1\"><ID>id1</ID></ItemDetail></Item><Item><ItemDetail xmlns:xsi=\"http://www.w3.org/2001/XMLSchema-instance\" xsi:type=\"Type2\"><ID>id2</ID></ItemDetail></Item><Item><ItemDetail xmlns:xsi=\"http://www.w3.org/2001/XMLSchema-instance\" xsi:type=\"Type3\"><ID>id3</ID></ItemDetail></Item></ItemsList></SomeOutputDoc>"))
req, out := svc.OutputService14TestCaseOperation1Request(nil)
req.HTTPResponse = &http.Response{StatusCode: 200, Body: ioutil.NopCloser(buf), Header: http.Header{}}
// set headers
// unmarshal response
restxml.UnmarshalMeta(req)
restxml.Unmarshal(req)
if req.Error != nil {
t.Errorf("expect not error, got %v", req.Error)
}
// assert response
if out == nil {
t.Errorf("expect not to be nil")
}
if e, a := "id1", *out.ListItems[0].ItemDetail.ID; e != a {
t.Errorf("expect %v, got %v", e, a)
}
if e, a := "Type1", *out.ListItems[0].ItemDetail.Type; e != a {
t.Errorf("expect %v, got %v", e, a)
}
if e, a := "id2", *out.ListItems[1].ItemDetail.ID; e != a {
t.Errorf("expect %v, got %v", e, a)
}
if e, a := "Type2", *out.ListItems[1].ItemDetail.Type; e != a {
t.Errorf("expect %v, got %v", e, a)
}
if e, a := "id3", *out.ListItems[2].ItemDetail.ID; e != a {
t.Errorf("expect %v, got %v", e, a)
}
if e, a := "Type3", *out.ListItems[2].ItemDetail.Type; e != a {
t.Errorf("expect %v, got %v", e, a)
}
}

View File

@ -1,66 +0,0 @@
package xmlutil_test
import (
"net/http"
"net/http/httptest"
"testing"
"github.com/stretchr/testify/assert"
"github.com/aws/aws-sdk-go/aws"
"github.com/aws/aws-sdk-go/awstesting/unit"
"github.com/aws/aws-sdk-go/service/s3"
)
func TestUnmarshal(t *testing.T) {
xmlVal := []byte(`<?xml version="1.0" encoding="UTF-8"?>
<AccessControlPolicy xmlns="http://s3.amazonaws.com/doc/2006-03-01/">
<Owner>
<ID>foo-id</ID>
<DisplayName>user</DisplayName>
</Owner>
<AccessControlList>
<Grant>
<Grantee xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:type="type">
<ID>foo-id</ID>
<DisplayName>user</DisplayName>
</Grantee>
<Permission>FULL_CONTROL</Permission>
</Grant>
</AccessControlList>
</AccessControlPolicy>`)
var server = httptest.NewServer(http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
w.Write(xmlVal)
}))
sess := unit.Session
sess.Config.Endpoint = &server.URL
sess.Config.S3ForcePathStyle = aws.Bool(true)
svc := s3.New(sess)
out, err := svc.GetBucketAcl(&s3.GetBucketAclInput{
Bucket: aws.String("foo"),
})
assert.NoError(t, err)
expected := &s3.GetBucketAclOutput{
Grants: []*s3.Grant{
{
Grantee: &s3.Grantee{
DisplayName: aws.String("user"),
ID: aws.String("foo-id"),
Type: aws.String("type"),
},
Permission: aws.String("FULL_CONTROL"),
},
},
Owner: &s3.Owner{
DisplayName: aws.String("user"),
ID: aws.String("foo-id"),
},
}
assert.Equal(t, expected, out)
}

File diff suppressed because it is too large Load Diff

View File

@ -35,7 +35,7 @@ const opAssumeRole = "AssumeRole"
// fmt.Println(resp)
// }
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRole
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRole
func (c *STS) AssumeRoleRequest(input *AssumeRoleInput) (req *request.Request, output *AssumeRoleOutput) {
op := &request.Operation{
Name: opAssumeRole,
@ -168,7 +168,7 @@ func (c *STS) AssumeRoleRequest(input *AssumeRoleInput) (req *request.Request, o
// and Deactivating AWS STS in an AWS Region (http://docs.aws.amazon.com/IAM/latest/UserGuide/id_credentials_temp_enable-regions.html)
// in the IAM User Guide.
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRole
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRole
func (c *STS) AssumeRole(input *AssumeRoleInput) (*AssumeRoleOutput, error) {
req, out := c.AssumeRoleRequest(input)
return out, req.Send()
@ -215,7 +215,7 @@ const opAssumeRoleWithSAML = "AssumeRoleWithSAML"
// fmt.Println(resp)
// }
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithSAML
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithSAML
func (c *STS) AssumeRoleWithSAMLRequest(input *AssumeRoleWithSAMLInput) (req *request.Request, output *AssumeRoleWithSAMLOutput) {
op := &request.Operation{
Name: opAssumeRoleWithSAML,
@ -341,7 +341,7 @@ func (c *STS) AssumeRoleWithSAMLRequest(input *AssumeRoleWithSAMLInput) (req *re
// and Deactivating AWS STS in an AWS Region (http://docs.aws.amazon.com/IAM/latest/UserGuide/id_credentials_temp_enable-regions.html)
// in the IAM User Guide.
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithSAML
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithSAML
func (c *STS) AssumeRoleWithSAML(input *AssumeRoleWithSAMLInput) (*AssumeRoleWithSAMLOutput, error) {
req, out := c.AssumeRoleWithSAMLRequest(input)
return out, req.Send()
@ -388,7 +388,7 @@ const opAssumeRoleWithWebIdentity = "AssumeRoleWithWebIdentity"
// fmt.Println(resp)
// }
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithWebIdentity
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithWebIdentity
func (c *STS) AssumeRoleWithWebIdentityRequest(input *AssumeRoleWithWebIdentityInput) (req *request.Request, output *AssumeRoleWithWebIdentityOutput) {
op := &request.Operation{
Name: opAssumeRoleWithWebIdentity,
@ -543,7 +543,7 @@ func (c *STS) AssumeRoleWithWebIdentityRequest(input *AssumeRoleWithWebIdentityI
// and Deactivating AWS STS in an AWS Region (http://docs.aws.amazon.com/IAM/latest/UserGuide/id_credentials_temp_enable-regions.html)
// in the IAM User Guide.
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithWebIdentity
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithWebIdentity
func (c *STS) AssumeRoleWithWebIdentity(input *AssumeRoleWithWebIdentityInput) (*AssumeRoleWithWebIdentityOutput, error) {
req, out := c.AssumeRoleWithWebIdentityRequest(input)
return out, req.Send()
@ -590,7 +590,7 @@ const opDecodeAuthorizationMessage = "DecodeAuthorizationMessage"
// fmt.Println(resp)
// }
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/DecodeAuthorizationMessage
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/DecodeAuthorizationMessage
func (c *STS) DecodeAuthorizationMessageRequest(input *DecodeAuthorizationMessageInput) (req *request.Request, output *DecodeAuthorizationMessageOutput) {
op := &request.Operation{
Name: opDecodeAuthorizationMessage,
@ -655,7 +655,7 @@ func (c *STS) DecodeAuthorizationMessageRequest(input *DecodeAuthorizationMessag
// invalid. This can happen if the token contains invalid characters, such as
// linebreaks.
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/DecodeAuthorizationMessage
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/DecodeAuthorizationMessage
func (c *STS) DecodeAuthorizationMessage(input *DecodeAuthorizationMessageInput) (*DecodeAuthorizationMessageOutput, error) {
req, out := c.DecodeAuthorizationMessageRequest(input)
return out, req.Send()
@ -702,7 +702,7 @@ const opGetCallerIdentity = "GetCallerIdentity"
// fmt.Println(resp)
// }
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetCallerIdentity
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetCallerIdentity
func (c *STS) GetCallerIdentityRequest(input *GetCallerIdentityInput) (req *request.Request, output *GetCallerIdentityOutput) {
op := &request.Operation{
Name: opGetCallerIdentity,
@ -730,7 +730,7 @@ func (c *STS) GetCallerIdentityRequest(input *GetCallerIdentityInput) (req *requ
//
// See the AWS API reference guide for AWS Security Token Service's
// API operation GetCallerIdentity for usage and error information.
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetCallerIdentity
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetCallerIdentity
func (c *STS) GetCallerIdentity(input *GetCallerIdentityInput) (*GetCallerIdentityOutput, error) {
req, out := c.GetCallerIdentityRequest(input)
return out, req.Send()
@ -777,7 +777,7 @@ const opGetFederationToken = "GetFederationToken"
// fmt.Println(resp)
// }
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetFederationToken
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetFederationToken
func (c *STS) GetFederationTokenRequest(input *GetFederationTokenInput) (req *request.Request, output *GetFederationTokenOutput) {
op := &request.Operation{
Name: opGetFederationToken,
@ -899,7 +899,7 @@ func (c *STS) GetFederationTokenRequest(input *GetFederationTokenInput) (req *re
// and Deactivating AWS STS in an AWS Region (http://docs.aws.amazon.com/IAM/latest/UserGuide/id_credentials_temp_enable-regions.html)
// in the IAM User Guide.
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetFederationToken
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetFederationToken
func (c *STS) GetFederationToken(input *GetFederationTokenInput) (*GetFederationTokenOutput, error) {
req, out := c.GetFederationTokenRequest(input)
return out, req.Send()
@ -946,7 +946,7 @@ const opGetSessionToken = "GetSessionToken"
// fmt.Println(resp)
// }
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetSessionToken
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetSessionToken
func (c *STS) GetSessionTokenRequest(input *GetSessionTokenInput) (req *request.Request, output *GetSessionTokenOutput) {
op := &request.Operation{
Name: opGetSessionToken,
@ -1027,7 +1027,7 @@ func (c *STS) GetSessionTokenRequest(input *GetSessionTokenInput) (req *request.
// and Deactivating AWS STS in an AWS Region (http://docs.aws.amazon.com/IAM/latest/UserGuide/id_credentials_temp_enable-regions.html)
// in the IAM User Guide.
//
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetSessionToken
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetSessionToken
func (c *STS) GetSessionToken(input *GetSessionTokenInput) (*GetSessionTokenOutput, error) {
req, out := c.GetSessionTokenRequest(input)
return out, req.Send()
@ -1049,7 +1049,7 @@ func (c *STS) GetSessionTokenWithContext(ctx aws.Context, input *GetSessionToken
return out, req.Send()
}
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleRequest
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleRequest
type AssumeRoleInput struct {
_ struct{} `type:"structure"`
@ -1241,7 +1241,7 @@ func (s *AssumeRoleInput) SetTokenCode(v string) *AssumeRoleInput {
// Contains the response to a successful AssumeRole request, including temporary
// AWS credentials that can be used to make AWS requests.
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleResponse
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleResponse
type AssumeRoleOutput struct {
_ struct{} `type:"structure"`
@ -1295,7 +1295,7 @@ func (s *AssumeRoleOutput) SetPackedPolicySize(v int64) *AssumeRoleOutput {
return s
}
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithSAMLRequest
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithSAMLRequest
type AssumeRoleWithSAMLInput struct {
_ struct{} `type:"structure"`
@ -1436,7 +1436,7 @@ func (s *AssumeRoleWithSAMLInput) SetSAMLAssertion(v string) *AssumeRoleWithSAML
// Contains the response to a successful AssumeRoleWithSAML request, including
// temporary AWS credentials that can be used to make AWS requests.
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithSAMLResponse
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithSAMLResponse
type AssumeRoleWithSAMLOutput struct {
_ struct{} `type:"structure"`
@ -1548,7 +1548,7 @@ func (s *AssumeRoleWithSAMLOutput) SetSubjectType(v string) *AssumeRoleWithSAMLO
return s
}
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithWebIdentityRequest
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithWebIdentityRequest
type AssumeRoleWithWebIdentityInput struct {
_ struct{} `type:"structure"`
@ -1711,7 +1711,7 @@ func (s *AssumeRoleWithWebIdentityInput) SetWebIdentityToken(v string) *AssumeRo
// Contains the response to a successful AssumeRoleWithWebIdentity request,
// including temporary AWS credentials that can be used to make AWS requests.
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithWebIdentityResponse
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumeRoleWithWebIdentityResponse
type AssumeRoleWithWebIdentityOutput struct {
_ struct{} `type:"structure"`
@ -1804,7 +1804,7 @@ func (s *AssumeRoleWithWebIdentityOutput) SetSubjectFromWebIdentityToken(v strin
// The identifiers for the temporary security credentials that the operation
// returns.
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumedRoleUser
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/AssumedRoleUser
type AssumedRoleUser struct {
_ struct{} `type:"structure"`
@ -1847,7 +1847,7 @@ func (s *AssumedRoleUser) SetAssumedRoleId(v string) *AssumedRoleUser {
}
// AWS credentials for API authentication.
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/Credentials
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/Credentials
type Credentials struct {
_ struct{} `type:"structure"`
@ -1906,7 +1906,7 @@ func (s *Credentials) SetSessionToken(v string) *Credentials {
return s
}
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/DecodeAuthorizationMessageRequest
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/DecodeAuthorizationMessageRequest
type DecodeAuthorizationMessageInput struct {
_ struct{} `type:"structure"`
@ -1951,7 +1951,7 @@ func (s *DecodeAuthorizationMessageInput) SetEncodedMessage(v string) *DecodeAut
// A document that contains additional information about the authorization status
// of a request from an encoded message that is returned in response to an AWS
// request.
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/DecodeAuthorizationMessageResponse
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/DecodeAuthorizationMessageResponse
type DecodeAuthorizationMessageOutput struct {
_ struct{} `type:"structure"`
@ -1976,7 +1976,7 @@ func (s *DecodeAuthorizationMessageOutput) SetDecodedMessage(v string) *DecodeAu
}
// Identifiers for the federated user that is associated with the credentials.
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/FederatedUser
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/FederatedUser
type FederatedUser struct {
_ struct{} `type:"structure"`
@ -2017,7 +2017,7 @@ func (s *FederatedUser) SetFederatedUserId(v string) *FederatedUser {
return s
}
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetCallerIdentityRequest
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetCallerIdentityRequest
type GetCallerIdentityInput struct {
_ struct{} `type:"structure"`
}
@ -2034,7 +2034,7 @@ func (s GetCallerIdentityInput) GoString() string {
// Contains the response to a successful GetCallerIdentity request, including
// information about the entity making the request.
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetCallerIdentityResponse
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetCallerIdentityResponse
type GetCallerIdentityOutput struct {
_ struct{} `type:"structure"`
@ -2080,7 +2080,7 @@ func (s *GetCallerIdentityOutput) SetUserId(v string) *GetCallerIdentityOutput {
return s
}
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetFederationTokenRequest
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetFederationTokenRequest
type GetFederationTokenInput struct {
_ struct{} `type:"structure"`
@ -2189,7 +2189,7 @@ func (s *GetFederationTokenInput) SetPolicy(v string) *GetFederationTokenInput {
// Contains the response to a successful GetFederationToken request, including
// temporary AWS credentials that can be used to make AWS requests.
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetFederationTokenResponse
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetFederationTokenResponse
type GetFederationTokenOutput struct {
_ struct{} `type:"structure"`
@ -2242,7 +2242,7 @@ func (s *GetFederationTokenOutput) SetPackedPolicySize(v int64) *GetFederationTo
return s
}
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetSessionTokenRequest
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetSessionTokenRequest
type GetSessionTokenInput struct {
_ struct{} `type:"structure"`
@ -2327,7 +2327,7 @@ func (s *GetSessionTokenInput) SetTokenCode(v string) *GetSessionTokenInput {
// Contains the response to a successful GetSessionToken request, including
// temporary AWS credentials that can be used to make AWS requests.
// Please also see https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetSessionTokenResponse
// See also, https://docs.aws.amazon.com/goto/WebAPI/sts-2011-06-15/GetSessionTokenResponse
type GetSessionTokenOutput struct {
_ struct{} `type:"structure"`

21
vendor/github.com/bifurcation/mint/LICENSE.md generated vendored Normal file
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@ -0,0 +1,21 @@
The MIT License (MIT)
Copyright (c) 2016 Richard Barnes
Permission is hereby granted, free of charge, to any person obtaining a copy
of this software and associated documentation files (the "Software"), to deal
in the Software without restriction, including without limitation the rights
to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
copies of the Software, and to permit persons to whom the Software is
furnished to do so, subject to the following conditions:
The above copyright notice and this permission notice shall be included in
all copies or substantial portions of the Software.
THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
THE SOFTWARE.

88
vendor/github.com/bifurcation/mint/README.md generated vendored Normal file
View File

@ -0,0 +1,88 @@
![A lock with a mint leaf](https://ipv.sx/mint/mint.svg)
mint - A Minimal TLS 1.3 stack
==============================
[![Build Status](https://circleci.com/gh/bifurcation/mint.svg)](https://circleci.com/gh/bifurcation/mint)
This project is primarily a learning effort for me to understand the [TLS
1.3](http://tlswg.github.io/tls13-spec/) protocol. The goal is to arrive at a
pretty complete implementation of TLS 1.3, with minimal, elegant code that
demonstrates how things work. Testing is a priority to ensure correctness, but
otherwise, the quality of the software engineering might not be at a level where
it makes sense to integrate this with other libraries. Backward compatibility
is not an objective.
We borrow liberally from the [Go TLS
library](https://golang.org/pkg/crypto/tls/), especially where TLS 1.3 aligns
with earlier TLS versions. However, unnecessary parts will be ruthlessly cut
off.
## Quickstart
Installation is the same as for any other Go package:
```
go get github.com/bifurcation/mint
```
The API is pretty much the same as for the TLS module, with `Dial` and `Listen`
methods wrapping the underlying socket APIs.
```
conn, err := mint.Dial("tcp", "localhost:4430", &mint.Config{...})
...
listener, err := mint.Listen("tcp", "localhost:4430", &mint.Config{...})
```
Documentation is available on
[godoc.org](https://godoc.org/github.com/bifurcation/mint)
## Interoperability testing
The `mint-client` and `mint-server` executables are included to make it easy to
do basic interoperability tests with other TLS 1.3 implementations. The steps
for testing against NSS are as follows.
```
# Install mint
go get github.com/bifurcation/mint
# Environment for NSS (you'll probably want a new directory)
NSS_ROOT=<whereever you want to put NSS>
mkdir $NSS_ROOT
cd $NSS_ROOT
export USE_64=1
export ENABLE_TLS_1_3=1
export HOST=localhost
export DOMSUF=localhost
# Build NSS
hg clone https://hg.mozilla.org/projects/nss
hg clone https://hg.mozilla.org/projects/nspr
cd nss
make nss_build_all
export PLATFORM=`cat $NSS_ROOT/dist/latest`
export DYLD_LIBRARY_PATH=$NSS_ROOT/dist/$PLATFORM/lib
export LD_LIBRARY_PATH=$NSS_ROOT/dist/$PLATFORM/lib
# Run NSS tests (this creates data for the server to use)
cd tests/ssl_gtests
./ssl_gtests.sh
# Test with client=mint server=NSS
cd $NSS_ROOT
./dist/$PLATFORM/bin/selfserv -d tests_results/security/$HOST.1/ssl_gtests/ -n rsa -p 4430
# if you get `NSS_Init failed.`, check the path above, particularly around $HOST
# ...
go run $GOPATH/src/github.com/bifurcation/mint/bin/mint-client/main.go
# Test with client=NSS server=mint
go run $GOPATH/src/github.com/bifurcation/mint/bin/mint-server/main.go
# ...
cd $NSS_ROOT
dist/$PLATFORM/bin/tstclnt -d tests_results/security/$HOST/ssl_gtests/ -V tls1.3:tls1.3 -h 127.0.0.1 -p 4430 -o
```

101
vendor/github.com/bifurcation/mint/alert.go generated vendored Normal file
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@ -0,0 +1,101 @@
// Copyright 2009 The Go Authors. All rights reserved.
// Use of this source code is governed by a BSD-style
// license that can be found in the LICENSE file.
package mint
import "strconv"
type Alert uint8
const (
// alert level
AlertLevelWarning = 1
AlertLevelError = 2
)
const (
AlertCloseNotify Alert = 0
AlertUnexpectedMessage Alert = 10
AlertBadRecordMAC Alert = 20
AlertDecryptionFailed Alert = 21
AlertRecordOverflow Alert = 22
AlertDecompressionFailure Alert = 30
AlertHandshakeFailure Alert = 40
AlertBadCertificate Alert = 42
AlertUnsupportedCertificate Alert = 43
AlertCertificateRevoked Alert = 44
AlertCertificateExpired Alert = 45
AlertCertificateUnknown Alert = 46
AlertIllegalParameter Alert = 47
AlertUnknownCA Alert = 48
AlertAccessDenied Alert = 49
AlertDecodeError Alert = 50
AlertDecryptError Alert = 51
AlertProtocolVersion Alert = 70
AlertInsufficientSecurity Alert = 71
AlertInternalError Alert = 80
AlertInappropriateFallback Alert = 86
AlertUserCanceled Alert = 90
AlertNoRenegotiation Alert = 100
AlertMissingExtension Alert = 109
AlertUnsupportedExtension Alert = 110
AlertCertificateUnobtainable Alert = 111
AlertUnrecognizedName Alert = 112
AlertBadCertificateStatsResponse Alert = 113
AlertBadCertificateHashValue Alert = 114
AlertUnknownPSKIdentity Alert = 115
AlertNoApplicationProtocol Alert = 120
AlertStatelessRetry Alert = 253
AlertWouldBlock Alert = 254
AlertNoAlert Alert = 255
)
var alertText = map[Alert]string{
AlertCloseNotify: "close notify",
AlertUnexpectedMessage: "unexpected message",
AlertBadRecordMAC: "bad record MAC",
AlertDecryptionFailed: "decryption failed",
AlertRecordOverflow: "record overflow",
AlertDecompressionFailure: "decompression failure",
AlertHandshakeFailure: "handshake failure",
AlertBadCertificate: "bad certificate",
AlertUnsupportedCertificate: "unsupported certificate",
AlertCertificateRevoked: "revoked certificate",
AlertCertificateExpired: "expired certificate",
AlertCertificateUnknown: "unknown certificate",
AlertIllegalParameter: "illegal parameter",
AlertUnknownCA: "unknown certificate authority",
AlertAccessDenied: "access denied",
AlertDecodeError: "error decoding message",
AlertDecryptError: "error decrypting message",
AlertProtocolVersion: "protocol version not supported",
AlertInsufficientSecurity: "insufficient security level",
AlertInternalError: "internal error",
AlertInappropriateFallback: "inappropriate fallback",
AlertUserCanceled: "user canceled",
AlertMissingExtension: "missing extension",
AlertUnsupportedExtension: "unsupported extension",
AlertCertificateUnobtainable: "certificate unobtainable",
AlertUnrecognizedName: "unrecognized name",
AlertBadCertificateStatsResponse: "bad certificate status response",
AlertBadCertificateHashValue: "bad certificate hash value",
AlertUnknownPSKIdentity: "unknown PSK identity",
AlertNoApplicationProtocol: "no application protocol",
AlertNoRenegotiation: "no renegotiation",
AlertStatelessRetry: "stateless retry",
AlertWouldBlock: "would have blocked",
AlertNoAlert: "no alert",
}
func (e Alert) String() string {
s, ok := alertText[e]
if ok {
return s
}
return "alert(" + strconv.Itoa(int(e)) + ")"
}
func (e Alert) Error() string {
return e.String()
}

11
vendor/github.com/bifurcation/mint/alert_test.go generated vendored Normal file
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@ -0,0 +1,11 @@
package mint
import (
"testing"
)
func TestAlert(t *testing.T) {
assertEquals(t, AlertCloseNotify.String(), "close notify")
assertEquals(t, AlertCloseNotify.Error(), "close notify")
assertEquals(t, Alert(0xfc).String(), "alert(252)")
}

File diff suppressed because it is too large Load Diff

251
vendor/github.com/bifurcation/mint/common.go generated vendored Normal file
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package mint
import (
"fmt"
"strconv"
)
const (
supportedVersion uint16 = 0x7f16 // draft-22
tls12Version uint16 = 0x0303
tls10Version uint16 = 0x0301
)
var (
// Flags for some minor compat issues
allowWrongVersionNumber = true
allowPKCS1 = true
)
// enum {...} ContentType;
type RecordType byte
const (
RecordTypeAlert RecordType = 21
RecordTypeHandshake RecordType = 22
RecordTypeApplicationData RecordType = 23
)
// enum {...} HandshakeType;
type HandshakeType byte
const (
// Omitted: *_RESERVED
HandshakeTypeClientHello HandshakeType = 1
HandshakeTypeServerHello HandshakeType = 2
HandshakeTypeNewSessionTicket HandshakeType = 4
HandshakeTypeEndOfEarlyData HandshakeType = 5
HandshakeTypeHelloRetryRequest HandshakeType = 6
HandshakeTypeEncryptedExtensions HandshakeType = 8
HandshakeTypeCertificate HandshakeType = 11
HandshakeTypeCertificateRequest HandshakeType = 13
HandshakeTypeCertificateVerify HandshakeType = 15
HandshakeTypeServerConfiguration HandshakeType = 17
HandshakeTypeFinished HandshakeType = 20
HandshakeTypeKeyUpdate HandshakeType = 24
HandshakeTypeMessageHash HandshakeType = 254
)
var hrrRandomSentinel = [32]byte{
0xcf, 0x21, 0xad, 0x74, 0xe5, 0x9a, 0x61, 0x11,
0xbe, 0x1d, 0x8c, 0x02, 0x1e, 0x65, 0xb8, 0x91,
0xc2, 0xa2, 0x11, 0x16, 0x7a, 0xbb, 0x8c, 0x5e,
0x07, 0x9e, 0x09, 0xe2, 0xc8, 0xa8, 0x33, 0x9c,
}
// uint8 CipherSuite[2];
type CipherSuite uint16
const (
// XXX: Actually TLS_NULL_WITH_NULL_NULL, but we need a way to label the zero
// value for this type so that we can detect when a field is set.
CIPHER_SUITE_UNKNOWN CipherSuite = 0x0000
TLS_AES_128_GCM_SHA256 CipherSuite = 0x1301
TLS_AES_256_GCM_SHA384 CipherSuite = 0x1302
TLS_CHACHA20_POLY1305_SHA256 CipherSuite = 0x1303
TLS_AES_128_CCM_SHA256 CipherSuite = 0x1304
TLS_AES_256_CCM_8_SHA256 CipherSuite = 0x1305
)
func (c CipherSuite) String() string {
switch c {
case CIPHER_SUITE_UNKNOWN:
return "unknown"
case TLS_AES_128_GCM_SHA256:
return "TLS_AES_128_GCM_SHA256"
case TLS_AES_256_GCM_SHA384:
return "TLS_AES_256_GCM_SHA384"
case TLS_CHACHA20_POLY1305_SHA256:
return "TLS_CHACHA20_POLY1305_SHA256"
case TLS_AES_128_CCM_SHA256:
return "TLS_AES_128_CCM_SHA256"
case TLS_AES_256_CCM_8_SHA256:
return "TLS_AES_256_CCM_8_SHA256"
}
// cannot use %x here, since it calls String(), leading to infinite recursion
return fmt.Sprintf("invalid CipherSuite value: 0x%s", strconv.FormatUint(uint64(c), 16))
}
// enum {...} SignatureScheme
type SignatureScheme uint16
const (
// RSASSA-PKCS1-v1_5 algorithms
RSA_PKCS1_SHA1 SignatureScheme = 0x0201
RSA_PKCS1_SHA256 SignatureScheme = 0x0401
RSA_PKCS1_SHA384 SignatureScheme = 0x0501
RSA_PKCS1_SHA512 SignatureScheme = 0x0601
// ECDSA algorithms
ECDSA_P256_SHA256 SignatureScheme = 0x0403
ECDSA_P384_SHA384 SignatureScheme = 0x0503
ECDSA_P521_SHA512 SignatureScheme = 0x0603
// RSASSA-PSS algorithms
RSA_PSS_SHA256 SignatureScheme = 0x0804
RSA_PSS_SHA384 SignatureScheme = 0x0805
RSA_PSS_SHA512 SignatureScheme = 0x0806
// EdDSA algorithms
Ed25519 SignatureScheme = 0x0807
Ed448 SignatureScheme = 0x0808
)
// enum {...} ExtensionType
type ExtensionType uint16
const (
ExtensionTypeServerName ExtensionType = 0
ExtensionTypeSupportedGroups ExtensionType = 10
ExtensionTypeSignatureAlgorithms ExtensionType = 13
ExtensionTypeALPN ExtensionType = 16
ExtensionTypeKeyShare ExtensionType = 40
ExtensionTypePreSharedKey ExtensionType = 41
ExtensionTypeEarlyData ExtensionType = 42
ExtensionTypeSupportedVersions ExtensionType = 43
ExtensionTypeCookie ExtensionType = 44
ExtensionTypePSKKeyExchangeModes ExtensionType = 45
ExtensionTypeTicketEarlyDataInfo ExtensionType = 46
)
// enum {...} NamedGroup
type NamedGroup uint16
const (
// Elliptic Curve Groups.
P256 NamedGroup = 23
P384 NamedGroup = 24
P521 NamedGroup = 25
// ECDH functions.
X25519 NamedGroup = 29
X448 NamedGroup = 30
// Finite field groups.
FFDHE2048 NamedGroup = 256
FFDHE3072 NamedGroup = 257
FFDHE4096 NamedGroup = 258
FFDHE6144 NamedGroup = 259
FFDHE8192 NamedGroup = 260
)
// enum {...} PskKeyExchangeMode;
type PSKKeyExchangeMode uint8
const (
PSKModeKE PSKKeyExchangeMode = 0
PSKModeDHEKE PSKKeyExchangeMode = 1
)
// enum {
// update_not_requested(0), update_requested(1), (255)
// } KeyUpdateRequest;
type KeyUpdateRequest uint8
const (
KeyUpdateNotRequested KeyUpdateRequest = 0
KeyUpdateRequested KeyUpdateRequest = 1
)
type State uint8
const (
// states valid for the client
StateClientStart State = iota
StateClientWaitSH
StateClientWaitEE
StateClientWaitCert
StateClientWaitCV
StateClientWaitFinished
StateClientWaitCertCR
StateClientConnected
// states valid for the server
StateServerStart State = iota
StateServerRecvdCH
StateServerNegotiated
StateServerWaitEOED
StateServerWaitFlight2
StateServerWaitCert
StateServerWaitCV
StateServerWaitFinished
StateServerConnected
)
func (s State) String() string {
switch s {
case StateClientStart:
return "Client START"
case StateClientWaitSH:
return "Client WAIT_SH"
case StateClientWaitEE:
return "Client WAIT_EE"
case StateClientWaitCert:
return "Client WAIT_CERT"
case StateClientWaitCV:
return "Client WAIT_CV"
case StateClientWaitFinished:
return "Client WAIT_FINISHED"
case StateClientConnected:
return "Client CONNECTED"
case StateServerStart:
return "Server START"
case StateServerRecvdCH:
return "Server RECVD_CH"
case StateServerNegotiated:
return "Server NEGOTIATED"
case StateServerWaitEOED:
return "Server WAIT_EOED"
case StateServerWaitFlight2:
return "Server WAIT_FLIGHT2"
case StateServerWaitCert:
return "Server WAIT_CERT"
case StateServerWaitCV:
return "Server WAIT_CV"
case StateServerWaitFinished:
return "Server WAIT_FINISHED"
case StateServerConnected:
return "Server CONNECTED"
default:
return fmt.Sprintf("unknown state: %d", s)
}
}
// Epochs for DTLS (also used for key phase labelling)
type Epoch uint16
const (
EpochClear Epoch = 0
EpochEarlyData Epoch = 1
EpochHandshakeData Epoch = 2
EpochApplicationData Epoch = 3
EpochUpdate Epoch = 4
)
func (e Epoch) label() string {
switch e {
case EpochClear:
return "clear"
case EpochEarlyData:
return "early data"
case EpochHandshakeData:
return "handshake"
case EpochApplicationData:
return "application data"
}
return "Application data (updated)"
}

92
vendor/github.com/bifurcation/mint/common_test.go generated vendored Normal file
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@ -0,0 +1,92 @@
package mint
import (
"bytes"
"encoding/hex"
"fmt"
"reflect"
"runtime"
"testing"
)
func unhex(h string) []byte {
b, err := hex.DecodeString(h)
if err != nil {
panic(err)
}
return b
}
func assert(t *testing.T, test bool, msg string) {
t.Helper()
prefix := string("")
for i := 1; ; i++ {
_, file, line, ok := runtime.Caller(i)
if !ok {
break
}
prefix = fmt.Sprintf("%v: %d\n", file, line) + prefix
}
if !test {
t.Fatalf(prefix + msg)
}
}
func assertError(t *testing.T, err error, msg string) {
t.Helper()
assert(t, err != nil, msg)
}
func assertNotError(t *testing.T, err error, msg string) {
t.Helper()
if err != nil {
msg += ": " + err.Error()
}
assert(t, err == nil, msg)
}
func assertNil(t *testing.T, x interface{}, msg string) {
t.Helper()
assert(t, x == nil, msg)
}
func assertNotNil(t *testing.T, x interface{}, msg string) {
t.Helper()
assert(t, x != nil, msg)
}
func assertEquals(t *testing.T, a, b interface{}) {
t.Helper()
assert(t, a == b, fmt.Sprintf("%+v != %+v", a, b))
}
func assertByteEquals(t *testing.T, a, b []byte) {
t.Helper()
assert(t, bytes.Equal(a, b), fmt.Sprintf("%+v != %+v", hex.EncodeToString(a), hex.EncodeToString(b)))
}
func assertNotByteEquals(t *testing.T, a, b []byte) {
t.Helper()
assert(t, !bytes.Equal(a, b), fmt.Sprintf("%+v == %+v", hex.EncodeToString(a), hex.EncodeToString(b)))
}
func assertCipherSuiteParamsEquals(t *testing.T, a, b CipherSuiteParams) {
t.Helper()
assertEquals(t, a.Suite, b.Suite)
// Can't compare aeadFactory values
assertEquals(t, a.Hash, b.Hash)
assertEquals(t, a.KeyLen, b.KeyLen)
assertEquals(t, a.IvLen, b.IvLen)
}
func assertDeepEquals(t *testing.T, a, b interface{}) {
t.Helper()
assert(t, reflect.DeepEqual(a, b), fmt.Sprintf("%+v != %+v", a, b))
}
func assertSameType(t *testing.T, a, b interface{}) {
t.Helper()
A := reflect.TypeOf(a)
B := reflect.TypeOf(b)
assert(t, A == B, fmt.Sprintf("%s != %s", A.Name(), B.Name()))
}

890
vendor/github.com/bifurcation/mint/conn.go generated vendored Normal file
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package mint
import (
"crypto"
"crypto/x509"
"encoding/hex"
"errors"
"fmt"
"io"
"net"
"reflect"
"sync"
"time"
)
var WouldBlock = fmt.Errorf("Would have blocked")
type Certificate struct {
Chain []*x509.Certificate
PrivateKey crypto.Signer
}
type PreSharedKey struct {
CipherSuite CipherSuite
IsResumption bool
Identity []byte
Key []byte
NextProto string
ReceivedAt time.Time
ExpiresAt time.Time
TicketAgeAdd uint32
}
type PreSharedKeyCache interface {
Get(string) (PreSharedKey, bool)
Put(string, PreSharedKey)
Size() int
}
// A CookieHandler can be used to give the application more fine-grained control over Cookies.
// Generate receives the Conn as an argument, so the CookieHandler can decide when to send the cookie based on that, and offload state to the client by encoding that into the Cookie.
// When the client echoes the Cookie, Validate is called. The application can then recover the state from the cookie.
type CookieHandler interface {
// Generate a byte string that is sent as a part of a cookie to the client in the HelloRetryRequest
// If Generate returns nil, mint will not send a HelloRetryRequest.
Generate(*Conn) ([]byte, error)
// Validate is called when receiving a ClientHello containing a Cookie.
// If validation failed, the handshake is aborted.
Validate(*Conn, []byte) bool
}
type PSKMapCache map[string]PreSharedKey
func (cache PSKMapCache) Get(key string) (psk PreSharedKey, ok bool) {
psk, ok = cache[key]
return
}
func (cache *PSKMapCache) Put(key string, psk PreSharedKey) {
(*cache)[key] = psk
}
func (cache PSKMapCache) Size() int {
return len(cache)
}
// Config is the struct used to pass configuration settings to a TLS client or
// server instance. The settings for client and server are pretty different,
// but we just throw them all in here.
type Config struct {
// Client fields
ServerName string
// Server fields
SendSessionTickets bool
TicketLifetime uint32
TicketLen int
EarlyDataLifetime uint32
AllowEarlyData bool
// Require the client to echo a cookie.
RequireCookie bool
// A CookieHandler can be used to set and validate a cookie.
// The cookie returned by the CookieHandler will be part of the cookie sent on the wire, and encoded using the CookieProtector.
// If no CookieHandler is set, mint will always send a cookie.
// The CookieHandler can be used to decide on a per-connection basis, if a cookie should be sent.
CookieHandler CookieHandler
// The CookieProtector is used to encrypt / decrypt cookies.
// It should make sure that the Cookie cannot be read and tampered with by the client.
// If non-blocking mode is used, and cookies are required, this field has to be set.
// In blocking mode, a default cookie protector is used, if this is unused.
CookieProtector CookieProtector
RequireClientAuth bool
// Shared fields
Certificates []*Certificate
AuthCertificate func(chain []CertificateEntry) error
CipherSuites []CipherSuite
Groups []NamedGroup
SignatureSchemes []SignatureScheme
NextProtos []string
PSKs PreSharedKeyCache
PSKModes []PSKKeyExchangeMode
NonBlocking bool
UseDTLS bool
// The same config object can be shared among different connections, so it
// needs its own mutex
mutex sync.RWMutex
}
// Clone returns a shallow clone of c. It is safe to clone a Config that is
// being used concurrently by a TLS client or server.
func (c *Config) Clone() *Config {
c.mutex.Lock()
defer c.mutex.Unlock()
return &Config{
ServerName: c.ServerName,
SendSessionTickets: c.SendSessionTickets,
TicketLifetime: c.TicketLifetime,
TicketLen: c.TicketLen,
EarlyDataLifetime: c.EarlyDataLifetime,
AllowEarlyData: c.AllowEarlyData,
RequireCookie: c.RequireCookie,
CookieHandler: c.CookieHandler,
CookieProtector: c.CookieProtector,
RequireClientAuth: c.RequireClientAuth,
Certificates: c.Certificates,
AuthCertificate: c.AuthCertificate,
CipherSuites: c.CipherSuites,
Groups: c.Groups,
SignatureSchemes: c.SignatureSchemes,
NextProtos: c.NextProtos,
PSKs: c.PSKs,
PSKModes: c.PSKModes,
NonBlocking: c.NonBlocking,
UseDTLS: c.UseDTLS,
}
}
func (c *Config) Init(isClient bool) error {
c.mutex.Lock()
defer c.mutex.Unlock()
// Set defaults
if len(c.CipherSuites) == 0 {
c.CipherSuites = defaultSupportedCipherSuites
}
if len(c.Groups) == 0 {
c.Groups = defaultSupportedGroups
}
if len(c.SignatureSchemes) == 0 {
c.SignatureSchemes = defaultSignatureSchemes
}
if c.TicketLen == 0 {
c.TicketLen = defaultTicketLen
}
if !reflect.ValueOf(c.PSKs).IsValid() {
c.PSKs = &PSKMapCache{}
}
if len(c.PSKModes) == 0 {
c.PSKModes = defaultPSKModes
}
// If there is no certificate, generate one
if !isClient && len(c.Certificates) == 0 {
logf(logTypeHandshake, "Generating key name=%v", c.ServerName)
priv, err := newSigningKey(RSA_PSS_SHA256)
if err != nil {
return err
}
cert, err := newSelfSigned(c.ServerName, RSA_PKCS1_SHA256, priv)
if err != nil {
return err
}
c.Certificates = []*Certificate{
{
Chain: []*x509.Certificate{cert},
PrivateKey: priv,
},
}
}
return nil
}
func (c *Config) ValidForServer() bool {
return (reflect.ValueOf(c.PSKs).IsValid() && c.PSKs.Size() > 0) ||
(len(c.Certificates) > 0 &&
len(c.Certificates[0].Chain) > 0 &&
c.Certificates[0].PrivateKey != nil)
}
func (c *Config) ValidForClient() bool {
return len(c.ServerName) > 0
}
var (
defaultSupportedCipherSuites = []CipherSuite{
TLS_AES_128_GCM_SHA256,
TLS_AES_256_GCM_SHA384,
}
defaultSupportedGroups = []NamedGroup{
P256,
P384,
FFDHE2048,
X25519,
}
defaultSignatureSchemes = []SignatureScheme{
RSA_PSS_SHA256,
RSA_PSS_SHA384,
RSA_PSS_SHA512,
ECDSA_P256_SHA256,
ECDSA_P384_SHA384,
ECDSA_P521_SHA512,
}
defaultTicketLen = 16
defaultPSKModes = []PSKKeyExchangeMode{
PSKModeKE,
PSKModeDHEKE,
}
)
type ConnectionState struct {
HandshakeState State
CipherSuite CipherSuiteParams // cipher suite in use (TLS_RSA_WITH_RC4_128_SHA, ...)
PeerCertificates []*x509.Certificate // certificate chain presented by remote peer TODO(ekr@rtfm.com): implement
NextProto string // Selected ALPN proto
}
// Conn implements the net.Conn interface, as with "crypto/tls"
// * Read, Write, and Close are provided locally
// * LocalAddr, RemoteAddr, and Set*Deadline are forwarded to the inner Conn
type Conn struct {
config *Config
conn net.Conn
isClient bool
EarlyData []byte
state StateConnected
hState HandshakeState
handshakeMutex sync.Mutex
handshakeAlert Alert
handshakeComplete bool
readBuffer []byte
in, out *RecordLayer
hsCtx HandshakeContext
extHandler AppExtensionHandler
}
func NewConn(conn net.Conn, config *Config, isClient bool) *Conn {
c := &Conn{conn: conn, config: config, isClient: isClient}
if !config.UseDTLS {
c.in = NewRecordLayerTLS(c.conn)
c.out = NewRecordLayerTLS(c.conn)
c.hsCtx.hIn = NewHandshakeLayerTLS(c.in)
c.hsCtx.hOut = NewHandshakeLayerTLS(c.out)
} else {
c.in = NewRecordLayerDTLS(c.conn)
c.out = NewRecordLayerDTLS(c.conn)
c.hsCtx.hIn = NewHandshakeLayerDTLS(c.in)
c.hsCtx.hOut = NewHandshakeLayerDTLS(c.out)
}
c.hsCtx.hIn.nonblocking = c.config.NonBlocking
return c
}
// Read up
func (c *Conn) consumeRecord() error {
pt, err := c.in.ReadRecord()
if pt == nil {
logf(logTypeIO, "extendBuffer returns error %v", err)
return err
}
switch pt.contentType {
case RecordTypeHandshake:
logf(logTypeHandshake, "Received post-handshake message")
// We do not support fragmentation of post-handshake handshake messages.
// TODO: Factor this more elegantly; coalesce with handshakeLayer.ReadMessage()
start := 0
headerLen := handshakeHeaderLenTLS
if c.config.UseDTLS {
headerLen = handshakeHeaderLenDTLS
}
for start < len(pt.fragment) {
if len(pt.fragment[start:]) < headerLen {
return fmt.Errorf("Post-handshake handshake message too short for header")
}
hm := &HandshakeMessage{}
hm.msgType = HandshakeType(pt.fragment[start])
hmLen := (int(pt.fragment[start+1]) << 16) + (int(pt.fragment[start+2]) << 8) + int(pt.fragment[start+3])
if len(pt.fragment[start+headerLen:]) < hmLen {
return fmt.Errorf("Post-handshake handshake message too short for body")
}
hm.body = pt.fragment[start+headerLen : start+headerLen+hmLen]
// XXX: If we want to support more advanced cases, e.g., post-handshake
// authentication, we'll need to allow transitions other than
// Connected -> Connected
state, actions, alert := c.state.ProcessMessage(hm)
if alert != AlertNoAlert {
logf(logTypeHandshake, "Error in state transition: %v", alert)
c.sendAlert(alert)
return io.EOF
}
for _, action := range actions {
alert = c.takeAction(action)
if alert != AlertNoAlert {
logf(logTypeHandshake, "Error during handshake actions: %v", alert)
c.sendAlert(alert)
return io.EOF
}
}
var connected bool
c.state, connected = state.(StateConnected)
if !connected {
logf(logTypeHandshake, "Disconnected after state transition: %v", alert)
c.sendAlert(alert)
return io.EOF
}
start += headerLen + hmLen
}
case RecordTypeAlert:
logf(logTypeIO, "extended buffer (for alert): [%d] %x", len(c.readBuffer), c.readBuffer)
if len(pt.fragment) != 2 {
c.sendAlert(AlertUnexpectedMessage)
return io.EOF
}
if Alert(pt.fragment[1]) == AlertCloseNotify {
return io.EOF
}
switch pt.fragment[0] {
case AlertLevelWarning:
// drop on the floor
case AlertLevelError:
return Alert(pt.fragment[1])
default:
c.sendAlert(AlertUnexpectedMessage)
return io.EOF
}
case RecordTypeApplicationData:
c.readBuffer = append(c.readBuffer, pt.fragment...)
logf(logTypeIO, "extended buffer: [%d] %x", len(c.readBuffer), c.readBuffer)
}
return err
}
// Read application data up to the size of buffer. Handshake and alert records
// are consumed by the Conn object directly.
func (c *Conn) Read(buffer []byte) (int, error) {
if _, connected := c.hState.(StateConnected); !connected && c.config.NonBlocking {
return 0, errors.New("Read called before the handshake completed")
}
logf(logTypeHandshake, "conn.Read with buffer = %d", len(buffer))
if alert := c.Handshake(); alert != AlertNoAlert {
return 0, alert
}
if len(buffer) == 0 {
return 0, nil
}
// Lock the input channel
c.in.Lock()
defer c.in.Unlock()
for len(c.readBuffer) == 0 {
err := c.consumeRecord()
// err can be nil if consumeRecord processed a non app-data
// record.
if err != nil {
if c.config.NonBlocking || err != WouldBlock {
logf(logTypeIO, "conn.Read returns err=%v", err)
return 0, err
}
}
}
var read int
n := len(buffer)
logf(logTypeIO, "conn.Read input buffer now has len %d", len(c.readBuffer))
if len(c.readBuffer) <= n {
buffer = buffer[:len(c.readBuffer)]
copy(buffer, c.readBuffer)
read = len(c.readBuffer)
c.readBuffer = c.readBuffer[:0]
} else {
logf(logTypeIO, "read buffer larger than input buffer (%d > %d)", len(c.readBuffer), n)
copy(buffer[:n], c.readBuffer[:n])
c.readBuffer = c.readBuffer[n:]
read = n
}
logf(logTypeVerbose, "Returning %v", string(buffer))
return read, nil
}
// Write application data
func (c *Conn) Write(buffer []byte) (int, error) {
// Lock the output channel
c.out.Lock()
defer c.out.Unlock()
// Send full-size fragments
var start int
sent := 0
for start = 0; len(buffer)-start >= maxFragmentLen; start += maxFragmentLen {
err := c.out.WriteRecord(&TLSPlaintext{
contentType: RecordTypeApplicationData,
fragment: buffer[start : start+maxFragmentLen],
})
if err != nil {
return sent, err
}
sent += maxFragmentLen
}
// Send a final partial fragment if necessary
if start < len(buffer) {
err := c.out.WriteRecord(&TLSPlaintext{
contentType: RecordTypeApplicationData,
fragment: buffer[start:],
})
if err != nil {
return sent, err
}
sent += len(buffer[start:])
}
return sent, nil
}
// sendAlert sends a TLS alert message.
// c.out.Mutex <= L.
func (c *Conn) sendAlert(err Alert) error {
c.handshakeMutex.Lock()
defer c.handshakeMutex.Unlock()
var level int
switch err {
case AlertNoRenegotiation, AlertCloseNotify:
level = AlertLevelWarning
default:
level = AlertLevelError
}
buf := []byte{byte(err), byte(level)}
c.out.WriteRecord(&TLSPlaintext{
contentType: RecordTypeAlert,
fragment: buf,
})
// close_notify and end_of_early_data are not actually errors
if level == AlertLevelWarning {
return &net.OpError{Op: "local error", Err: err}
}
return c.Close()
}
// Close closes the connection.
func (c *Conn) Close() error {
// XXX crypto/tls has an interlock with Write here. Do we need that?
return c.conn.Close()
}
// LocalAddr returns the local network address.
func (c *Conn) LocalAddr() net.Addr {
return c.conn.LocalAddr()
}
// RemoteAddr returns the remote network address.
func (c *Conn) RemoteAddr() net.Addr {
return c.conn.RemoteAddr()
}
// SetDeadline sets the read and write deadlines associated with the connection.
// A zero value for t means Read and Write will not time out.
// After a Write has timed out, the TLS state is corrupt and all future writes will return the same error.
func (c *Conn) SetDeadline(t time.Time) error {
return c.conn.SetDeadline(t)
}
// SetReadDeadline sets the read deadline on the underlying connection.
// A zero value for t means Read will not time out.
func (c *Conn) SetReadDeadline(t time.Time) error {
return c.conn.SetReadDeadline(t)
}
// SetWriteDeadline sets the write deadline on the underlying connection.
// A zero value for t means Write will not time out.
// After a Write has timed out, the TLS state is corrupt and all future writes will return the same error.
func (c *Conn) SetWriteDeadline(t time.Time) error {
return c.conn.SetWriteDeadline(t)
}
func (c *Conn) takeAction(actionGeneric HandshakeAction) Alert {
label := "[server]"
if c.isClient {
label = "[client]"
}
switch action := actionGeneric.(type) {
case QueueHandshakeMessage:
logf(logTypeHandshake, "%s queuing handshake message type=%v", label, action.Message.msgType)
err := c.hsCtx.hOut.QueueMessage(action.Message)
if err != nil {
logf(logTypeHandshake, "%s Error writing handshake message: %v", label, err)
return AlertInternalError
}
case SendQueuedHandshake:
err := c.hsCtx.hOut.SendQueuedMessages()
if err != nil {
logf(logTypeHandshake, "%s Error writing handshake message: %v", label, err)
return AlertInternalError
}
case RekeyIn:
logf(logTypeHandshake, "%s Rekeying in to %s: %+v", label, action.epoch.label(), action.KeySet)
err := c.in.Rekey(action.epoch, action.KeySet.cipher, action.KeySet.key, action.KeySet.iv)
if err != nil {
logf(logTypeHandshake, "%s Unable to rekey inbound: %v", label, err)
return AlertInternalError
}
case RekeyOut:
logf(logTypeHandshake, "%s Rekeying out to %s: %+v", label, action.epoch.label(), action.KeySet)
err := c.out.Rekey(action.epoch, action.KeySet.cipher, action.KeySet.key, action.KeySet.iv)
if err != nil {
logf(logTypeHandshake, "%s Unable to rekey outbound: %v", label, err)
return AlertInternalError
}
case SendEarlyData:
logf(logTypeHandshake, "%s Sending early data...", label)
_, err := c.Write(c.EarlyData)
if err != nil {
logf(logTypeHandshake, "%s Error writing early data: %v", label, err)
return AlertInternalError
}
case ReadPastEarlyData:
logf(logTypeHandshake, "%s Reading past early data...", label)
// Scan past all records that fail to decrypt
_, err := c.in.PeekRecordType(!c.config.NonBlocking)
if err == nil {
break
}
_, ok := err.(DecryptError)
for ok {
_, err = c.in.PeekRecordType(!c.config.NonBlocking)
if err == nil {
break
}
_, ok = err.(DecryptError)
}
case ReadEarlyData:
logf(logTypeHandshake, "%s Reading early data...", label)
t, err := c.in.PeekRecordType(!c.config.NonBlocking)
if err != nil {
logf(logTypeHandshake, "%s Error reading record type (1): %v", label, err)
return AlertInternalError
}
logf(logTypeHandshake, "%s Got record type(1): %v", label, t)
for t == RecordTypeApplicationData {
// Read a record into the buffer. Note that this is safe
// in blocking mode because we read the record in in
// PeekRecordType.
pt, err := c.in.ReadRecord()
if err != nil {
logf(logTypeHandshake, "%s Error reading early data record: %v", label, err)
return AlertInternalError
}
logf(logTypeHandshake, "%s Read early data: %x", label, pt.fragment)
c.EarlyData = append(c.EarlyData, pt.fragment...)
t, err = c.in.PeekRecordType(!c.config.NonBlocking)
if err != nil {
logf(logTypeHandshake, "%s Error reading record type (2): %v", label, err)
return AlertInternalError
}
logf(logTypeHandshake, "%s Got record type (2): %v", label, t)
}
logf(logTypeHandshake, "%s Done reading early data", label)
case StorePSK:
logf(logTypeHandshake, "%s Storing new session ticket with identity [%x]", label, action.PSK.Identity)
if c.isClient {
// Clients look up PSKs based on server name
c.config.PSKs.Put(c.config.ServerName, action.PSK)
} else {
// Servers look them up based on the identity in the extension
c.config.PSKs.Put(hex.EncodeToString(action.PSK.Identity), action.PSK)
}
default:
logf(logTypeHandshake, "%s Unknown actionuction type", label)
return AlertInternalError
}
return AlertNoAlert
}
func (c *Conn) HandshakeSetup() Alert {
var state HandshakeState
var actions []HandshakeAction
var alert Alert
if err := c.config.Init(c.isClient); err != nil {
logf(logTypeHandshake, "Error initializing config: %v", err)
return AlertInternalError
}
// Set things up
caps := Capabilities{
CipherSuites: c.config.CipherSuites,
Groups: c.config.Groups,
SignatureSchemes: c.config.SignatureSchemes,
PSKs: c.config.PSKs,
PSKModes: c.config.PSKModes,
AllowEarlyData: c.config.AllowEarlyData,
RequireCookie: c.config.RequireCookie,
CookieProtector: c.config.CookieProtector,
CookieHandler: c.config.CookieHandler,
RequireClientAuth: c.config.RequireClientAuth,
NextProtos: c.config.NextProtos,
Certificates: c.config.Certificates,
ExtensionHandler: c.extHandler,
}
opts := ConnectionOptions{
ServerName: c.config.ServerName,
NextProtos: c.config.NextProtos,
EarlyData: c.EarlyData,
}
if c.isClient {
state, actions, alert = ClientStateStart{Caps: caps, Opts: opts, hsCtx: c.hsCtx}.Next(nil)
if alert != AlertNoAlert {
logf(logTypeHandshake, "Error initializing client state: %v", alert)
return alert
}
for _, action := range actions {
alert = c.takeAction(action)
if alert != AlertNoAlert {
logf(logTypeHandshake, "Error during handshake actions: %v", alert)
return alert
}
}
} else {
if c.config.RequireCookie && c.config.CookieProtector == nil {
logf(logTypeHandshake, "RequireCookie set, but no CookieProtector provided. Using default cookie protector. Stateless Retry not possible.")
if c.config.NonBlocking {
logf(logTypeHandshake, "Not possible in non-blocking mode.")
return AlertInternalError
}
var err error
caps.CookieProtector, err = NewDefaultCookieProtector()
if err != nil {
logf(logTypeHandshake, "Error initializing cookie source: %v", alert)
return AlertInternalError
}
}
state = ServerStateStart{Caps: caps, conn: c, hsCtx: c.hsCtx}
}
c.hState = state
return AlertNoAlert
}
type handshakeMessageReader interface {
ReadMessage() (*HandshakeMessage, Alert)
}
type handshakeMessageReaderImpl struct {
hsCtx *HandshakeContext
}
var _ handshakeMessageReader = &handshakeMessageReaderImpl{}
func (r *handshakeMessageReaderImpl) ReadMessage() (*HandshakeMessage, Alert) {
hm, err := r.hsCtx.hIn.ReadMessage()
if err == WouldBlock {
return nil, AlertWouldBlock
}
if err != nil {
logf(logTypeHandshake, "[client] Error reading message: %v", err)
return nil, AlertCloseNotify
}
// Once you have read a message, you no longer need the outgoing queue
// for DTLS.
r.hsCtx.hOut.ClearQueuedMessages()
return hm, AlertNoAlert
}
// Handshake causes a TLS handshake on the connection. The `isClient` member
// determines whether a client or server handshake is performed. If a
// handshake has already been performed, then its result will be returned.
func (c *Conn) Handshake() Alert {
label := "[server]"
if c.isClient {
label = "[client]"
}
// TODO Lock handshakeMutex
// TODO Remove CloseNotify hack
if c.handshakeAlert != AlertNoAlert && c.handshakeAlert != AlertCloseNotify {
logf(logTypeHandshake, "Pre-existing handshake error: %v", c.handshakeAlert)
return c.handshakeAlert
}
if c.handshakeComplete {
return AlertNoAlert
}
if c.hState == nil {
logf(logTypeHandshake, "%s First time through handshake (or after stateless retry), setting up", label)
alert := c.HandshakeSetup()
if alert != AlertNoAlert || (c.isClient && c.config.NonBlocking) {
return alert
}
}
logf(logTypeHandshake, "(Re-)entering handshake, state=%v", c.hState)
state := c.hState
_, connected := state.(StateConnected)
hmr := &handshakeMessageReaderImpl{hsCtx: &c.hsCtx}
for !connected {
var alert Alert
var actions []HandshakeAction
// Advance the state machine
state, actions, alert = state.Next(hmr)
if alert == WouldBlock {
logf(logTypeHandshake, "%s Would block reading message: %s", label, alert)
return AlertWouldBlock
}
if alert == AlertCloseNotify {
logf(logTypeHandshake, "%s Error reading message: %s", label, alert)
c.sendAlert(AlertCloseNotify)
return AlertCloseNotify
}
if alert != AlertNoAlert && alert != AlertStatelessRetry {
logf(logTypeHandshake, "Error in state transition: %v", alert)
return alert
}
for index, action := range actions {
logf(logTypeHandshake, "%s taking next action (%d)", label, index)
if alert := c.takeAction(action); alert != AlertNoAlert {
logf(logTypeHandshake, "Error during handshake actions: %v", alert)
c.sendAlert(alert)
return alert
}
}
c.hState = state
logf(logTypeHandshake, "state is now %s", c.GetHsState())
_, connected = state.(StateConnected)
if connected {
c.state = state.(StateConnected)
c.handshakeComplete = true
}
if c.config.NonBlocking {
if alert == AlertStatelessRetry {
return AlertStatelessRetry
}
return AlertNoAlert
}
}
// Send NewSessionTicket if acting as server
if !c.isClient && c.config.SendSessionTickets {
actions, alert := c.state.NewSessionTicket(
c.config.TicketLen,
c.config.TicketLifetime,
c.config.EarlyDataLifetime)
for _, action := range actions {
alert = c.takeAction(action)
if alert != AlertNoAlert {
logf(logTypeHandshake, "Error during handshake actions: %v", alert)
c.sendAlert(alert)
return alert
}
}
}
return AlertNoAlert
}
func (c *Conn) SendKeyUpdate(requestUpdate bool) error {
if !c.handshakeComplete {
return fmt.Errorf("Cannot update keys until after handshake")
}
request := KeyUpdateNotRequested
if requestUpdate {
request = KeyUpdateRequested
}
// Create the key update and update state
actions, alert := c.state.KeyUpdate(request)
if alert != AlertNoAlert {
c.sendAlert(alert)
return fmt.Errorf("Alert while generating key update: %v", alert)
}
// Take actions (send key update and rekey)
for _, action := range actions {
alert = c.takeAction(action)
if alert != AlertNoAlert {
c.sendAlert(alert)
return fmt.Errorf("Alert during key update actions: %v", alert)
}
}
return nil
}
func (c *Conn) GetHsState() State {
return c.hState.State()
}
func (c *Conn) ComputeExporter(label string, context []byte, keyLength int) ([]byte, error) {
_, connected := c.hState.(StateConnected)
if !connected {
return nil, fmt.Errorf("Cannot compute exporter when state is not connected")
}
if c.state.exporterSecret == nil {
return nil, fmt.Errorf("Internal error: no exporter secret")
}
h0 := c.state.cryptoParams.Hash.New().Sum(nil)
tmpSecret := deriveSecret(c.state.cryptoParams, c.state.exporterSecret, label, h0)
hc := c.state.cryptoParams.Hash.New().Sum(context)
return HkdfExpandLabel(c.state.cryptoParams.Hash, tmpSecret, "exporter", hc, keyLength), nil
}
func (c *Conn) State() ConnectionState {
state := ConnectionState{
HandshakeState: c.GetHsState(),
}
if c.handshakeComplete {
state.CipherSuite = cipherSuiteMap[c.state.Params.CipherSuite]
state.NextProto = c.state.Params.NextProto
}
return state
}
func (c *Conn) SetExtensionHandler(h AppExtensionHandler) error {
if c.hState != nil {
return fmt.Errorf("Can't set extension handler after setup")
}
c.extHandler = h
return nil
}

861
vendor/github.com/bifurcation/mint/conn_test.go generated vendored Normal file
View File

@ -0,0 +1,861 @@
package mint
import (
"bytes"
"crypto/x509"
"fmt"
"io"
"net"
"sync"
"testing"
"time"
)
type pipeConn struct {
r *bytes.Buffer
w *bytes.Buffer
rLock *sync.Mutex
wLock *sync.Mutex
}
func pipe() (client *pipeConn, server *pipeConn) {
client = new(pipeConn)
server = new(pipeConn)
c2s := bytes.NewBuffer(nil)
server.r = c2s
client.w = c2s
c2sLock := new(sync.Mutex)
server.rLock = c2sLock
client.wLock = c2sLock
s2c := bytes.NewBuffer(nil)
client.r = s2c
server.w = s2c
s2cLock := new(sync.Mutex)
client.rLock = s2cLock
server.wLock = s2cLock
return
}
func (p *pipeConn) Read(data []byte) (n int, err error) {
p.rLock.Lock()
n, err = p.r.Read(data)
p.rLock.Unlock()
// Suppress bytes.Buffer's EOF on an empty buffer
if err == io.EOF {
err = nil
}
return
}
func (p *pipeConn) Write(data []byte) (n int, err error) {
p.wLock.Lock()
defer p.wLock.Unlock()
return p.w.Write(data)
}
func (p *pipeConn) Close() error {
return nil
}
func (p *pipeConn) LocalAddr() net.Addr { return nil }
func (p *pipeConn) RemoteAddr() net.Addr { return nil }
func (p *pipeConn) SetDeadline(t time.Time) error { return nil }
func (p *pipeConn) SetReadDeadline(t time.Time) error { return nil }
func (p *pipeConn) SetWriteDeadline(t time.Time) error { return nil }
type bufferedConn struct {
buffer bytes.Buffer
w net.Conn
}
func (b *bufferedConn) Write(buf []byte) (n int, err error) {
return b.buffer.Write(buf)
}
func (p *bufferedConn) Read(data []byte) (n int, err error) {
return p.w.Read(data)
}
func (p *bufferedConn) Close() error {
return nil
}
func (p *bufferedConn) LocalAddr() net.Addr { return nil }
func (p *bufferedConn) RemoteAddr() net.Addr { return nil }
func (p *bufferedConn) SetDeadline(t time.Time) error { return nil }
func (p *bufferedConn) SetReadDeadline(t time.Time) error { return nil }
func (p *bufferedConn) SetWriteDeadline(t time.Time) error { return nil }
func (b *bufferedConn) Flush() error {
buf := b.buffer.Bytes()
n, err := b.w.Write(buf)
if err != nil {
return err
}
if n != len(buf) {
return fmt.Errorf("Incomplete flush")
}
b.buffer.Reset()
return nil
}
func newBufferedConn(p net.Conn) *bufferedConn {
return &bufferedConn{bytes.Buffer{}, p}
}
var (
serverName = "example.com"
// Certificate generated by Go
// * CN: "example.com"
// * SANs: "example.com", "www.example.com"
// * Random 2048-bit public key
// * Self-signed
serverCertHex = "308202f7308201dfa00302010202012a300d06092a864886f70d01010b05003016311430" +
"120603550403130b6578616d706c652e636f6d301e170d3135303130313030303030305a" +
"170d3235303130313030303030305a3016311430120603550403130b6578616d706c652e" +
"636f6d30820122300d06092a864886f70d01010105000382010f003082010a0282010100" +
"a558ff3c12b8c4906b7f638878c71963ac95548c5d36975bc575de8775a141408c449c3e" +
"7fe7eddf93329dd894ecb2705b7f79caa06f1477b7bd2d3ff32f43076dd32a7f9f97ed4d" +
"4593db3f28adbea7794c14d8d206832652e93959e2b8d2b4781fadcf55c852641482f7fc" +
"6b9e7e751442a0818c21c9cacc28e7594606ff692392510df57ce26d9c0d052f84e236b9" +
"9e3f81daa98c554607432e3bb26a5fe3fa2b5fc5e5c1fcb1d76050328b92edc80238773d" +
"16547ccc24c0784933d86b3f8d0ee33d90a1b47ecbfbaad12e77155f1b4e84b3e5c4d565" +
"1717832fcbf82886eb6f925435b4ca9f87ec207b4338f03a846fbf0f68ea0e674bf50a21" +
"d9165b690203010001a350304e300e0603551d0f0101ff04040302028430130603551d25" +
"040c300a06082b0601050507030130270603551d110420301e820b6578616d706c652e63" +
"6f6d820f7777772e6578616d706c652e636f6d300d06092a864886f70d01010b05000382" +
"01010024ed08531171df6256ed5668b962ca3740e61c20d014b3aae8ac436b200ee89b50" +
"dc5e5a74859fdf1d0f1136ad16d5fe018dac83d0e4dcfd1b5951e1502e23b7b740621b10" +
"b3376f8b3bc5494c25917b4103d88670390e33c2b089e66326316e4bbd75fd6e5dced78f" +
"79caf97d83b981950ed10449f61d826af4a6eb70e291fccdaa76145f7ba085d27698197f" +
"60e944646640ea18d5439955d91a80d4dfb1e4c12f539da9423a33f479ee19a0fa9c5339" +
"1e0d164633bea4346dc0c8081172d67ee7bca4bd5463cc147d8c062ebb31be6e9c39518c" +
"37f5607a2d6f36114800f6c6f509893fa352a468b30ad874ae56db769f1786567e9c96c1" +
"6b4a4b2a25dda3"
serverCertDER = unhex(serverCertHex)
serverCert, _ = x509.ParseCertificate(serverCertDER)
// The corresponding private key
serverKeyHex = "308204a40201000282010100a558ff3c12b8c4906b7f638878c71963ac95548c5d36975b" +
"c575de8775a141408c449c3e7fe7eddf93329dd894ecb2705b7f79caa06f1477b7bd2d3f" +
"f32f43076dd32a7f9f97ed4d4593db3f28adbea7794c14d8d206832652e93959e2b8d2b4" +
"781fadcf55c852641482f7fc6b9e7e751442a0818c21c9cacc28e7594606ff692392510d" +
"f57ce26d9c0d052f84e236b99e3f81daa98c554607432e3bb26a5fe3fa2b5fc5e5c1fcb1" +
"d76050328b92edc80238773d16547ccc24c0784933d86b3f8d0ee33d90a1b47ecbfbaad1" +
"2e77155f1b4e84b3e5c4d5651717832fcbf82886eb6f925435b4ca9f87ec207b4338f03a" +
"846fbf0f68ea0e674bf50a21d9165b6902030100010282010074f08262ec22bcf21ef4d3" +
"621b79445d981b6cd670be4141e85f3a68b72abac979eab44e078bf25222fab3640fbf6f" +
"5bc37a5e9a8de8c1a301d1cb84e4ead20f18ff35995937cbded08c878d1da9f3a2e2488a" +
"9de5bc3159135e5aef5547bdcd60ff969f825dd0d77322455cc2882f8b822eb4f1aa37e3" +
"4d88228dac37b88f3d9b671ef6b05e2f47b562265e0d09fefb01c190c7fb4b3682231cd8" +
"564c59b6cc788ff742fb040562110b1f849f1535164503b0a402399e2c6cf1c0847dd50a" +
"a917b62fc3215e4eb43d7d07fa9731a51e01f0f7b694dd002b48c0bad04b9ff34e576393" +
"c0a213a12dda4bf43a7dd4ee0563c5e0de2025eb76e049cd771c96330102818100c590bd" +
"8f226cec50c818afb3ebe7ceeacabb107ac73ac159b1eca1a194ea550a0609c432a183e2" +
"fee62dafdc0201426f90cb46f9b2fc7a9bcc2365b58177529cf78c209eb6a3afd1896466" +
"63e8462729e8bf902dc1c42c7d46c1c0c99c632f0560418604b4260a1ed8d165375c674c" +
"806c2a8e202d0b7c5a8b8717309106fb3102818100d640cae7b6adea649a8c11863a3ba8" +
"098025a972d130aecaa4db08154fd0feb8af79bf7009c1ea2a790752464e923b53b41ff4" +
"3ff84e6ddb94bfc5b157e6a21e1fefe11cc082e7e8b31d07eab5e13d7a84cdeeba24d283" +
"699a8fa5138e753e88856a033ab2153c1a8200caac28377a1d09d6318ac2e946cef879a0" +
"5acbd8e5b902818100bfe142ea189257b66190f05d3bba8951aa92a27fccadf90a076f7e" +
"cff354e040fafa534ea565f57a81ce4fa5cb60b3c8ad8570aaa5b6e7d217232dee6a0e9c" +
"f30cce510434f8a79347f0762d84735628330092a48e33dccdd381ec9f233f8574a03723" +
"55c02dcdd885d6618ab23935a8e8e52fe27a3d548a90472533ab376f910281805253fd64" +
"02875bbd22c1d5ee0d2c654a994a5f8d7622cdd7a27763e8c48ddb835e325b44930b478e" +
"e088d6ad9b7d877c87878bd494f696323d3b5f9ce0d907cca99b049686c706941d577776" +
"524365db5172cc5c0cd0339cfdbe5ac164095b691c52fb40afb3872fec6a9f767dd1ab83" +
"c306e26c9eaf02fd7eef4595fe24af4902818100b5a2294d7567283f3f4bf54be7b98785" +
"fc564f24ff2d67215ecdc7955cbf05260f48c9608a59a8ebfbedc62b4d110c1704ade704" +
"cb27a591f69752d1d6ebe21291aec29b301efe47eced0187125f741ce52b3826beac3778" +
"f3560448e91644fd52460f8c3afa1596c01e6cd2c37120d8122c09edf326988b48d98c27" +
"f788eb83"
serverKeyDER = unhex(serverKeyHex)
serverKey, _ = x509.ParsePKCS1PrivateKey(serverKeyDER)
psk = PreSharedKey{
CipherSuite: TLS_AES_128_GCM_SHA256,
IsResumption: false,
Identity: []byte{0, 1, 2, 3},
Key: []byte{4, 5, 6, 7},
}
certificates = []*Certificate{
{
Chain: []*x509.Certificate{serverCert},
PrivateKey: serverKey,
},
}
psks = &PSKMapCache{
serverName: psk,
"00010203": psk,
}
basicConfig = &Config{
ServerName: serverName,
Certificates: certificates,
}
dtlsConfig = &Config{
ServerName: serverName,
Certificates: certificates,
UseDTLS: true,
}
nbConfig = &Config{
ServerName: serverName,
Certificates: certificates,
NonBlocking: true,
}
hrrConfig = &Config{
ServerName: serverName,
Certificates: certificates,
RequireCookie: true,
}
alpnConfig = &Config{
ServerName: serverName,
Certificates: certificates,
NextProtos: []string{"http/1.1", "h2"},
}
clientAuthConfig = &Config{
ServerName: serverName,
RequireClientAuth: true,
Certificates: certificates,
}
pskConfig = &Config{
ServerName: serverName,
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: psks,
AllowEarlyData: true,
}
pskECDHEConfig = &Config{
ServerName: serverName,
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
Certificates: certificates,
PSKs: psks,
}
pskDHEConfig = &Config{
ServerName: serverName,
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
Certificates: certificates,
PSKs: psks,
Groups: []NamedGroup{FFDHE2048},
}
resumptionConfig = &Config{
ServerName: serverName,
Certificates: certificates,
SendSessionTickets: true,
}
ffdhConfig = &Config{
ServerName: serverName,
Certificates: certificates,
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
Groups: []NamedGroup{FFDHE2048},
}
x25519Config = &Config{
ServerName: serverName,
Certificates: certificates,
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
Groups: []NamedGroup{X25519},
}
)
func assertKeySetEquals(t *testing.T, k1, k2 keySet) {
t.Helper()
// Assume cipher is the same
assertByteEquals(t, k1.iv, k2.iv)
assertByteEquals(t, k1.key, k2.key)
}
func computeExporter(t *testing.T, c *Conn, label string, context []byte, length int) []byte {
t.Helper()
res, err := c.ComputeExporter(label, context, length)
assertNotError(t, err, "Could not compute exporter")
return res
}
func TestBasicFlows(t *testing.T) {
tests := []struct {
name string
config *Config
}{
{"basic config", basicConfig},
{"HRR", hrrConfig},
{"ALPN", alpnConfig},
{"FFDH", ffdhConfig},
{"x25519", x25519Config},
}
for _, testcase := range tests {
t.Run(fmt.Sprintf("with %s", testcase.name), func(t *testing.T) {
conf := testcase.config
cConn, sConn := pipe()
client := Client(cConn, conf)
server := Server(sConn, conf)
var clientAlert, serverAlert Alert
done := make(chan bool)
go func(t *testing.T) {
serverAlert = server.Handshake()
assertEquals(t, serverAlert, AlertNoAlert)
done <- true
}(t)
clientAlert = client.Handshake()
assertEquals(t, clientAlert, AlertNoAlert)
<-done
assertDeepEquals(t, client.state.Params, server.state.Params)
assertCipherSuiteParamsEquals(t, client.state.cryptoParams, server.state.cryptoParams)
assertByteEquals(t, client.state.resumptionSecret, server.state.resumptionSecret)
assertByteEquals(t, client.state.clientTrafficSecret, server.state.clientTrafficSecret)
assertByteEquals(t, client.state.serverTrafficSecret, server.state.serverTrafficSecret)
assertByteEquals(t, client.state.exporterSecret, server.state.exporterSecret)
emptyContext := []byte{}
assertByteEquals(t, computeExporter(t, client, "E", emptyContext, 20), computeExporter(t, server, "E", emptyContext, 20))
assertNotByteEquals(t, computeExporter(t, client, "E", emptyContext, 20), computeExporter(t, server, "E", emptyContext, 21))
assertNotByteEquals(t, computeExporter(t, client, "E", emptyContext, 20), computeExporter(t, server, "F", emptyContext, 20))
assertByteEquals(t, computeExporter(t, client, "E", []byte{'A'}, 20), computeExporter(t, server, "E", []byte{'A'}, 20))
assertNotByteEquals(t, computeExporter(t, client, "E", []byte{'A'}, 20), computeExporter(t, server, "E", []byte{'B'}, 20))
})
}
}
func TestClientAuth(t *testing.T) {
cConn, sConn := pipe()
client := Client(cConn, clientAuthConfig)
server := Server(sConn, clientAuthConfig)
var clientAlert, serverAlert Alert
done := make(chan bool)
go func(t *testing.T) {
serverAlert = server.Handshake()
assertEquals(t, serverAlert, AlertNoAlert)
done <- true
}(t)
clientAlert = client.Handshake()
assertEquals(t, clientAlert, AlertNoAlert)
<-done
assertDeepEquals(t, client.state.Params, server.state.Params)
assertCipherSuiteParamsEquals(t, client.state.cryptoParams, server.state.cryptoParams)
assertByteEquals(t, client.state.resumptionSecret, server.state.resumptionSecret)
assertByteEquals(t, client.state.clientTrafficSecret, server.state.clientTrafficSecret)
assertByteEquals(t, client.state.serverTrafficSecret, server.state.serverTrafficSecret)
assert(t, client.state.Params.UsingClientAuth, "Session did not negotiate client auth")
}
func TestPSKFlows(t *testing.T) {
for _, conf := range []*Config{pskConfig, pskECDHEConfig, pskDHEConfig} {
cConn, sConn := pipe()
client := Client(cConn, conf)
server := Server(sConn, conf)
var clientAlert, serverAlert Alert
done := make(chan bool)
go func(t *testing.T) {
serverAlert = server.Handshake()
assertEquals(t, serverAlert, AlertNoAlert)
done <- true
}(t)
clientAlert = client.Handshake()
assertEquals(t, clientAlert, AlertNoAlert)
<-done
assertDeepEquals(t, client.state.Params, server.state.Params)
assertCipherSuiteParamsEquals(t, client.state.cryptoParams, server.state.cryptoParams)
assertByteEquals(t, client.state.resumptionSecret, server.state.resumptionSecret)
assertByteEquals(t, client.state.clientTrafficSecret, server.state.clientTrafficSecret)
assertByteEquals(t, client.state.serverTrafficSecret, server.state.serverTrafficSecret)
assert(t, client.state.Params.UsingPSK, "Session did not use the provided PSK")
}
}
func TestNonBlockingReadBeforeConnected(t *testing.T) {
conn := Client(&bufferedConn{}, &Config{NonBlocking: true})
_, err := conn.Read(make([]byte, 10))
assertEquals(t, err.Error(), "Read called before the handshake completed")
}
func TestResumption(t *testing.T) {
// Phase 1: Verify that the session ticket gets sent and stored
clientConfig := resumptionConfig.Clone()
serverConfig := resumptionConfig.Clone()
cConn1, sConn1 := pipe()
client1 := Client(cConn1, clientConfig)
server1 := Server(sConn1, serverConfig)
var clientAlert, serverAlert Alert
done := make(chan bool)
go func(t *testing.T) {
serverAlert = server1.Handshake()
assertEquals(t, serverAlert, AlertNoAlert)
server1.Write([]byte{'a'})
done <- true
}(t)
clientAlert = client1.Handshake()
assertEquals(t, clientAlert, AlertNoAlert)
tmpBuf := make([]byte, 1)
n, err := client1.Read(tmpBuf)
assertNil(t, err, "Couldn't read one byte")
assertEquals(t, 1, n)
<-done
assertDeepEquals(t, client1.state.Params, server1.state.Params)
assertCipherSuiteParamsEquals(t, client1.state.cryptoParams, server1.state.cryptoParams)
assertByteEquals(t, client1.state.resumptionSecret, server1.state.resumptionSecret)
assertByteEquals(t, client1.state.clientTrafficSecret, server1.state.clientTrafficSecret)
assertByteEquals(t, client1.state.serverTrafficSecret, server1.state.serverTrafficSecret)
assertEquals(t, clientConfig.PSKs.Size(), 1)
assertEquals(t, serverConfig.PSKs.Size(), 1)
clientCache := clientConfig.PSKs.(*PSKMapCache)
serverCache := serverConfig.PSKs.(*PSKMapCache)
var serverPSK PreSharedKey
for _, key := range *serverCache {
serverPSK = key
}
var clientPSK PreSharedKey
for _, key := range *clientCache {
clientPSK = key
}
// Ensure that the PSKs are the same, except with regard to the
// receivedAt/expiresAt times, which might differ by a little.
assertEquals(t, clientPSK.CipherSuite, serverPSK.CipherSuite)
assertEquals(t, clientPSK.IsResumption, serverPSK.IsResumption)
assertByteEquals(t, clientPSK.Identity, serverPSK.Identity)
assertByteEquals(t, clientPSK.Key, serverPSK.Key)
assertEquals(t, clientPSK.NextProto, serverPSK.NextProto)
assertEquals(t, clientPSK.TicketAgeAdd, serverPSK.TicketAgeAdd)
receivedDelta := clientPSK.ReceivedAt.Sub(serverPSK.ReceivedAt) / time.Millisecond
expiresDelta := clientPSK.ExpiresAt.Sub(serverPSK.ExpiresAt) / time.Millisecond
assert(t, receivedDelta < 10 && receivedDelta > -10, "Unequal received times")
assert(t, expiresDelta < 10 && expiresDelta > -10, "Unequal received times")
// Phase 2: Verify that the session ticket gets used as a PSK
cConn2, sConn2 := pipe()
client2 := Client(cConn2, clientConfig)
server2 := Server(sConn2, serverConfig)
go func(t *testing.T) {
serverAlert = server2.Handshake()
assertEquals(t, serverAlert, AlertNoAlert)
done <- true
}(t)
clientAlert = client2.Handshake()
assertEquals(t, clientAlert, AlertNoAlert)
client2.Read(nil)
<-done
assertDeepEquals(t, client2.state.Params, server2.state.Params)
assertCipherSuiteParamsEquals(t, client2.state.cryptoParams, server2.state.cryptoParams)
assertByteEquals(t, client2.state.resumptionSecret, server2.state.resumptionSecret)
assertByteEquals(t, client2.state.clientTrafficSecret, server2.state.clientTrafficSecret)
assertByteEquals(t, client2.state.serverTrafficSecret, server2.state.serverTrafficSecret)
assert(t, client2.state.Params.UsingPSK, "Session did not use the provided PSK")
}
func Test0xRTT(t *testing.T) {
conf := pskConfig
cConn, sConn := pipe()
client := Client(cConn, conf)
client.EarlyData = []byte("hello 0xRTT world!")
server := Server(sConn, conf)
done := make(chan bool)
go func(t *testing.T) {
alert := server.Handshake()
assertEquals(t, alert, AlertNoAlert)
done <- true
}(t)
alert := client.Handshake()
assertEquals(t, alert, AlertNoAlert)
<-done
assertDeepEquals(t, client.state.Params, server.state.Params)
assertCipherSuiteParamsEquals(t, client.state.cryptoParams, server.state.cryptoParams)
assertByteEquals(t, client.state.resumptionSecret, server.state.resumptionSecret)
assertByteEquals(t, client.state.clientTrafficSecret, server.state.clientTrafficSecret)
assertByteEquals(t, client.state.serverTrafficSecret, server.state.serverTrafficSecret)
assert(t, client.state.Params.UsingEarlyData, "Session did not negotiate early data")
assertByteEquals(t, client.EarlyData, server.EarlyData)
}
func Test0xRTTFailure(t *testing.T) {
// Client thinks it has a PSK
clientConfig := &Config{
ServerName: serverName,
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: psks,
}
// Server doesn't
serverConfig := &Config{
ServerName: serverName,
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
}
cConn, sConn := pipe()
client := Client(cConn, clientConfig)
client.EarlyData = []byte("hello 0xRTT world!")
server := Server(sConn, serverConfig)
done := make(chan bool)
go func(t *testing.T) {
alert := server.Handshake()
assertEquals(t, alert, AlertNoAlert)
done <- true
}(t)
alert := client.Handshake()
assertEquals(t, alert, AlertNoAlert)
<-done
}
func TestKeyUpdate(t *testing.T) {
cConn, sConn := pipe()
conf := basicConfig
client := Client(cConn, conf)
server := Server(sConn, conf)
oneBuf := []byte{'a'}
c2s := make(chan bool)
s2c := make(chan bool)
go func(t *testing.T) {
alert := server.Handshake()
assertEquals(t, alert, AlertNoAlert)
// Send a single byte so that the client can consume NST.
server.Write(oneBuf)
s2c <- true
// Test server-initiated KeyUpdate
<-c2s
err := server.SendKeyUpdate(false)
assertNotError(t, err, "Key update send failed")
// Write a single byte so that the client can read it
// after KeyUpdate.
server.Write(oneBuf)
s2c <- true
// Null read to trigger key update
<-c2s
server.Read(oneBuf)
s2c <- true
// Null read to trigger key update and KeyUpdate response
<-c2s
server.Read(oneBuf)
server.Write(oneBuf)
s2c <- true
}(t)
alert := client.Handshake()
assertEquals(t, alert, AlertNoAlert)
// Read NST.
client.Read(oneBuf)
<-s2c
clientState0 := client.state
serverState0 := server.state
assertByteEquals(t, clientState0.serverTrafficSecret, serverState0.serverTrafficSecret)
assertByteEquals(t, clientState0.clientTrafficSecret, serverState0.clientTrafficSecret)
// Null read to trigger key update
c2s <- true
<-s2c
client.Read(oneBuf)
logf(logTypeHandshake, "Client read key update")
clientState1 := client.state
serverState1 := server.state
assertByteEquals(t, clientState1.serverTrafficSecret, serverState1.serverTrafficSecret)
assertByteEquals(t, clientState1.clientTrafficSecret, serverState1.clientTrafficSecret)
assertNotByteEquals(t, serverState0.serverTrafficSecret, serverState1.serverTrafficSecret)
assertByteEquals(t, clientState0.clientTrafficSecret, clientState1.clientTrafficSecret)
// Test client-initiated KeyUpdate
client.SendKeyUpdate(false)
client.Write(oneBuf)
c2s <- true
<-s2c
clientState2 := client.state
serverState2 := server.state
assertByteEquals(t, clientState2.serverTrafficSecret, serverState2.serverTrafficSecret)
assertByteEquals(t, clientState2.clientTrafficSecret, serverState2.clientTrafficSecret)
assertByteEquals(t, serverState1.serverTrafficSecret, serverState2.serverTrafficSecret)
assertNotByteEquals(t, clientState1.clientTrafficSecret, clientState2.clientTrafficSecret)
// Test client-initiated with keyUpdateRequested
client.SendKeyUpdate(true)
client.Write(oneBuf)
c2s <- true
<-s2c
client.Read(oneBuf)
clientState3 := client.state
serverState3 := server.state
assertByteEquals(t, clientState3.serverTrafficSecret, serverState3.serverTrafficSecret)
assertByteEquals(t, clientState3.clientTrafficSecret, serverState3.clientTrafficSecret)
assertNotByteEquals(t, serverState2.serverTrafficSecret, serverState3.serverTrafficSecret)
assertNotByteEquals(t, clientState2.clientTrafficSecret, clientState3.clientTrafficSecret)
}
func TestNonblockingHandshakeAndDataFlow(t *testing.T) {
cConn, sConn := pipe()
// Wrap these in a buffer so we can simulate blocking
cbConn := newBufferedConn(cConn)
sbConn := newBufferedConn(sConn)
client := Client(cbConn, nbConfig)
server := Server(sbConn, nbConfig)
var clientAlert, serverAlert Alert
// Send ClientHello
clientAlert = client.Handshake()
assertEquals(t, clientAlert, AlertNoAlert)
assertEquals(t, client.GetHsState(), StateClientWaitSH)
serverAlert = server.Handshake()
assertEquals(t, serverAlert, AlertWouldBlock)
assertEquals(t, server.GetHsState(), StateServerStart)
// Release ClientHello
cbConn.Flush()
// Process ClientHello, send server first flight.
states := []State{StateServerNegotiated, StateServerWaitFlight2, StateServerWaitFinished}
for _, state := range states {
serverAlert = server.Handshake()
assertEquals(t, serverAlert, AlertNoAlert)
assertEquals(t, server.GetHsState(), state)
}
serverAlert = server.Handshake()
assertEquals(t, serverAlert, AlertWouldBlock)
clientAlert = client.Handshake()
assertEquals(t, clientAlert, AlertWouldBlock)
// Release server first flight
sbConn.Flush()
states = []State{StateClientWaitEE, StateClientWaitCertCR, StateClientWaitCV, StateClientWaitFinished, StateClientConnected}
for _, state := range states {
clientAlert = client.Handshake()
assertEquals(t, client.GetHsState(), state)
assertEquals(t, clientAlert, AlertNoAlert)
}
serverAlert = server.Handshake()
assertEquals(t, serverAlert, AlertWouldBlock)
assertEquals(t, server.GetHsState(), StateServerWaitFinished)
// Release client's second flight.
cbConn.Flush()
serverAlert = server.Handshake()
assertEquals(t, serverAlert, AlertNoAlert)
assertEquals(t, server.GetHsState(), StateServerConnected)
assertDeepEquals(t, client.state.Params, server.state.Params)
assertCipherSuiteParamsEquals(t, client.state.cryptoParams, server.state.cryptoParams)
assertByteEquals(t, client.state.resumptionSecret, server.state.resumptionSecret)
assertByteEquals(t, client.state.clientTrafficSecret, server.state.clientTrafficSecret)
assertByteEquals(t, client.state.serverTrafficSecret, server.state.serverTrafficSecret)
buf := []byte{'a', 'b', 'c'}
n, err := client.Write(buf)
assertNotError(t, err, "Couldn't write")
assertEquals(t, n, len(buf))
// read := make([]byte, 5)
// n, err = server.Read(buf)
}
type testExtensionHandler struct {
sent map[HandshakeType]bool
rcvd map[HandshakeType]bool
}
func newTestExtensionHandler() *testExtensionHandler {
return &testExtensionHandler{
make(map[HandshakeType]bool),
make(map[HandshakeType]bool),
}
}
type testExtensionBody struct {
t HandshakeType
}
const (
testExtensionType = ExtensionType(240) // Dummy type.
)
func (t testExtensionBody) Type() ExtensionType {
return testExtensionType
}
func (t testExtensionBody) Marshal() ([]byte, error) {
return []byte{byte(t.t)}, nil
}
func (t *testExtensionBody) Unmarshal(data []byte) (int, error) {
if len(data) != 1 {
return 0, fmt.Errorf("Illegal length")
}
t.t = HandshakeType(data[0])
return 1, nil
}
func (t *testExtensionHandler) Send(hs HandshakeType, el *ExtensionList) error {
t.sent[hs] = true
el.Add(&testExtensionBody{t: hs})
return nil
}
func (t *testExtensionHandler) Receive(hs HandshakeType, el *ExtensionList) error {
var body testExtensionBody
ok, _ := el.Find(&body)
if !ok {
return fmt.Errorf("Couldn't find extension")
}
if hs != body.t {
return fmt.Errorf("Does not match hs type")
}
t.rcvd[hs] = true
return nil
}
func (h *testExtensionHandler) Check(t *testing.T, hs []HandshakeType) {
assertEquals(t, len(hs), len(h.sent))
assertEquals(t, len(hs), len(h.rcvd))
for _, ht := range hs {
v, ok := h.sent[ht]
assert(t, ok, "Cannot find handshake type in sent")
assert(t, v, "Value wasn't true in sent")
v, ok = h.rcvd[ht]
assert(t, ok, "Cannot find handshake type in rcvd")
assert(t, v, "Value wasn't true in rcvd")
}
}
func TestExternalExtensions(t *testing.T) {
cConn, sConn := pipe()
var handler = newTestExtensionHandler()
client := Client(cConn, basicConfig)
client.SetExtensionHandler(handler)
server := Server(sConn, basicConfig)
server.SetExtensionHandler(handler)
var clientAlert, serverAlert Alert
done := make(chan bool)
go func(t *testing.T) {
serverAlert = server.Handshake()
assertEquals(t, serverAlert, AlertNoAlert)
done <- true
}(t)
clientAlert = client.Handshake()
assertEquals(t, clientAlert, AlertNoAlert)
<-done
assertDeepEquals(t, client.state.Params, server.state.Params)
assertCipherSuiteParamsEquals(t, client.state.cryptoParams, server.state.cryptoParams)
assertByteEquals(t, client.state.resumptionSecret, server.state.resumptionSecret)
assertByteEquals(t, client.state.clientTrafficSecret, server.state.clientTrafficSecret)
assertByteEquals(t, client.state.serverTrafficSecret, server.state.serverTrafficSecret)
handler.Check(t, []HandshakeType{
HandshakeTypeClientHello,
HandshakeTypeServerHello,
HandshakeTypeEncryptedExtensions,
})
}
func TestDTLS(t *testing.T) {
cConn, sConn := pipe()
var handler = newTestExtensionHandler()
client := Client(cConn, dtlsConfig)
client.SetExtensionHandler(handler)
server := Server(sConn, dtlsConfig)
server.SetExtensionHandler(handler)
var clientAlert, serverAlert Alert
done := make(chan bool)
go func(t *testing.T) {
serverAlert = server.Handshake()
assertEquals(t, serverAlert, AlertNoAlert)
done <- true
}(t)
clientAlert = client.Handshake()
assertEquals(t, clientAlert, AlertNoAlert)
<-done
assertDeepEquals(t, client.state.Params, server.state.Params)
assertCipherSuiteParamsEquals(t, client.state.cryptoParams, server.state.cryptoParams)
assertByteEquals(t, client.state.resumptionSecret, server.state.resumptionSecret)
assertByteEquals(t, client.state.clientTrafficSecret, server.state.clientTrafficSecret)
assertByteEquals(t, client.state.serverTrafficSecret, server.state.serverTrafficSecret)
handler.Check(t, []HandshakeType{
HandshakeTypeClientHello,
HandshakeTypeServerHello,
HandshakeTypeEncryptedExtensions,
})
}

86
vendor/github.com/bifurcation/mint/cookie-protector.go generated vendored Normal file
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@ -0,0 +1,86 @@
package mint
import (
"crypto/aes"
"crypto/cipher"
"crypto/rand"
"crypto/sha256"
"fmt"
"io"
"golang.org/x/crypto/hkdf"
)
// CookieProtector is used to create and verify a cookie
type CookieProtector interface {
// NewToken creates a new token
NewToken([]byte) ([]byte, error)
// DecodeToken decodes a token
DecodeToken([]byte) ([]byte, error)
}
const cookieSecretSize = 32
const cookieNonceSize = 32
// The DefaultCookieProtector is a simple implementation for the CookieProtector.
type DefaultCookieProtector struct {
secret []byte
}
var _ CookieProtector = &DefaultCookieProtector{}
// NewDefaultCookieProtector creates a source for source address tokens
func NewDefaultCookieProtector() (CookieProtector, error) {
secret := make([]byte, cookieSecretSize)
if _, err := rand.Read(secret); err != nil {
return nil, err
}
return &DefaultCookieProtector{secret: secret}, nil
}
// NewToken encodes data into a new token.
func (s *DefaultCookieProtector) NewToken(data []byte) ([]byte, error) {
nonce := make([]byte, cookieNonceSize)
if _, err := rand.Read(nonce); err != nil {
return nil, err
}
aead, aeadNonce, err := s.createAEAD(nonce)
if err != nil {
return nil, err
}
return append(nonce, aead.Seal(nil, aeadNonce, data, nil)...), nil
}
// DecodeToken decodes a token.
func (s *DefaultCookieProtector) DecodeToken(p []byte) ([]byte, error) {
if len(p) < cookieNonceSize {
return nil, fmt.Errorf("Token too short: %d", len(p))
}
nonce := p[:cookieNonceSize]
aead, aeadNonce, err := s.createAEAD(nonce)
if err != nil {
return nil, err
}
return aead.Open(nil, aeadNonce, p[cookieNonceSize:], nil)
}
func (s *DefaultCookieProtector) createAEAD(nonce []byte) (cipher.AEAD, []byte, error) {
h := hkdf.New(sha256.New, s.secret, nonce, []byte("mint cookie source"))
key := make([]byte, 32) // use a 32 byte key, in order to select AES-256
if _, err := io.ReadFull(h, key); err != nil {
return nil, nil, err
}
aeadNonce := make([]byte, 12)
if _, err := io.ReadFull(h, aeadNonce); err != nil {
return nil, nil, err
}
c, err := aes.NewCipher(key)
if err != nil {
return nil, nil, err
}
aead, err := cipher.NewGCM(c)
if err != nil {
return nil, nil, err
}
return aead, aeadNonce, nil
}

View File

@ -0,0 +1,33 @@
package mint
import (
"bytes"
"testing"
)
func TestCookieProtector(t *testing.T) {
cs, err := NewDefaultCookieProtector()
assertNotError(t, err, "creating the cookie source failed")
t.Run("handling valid tokens", func(t *testing.T) {
cookie := []byte("foobar")
token, err := cs.NewToken(cookie)
assertNotError(t, err, "creating new token failed")
decoded, err := cs.DecodeToken(token)
assertNotError(t, err, "decoding the token failed")
assertDeepEquals(t, cookie, decoded)
})
t.Run("handling invalid tokens", func(t *testing.T) {
_, err := cs.DecodeToken([]byte("too short"))
assertError(t, err, "it should reject too short tokens")
_, err = cs.DecodeToken(append(bytes.Repeat([]byte{0}, cookieNonceSize), []byte("invalid token")...))
assertError(t, err, "it should reject invalid tokens")
// create a valid and modify the nonce
token, err := cs.NewToken([]byte("foobar"))
assertNotError(t, err, "creating new token failed")
token[0]++
_, err = cs.DecodeToken(token)
assertError(t, err, "it should reject a token with the wrong nonce")
})
}

654
vendor/github.com/bifurcation/mint/crypto.go generated vendored Normal file
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@ -0,0 +1,654 @@
package mint
import (
"bytes"
"crypto"
"crypto/aes"
"crypto/cipher"
"crypto/ecdsa"
"crypto/elliptic"
"crypto/hmac"
"crypto/rand"
"crypto/rsa"
"crypto/x509"
"crypto/x509/pkix"
"encoding/asn1"
"fmt"
"math/big"
"time"
"golang.org/x/crypto/curve25519"
// Blank includes to ensure hash support
_ "crypto/sha1"
_ "crypto/sha256"
_ "crypto/sha512"
)
var prng = rand.Reader
type aeadFactory func(key []byte) (cipher.AEAD, error)
type CipherSuiteParams struct {
Suite CipherSuite
Cipher aeadFactory // Cipher factory
Hash crypto.Hash // Hash function
KeyLen int // Key length in octets
IvLen int // IV length in octets
}
type signatureAlgorithm uint8
const (
signatureAlgorithmUnknown = iota
signatureAlgorithmRSA_PKCS1
signatureAlgorithmRSA_PSS
signatureAlgorithmECDSA
)
var (
hashMap = map[SignatureScheme]crypto.Hash{
RSA_PKCS1_SHA1: crypto.SHA1,
RSA_PKCS1_SHA256: crypto.SHA256,
RSA_PKCS1_SHA384: crypto.SHA384,
RSA_PKCS1_SHA512: crypto.SHA512,
ECDSA_P256_SHA256: crypto.SHA256,
ECDSA_P384_SHA384: crypto.SHA384,
ECDSA_P521_SHA512: crypto.SHA512,
RSA_PSS_SHA256: crypto.SHA256,
RSA_PSS_SHA384: crypto.SHA384,
RSA_PSS_SHA512: crypto.SHA512,
}
sigMap = map[SignatureScheme]signatureAlgorithm{
RSA_PKCS1_SHA1: signatureAlgorithmRSA_PKCS1,
RSA_PKCS1_SHA256: signatureAlgorithmRSA_PKCS1,
RSA_PKCS1_SHA384: signatureAlgorithmRSA_PKCS1,
RSA_PKCS1_SHA512: signatureAlgorithmRSA_PKCS1,
ECDSA_P256_SHA256: signatureAlgorithmECDSA,
ECDSA_P384_SHA384: signatureAlgorithmECDSA,
ECDSA_P521_SHA512: signatureAlgorithmECDSA,
RSA_PSS_SHA256: signatureAlgorithmRSA_PSS,
RSA_PSS_SHA384: signatureAlgorithmRSA_PSS,
RSA_PSS_SHA512: signatureAlgorithmRSA_PSS,
}
curveMap = map[SignatureScheme]NamedGroup{
ECDSA_P256_SHA256: P256,
ECDSA_P384_SHA384: P384,
ECDSA_P521_SHA512: P521,
}
newAESGCM = func(key []byte) (cipher.AEAD, error) {
block, err := aes.NewCipher(key)
if err != nil {
return nil, err
}
// TLS always uses 12-byte nonces
return cipher.NewGCMWithNonceSize(block, 12)
}
cipherSuiteMap = map[CipherSuite]CipherSuiteParams{
TLS_AES_128_GCM_SHA256: {
Suite: TLS_AES_128_GCM_SHA256,
Cipher: newAESGCM,
Hash: crypto.SHA256,
KeyLen: 16,
IvLen: 12,
},
TLS_AES_256_GCM_SHA384: {
Suite: TLS_AES_256_GCM_SHA384,
Cipher: newAESGCM,
Hash: crypto.SHA384,
KeyLen: 32,
IvLen: 12,
},
}
x509AlgMap = map[SignatureScheme]x509.SignatureAlgorithm{
RSA_PKCS1_SHA1: x509.SHA1WithRSA,
RSA_PKCS1_SHA256: x509.SHA256WithRSA,
RSA_PKCS1_SHA384: x509.SHA384WithRSA,
RSA_PKCS1_SHA512: x509.SHA512WithRSA,
ECDSA_P256_SHA256: x509.ECDSAWithSHA256,
ECDSA_P384_SHA384: x509.ECDSAWithSHA384,
ECDSA_P521_SHA512: x509.ECDSAWithSHA512,
}
defaultRSAKeySize = 2048
)
func curveFromNamedGroup(group NamedGroup) (crv elliptic.Curve) {
switch group {
case P256:
crv = elliptic.P256()
case P384:
crv = elliptic.P384()
case P521:
crv = elliptic.P521()
}
return
}
func namedGroupFromECDSAKey(key *ecdsa.PublicKey) (g NamedGroup) {
switch key.Curve.Params().Name {
case elliptic.P256().Params().Name:
g = P256
case elliptic.P384().Params().Name:
g = P384
case elliptic.P521().Params().Name:
g = P521
}
return
}
func keyExchangeSizeFromNamedGroup(group NamedGroup) (size int) {
size = 0
switch group {
case X25519:
size = 32
case P256:
size = 65
case P384:
size = 97
case P521:
size = 133
case FFDHE2048:
size = 256
case FFDHE3072:
size = 384
case FFDHE4096:
size = 512
case FFDHE6144:
size = 768
case FFDHE8192:
size = 1024
}
return
}
func primeFromNamedGroup(group NamedGroup) (p *big.Int) {
switch group {
case FFDHE2048:
p = finiteFieldPrime2048
case FFDHE3072:
p = finiteFieldPrime3072
case FFDHE4096:
p = finiteFieldPrime4096
case FFDHE6144:
p = finiteFieldPrime6144
case FFDHE8192:
p = finiteFieldPrime8192
}
return
}
func schemeValidForKey(alg SignatureScheme, key crypto.Signer) bool {
sigType := sigMap[alg]
switch key.(type) {
case *rsa.PrivateKey:
return sigType == signatureAlgorithmRSA_PKCS1 || sigType == signatureAlgorithmRSA_PSS
case *ecdsa.PrivateKey:
return sigType == signatureAlgorithmECDSA
default:
return false
}
}
func ffdheKeyShareFromPrime(p *big.Int) (priv, pub *big.Int, err error) {
primeLen := len(p.Bytes())
for {
// g = 2 for all ffdhe groups
priv, err = rand.Int(prng, p)
if err != nil {
return
}
pub = big.NewInt(0)
pub.Exp(big.NewInt(2), priv, p)
if len(pub.Bytes()) == primeLen {
return
}
}
}
func newKeyShare(group NamedGroup) (pub []byte, priv []byte, err error) {
switch group {
case P256, P384, P521:
var x, y *big.Int
crv := curveFromNamedGroup(group)
priv, x, y, err = elliptic.GenerateKey(crv, prng)
if err != nil {
return
}
pub = elliptic.Marshal(crv, x, y)
return
case FFDHE2048, FFDHE3072, FFDHE4096, FFDHE6144, FFDHE8192:
p := primeFromNamedGroup(group)
x, X, err2 := ffdheKeyShareFromPrime(p)
if err2 != nil {
err = err2
return
}
priv = x.Bytes()
pubBytes := X.Bytes()
numBytes := keyExchangeSizeFromNamedGroup(group)
pub = make([]byte, numBytes)
copy(pub[numBytes-len(pubBytes):], pubBytes)
return
case X25519:
var private, public [32]byte
_, err = prng.Read(private[:])
if err != nil {
return
}
curve25519.ScalarBaseMult(&public, &private)
priv = private[:]
pub = public[:]
return
default:
return nil, nil, fmt.Errorf("tls.newkeyshare: Unsupported group %v", group)
}
}
func keyAgreement(group NamedGroup, pub []byte, priv []byte) ([]byte, error) {
switch group {
case P256, P384, P521:
if len(pub) != keyExchangeSizeFromNamedGroup(group) {
return nil, fmt.Errorf("tls.keyagreement: Wrong public key size")
}
crv := curveFromNamedGroup(group)
pubX, pubY := elliptic.Unmarshal(crv, pub)
x, _ := crv.Params().ScalarMult(pubX, pubY, priv)
xBytes := x.Bytes()
numBytes := len(crv.Params().P.Bytes())
ret := make([]byte, numBytes)
copy(ret[numBytes-len(xBytes):], xBytes)
return ret, nil
case FFDHE2048, FFDHE3072, FFDHE4096, FFDHE6144, FFDHE8192:
numBytes := keyExchangeSizeFromNamedGroup(group)
if len(pub) != numBytes {
return nil, fmt.Errorf("tls.keyagreement: Wrong public key size")
}
p := primeFromNamedGroup(group)
x := big.NewInt(0).SetBytes(priv)
Y := big.NewInt(0).SetBytes(pub)
ZBytes := big.NewInt(0).Exp(Y, x, p).Bytes()
ret := make([]byte, numBytes)
copy(ret[numBytes-len(ZBytes):], ZBytes)
return ret, nil
case X25519:
if len(pub) != keyExchangeSizeFromNamedGroup(group) {
return nil, fmt.Errorf("tls.keyagreement: Wrong public key size")
}
var private, public, ret [32]byte
copy(private[:], priv)
copy(public[:], pub)
curve25519.ScalarMult(&ret, &private, &public)
return ret[:], nil
default:
return nil, fmt.Errorf("tls.keyagreement: Unsupported group %v", group)
}
}
func newSigningKey(sig SignatureScheme) (crypto.Signer, error) {
switch sig {
case RSA_PKCS1_SHA1, RSA_PKCS1_SHA256,
RSA_PKCS1_SHA384, RSA_PKCS1_SHA512,
RSA_PSS_SHA256, RSA_PSS_SHA384,
RSA_PSS_SHA512:
return rsa.GenerateKey(prng, defaultRSAKeySize)
case ECDSA_P256_SHA256:
return ecdsa.GenerateKey(elliptic.P256(), prng)
case ECDSA_P384_SHA384:
return ecdsa.GenerateKey(elliptic.P384(), prng)
case ECDSA_P521_SHA512:
return ecdsa.GenerateKey(elliptic.P521(), prng)
default:
return nil, fmt.Errorf("tls.newsigningkey: Unsupported signature algorithm [%04x]", sig)
}
}
func newSelfSigned(name string, alg SignatureScheme, priv crypto.Signer) (*x509.Certificate, error) {
sigAlg, ok := x509AlgMap[alg]
if !ok {
return nil, fmt.Errorf("tls.selfsigned: Unknown signature algorithm [%04x]", alg)
}
if len(name) == 0 {
return nil, fmt.Errorf("tls.selfsigned: No name provided")
}
serial, err := rand.Int(rand.Reader, big.NewInt(0xA0A0A0A0))
if err != nil {
return nil, err
}
template := &x509.Certificate{
SerialNumber: serial,
NotBefore: time.Now(),
NotAfter: time.Now().AddDate(0, 0, 1),
SignatureAlgorithm: sigAlg,
Subject: pkix.Name{CommonName: name},
DNSNames: []string{name},
KeyUsage: x509.KeyUsageDigitalSignature | x509.KeyUsageKeyAgreement | x509.KeyUsageKeyEncipherment,
ExtKeyUsage: []x509.ExtKeyUsage{x509.ExtKeyUsageServerAuth},
}
der, err := x509.CreateCertificate(prng, template, template, priv.Public(), priv)
if err != nil {
return nil, err
}
// It is safe to ignore the error here because we're parsing known-good data
cert, _ := x509.ParseCertificate(der)
return cert, nil
}
// XXX(rlb): Copied from crypto/x509
type ecdsaSignature struct {
R, S *big.Int
}
func sign(alg SignatureScheme, privateKey crypto.Signer, sigInput []byte) ([]byte, error) {
var opts crypto.SignerOpts
hash := hashMap[alg]
if hash == crypto.SHA1 {
return nil, fmt.Errorf("tls.crypt.sign: Use of SHA-1 is forbidden")
}
sigType := sigMap[alg]
var realInput []byte
switch key := privateKey.(type) {
case *rsa.PrivateKey:
switch {
case allowPKCS1 && sigType == signatureAlgorithmRSA_PKCS1:
logf(logTypeCrypto, "signing with PKCS1, hashSize=[%d]", hash.Size())
opts = hash
case !allowPKCS1 && sigType == signatureAlgorithmRSA_PKCS1:
fallthrough
case sigType == signatureAlgorithmRSA_PSS:
logf(logTypeCrypto, "signing with PSS, hashSize=[%d]", hash.Size())
opts = &rsa.PSSOptions{SaltLength: hash.Size(), Hash: hash}
default:
return nil, fmt.Errorf("tls.crypto.sign: Unsupported algorithm for RSA key")
}
h := hash.New()
h.Write(sigInput)
realInput = h.Sum(nil)
case *ecdsa.PrivateKey:
if sigType != signatureAlgorithmECDSA {
return nil, fmt.Errorf("tls.crypto.sign: Unsupported algorithm for ECDSA key")
}
algGroup := curveMap[alg]
keyGroup := namedGroupFromECDSAKey(key.Public().(*ecdsa.PublicKey))
if algGroup != keyGroup {
return nil, fmt.Errorf("tls.crypto.sign: Unsupported hash/curve combination")
}
h := hash.New()
h.Write(sigInput)
realInput = h.Sum(nil)
default:
return nil, fmt.Errorf("tls.crypto.sign: Unsupported private key type")
}
sig, err := privateKey.Sign(prng, realInput, opts)
logf(logTypeCrypto, "signature: %x", sig)
return sig, err
}
func verify(alg SignatureScheme, publicKey crypto.PublicKey, sigInput []byte, sig []byte) error {
hash := hashMap[alg]
if hash == crypto.SHA1 {
return fmt.Errorf("tls.crypt.sign: Use of SHA-1 is forbidden")
}
sigType := sigMap[alg]
switch pub := publicKey.(type) {
case *rsa.PublicKey:
switch {
case allowPKCS1 && sigType == signatureAlgorithmRSA_PKCS1:
logf(logTypeCrypto, "verifying with PKCS1, hashSize=[%d]", hash.Size())
h := hash.New()
h.Write(sigInput)
realInput := h.Sum(nil)
return rsa.VerifyPKCS1v15(pub, hash, realInput, sig)
case !allowPKCS1 && sigType == signatureAlgorithmRSA_PKCS1:
fallthrough
case sigType == signatureAlgorithmRSA_PSS:
logf(logTypeCrypto, "verifying with PSS, hashSize=[%d]", hash.Size())
opts := &rsa.PSSOptions{SaltLength: hash.Size(), Hash: hash}
h := hash.New()
h.Write(sigInput)
realInput := h.Sum(nil)
return rsa.VerifyPSS(pub, hash, realInput, sig, opts)
default:
return fmt.Errorf("tls.verify: Unsupported algorithm for RSA key")
}
case *ecdsa.PublicKey:
if sigType != signatureAlgorithmECDSA {
return fmt.Errorf("tls.verify: Unsupported algorithm for ECDSA key")
}
if curveMap[alg] != namedGroupFromECDSAKey(pub) {
return fmt.Errorf("tls.verify: Unsupported curve for ECDSA key")
}
ecdsaSig := new(ecdsaSignature)
if rest, err := asn1.Unmarshal(sig, ecdsaSig); err != nil {
return err
} else if len(rest) != 0 {
return fmt.Errorf("tls.verify: trailing data after ECDSA signature")
}
if ecdsaSig.R.Sign() <= 0 || ecdsaSig.S.Sign() <= 0 {
return fmt.Errorf("tls.verify: ECDSA signature contained zero or negative values")
}
h := hash.New()
h.Write(sigInput)
realInput := h.Sum(nil)
if !ecdsa.Verify(pub, realInput, ecdsaSig.R, ecdsaSig.S) {
return fmt.Errorf("tls.verify: ECDSA verification failure")
}
return nil
default:
return fmt.Errorf("tls.verify: Unsupported key type")
}
}
// 0
// |
// v
// PSK -> HKDF-Extract = Early Secret
// |
// +-----> Derive-Secret(.,
// | "ext binder" |
// | "res binder",
// | "")
// | = binder_key
// |
// +-----> Derive-Secret(., "c e traffic",
// | ClientHello)
// | = client_early_traffic_secret
// |
// +-----> Derive-Secret(., "e exp master",
// | ClientHello)
// | = early_exporter_master_secret
// v
// Derive-Secret(., "derived", "")
// |
// v
// (EC)DHE -> HKDF-Extract = Handshake Secret
// |
// +-----> Derive-Secret(., "c hs traffic",
// | ClientHello...ServerHello)
// | = client_handshake_traffic_secret
// |
// +-----> Derive-Secret(., "s hs traffic",
// | ClientHello...ServerHello)
// | = server_handshake_traffic_secret
// v
// Derive-Secret(., "derived", "")
// |
// v
// 0 -> HKDF-Extract = Master Secret
// |
// +-----> Derive-Secret(., "c ap traffic",
// | ClientHello...server Finished)
// | = client_application_traffic_secret_0
// |
// +-----> Derive-Secret(., "s ap traffic",
// | ClientHello...server Finished)
// | = server_application_traffic_secret_0
// |
// +-----> Derive-Secret(., "exp master",
// | ClientHello...server Finished)
// | = exporter_master_secret
// |
// +-----> Derive-Secret(., "res master",
// ClientHello...client Finished)
// = resumption_master_secret
// From RFC 5869
// PRK = HMAC-Hash(salt, IKM)
func HkdfExtract(hash crypto.Hash, saltIn, input []byte) []byte {
salt := saltIn
// if [salt is] not provided, it is set to a string of HashLen zeros
if salt == nil {
salt = bytes.Repeat([]byte{0}, hash.Size())
}
h := hmac.New(hash.New, salt)
h.Write(input)
out := h.Sum(nil)
logf(logTypeCrypto, "HKDF Extract:\n")
logf(logTypeCrypto, "Salt [%d]: %x\n", len(salt), salt)
logf(logTypeCrypto, "Input [%d]: %x\n", len(input), input)
logf(logTypeCrypto, "Output [%d]: %x\n", len(out), out)
return out
}
const (
labelExternalBinder = "ext binder"
labelResumptionBinder = "res binder"
labelEarlyTrafficSecret = "c e traffic"
labelEarlyExporterSecret = "e exp master"
labelClientHandshakeTrafficSecret = "c hs traffic"
labelServerHandshakeTrafficSecret = "s hs traffic"
labelClientApplicationTrafficSecret = "c ap traffic"
labelServerApplicationTrafficSecret = "s ap traffic"
labelExporterSecret = "exp master"
labelResumptionSecret = "res master"
labelDerived = "derived"
labelFinished = "finished"
labelResumption = "resumption"
)
// struct HkdfLabel {
// uint16 length;
// opaque label<9..255>;
// opaque hash_value<0..255>;
// };
func hkdfEncodeLabel(labelIn string, hashValue []byte, outLen int) []byte {
label := "tls13 " + labelIn
labelLen := len(label)
hashLen := len(hashValue)
hkdfLabel := make([]byte, 2+1+labelLen+1+hashLen)
hkdfLabel[0] = byte(outLen >> 8)
hkdfLabel[1] = byte(outLen)
hkdfLabel[2] = byte(labelLen)
copy(hkdfLabel[3:3+labelLen], []byte(label))
hkdfLabel[3+labelLen] = byte(hashLen)
copy(hkdfLabel[3+labelLen+1:], hashValue)
return hkdfLabel
}
func HkdfExpand(hash crypto.Hash, prk, info []byte, outLen int) []byte {
out := []byte{}
T := []byte{}
i := byte(1)
for len(out) < outLen {
block := append(T, info...)
block = append(block, i)
h := hmac.New(hash.New, prk)
h.Write(block)
T = h.Sum(nil)
out = append(out, T...)
i++
}
return out[:outLen]
}
func HkdfExpandLabel(hash crypto.Hash, secret []byte, label string, hashValue []byte, outLen int) []byte {
info := hkdfEncodeLabel(label, hashValue, outLen)
derived := HkdfExpand(hash, secret, info, outLen)
logf(logTypeCrypto, "HKDF Expand: label=[tls13 ] + '%s',requested length=%d\n", label, outLen)
logf(logTypeCrypto, "PRK [%d]: %x\n", len(secret), secret)
logf(logTypeCrypto, "Hash [%d]: %x\n", len(hashValue), hashValue)
logf(logTypeCrypto, "Info [%d]: %x\n", len(info), info)
logf(logTypeCrypto, "Derived key [%d]: %x\n", len(derived), derived)
return derived
}
func deriveSecret(params CipherSuiteParams, secret []byte, label string, messageHash []byte) []byte {
return HkdfExpandLabel(params.Hash, secret, label, messageHash, params.Hash.Size())
}
func computeFinishedData(params CipherSuiteParams, baseKey []byte, input []byte) []byte {
macKey := HkdfExpandLabel(params.Hash, baseKey, labelFinished, []byte{}, params.Hash.Size())
mac := hmac.New(params.Hash.New, macKey)
mac.Write(input)
return mac.Sum(nil)
}
type keySet struct {
cipher aeadFactory
key []byte
iv []byte
}
func makeTrafficKeys(params CipherSuiteParams, secret []byte) keySet {
logf(logTypeCrypto, "making traffic keys: secret=%x", secret)
return keySet{
cipher: params.Cipher,
key: HkdfExpandLabel(params.Hash, secret, "key", []byte{}, params.KeyLen),
iv: HkdfExpandLabel(params.Hash, secret, "iv", []byte{}, params.IvLen),
}
}

358
vendor/github.com/bifurcation/mint/crypto_test.go generated vendored Normal file
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@ -0,0 +1,358 @@
package mint
import (
"bytes"
"crypto"
"crypto/ecdsa"
"crypto/elliptic"
"crypto/rand"
"crypto/rsa"
_ "crypto/sha256"
"encoding/asn1"
"encoding/hex"
"io"
"math/big"
"testing"
)
var (
ecGroups = []NamedGroup{P256, P384, P521}
nonECGroups = []NamedGroup{FFDHE2048, FFDHE3072, FFDHE4096, FFDHE6144, FFDHE8192, X25519}
dhGroups = append(ecGroups, nonECGroups...)
shortKeyPubHex = "04e9f6076620ddf6a24e4398162057eccd3077892f046b412" +
"0ffcb9fa31cdfd385c8727b222f9a6091e442e48f32ba145" +
"bd3d68c0631b0ed8faf298c40c404bf59"
shortKeyPrivHex = "6f28e305a0975ead3b95c228082adcae852fca6af0c9385f670531657966cd6a"
// Test vectors from RFC 5869
hkdfSaltHex = "000102030405060708090a0b0c"
hkdfInputHex = "0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b"
hkdfInfoHex = "f0f1f2f3f4f5f6f7f8f9"
hkdfExtractOutputHex = "077709362c2e32df0ddc3f0dc47bba6390b6c73bb50f9c3122ec844ad7c2b3e5"
hkdfExtractZeroOutputHex = "19ef24a32c717b167f33a91d6f648bdf96596776afdb6377ac434c1c293ccb04"
hkdfExpandOutputHex = "3cb25f25faacd57a90434f64d0362f2a2d2d0a90cf1a5a4c5db02d56ecc4c5bf34007208d5b887185865"
hkdfExpandLen = 42
hkdfLabel = "test"
hkdfHashHex = "f9a54250131c827542664bcad131b87c09cdd92f0d5f84db3680ee4c0c0f8ed6" // random
hkdfEncodedLabelHex = "002a" + "0a" + hex.EncodeToString([]byte("tls13 "+hkdfLabel)) + "20" + hkdfHashHex
hkdfExpandLabelOutputHex = "a7c2b665154333b14f01762409173a6941d9c4e2edbe380e1cdd3091cb56f4aff8aced829cca286be245"
)
type mockSigner struct{}
func (m mockSigner) Public() crypto.PublicKey {
return m
}
func (m mockSigner) Sign(io.Reader, []byte, crypto.SignerOpts) ([]byte, error) {
return nil, nil
}
func TestNewKeyShare(t *testing.T) {
// Test success cases
for _, group := range ecGroups {
// priv is opaque, so there's nothing we can do to test besides use
pub, priv, err := newKeyShare(group)
assertNotError(t, err, "Failed to generate new key pair")
assertNotNil(t, priv, "Private key is nil")
assertEquals(t, len(pub), keyExchangeSizeFromNamedGroup(group))
crv := curveFromNamedGroup(group)
x, y := elliptic.Unmarshal(crv, pub)
assert(t, x != nil && y != nil, "Public key failed to unmarshal")
assert(t, crv.Params().IsOnCurve(x, y), "Public key not on curve")
}
for _, group := range nonECGroups {
priv, pub, err := newKeyShare(group)
assertNotError(t, err, "Failed to generate new key pair")
assertNotNil(t, priv, "Private key is nil")
assertEquals(t, len(pub), keyExchangeSizeFromNamedGroup(group))
}
// Test failure case for an elliptic curve key generation failure
originalPRNG := prng
prng = bytes.NewReader(nil)
_, _, err := newKeyShare(P256)
assertError(t, err, "Generated an EC key with no entropy")
prng = originalPRNG
// Test failure case for an finite field key generation failure
originalPRNG = prng
prng = bytes.NewReader(nil)
_, _, err = newKeyShare(FFDHE2048)
assertError(t, err, "Generated a FF key with no entropy")
prng = originalPRNG
// Test failure case for an X25519 key generation failure
originalPRNG = prng
prng = bytes.NewReader(nil)
_, _, err = newKeyShare(X25519)
assertError(t, err, "Generated an X25519 key with no entropy")
prng = originalPRNG
// Test failure case for an unknown group
_, _, err = newKeyShare(NamedGroup(0))
assertError(t, err, "Generated a key for an unsupported group")
}
func TestKeyAgreement(t *testing.T) {
shortKeyPub := unhex(shortKeyPubHex)
shortKeyPriv := unhex(shortKeyPrivHex)
// Test success cases
for _, group := range dhGroups {
pubA, privA, err := newKeyShare(group)
assertNotError(t, err, "Failed to generate new key pair (A)")
pubB, privB, err := newKeyShare(group)
assertNotError(t, err, "Failed to generate new key pair (B)")
x1, err1 := keyAgreement(group, pubA, privB)
x2, err2 := keyAgreement(group, pubB, privA)
assertNotError(t, err1, "Key agreement failed (Ab)")
assertNotError(t, err2, "Key agreement failed (aB)")
assertByteEquals(t, x1, x2)
}
// Test that a short elliptic curve point is properly padded
// shortKey* have been chosen to produce a point with an X coordinate that
// has a leading zero
curveSize := len(curveFromNamedGroup(P256).Params().P.Bytes())
x, err := keyAgreement(P256, shortKeyPub, shortKeyPriv)
assertNotError(t, err, "Failed to complete short key agreement")
assertEquals(t, len(x), curveSize)
// Test failure case for a too-short public key
_, err = keyAgreement(P256, shortKeyPub[:5], shortKeyPriv)
assertError(t, err, "Performed key agreement with a truncated public key")
// Test failure for a too-short ffdh public key
_, err = keyAgreement(FFDHE2048, shortKeyPub[:5], shortKeyPriv)
assertError(t, err, "Performed key agreement with a truncated public key")
// Test failure for a too-short X25519 public key
_, err = keyAgreement(X25519, shortKeyPub[:5], shortKeyPriv)
assertError(t, err, "Performed key agreement with a truncated public key")
// Test failure case for an unknown group
_, err = keyAgreement(NamedGroup(0), shortKeyPub, shortKeyPriv)
assertError(t, err, "Performed key agreement with an unsupported group")
}
func TestNewSigningKey(t *testing.T) {
// Test RSA success
privRSA, err := newSigningKey(RSA_PKCS1_SHA256)
assertNotError(t, err, "failed to generate RSA private key")
_, ok := privRSA.(*rsa.PrivateKey)
assert(t, ok, "New RSA key was not actually an RSA key")
// Test ECDSA success (P-256)
privECDSA, err := newSigningKey(ECDSA_P256_SHA256)
assertNotError(t, err, "failed to generate RSA private key")
_, ok = privECDSA.(*ecdsa.PrivateKey)
assert(t, ok, "New ECDSA key was not actually an ECDSA key")
pub := privECDSA.(*ecdsa.PrivateKey).Public().(*ecdsa.PublicKey)
assertEquals(t, P256, namedGroupFromECDSAKey(pub))
// Test ECDSA success (P-384)
privECDSA, err = newSigningKey(ECDSA_P384_SHA384)
assertNotError(t, err, "failed to generate RSA private key")
_, ok = privECDSA.(*ecdsa.PrivateKey)
assert(t, ok, "New ECDSA key was not actually an ECDSA key")
pub = privECDSA.(*ecdsa.PrivateKey).Public().(*ecdsa.PublicKey)
assertEquals(t, P384, namedGroupFromECDSAKey(pub))
// Test ECDSA success (P-521)
privECDSA, err = newSigningKey(ECDSA_P521_SHA512)
assertNotError(t, err, "failed to generate RSA private key")
_, ok = privECDSA.(*ecdsa.PrivateKey)
assert(t, ok, "New ECDSA key was not actually an ECDSA key")
pub = privECDSA.(*ecdsa.PrivateKey).Public().(*ecdsa.PublicKey)
assertEquals(t, P521, namedGroupFromECDSAKey(pub))
// Test unsupported algorithm
_, err = newSigningKey(Ed25519)
assertError(t, err, "Created a private key for an unsupported algorithm")
}
func TestSelfSigned(t *testing.T) {
priv, err := newSigningKey(ECDSA_P256_SHA256)
assertNotError(t, err, "Failed to create private key")
// Test success
alg := ECDSA_P256_SHA256
cert, err := newSelfSigned("example.com", alg, priv)
assertNotError(t, err, "Failed to sign certificate")
assert(t, len(cert.Raw) > 0, "Certificate had empty raw value")
assertEquals(t, cert.SignatureAlgorithm, x509AlgMap[alg])
// Test failure on unknown signature algorithm
alg = RSA_PSS_SHA256
_, err = newSelfSigned("example.com", alg, priv)
assertError(t, err, "Signed with an unsupported algorithm")
// Test failure on certificate signing failure (due to algorithm mismatch)
alg = RSA_PKCS1_SHA256
_, err = newSelfSigned("example.com", alg, priv)
assertError(t, err, "Signed with a mismatched algorithm")
}
func TestSignVerify(t *testing.T) {
data := []byte{0, 1, 2, 3, 4, 5, 6, 7, 8, 9,
10, 11, 12, 13, 14, 15, 16, 17, 18, 19,
20, 21, 22, 23, 24, 25, 26, 27, 28, 29,
30, 31}
privRSA, err := newSigningKey(RSA_PSS_SHA256)
assertNotError(t, err, "failed to generate RSA private key")
privECDSA, err := newSigningKey(ECDSA_P256_SHA256)
assertNotError(t, err, "failed to generate ECDSA private key")
// Test successful signing with PKCS#1 when it is allowed
originalAllowPKCS1 := allowPKCS1
allowPKCS1 = true
sigRSA, err := sign(RSA_PKCS1_SHA256, privRSA, data)
assertNotError(t, err, "Failed to generate RSA signature")
allowPKCS1 = originalAllowPKCS1
// Test successful signing with PKCS#1 when it is not allowed
// (i.e., when it gets morphed into PSS)
originalAllowPKCS1 = allowPKCS1
allowPKCS1 = false
sigRSAPSS, err := sign(RSA_PKCS1_SHA256, privRSA, data)
assertNotError(t, err, "Failed to generate RSA-PSS signature")
allowPKCS1 = originalAllowPKCS1
// Test successful signing with PSS
originalAllowPKCS1 = allowPKCS1
allowPKCS1 = false
sigRSAPSS, err = sign(RSA_PSS_SHA256, privRSA, data)
assertNotError(t, err, "Failed to generate RSA-PSS signature")
allowPKCS1 = originalAllowPKCS1
// Test successful signing with ECDSA
sigECDSA, err := sign(ECDSA_P256_SHA256, privECDSA, data)
assertNotError(t, err, "Failed to generate ECDSA signature")
// Test signature failure on use of SHA-1
_, err = sign(RSA_PKCS1_SHA1, privRSA, data)
assertError(t, err, "Allowed a SHA-1 signature")
// Test signature failure on use of an non-RSA key with an RSA alg
_, err = sign(RSA_PKCS1_SHA1, privECDSA, data)
assertError(t, err, "Allowed an RSA signature with a non-RSA key")
// Test signature failure on use of an non-ECDSA key with an ECDSA alg
_, err = sign(ECDSA_P256_SHA256, privRSA, data)
assertError(t, err, "Allowed a ECDSA signature with a non-ECDSA key")
// Test signature failure on use of an ECDSA key from the wrong curve
_, err = sign(ECDSA_P384_SHA384, privRSA, data)
assertError(t, err, "Allowed a ECDSA signature with key from the wrong curve")
// Test signature failure on use of an unsupported key type
_, err = sign(ECDSA_P384_SHA384, mockSigner{}, data)
assertError(t, err, "Allowed a ECDSA signature with key from the wrong curve")
// Test successful verification with PKCS#1 when it is allowed
originalAllowPKCS1 = allowPKCS1
allowPKCS1 = true
err = verify(RSA_PKCS1_SHA256, privRSA.Public(), data, sigRSA)
assertNotError(t, err, "Failed to verify a valid RSA-PKCS1 signature")
allowPKCS1 = originalAllowPKCS1
// Test successful verification with PKCS#1 transformed into PSS
originalAllowPKCS1 = allowPKCS1
allowPKCS1 = false
err = verify(RSA_PKCS1_SHA256, privRSA.Public(), data, sigRSAPSS)
assertNotError(t, err, "Failed to verify a valid RSA-PSS signature")
allowPKCS1 = originalAllowPKCS1
// Test successful verification with PSS
err = verify(RSA_PSS_SHA256, privRSA.Public(), data, sigRSAPSS)
assertNotError(t, err, "Failed to verify a valid ECDSA signature")
// Test successful verification with ECDSA
err = verify(ECDSA_P256_SHA256, privECDSA.Public(), data, sigECDSA)
assertNotError(t, err, "Failed to verify a valid ECDSA signature")
// Test that SHA-1 is forbidden
err = verify(RSA_PKCS1_SHA1, privECDSA.Public(), data, sigECDSA)
assertError(t, err, "Allowed verification of a SHA-1 signature")
// Test RSA verify failure on unsupported algorithm
err = verify(ECDSA_P256_SHA256, privRSA.Public(), data, sigRSA)
assertError(t, err, "Verified ECDSA with an RSA key")
// Test ECDSA verify failure on unsupported algorithm
err = verify(RSA_PSS_SHA256, privECDSA.Public(), data, sigECDSA)
assertError(t, err, "Verified ECDSA with a bad algorithm")
// Test ECDSA verify failure on unsupported curve
err = verify(ECDSA_P384_SHA384, privECDSA.Public(), data, sigECDSA)
assertError(t, err, "Verified ECDSA with a bad algorithm")
// Test ECDSA verify failure on ASN.1 unmarshal failure
err = verify(ECDSA_P256_SHA256, privECDSA.Public(), data, sigECDSA[:8])
assertError(t, err, "Verified ECDSA with a bad ASN.1")
// Test ECDSA verify failure on trailing data
err = verify(ECDSA_P256_SHA256, privECDSA.Public(), data, append(sigECDSA, data...))
assertError(t, err, "Verified ECDSA with a trailing ASN.1")
// Test ECDSA verify failure on zero / negative values
zeroSigIn := ecdsaSignature{big.NewInt(0), big.NewInt(0)}
zeroSig, err := asn1.Marshal(zeroSigIn)
err = verify(ECDSA_P256_SHA256, privECDSA.Public(), data, zeroSig)
assertError(t, err, "Verified ECDSA with zero signature")
// Test ECDSA verify failure on signature validation failure
sigECDSA[7] ^= 0xFF
err = verify(ECDSA_P256_SHA256, privECDSA.Public(), data, sigECDSA)
assertError(t, err, "Verified ECDSA with corrupted signature")
sigECDSA[7] ^= 0xFF
// Test verify failure on unknown public key type
err = verify(ECDSA_P256_SHA256, struct{}{}, data, sigECDSA)
assertError(t, err, "Verified with invalid public key type")
}
func TestHKDF(t *testing.T) {
hash := crypto.SHA256
hkdfInput := unhex(hkdfInputHex)
hkdfSalt := unhex(hkdfSaltHex)
hkdfInfo := unhex(hkdfInfoHex)
HkdfExtractOutput := unhex(hkdfExtractOutputHex)
HkdfExtractZeroOutput := unhex(hkdfExtractZeroOutputHex)
HkdfExpandOutput := unhex(hkdfExpandOutputHex)
hkdfHash := unhex(hkdfHashHex)
hkdfEncodedLabel := unhex(hkdfEncodedLabelHex)
HkdfExpandLabelOutput := unhex(hkdfExpandLabelOutputHex)
// Test HkdfExtract is correct with salt
out := HkdfExtract(hash, hkdfSalt, hkdfInput)
assertByteEquals(t, out, HkdfExtractOutput)
// Test HkdfExtract is correct without salt
out = HkdfExtract(hash, nil, hkdfInput)
assertByteEquals(t, out, HkdfExtractZeroOutput)
// Test HkdfExpand is correct
out = HkdfExpand(hash, HkdfExtractOutput, hkdfInfo, hkdfExpandLen)
assertByteEquals(t, out, HkdfExpandOutput)
// Test hkdfEncodeLabel is correct
out = hkdfEncodeLabel(hkdfLabel, hkdfHash, hkdfExpandLen)
assertByteEquals(t, out, hkdfEncodedLabel)
// This is pro-forma, just for the coverage
out = HkdfExpandLabel(hash, hkdfSalt, hkdfLabel, hkdfHash, hkdfExpandLen)
assertByteEquals(t, out, HkdfExpandLabelOutput)
}
func random(n int) []byte {
data := make([]byte, n)
rand.Reader.Read(data)
return data
}

7
vendor/github.com/bifurcation/mint/dtls.go generated vendored Normal file
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@ -0,0 +1,7 @@
package mint
// This file is a placeholder. DTLS-specific stuff (timer management,
// ACKs, retransmits, etc. will eventually go here.
const (
initialMtu = 1200
)

626
vendor/github.com/bifurcation/mint/extensions.go generated vendored Normal file
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@ -0,0 +1,626 @@
package mint
import (
"bytes"
"fmt"
"github.com/bifurcation/mint/syntax"
)
type ExtensionBody interface {
Type() ExtensionType
Marshal() ([]byte, error)
Unmarshal(data []byte) (int, error)
}
// struct {
// ExtensionType extension_type;
// opaque extension_data<0..2^16-1>;
// } Extension;
type Extension struct {
ExtensionType ExtensionType
ExtensionData []byte `tls:"head=2"`
}
func (ext Extension) Marshal() ([]byte, error) {
return syntax.Marshal(ext)
}
func (ext *Extension) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, ext)
}
type ExtensionList []Extension
type extensionListInner struct {
List []Extension `tls:"head=2"`
}
func (el ExtensionList) Marshal() ([]byte, error) {
return syntax.Marshal(extensionListInner{el})
}
func (el *ExtensionList) Unmarshal(data []byte) (int, error) {
var list extensionListInner
read, err := syntax.Unmarshal(data, &list)
if err != nil {
return 0, err
}
*el = list.List
return read, nil
}
func (el *ExtensionList) Add(src ExtensionBody) error {
data, err := src.Marshal()
if err != nil {
return err
}
if el == nil {
el = new(ExtensionList)
}
// If one already exists with this type, replace it
for i := range *el {
if (*el)[i].ExtensionType == src.Type() {
(*el)[i].ExtensionData = data
return nil
}
}
// Otherwise append
*el = append(*el, Extension{
ExtensionType: src.Type(),
ExtensionData: data,
})
return nil
}
func (el ExtensionList) Parse(dsts []ExtensionBody) (map[ExtensionType]bool, error) {
found := make(map[ExtensionType]bool)
for _, dst := range dsts {
for _, ext := range el {
if ext.ExtensionType == dst.Type() {
if found[dst.Type()] {
return nil, fmt.Errorf("Duplicate extension of type [%v]", dst.Type())
}
err := safeUnmarshal(dst, ext.ExtensionData)
if err != nil {
return nil, err
}
found[dst.Type()] = true
}
}
}
return found, nil
}
func (el ExtensionList) Find(dst ExtensionBody) (bool, error) {
for _, ext := range el {
if ext.ExtensionType == dst.Type() {
err := safeUnmarshal(dst, ext.ExtensionData)
if err != nil {
return true, err
}
return true, nil
}
}
return false, nil
}
// struct {
// NameType name_type;
// select (name_type) {
// case host_name: HostName;
// } name;
// } ServerName;
//
// enum {
// host_name(0), (255)
// } NameType;
//
// opaque HostName<1..2^16-1>;
//
// struct {
// ServerName server_name_list<1..2^16-1>
// } ServerNameList;
//
// But we only care about the case where there's a single DNS hostname. We
// will never create anything else, and throw if we receive something else
//
// 2 1 2
// | listLen | NameType | nameLen | name |
type ServerNameExtension string
type serverNameInner struct {
NameType uint8
HostName []byte `tls:"head=2,min=1"`
}
type serverNameListInner struct {
ServerNameList []serverNameInner `tls:"head=2,min=1"`
}
func (sni ServerNameExtension) Type() ExtensionType {
return ExtensionTypeServerName
}
func (sni ServerNameExtension) Marshal() ([]byte, error) {
list := serverNameListInner{
ServerNameList: []serverNameInner{{
NameType: 0x00, // host_name
HostName: []byte(sni),
}},
}
return syntax.Marshal(list)
}
func (sni *ServerNameExtension) Unmarshal(data []byte) (int, error) {
var list serverNameListInner
read, err := syntax.Unmarshal(data, &list)
if err != nil {
return 0, err
}
// Syntax requires at least one entry
// Entries beyond the first are ignored
if nameType := list.ServerNameList[0].NameType; nameType != 0x00 {
return 0, fmt.Errorf("tls.servername: Unsupported name type [%x]", nameType)
}
*sni = ServerNameExtension(list.ServerNameList[0].HostName)
return read, nil
}
// struct {
// NamedGroup group;
// opaque key_exchange<1..2^16-1>;
// } KeyShareEntry;
//
// struct {
// select (Handshake.msg_type) {
// case client_hello:
// KeyShareEntry client_shares<0..2^16-1>;
//
// case hello_retry_request:
// NamedGroup selected_group;
//
// case server_hello:
// KeyShareEntry server_share;
// };
// } KeyShare;
type KeyShareEntry struct {
Group NamedGroup
KeyExchange []byte `tls:"head=2,min=1"`
}
func (kse KeyShareEntry) SizeValid() bool {
return len(kse.KeyExchange) == keyExchangeSizeFromNamedGroup(kse.Group)
}
type KeyShareExtension struct {
HandshakeType HandshakeType
SelectedGroup NamedGroup
Shares []KeyShareEntry
}
type KeyShareClientHelloInner struct {
ClientShares []KeyShareEntry `tls:"head=2,min=0"`
}
type KeyShareHelloRetryInner struct {
SelectedGroup NamedGroup
}
type KeyShareServerHelloInner struct {
ServerShare KeyShareEntry
}
func (ks KeyShareExtension) Type() ExtensionType {
return ExtensionTypeKeyShare
}
func (ks KeyShareExtension) Marshal() ([]byte, error) {
switch ks.HandshakeType {
case HandshakeTypeClientHello:
for _, share := range ks.Shares {
if !share.SizeValid() {
return nil, fmt.Errorf("tls.keyshare: Key share has wrong size for group")
}
}
return syntax.Marshal(KeyShareClientHelloInner{ks.Shares})
case HandshakeTypeHelloRetryRequest:
if len(ks.Shares) > 0 {
return nil, fmt.Errorf("tls.keyshare: Key shares not allowed for HelloRetryRequest")
}
return syntax.Marshal(KeyShareHelloRetryInner{ks.SelectedGroup})
case HandshakeTypeServerHello:
if len(ks.Shares) != 1 {
return nil, fmt.Errorf("tls.keyshare: Server must send exactly one key share")
}
if !ks.Shares[0].SizeValid() {
return nil, fmt.Errorf("tls.keyshare: Key share has wrong size for group")
}
return syntax.Marshal(KeyShareServerHelloInner{ks.Shares[0]})
default:
return nil, fmt.Errorf("tls.keyshare: Handshake type not allowed")
}
}
func (ks *KeyShareExtension) Unmarshal(data []byte) (int, error) {
switch ks.HandshakeType {
case HandshakeTypeClientHello:
var inner KeyShareClientHelloInner
read, err := syntax.Unmarshal(data, &inner)
if err != nil {
return 0, err
}
for _, share := range inner.ClientShares {
if !share.SizeValid() {
return 0, fmt.Errorf("tls.keyshare: Key share has wrong size for group")
}
}
ks.Shares = inner.ClientShares
return read, nil
case HandshakeTypeHelloRetryRequest:
var inner KeyShareHelloRetryInner
read, err := syntax.Unmarshal(data, &inner)
if err != nil {
return 0, err
}
ks.SelectedGroup = inner.SelectedGroup
return read, nil
case HandshakeTypeServerHello:
var inner KeyShareServerHelloInner
read, err := syntax.Unmarshal(data, &inner)
if err != nil {
return 0, err
}
if !inner.ServerShare.SizeValid() {
return 0, fmt.Errorf("tls.keyshare: Key share has wrong size for group")
}
ks.Shares = []KeyShareEntry{inner.ServerShare}
return read, nil
default:
return 0, fmt.Errorf("tls.keyshare: Handshake type not allowed")
}
}
// struct {
// NamedGroup named_group_list<2..2^16-1>;
// } NamedGroupList;
type SupportedGroupsExtension struct {
Groups []NamedGroup `tls:"head=2,min=2"`
}
func (sg SupportedGroupsExtension) Type() ExtensionType {
return ExtensionTypeSupportedGroups
}
func (sg SupportedGroupsExtension) Marshal() ([]byte, error) {
return syntax.Marshal(sg)
}
func (sg *SupportedGroupsExtension) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, sg)
}
// struct {
// SignatureScheme supported_signature_algorithms<2..2^16-2>;
// } SignatureSchemeList
type SignatureAlgorithmsExtension struct {
Algorithms []SignatureScheme `tls:"head=2,min=2"`
}
func (sa SignatureAlgorithmsExtension) Type() ExtensionType {
return ExtensionTypeSignatureAlgorithms
}
func (sa SignatureAlgorithmsExtension) Marshal() ([]byte, error) {
return syntax.Marshal(sa)
}
func (sa *SignatureAlgorithmsExtension) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, sa)
}
// struct {
// opaque identity<1..2^16-1>;
// uint32 obfuscated_ticket_age;
// } PskIdentity;
//
// opaque PskBinderEntry<32..255>;
//
// struct {
// select (Handshake.msg_type) {
// case client_hello:
// PskIdentity identities<7..2^16-1>;
// PskBinderEntry binders<33..2^16-1>;
//
// case server_hello:
// uint16 selected_identity;
// };
//
// } PreSharedKeyExtension;
type PSKIdentity struct {
Identity []byte `tls:"head=2,min=1"`
ObfuscatedTicketAge uint32
}
type PSKBinderEntry struct {
Binder []byte `tls:"head=1,min=32"`
}
type PreSharedKeyExtension struct {
HandshakeType HandshakeType
Identities []PSKIdentity
Binders []PSKBinderEntry
SelectedIdentity uint16
}
type preSharedKeyClientInner struct {
Identities []PSKIdentity `tls:"head=2,min=7"`
Binders []PSKBinderEntry `tls:"head=2,min=33"`
}
type preSharedKeyServerInner struct {
SelectedIdentity uint16
}
func (psk PreSharedKeyExtension) Type() ExtensionType {
return ExtensionTypePreSharedKey
}
func (psk PreSharedKeyExtension) Marshal() ([]byte, error) {
switch psk.HandshakeType {
case HandshakeTypeClientHello:
return syntax.Marshal(preSharedKeyClientInner{
Identities: psk.Identities,
Binders: psk.Binders,
})
case HandshakeTypeServerHello:
if len(psk.Identities) > 0 || len(psk.Binders) > 0 {
return nil, fmt.Errorf("tls.presharedkey: Server can only provide an index")
}
return syntax.Marshal(preSharedKeyServerInner{psk.SelectedIdentity})
default:
return nil, fmt.Errorf("tls.presharedkey: Handshake type not supported")
}
}
func (psk *PreSharedKeyExtension) Unmarshal(data []byte) (int, error) {
switch psk.HandshakeType {
case HandshakeTypeClientHello:
var inner preSharedKeyClientInner
read, err := syntax.Unmarshal(data, &inner)
if err != nil {
return 0, err
}
if len(inner.Identities) != len(inner.Binders) {
return 0, fmt.Errorf("Lengths of identities and binders not equal")
}
psk.Identities = inner.Identities
psk.Binders = inner.Binders
return read, nil
case HandshakeTypeServerHello:
var inner preSharedKeyServerInner
read, err := syntax.Unmarshal(data, &inner)
if err != nil {
return 0, err
}
psk.SelectedIdentity = inner.SelectedIdentity
return read, nil
default:
return 0, fmt.Errorf("tls.presharedkey: Handshake type not supported")
}
}
func (psk PreSharedKeyExtension) HasIdentity(id []byte) ([]byte, bool) {
for i, localID := range psk.Identities {
if bytes.Equal(localID.Identity, id) {
return psk.Binders[i].Binder, true
}
}
return nil, false
}
// enum { psk_ke(0), psk_dhe_ke(1), (255) } PskKeyExchangeMode;
//
// struct {
// PskKeyExchangeMode ke_modes<1..255>;
// } PskKeyExchangeModes;
type PSKKeyExchangeModesExtension struct {
KEModes []PSKKeyExchangeMode `tls:"head=1,min=1"`
}
func (pkem PSKKeyExchangeModesExtension) Type() ExtensionType {
return ExtensionTypePSKKeyExchangeModes
}
func (pkem PSKKeyExchangeModesExtension) Marshal() ([]byte, error) {
return syntax.Marshal(pkem)
}
func (pkem *PSKKeyExchangeModesExtension) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, pkem)
}
// struct {
// } EarlyDataIndication;
type EarlyDataExtension struct{}
func (ed EarlyDataExtension) Type() ExtensionType {
return ExtensionTypeEarlyData
}
func (ed EarlyDataExtension) Marshal() ([]byte, error) {
return []byte{}, nil
}
func (ed *EarlyDataExtension) Unmarshal(data []byte) (int, error) {
return 0, nil
}
// struct {
// uint32 max_early_data_size;
// } TicketEarlyDataInfo;
type TicketEarlyDataInfoExtension struct {
MaxEarlyDataSize uint32
}
func (tedi TicketEarlyDataInfoExtension) Type() ExtensionType {
return ExtensionTypeTicketEarlyDataInfo
}
func (tedi TicketEarlyDataInfoExtension) Marshal() ([]byte, error) {
return syntax.Marshal(tedi)
}
func (tedi *TicketEarlyDataInfoExtension) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, tedi)
}
// opaque ProtocolName<1..2^8-1>;
//
// struct {
// ProtocolName protocol_name_list<2..2^16-1>
// } ProtocolNameList;
type ALPNExtension struct {
Protocols []string
}
type protocolNameInner struct {
Name []byte `tls:"head=1,min=1"`
}
type alpnExtensionInner struct {
Protocols []protocolNameInner `tls:"head=2,min=2"`
}
func (alpn ALPNExtension) Type() ExtensionType {
return ExtensionTypeALPN
}
func (alpn ALPNExtension) Marshal() ([]byte, error) {
protocols := make([]protocolNameInner, len(alpn.Protocols))
for i, protocol := range alpn.Protocols {
protocols[i] = protocolNameInner{[]byte(protocol)}
}
return syntax.Marshal(alpnExtensionInner{protocols})
}
func (alpn *ALPNExtension) Unmarshal(data []byte) (int, error) {
var inner alpnExtensionInner
read, err := syntax.Unmarshal(data, &inner)
if err != nil {
return 0, err
}
alpn.Protocols = make([]string, len(inner.Protocols))
for i, protocol := range inner.Protocols {
alpn.Protocols[i] = string(protocol.Name)
}
return read, nil
}
// struct {
// ProtocolVersion versions<2..254>;
// } SupportedVersions;
type SupportedVersionsExtension struct {
HandshakeType HandshakeType
Versions []uint16
}
type SupportedVersionsClientHelloInner struct {
Versions []uint16 `tls:"head=1,min=2,max=254"`
}
type SupportedVersionsServerHelloInner struct {
Version uint16
}
func (sv SupportedVersionsExtension) Type() ExtensionType {
return ExtensionTypeSupportedVersions
}
func (sv SupportedVersionsExtension) Marshal() ([]byte, error) {
switch sv.HandshakeType {
case HandshakeTypeClientHello:
return syntax.Marshal(SupportedVersionsClientHelloInner{sv.Versions})
case HandshakeTypeServerHello, HandshakeTypeHelloRetryRequest:
return syntax.Marshal(SupportedVersionsServerHelloInner{sv.Versions[0]})
default:
return nil, fmt.Errorf("tls.supported_versions: Handshake type not allowed")
}
}
func (sv *SupportedVersionsExtension) Unmarshal(data []byte) (int, error) {
switch sv.HandshakeType {
case HandshakeTypeClientHello:
var inner SupportedVersionsClientHelloInner
read, err := syntax.Unmarshal(data, &inner)
if err != nil {
return 0, err
}
sv.Versions = inner.Versions
return read, nil
case HandshakeTypeServerHello, HandshakeTypeHelloRetryRequest:
var inner SupportedVersionsServerHelloInner
read, err := syntax.Unmarshal(data, &inner)
if err != nil {
return 0, err
}
sv.Versions = []uint16{inner.Version}
return read, nil
default:
return 0, fmt.Errorf("tls.supported_versions: Handshake type not allowed")
}
}
// struct {
// opaque cookie<1..2^16-1>;
// } Cookie;
type CookieExtension struct {
Cookie []byte `tls:"head=2,min=1"`
}
func (c CookieExtension) Type() ExtensionType {
return ExtensionTypeCookie
}
func (c CookieExtension) Marshal() ([]byte, error) {
return syntax.Marshal(c)
}
func (c *CookieExtension) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, c)
}

664
vendor/github.com/bifurcation/mint/extensions_test.go generated vendored Normal file
View File

@ -0,0 +1,664 @@
package mint
import (
"bytes"
"encoding/hex"
"testing"
)
var (
// Extension test cases
extValidIn = Extension{
ExtensionType: ExtensionType(0x000a),
ExtensionData: []byte{0xf0, 0xf1, 0xf2, 0xf3, 0xf4},
}
extEmptyIn = Extension{
ExtensionType: ExtensionType(0x000a),
ExtensionData: []byte{},
}
extTooLongIn = Extension{
ExtensionType: ExtensionType(0x000a),
ExtensionData: bytes.Repeat([]byte{0}, maxExtensionDataLen+1),
}
extValidHex = "000a0005f0f1f2f3f4"
extEmptyHex = "000a0000"
extNoHeaderHex = "000a00"
extNoDataHex = "000a000af0f1f2"
// Extension list test cases
extHalfLengthPlus = Extension{
ExtensionType: ExtensionType(0x000a),
ExtensionData: bytes.Repeat([]byte{0}, (maxExtensionDataLen/2)+1),
}
extListValidIn = ExtensionList{extValidIn, extEmptyIn}
extListSingleTooLongIn = ExtensionList{extTooLongIn, extEmptyIn}
extListTooLongIn = ExtensionList{extHalfLengthPlus, extHalfLengthPlus}
extListValidHex = "000d000a0005f0f1f2f3f4000a0000" // supported_groups x 2 (not really valid)
extListEmptyHex = "0000"
extListNoHeaderHex = "00"
extListOverflowOuterHex = "0020000a0005f0f1f2f3f4000a0005f0f1f2f3f4"
extListOverflowInnerHex = "0012000a0005f0f1f2f3f4000a0010f0f1f2f3f4"
// Add/Find test cases
keyShareServerRaw = unhex(keyShareServerHex)
keyShareClientRaw = unhex(keyShareClientHex)
keyShareInvalidRaw = unhex(keyShareInvalidHex)
extListKeyShareIn = ExtensionList{
Extension{
ExtensionType: ExtensionTypeKeyShare,
ExtensionData: keyShareServerRaw,
},
}
extListKeyShareClientIn = ExtensionList{
Extension{
ExtensionType: ExtensionTypeKeyShare,
ExtensionData: keyShareClientRaw,
},
}
extListInvalidIn = ExtensionList{
Extension{
ExtensionType: ExtensionTypeKeyShare,
ExtensionData: keyShareInvalidRaw,
},
}
// KeyShare test cases
len256 = keyExchangeSizeFromNamedGroup(P256)
len521 = keyExchangeSizeFromNamedGroup(P521)
p256 = bytes.Repeat([]byte{0}, len256)
p521 = bytes.Repeat([]byte{0}, len521)
keyShareClientIn = &KeyShareExtension{
HandshakeType: HandshakeTypeClientHello,
Shares: []KeyShareEntry{
{Group: P256, KeyExchange: p256},
{Group: P521, KeyExchange: p521},
},
}
keyShareHelloRetryIn = &KeyShareExtension{
HandshakeType: HandshakeTypeHelloRetryRequest,
SelectedGroup: P256,
}
keyShareServerIn = &KeyShareExtension{
HandshakeType: HandshakeTypeServerHello,
Shares: []KeyShareEntry{
{Group: P256, KeyExchange: p256},
},
}
keyShareInvalidIn = &KeyShareExtension{
HandshakeType: HandshakeTypeServerHello,
Shares: []KeyShareEntry{
{Group: P256, KeyExchange: []byte{0}},
},
}
keyShareClientHex = "00ce" + "00170041" + hex.EncodeToString(p256) +
"00190085" + hex.EncodeToString(p521)
keyShareHelloRetryHex = "0017"
keyShareServerHex = "00170041" + hex.EncodeToString(p256)
keyShareInvalidHex = "0006001700020000"
// PSK test cases
pskClientHex = "000a" + "00040102030405060708" +
"0021" + "20" + "A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0"
pskClientUnbalancedHex = "0014" + "00040102030405060708" + "00040102030405060708" +
"0021" + "20" + "A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0A0"
pskServerHex = "0002"
pskClientIn = &PreSharedKeyExtension{
HandshakeType: HandshakeTypeClientHello,
Identities: []PSKIdentity{
{
Identity: []byte{0x01, 0x02, 0x03, 0x04},
ObfuscatedTicketAge: 0x05060708,
},
},
Binders: []PSKBinderEntry{
{
Binder: bytes.Repeat([]byte{0xA0}, 32),
},
},
}
pskServerIn = &PreSharedKeyExtension{
HandshakeType: HandshakeTypeServerHello,
SelectedIdentity: 2,
}
pskInvalidIn = &PreSharedKeyExtension{
HandshakeType: HandshakeTypeHelloRetryRequest,
}
// SNI test cases (pre-declared so that we can take references in the test case)
serverNameRaw = "example.com"
serverNameIn = ServerNameExtension(serverNameRaw)
// SupportedVersions text cases
supportedVersionsClientIn = &SupportedVersionsExtension{
HandshakeType: HandshakeTypeClientHello,
Versions: []uint16{0x0300, 0x0304},
}
supportedVersionsServerIn = &SupportedVersionsExtension{
HandshakeType: HandshakeTypeServerHello,
Versions: []uint16{0x0300},
}
supportedVersionsClientHex = "0403000304"
supportedVersionsServerHex = "0300"
)
var validExtensionTestCases = map[ExtensionType]struct {
blank ExtensionBody
unmarshaled ExtensionBody
marshaledHex string
}{
// ServerName
ExtensionTypeServerName: {
blank: new(ServerNameExtension),
unmarshaled: &serverNameIn,
marshaledHex: "000e00000b6578616d706c652e636f6d",
},
// SupportedGroups
ExtensionTypeSupportedGroups: {
blank: &SupportedGroupsExtension{},
unmarshaled: &SupportedGroupsExtension{
Groups: []NamedGroup{P256, P384},
},
marshaledHex: "000400170018",
},
// SignatureAlgorithms
ExtensionTypeSignatureAlgorithms: {
blank: &SignatureAlgorithmsExtension{},
unmarshaled: &SignatureAlgorithmsExtension{
Algorithms: []SignatureScheme{
RSA_PSS_SHA256,
ECDSA_P256_SHA256,
},
},
marshaledHex: "000408040403",
},
// ALPN
ExtensionTypeALPN: {
blank: &ALPNExtension{},
unmarshaled: &ALPNExtension{
Protocols: []string{"http/1.1", "h2"},
},
marshaledHex: "000c08687474702f312e31026832",
},
// Omitted: KeyShare (depends on HandshakeType)
// Omitted: PreSharedKey (depends on HandshakeType)
// Omitted: SupportedVersions (depends on HandshakeType)
// EarlyData
ExtensionTypeEarlyData: {
blank: &EarlyDataExtension{},
unmarshaled: &EarlyDataExtension{},
marshaledHex: "",
},
// Cookie
ExtensionTypeCookie: {
blank: &CookieExtension{},
unmarshaled: &CookieExtension{
Cookie: []byte{0x01, 0x02, 0x03, 0x04},
},
marshaledHex: "000401020304",
},
// PskKeyExchangeModes
ExtensionTypePSKKeyExchangeModes: {
blank: &PSKKeyExchangeModesExtension{},
unmarshaled: &PSKKeyExchangeModesExtension{
KEModes: []PSKKeyExchangeMode{
PSKModeKE,
PSKModeDHEKE,
},
},
marshaledHex: "020001",
},
// TicketEarlyDataInfo
ExtensionTypeTicketEarlyDataInfo: {
blank: &TicketEarlyDataInfoExtension{},
unmarshaled: &TicketEarlyDataInfoExtension{
MaxEarlyDataSize: 0x01020304,
},
marshaledHex: "01020304",
},
}
func TestExtensionBodyMarshalUnmarshal(t *testing.T) {
for extType, test := range validExtensionTestCases {
marshaled := unhex(test.marshaledHex)
// Test extension type
assertEquals(t, test.unmarshaled.Type(), extType)
// Test successful marshal
out, err := test.unmarshaled.Marshal()
assertNotError(t, err, "Failed to marshal valid extension")
assertByteEquals(t, out, marshaled)
// Test successful unmarshal
read, err := test.blank.Unmarshal(marshaled)
assertNotError(t, err, "Failed to unmarshal valid extension")
assertDeepEquals(t, test.blank, test.unmarshaled)
assertEquals(t, read, len(marshaled))
}
}
func TestExtensionMarshalUnmarshal(t *testing.T) {
extValid := unhex(extValidHex)
extEmpty := unhex(extEmptyHex)
extNoHeader := unhex(extNoHeaderHex)
extNoData := unhex(extNoDataHex)
// Test successful marshal
out, err := extValidIn.Marshal()
assertNotError(t, err, "Failed to marshal valid extension")
assertByteEquals(t, out, extValid)
// Test marshal failure on extension data too long
out, err = extTooLongIn.Marshal()
assertError(t, err, "Marshaled an extension with too much data")
// Test successful unmarshal
var ext Extension
extLen, err := ext.Unmarshal(extValid)
assertNotError(t, err, "Failed to unmarshal valid extension")
assertEquals(t, extLen, len(extValid))
assertEquals(t, ext.ExtensionType, extValidIn.ExtensionType)
assertByteEquals(t, ext.ExtensionData, extValidIn.ExtensionData)
// Test successful unmarshal of the empty extension
extLen, err = ext.Unmarshal(extEmpty)
assertNotError(t, err, "Failed to unmarshal valid extension")
assertEquals(t, extLen, len(extEmpty))
assertEquals(t, ext.ExtensionType, extValidIn.ExtensionType)
assertEquals(t, len(ext.ExtensionData), 0)
// Test unmarshal failure on no header
extLen, err = ext.Unmarshal(extNoHeader)
assertError(t, err, "Unmarshaled an extension with no header")
assertEquals(t, extLen, 0)
// Test unmarshal failure on too little data
extLen, err = ext.Unmarshal(extNoData)
assertError(t, err, "Unmarshaled an extension with insufficient data")
assertEquals(t, extLen, 0)
}
func TestExtensionListMarshalUnmarshal(t *testing.T) {
extListValid := unhex(extListValidHex)
extListEmpty := unhex(extListEmptyHex)
extListNoHeader := unhex(extListNoHeaderHex)
extListOverflowOuter := unhex(extListOverflowOuterHex)
extListOverflowInner := unhex(extListOverflowInnerHex)
// Test successful marshal
out, err := extListValidIn.Marshal()
assertNotError(t, err, "Failed to marshal valid extension list")
assertByteEquals(t, out, extListValid)
// Test marshal failiure on a single extension too long
out, err = extListSingleTooLongIn.Marshal()
assertError(t, err, "Marshaled an extension list with a too-long extension")
// Test marshal failure on extensions data too long
out, err = extListTooLongIn.Marshal()
assertError(t, err, "Marshaled an extension list that's too long")
// Test successful unmarshal
var extList ExtensionList
extLen, err := extList.Unmarshal(extListValid)
assertNotError(t, err, "Failed to unmarshal a valid extension list")
assertEquals(t, extLen, len(extListValid))
assertDeepEquals(t, extList, extListValidIn)
// Test successful marshal of the empty list
extLen, err = extList.Unmarshal(extListEmpty)
assertNotError(t, err, "Failed to unmarshal a valid extension list")
assertEquals(t, extLen, len(extListEmpty))
assertDeepEquals(t, extList, ExtensionList{})
// Test unmarshal failure on no header
extLen, err = extList.Unmarshal(extListNoHeader)
assertError(t, err, "Unmarshaled a list with no header")
// Test unmarshal failure on incorrect outer length
extLen, err = extList.Unmarshal(extListOverflowOuter)
assertError(t, err, "Unmarshaled a list a too-long outer length")
// Test unmarhsal failure on incorrect inner length
extLen, err = extList.Unmarshal(extListOverflowInner)
assertError(t, err, "Unmarshaled a list a too-long inner length")
}
func TestExtensionAdd(t *testing.T) {
// Test successful add
el := ExtensionList{}
err := el.Add(keyShareServerIn)
assertNotError(t, err, "Failed to add valid extension")
assertDeepEquals(t, el, extListKeyShareIn)
// Test successful add to a nil list
var elp *ExtensionList
err = elp.Add(keyShareServerIn)
assertNotError(t, err, "Failed to add valid extension")
// Test successful replace
err = el.Add(keyShareClientIn)
assertNotError(t, err, "Failed to replace extension")
assertDeepEquals(t, el, extListKeyShareClientIn)
// Test add failure on marshal failure
el = ExtensionList{}
err = el.Add(keyShareInvalidIn)
assertError(t, err, "Added an invalid extension")
}
func TestExtensionFind(t *testing.T) {
// Test successful find
ks := KeyShareExtension{HandshakeType: HandshakeTypeServerHello}
found, err := extListKeyShareIn.Find(&ks)
assertNotError(t, err, "Failed to parse valid extension")
assert(t, found, "Failed to find a valid extension")
// Test find failure on absent extension
var sg SupportedGroupsExtension
found, err = extListKeyShareIn.Find(&sg)
assertNotError(t, err, "Error on missing extension")
assert(t, !found, "Found an extension that's not present")
// Test find failure on unmarshal failure
found, err = extListInvalidIn.Find(&ks)
assert(t, found, "Didn't found an extension that's not valid")
assertError(t, err, "Parsed an invalid extension")
}
func TestExtensionParse(t *testing.T) {
// Parse cases
validExtensions := ExtensionList{
Extension{
ExtensionType: ExtensionTypeKeyShare,
ExtensionData: keyShareClientRaw,
},
Extension{
ExtensionType: ExtensionTypeSupportedVersions,
ExtensionData: unhex(supportedVersionsClientHex),
},
}
// In template
ks := &KeyShareExtension{HandshakeType: HandshakeTypeClientHello}
sv := &SupportedVersionsExtension{HandshakeType: HandshakeTypeClientHello}
extensionsIn := []ExtensionBody{ks, sv}
found, err := validExtensions.Parse(extensionsIn)
assertNotError(t, err, "Failed to parse valid extensions")
assert(t, found[ExtensionTypeKeyShare], "Failed to find key share")
assert(t, found[ExtensionTypeSupportedVersions], "Failed to find supported versions")
// Now a version with an error
sv.HandshakeType = HandshakeTypeServerHello
found, err = validExtensions.Parse(extensionsIn)
assertError(t, err, "Parsed bogus extension")
assertEquals(t, len(found), 0)
sv.HandshakeType = HandshakeTypeClientHello
// Two copies.
dupExtensions := append(validExtensions,
Extension{
ExtensionType: ExtensionTypeSupportedVersions,
ExtensionData: unhex(supportedVersionsClientHex),
},
)
found, err = dupExtensions.Parse(extensionsIn)
assertError(t, err, "Parsed duplicate extension")
assertEquals(t, len(found), 0)
}
func TestServerNameMarshalUnmarshal(t *testing.T) {
serverNameHex := validExtensionTestCases[ExtensionTypeServerName].marshaledHex
serverName := unhex(serverNameHex)
// Test unmarshal failure on underlying unmarshal failure
var sni ServerNameExtension
_, err := sni.Unmarshal(serverName[:1])
assertError(t, err, "Unmarshaled a truncated ServerName")
// Test unmarshal failure on a name that is not a host_name
serverName[2]++
_, err = sni.Unmarshal(serverName)
assertError(t, err, "Unmarshaled a ServerName that was not a host_name")
serverName[2]--
}
func TestSupportedVersionsMarshalUnmarshal(t *testing.T) {
supportedVersionsClient := unhex(supportedVersionsClientHex)
supportedVersionsServer := unhex(supportedVersionsServerHex)
// Test extension type
assertEquals(t, SupportedVersionsExtension{}.Type(), ExtensionTypeSupportedVersions)
// Test successful marshal (client side)
out, err := supportedVersionsClientIn.Marshal()
assertNotError(t, err, "Failed to marshal valid SupportedVersions (client)")
assertByteEquals(t, out, supportedVersionsClient)
// Test successful marshal (server side)
out, err = supportedVersionsServerIn.Marshal()
assertNotError(t, err, "Failed to marshal valid SupportedVersions (server)")
assertByteEquals(t, out, supportedVersionsServer)
// Test marshal failure on an unsupported handshake type
supportedVersionsServerIn.HandshakeType = HandshakeTypeCertificate
out, err = supportedVersionsServerIn.Marshal()
assertError(t, err, "Marshaled key an unsupported handshake type")
supportedVersionsServerIn.HandshakeType = HandshakeTypeServerHello
// Test successful unmarshal (client)
sv := SupportedVersionsExtension{HandshakeType: HandshakeTypeClientHello}
read, err := sv.Unmarshal(supportedVersionsClient)
assertNotError(t, err, "Failed to unmarshal valid SupportedVersions (client)")
assertDeepEquals(t, &sv, supportedVersionsClientIn)
assertEquals(t, read, len(supportedVersionsClient))
// Test successful unmarshal (server)
sv = SupportedVersionsExtension{HandshakeType: HandshakeTypeServerHello}
read, err = sv.Unmarshal(supportedVersionsServer)
assertNotError(t, err, "Failed to unmarshal valid SupportedVersions (server)")
assertDeepEquals(t, &sv, supportedVersionsServerIn)
assertEquals(t, read, len(supportedVersionsServer))
// Test unmarshal failure on underlying unmarshal failure (client)
sv = SupportedVersionsExtension{HandshakeType: HandshakeTypeClientHello}
read, err = sv.Unmarshal(supportedVersionsClient[:1])
assertError(t, err, "Unmarshaled a SupportedVersions without a length")
// Test unmarshal failure on underlying unmarshal failure (server)
sv = SupportedVersionsExtension{HandshakeType: HandshakeTypeServerHello}
read, err = sv.Unmarshal(supportedVersionsServer[:1])
assertError(t, err, "Unmarshaled a SupportedVersions that's too short")
}
func TestKeyShareMarshalUnmarshal(t *testing.T) {
keyShareClient := unhex(keyShareClientHex)
keyShareHelloRetry := unhex(keyShareHelloRetryHex)
keyShareServer := unhex(keyShareServerHex)
keyShareInvalid := unhex(keyShareInvalidHex)
// Test extension type
assertEquals(t, KeyShareExtension{}.Type(), ExtensionTypeKeyShare)
// Test successful marshal (client side)
out, err := keyShareClientIn.Marshal()
assertNotError(t, err, "Failed to marshal valid KeyShare (client)")
assertByteEquals(t, out, keyShareClient)
// Test successful marshal (hello retry)
out, err = keyShareHelloRetryIn.Marshal()
assertNotError(t, err, "Failed to marshal valid KeyShare (hello retry)")
assertByteEquals(t, out, keyShareHelloRetry)
// Test successful marshal (server side)
out, err = keyShareServerIn.Marshal()
assertNotError(t, err, "Failed to marshal valid KeyShare (server)")
assertByteEquals(t, out, keyShareServer)
// Test marshal failure on HRR trying to send shares
keyShareClientIn.HandshakeType = HandshakeTypeHelloRetryRequest
out, err = keyShareClientIn.Marshal()
assertError(t, err, "Marshaled key shares for hello retry request")
keyShareClientIn.HandshakeType = HandshakeTypeClientHello
// Test marshal failure on server trying to send multiple
keyShareClientIn.HandshakeType = HandshakeTypeServerHello
out, err = keyShareClientIn.Marshal()
assertError(t, err, "Marshaled multiple key shares for server")
keyShareClientIn.HandshakeType = HandshakeTypeClientHello
// Test marshal failure on an incorrect key share size (server)
out, err = keyShareInvalidIn.Marshal()
assertError(t, err, "Marshaled a server key share with a wrong-size key")
// Test marshal failure on an incorrect key share size (client)
keyShareInvalidIn.HandshakeType = HandshakeTypeClientHello
out, err = keyShareInvalidIn.Marshal()
assertError(t, err, "Marshaled key shares for hello retry request")
keyShareInvalidIn.HandshakeType = HandshakeTypeServerHello
// Test marshal failure on an unsupported handshake type
keyShareInvalidIn.HandshakeType = HandshakeTypeCertificate
out, err = keyShareInvalidIn.Marshal()
assertError(t, err, "Marshaled key an unsupported handshake type")
keyShareInvalidIn.HandshakeType = HandshakeTypeServerHello
// Test successful unmarshal (client)
ks := KeyShareExtension{HandshakeType: HandshakeTypeClientHello}
read, err := ks.Unmarshal(keyShareClient)
assertNotError(t, err, "Failed to unmarshal valid KeyShare (client)")
assertDeepEquals(t, &ks, keyShareClientIn)
assertEquals(t, read, len(keyShareClient))
// Test successful unmarshal (hello retry)
ks = KeyShareExtension{HandshakeType: HandshakeTypeHelloRetryRequest}
read, err = ks.Unmarshal(keyShareHelloRetry)
assertNotError(t, err, "Failed to unmarshal valid KeyShare (hello retry)")
assertDeepEquals(t, &ks, keyShareHelloRetryIn)
assertEquals(t, read, len(keyShareHelloRetry))
// Test successful unmarshal (server)
ks = KeyShareExtension{HandshakeType: HandshakeTypeServerHello}
read, err = ks.Unmarshal(keyShareServer)
assertNotError(t, err, "Failed to unmarshal valid KeyShare (server)")
assertDeepEquals(t, &ks, keyShareServerIn)
assertEquals(t, read, len(keyShareServer))
// Test unmarshal failure on underlying unmarshal failure (client)
ks = KeyShareExtension{HandshakeType: HandshakeTypeClientHello}
read, err = ks.Unmarshal(keyShareClient[:1])
assertError(t, err, "Unmarshaled a KeyShare without a length")
// Test unmarshal failure on underlying unmarshal failure (hello retry)
ks = KeyShareExtension{HandshakeType: HandshakeTypeHelloRetryRequest}
read, err = ks.Unmarshal(keyShareHelloRetry[:1])
assertError(t, err, "Unmarshaled a KeyShare without a length")
// Test unmarshal failure on underlying unmarshal failure (server)
ks = KeyShareExtension{HandshakeType: HandshakeTypeServerHello}
read, err = ks.Unmarshal(keyShareServer[:1])
assertError(t, err, "Unmarshaled a KeyShare without a length")
// Test unmarshal failure on an incorrect key share size
ks = KeyShareExtension{HandshakeType: HandshakeTypeClientHello}
read, err = ks.Unmarshal(keyShareInvalid)
assertError(t, err, "Unmarshaled a key share with a wrong-size key")
// Test unmarshal failure on an unsupported handshake type
ks = KeyShareExtension{HandshakeType: HandshakeTypeCertificate}
read, err = ks.Unmarshal(keyShareInvalid)
assertError(t, err, "Unmarshaled a key share with an unsupported handshake type")
}
func TestPreSharedKeyMarshalUnmarshal(t *testing.T) {
pskClient := unhex(pskClientHex)
pskClientUnbalanced := unhex(pskClientUnbalancedHex)
pskServer := unhex(pskServerHex)
// Test extension type
assertEquals(t, PreSharedKeyExtension{}.Type(), ExtensionTypePreSharedKey)
// Test successful marshal (client side)
out, err := pskClientIn.Marshal()
assertNotError(t, err, "Failed to marshal valid KeyShare (client)")
assertByteEquals(t, out, pskClient)
// Test successful marshal (server side)
out, err = pskServerIn.Marshal()
assertNotError(t, err, "Failed to marshal valid KeyShare (server)")
assertByteEquals(t, out, pskServer)
// Test marshal failure on server trying to send multiple
pskServerIn.Identities = pskClientIn.Identities
out, err = pskServerIn.Marshal()
assertError(t, err, "Marshaled multiple key shares for server")
pskServerIn.Identities = nil
// Test marshal failure on unsupported handshake type
out, err = pskInvalidIn.Marshal()
assertError(t, err, "Marshaled PSK for unsupported handshake type")
// Test successful unmarshal (client side)
psk := PreSharedKeyExtension{HandshakeType: HandshakeTypeClientHello}
read, err := psk.Unmarshal(pskClient)
assertNotError(t, err, "Failed to unmarshal valid KeyShare (client)")
assertDeepEquals(t, &psk, pskClientIn)
assertEquals(t, read, len(pskClient))
// Test successful unmarshal (server side)
psk = PreSharedKeyExtension{HandshakeType: HandshakeTypeServerHello}
read, err = psk.Unmarshal(pskServer)
assertNotError(t, err, "Failed to unmarshal valid KeyShare (server)")
assertDeepEquals(t, &psk, pskServerIn)
assertEquals(t, read, len(pskServer))
// Test unmarshal failure on underlying unmarshal failure (client)
psk = PreSharedKeyExtension{HandshakeType: HandshakeTypeClientHello}
read, err = psk.Unmarshal(pskClient[:1])
assertError(t, err, "Unmarshaled a KeyShare without a length")
// Test unmarshal failure on underlying unmarshal failure (server)
psk = PreSharedKeyExtension{HandshakeType: HandshakeTypeServerHello}
read, err = psk.Unmarshal(pskClient[:1])
assertError(t, err, "Unmarshaled a KeyShare without a length")
// Test unmarshal failure on unsupported handshake type
psk = PreSharedKeyExtension{HandshakeType: HandshakeTypeCertificate}
read, err = psk.Unmarshal(pskClient)
assertError(t, err, "Unmarshaled a KeyShare with an unsupported handshake type")
// Test unmarshal failure on unbalanced identities/binders lengths (client)
psk = PreSharedKeyExtension{HandshakeType: HandshakeTypeClientHello}
read, err = psk.Unmarshal(pskClientUnbalanced)
assertError(t, err, "Unmarshaled a KeyShare unbalanced lengths")
// Test finding an identity that is present
id := []byte{1, 2, 3, 4}
binder, found := pskClientIn.HasIdentity(id)
assert(t, found, "Failed to find present identity")
assertByteEquals(t, binder, bytes.Repeat([]byte{0xA0}, 32))
// Test finding an identity that is not present
id = []byte{1, 2, 4, 3}
_, found = pskClientIn.HasIdentity(id)
assert(t, !found, "Found a not-present identity")
}
func TestALPNMarshalUnmarshal(t *testing.T) {
alpnHex := validExtensionTestCases[ExtensionTypeALPN].marshaledHex
alpn := unhex(alpnHex)
// Test unmarshal failure on underlying unmarshal failure
ext := &ALPNExtension{}
_, err := ext.Unmarshal(alpn[:1])
assertError(t, err, "Unmarshaled a ALPN extension with a too-long interior length")
}

147
vendor/github.com/bifurcation/mint/ffdhe.go generated vendored Normal file
View File

@ -0,0 +1,147 @@
package mint
import (
"encoding/hex"
"math/big"
)
var (
finiteFieldPrime2048hex = "FFFFFFFFFFFFFFFFADF85458A2BB4A9AAFDC5620273D3CF1" +
"D8B9C583CE2D3695A9E13641146433FBCC939DCE249B3EF9" +
"7D2FE363630C75D8F681B202AEC4617AD3DF1ED5D5FD6561" +
"2433F51F5F066ED0856365553DED1AF3B557135E7F57C935" +
"984F0C70E0E68B77E2A689DAF3EFE8721DF158A136ADE735" +
"30ACCA4F483A797ABC0AB182B324FB61D108A94BB2C8E3FB" +
"B96ADAB760D7F4681D4F42A3DE394DF4AE56EDE76372BB19" +
"0B07A7C8EE0A6D709E02FCE1CDF7E2ECC03404CD28342F61" +
"9172FE9CE98583FF8E4F1232EEF28183C3FE3B1B4C6FAD73" +
"3BB5FCBC2EC22005C58EF1837D1683B2C6F34A26C1B2EFFA" +
"886B423861285C97FFFFFFFFFFFFFFFF"
finiteFieldPrime2048bytes, _ = hex.DecodeString(finiteFieldPrime2048hex)
finiteFieldPrime2048 = big.NewInt(0).SetBytes(finiteFieldPrime2048bytes)
finiteFieldPrime3072hex = "FFFFFFFFFFFFFFFFADF85458A2BB4A9AAFDC5620273D3CF1" +
"D8B9C583CE2D3695A9E13641146433FBCC939DCE249B3EF9" +
"7D2FE363630C75D8F681B202AEC4617AD3DF1ED5D5FD6561" +
"2433F51F5F066ED0856365553DED1AF3B557135E7F57C935" +
"984F0C70E0E68B77E2A689DAF3EFE8721DF158A136ADE735" +
"30ACCA4F483A797ABC0AB182B324FB61D108A94BB2C8E3FB" +
"B96ADAB760D7F4681D4F42A3DE394DF4AE56EDE76372BB19" +
"0B07A7C8EE0A6D709E02FCE1CDF7E2ECC03404CD28342F61" +
"9172FE9CE98583FF8E4F1232EEF28183C3FE3B1B4C6FAD73" +
"3BB5FCBC2EC22005C58EF1837D1683B2C6F34A26C1B2EFFA" +
"886B4238611FCFDCDE355B3B6519035BBC34F4DEF99C0238" +
"61B46FC9D6E6C9077AD91D2691F7F7EE598CB0FAC186D91C" +
"AEFE130985139270B4130C93BC437944F4FD4452E2D74DD3" +
"64F2E21E71F54BFF5CAE82AB9C9DF69EE86D2BC522363A0D" +
"ABC521979B0DEADA1DBF9A42D5C4484E0ABCD06BFA53DDEF" +
"3C1B20EE3FD59D7C25E41D2B66C62E37FFFFFFFFFFFFFFFF"
finiteFieldPrime3072bytes, _ = hex.DecodeString(finiteFieldPrime3072hex)
finiteFieldPrime3072 = big.NewInt(0).SetBytes(finiteFieldPrime3072bytes)
finiteFieldPrime4096hex = "FFFFFFFFFFFFFFFFADF85458A2BB4A9AAFDC5620273D3CF1" +
"D8B9C583CE2D3695A9E13641146433FBCC939DCE249B3EF9" +
"7D2FE363630C75D8F681B202AEC4617AD3DF1ED5D5FD6561" +
"2433F51F5F066ED0856365553DED1AF3B557135E7F57C935" +
"984F0C70E0E68B77E2A689DAF3EFE8721DF158A136ADE735" +
"30ACCA4F483A797ABC0AB182B324FB61D108A94BB2C8E3FB" +
"B96ADAB760D7F4681D4F42A3DE394DF4AE56EDE76372BB19" +
"0B07A7C8EE0A6D709E02FCE1CDF7E2ECC03404CD28342F61" +
"9172FE9CE98583FF8E4F1232EEF28183C3FE3B1B4C6FAD73" +
"3BB5FCBC2EC22005C58EF1837D1683B2C6F34A26C1B2EFFA" +
"886B4238611FCFDCDE355B3B6519035BBC34F4DEF99C0238" +
"61B46FC9D6E6C9077AD91D2691F7F7EE598CB0FAC186D91C" +
"AEFE130985139270B4130C93BC437944F4FD4452E2D74DD3" +
"64F2E21E71F54BFF5CAE82AB9C9DF69EE86D2BC522363A0D" +
"ABC521979B0DEADA1DBF9A42D5C4484E0ABCD06BFA53DDEF" +
"3C1B20EE3FD59D7C25E41D2B669E1EF16E6F52C3164DF4FB" +
"7930E9E4E58857B6AC7D5F42D69F6D187763CF1D55034004" +
"87F55BA57E31CC7A7135C886EFB4318AED6A1E012D9E6832" +
"A907600A918130C46DC778F971AD0038092999A333CB8B7A" +
"1A1DB93D7140003C2A4ECEA9F98D0ACC0A8291CDCEC97DCF" +
"8EC9B55A7F88A46B4DB5A851F44182E1C68A007E5E655F6A" +
"FFFFFFFFFFFFFFFF"
finiteFieldPrime4096bytes, _ = hex.DecodeString(finiteFieldPrime4096hex)
finiteFieldPrime4096 = big.NewInt(0).SetBytes(finiteFieldPrime4096bytes)
finiteFieldPrime6144hex = "FFFFFFFFFFFFFFFFADF85458A2BB4A9AAFDC5620273D3CF1" +
"D8B9C583CE2D3695A9E13641146433FBCC939DCE249B3EF9" +
"7D2FE363630C75D8F681B202AEC4617AD3DF1ED5D5FD6561" +
"2433F51F5F066ED0856365553DED1AF3B557135E7F57C935" +
"984F0C70E0E68B77E2A689DAF3EFE8721DF158A136ADE735" +
"30ACCA4F483A797ABC0AB182B324FB61D108A94BB2C8E3FB" +
"B96ADAB760D7F4681D4F42A3DE394DF4AE56EDE76372BB19" +
"0B07A7C8EE0A6D709E02FCE1CDF7E2ECC03404CD28342F61" +
"9172FE9CE98583FF8E4F1232EEF28183C3FE3B1B4C6FAD73" +
"3BB5FCBC2EC22005C58EF1837D1683B2C6F34A26C1B2EFFA" +
"886B4238611FCFDCDE355B3B6519035BBC34F4DEF99C0238" +
"61B46FC9D6E6C9077AD91D2691F7F7EE598CB0FAC186D91C" +
"AEFE130985139270B4130C93BC437944F4FD4452E2D74DD3" +
"64F2E21E71F54BFF5CAE82AB9C9DF69EE86D2BC522363A0D" +
"ABC521979B0DEADA1DBF9A42D5C4484E0ABCD06BFA53DDEF" +
"3C1B20EE3FD59D7C25E41D2B669E1EF16E6F52C3164DF4FB" +
"7930E9E4E58857B6AC7D5F42D69F6D187763CF1D55034004" +
"87F55BA57E31CC7A7135C886EFB4318AED6A1E012D9E6832" +
"A907600A918130C46DC778F971AD0038092999A333CB8B7A" +
"1A1DB93D7140003C2A4ECEA9F98D0ACC0A8291CDCEC97DCF" +
"8EC9B55A7F88A46B4DB5A851F44182E1C68A007E5E0DD902" +
"0BFD64B645036C7A4E677D2C38532A3A23BA4442CAF53EA6" +
"3BB454329B7624C8917BDD64B1C0FD4CB38E8C334C701C3A" +
"CDAD0657FCCFEC719B1F5C3E4E46041F388147FB4CFDB477" +
"A52471F7A9A96910B855322EDB6340D8A00EF092350511E3" +
"0ABEC1FFF9E3A26E7FB29F8C183023C3587E38DA0077D9B4" +
"763E4E4B94B2BBC194C6651E77CAF992EEAAC0232A281BF6" +
"B3A739C1226116820AE8DB5847A67CBEF9C9091B462D538C" +
"D72B03746AE77F5E62292C311562A846505DC82DB854338A" +
"E49F5235C95B91178CCF2DD5CACEF403EC9D1810C6272B04" +
"5B3B71F9DC6B80D63FDD4A8E9ADB1E6962A69526D43161C1" +
"A41D570D7938DAD4A40E329CD0E40E65FFFFFFFFFFFFFFFF"
finiteFieldPrime6144bytes, _ = hex.DecodeString(finiteFieldPrime6144hex)
finiteFieldPrime6144 = big.NewInt(0).SetBytes(finiteFieldPrime6144bytes)
finiteFieldPrime8192hex = "FFFFFFFFFFFFFFFFADF85458A2BB4A9AAFDC5620273D3CF1" +
"D8B9C583CE2D3695A9E13641146433FBCC939DCE249B3EF9" +
"7D2FE363630C75D8F681B202AEC4617AD3DF1ED5D5FD6561" +
"2433F51F5F066ED0856365553DED1AF3B557135E7F57C935" +
"984F0C70E0E68B77E2A689DAF3EFE8721DF158A136ADE735" +
"30ACCA4F483A797ABC0AB182B324FB61D108A94BB2C8E3FB" +
"B96ADAB760D7F4681D4F42A3DE394DF4AE56EDE76372BB19" +
"0B07A7C8EE0A6D709E02FCE1CDF7E2ECC03404CD28342F61" +
"9172FE9CE98583FF8E4F1232EEF28183C3FE3B1B4C6FAD73" +
"3BB5FCBC2EC22005C58EF1837D1683B2C6F34A26C1B2EFFA" +
"886B4238611FCFDCDE355B3B6519035BBC34F4DEF99C0238" +
"61B46FC9D6E6C9077AD91D2691F7F7EE598CB0FAC186D91C" +
"AEFE130985139270B4130C93BC437944F4FD4452E2D74DD3" +
"64F2E21E71F54BFF5CAE82AB9C9DF69EE86D2BC522363A0D" +
"ABC521979B0DEADA1DBF9A42D5C4484E0ABCD06BFA53DDEF" +
"3C1B20EE3FD59D7C25E41D2B669E1EF16E6F52C3164DF4FB" +
"7930E9E4E58857B6AC7D5F42D69F6D187763CF1D55034004" +
"87F55BA57E31CC7A7135C886EFB4318AED6A1E012D9E6832" +
"A907600A918130C46DC778F971AD0038092999A333CB8B7A" +
"1A1DB93D7140003C2A4ECEA9F98D0ACC0A8291CDCEC97DCF" +
"8EC9B55A7F88A46B4DB5A851F44182E1C68A007E5E0DD902" +
"0BFD64B645036C7A4E677D2C38532A3A23BA4442CAF53EA6" +
"3BB454329B7624C8917BDD64B1C0FD4CB38E8C334C701C3A" +
"CDAD0657FCCFEC719B1F5C3E4E46041F388147FB4CFDB477" +
"A52471F7A9A96910B855322EDB6340D8A00EF092350511E3" +
"0ABEC1FFF9E3A26E7FB29F8C183023C3587E38DA0077D9B4" +
"763E4E4B94B2BBC194C6651E77CAF992EEAAC0232A281BF6" +
"B3A739C1226116820AE8DB5847A67CBEF9C9091B462D538C" +
"D72B03746AE77F5E62292C311562A846505DC82DB854338A" +
"E49F5235C95B91178CCF2DD5CACEF403EC9D1810C6272B04" +
"5B3B71F9DC6B80D63FDD4A8E9ADB1E6962A69526D43161C1" +
"A41D570D7938DAD4A40E329CCFF46AAA36AD004CF600C838" +
"1E425A31D951AE64FDB23FCEC9509D43687FEB69EDD1CC5E" +
"0B8CC3BDF64B10EF86B63142A3AB8829555B2F747C932665" +
"CB2C0F1CC01BD70229388839D2AF05E454504AC78B758282" +
"2846C0BA35C35F5C59160CC046FD8251541FC68C9C86B022" +
"BB7099876A460E7451A8A93109703FEE1C217E6C3826E52C" +
"51AA691E0E423CFC99E9E31650C1217B624816CDAD9A95F9" +
"D5B8019488D9C0A0A1FE3075A577E23183F81D4A3F2FA457" +
"1EFC8CE0BA8A4FE8B6855DFE72B0A66EDED2FBABFBE58A30" +
"FAFABE1C5D71A87E2F741EF8C1FE86FEA6BBFDE530677F0D" +
"97D11D49F7A8443D0822E506A9F4614E011E2A94838FF88C" +
"D68C8BB7C5C6424CFFFFFFFFFFFFFFFF"
finiteFieldPrime8192bytes, _ = hex.DecodeString(finiteFieldPrime8192hex)
finiteFieldPrime8192 = big.NewInt(0).SetBytes(finiteFieldPrime8192bytes)
)

98
vendor/github.com/bifurcation/mint/frame-reader.go generated vendored Normal file
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@ -0,0 +1,98 @@
// Read a generic "framed" packet consisting of a header and a
// This is used for both TLS Records and TLS Handshake Messages
package mint
type framing interface {
headerLen() int
defaultReadLen() int
frameLen(hdr []byte) (int, error)
}
const (
kFrameReaderHdr = 0
kFrameReaderBody = 1
)
type frameNextAction func(f *frameReader) error
type frameReader struct {
details framing
state uint8
header []byte
body []byte
working []byte
writeOffset int
remainder []byte
}
func newFrameReader(d framing) *frameReader {
hdr := make([]byte, d.headerLen())
return &frameReader{
d,
kFrameReaderHdr,
hdr,
nil,
hdr,
0,
nil,
}
}
func dup(a []byte) []byte {
r := make([]byte, len(a))
copy(r, a)
return r
}
func (f *frameReader) needed() int {
tmp := (len(f.working) - f.writeOffset) - len(f.remainder)
if tmp < 0 {
return 0
}
return tmp
}
func (f *frameReader) addChunk(in []byte) {
// Append to the buffer.
logf(logTypeFrameReader, "Appending %v", len(in))
f.remainder = append(f.remainder, in...)
}
func (f *frameReader) process() (hdr []byte, body []byte, err error) {
for f.needed() == 0 {
logf(logTypeFrameReader, "%v bytes needed for next block", len(f.working)-f.writeOffset)
// Fill out our working block
copied := copy(f.working[f.writeOffset:], f.remainder)
f.remainder = f.remainder[copied:]
f.writeOffset += copied
if f.writeOffset < len(f.working) {
logf(logTypeVerbose, "Read would have blocked 1")
return nil, nil, WouldBlock
}
// Reset the write offset, because we are now full.
f.writeOffset = 0
// We have read a full frame
if f.state == kFrameReaderBody {
logf(logTypeFrameReader, "Returning frame hdr=%#x len=%d buffered=%d", f.header, len(f.body), len(f.remainder))
f.state = kFrameReaderHdr
f.working = f.header
return dup(f.header), dup(f.body), nil
}
// We have read the header
bodyLen, err := f.details.frameLen(f.header)
if err != nil {
return nil, nil, err
}
logf(logTypeFrameReader, "Processed header, body len = %v", bodyLen)
f.body = make([]byte, bodyLen)
f.working = f.body
f.writeOffset = 0
f.state = kFrameReaderBody
}
logf(logTypeVerbose, "Read would have blocked 2")
return nil, nil, WouldBlock
}

View File

@ -0,0 +1,75 @@
package mint
import (
"testing"
)
var kTestFrame = []byte{0x00, 0x05, 'a', 'b', 'c', 'd', 'e'}
var kTestEmptyFrame = []byte{0x00, 0x00}
type simpleHeader struct{}
func (h simpleHeader) headerLen() int {
return 2
}
func (h simpleHeader) defaultReadLen() int {
return 1024
}
func (h simpleHeader) frameLen(hdr []byte) (int, error) {
if len(hdr) != 2 {
panic("Assert!")
}
return (int(hdr[0]) << 8) | int(hdr[1]), nil
}
func checkFrame(t *testing.T, hdr []byte, body []byte) {
assertByteEquals(t, hdr, kTestFrame[:2])
assertByteEquals(t, body, kTestFrame[2:])
}
func TestFrameReaderFullFrame(t *testing.T) {
r := newFrameReader(simpleHeader{})
r.addChunk(kTestFrame)
hdr, body, err := r.process()
assertNotError(t, err, "Couldn't read frame 1")
checkFrame(t, hdr, body)
r.addChunk(kTestFrame)
hdr, body, err = r.process()
assertNotError(t, err, "Couldn't read frame 2")
checkFrame(t, hdr, body)
}
func TestFrameReaderTwoFrames(t *testing.T) {
r := newFrameReader(simpleHeader{})
r.addChunk(kTestFrame)
r.addChunk(kTestFrame)
hdr, body, err := r.process()
assertNotError(t, err, "Couldn't read frame 1")
checkFrame(t, hdr, body)
hdr, body, err = r.process()
assertNotError(t, err, "Couldn't read frame 2")
checkFrame(t, hdr, body)
}
func TestFrameReaderTrickle(t *testing.T) {
r := newFrameReader(simpleHeader{})
var hdr, body []byte
var err error
for i := 0; i <= len(kTestFrame); i += 1 {
hdr, body, err = r.process()
if i < len(kTestFrame) {
assertEquals(t, err, WouldBlock)
assertEquals(t, 0, len(hdr))
assertEquals(t, 0, len(body))
r.addChunk(kTestFrame[i : i+1])
}
}
assertNil(t, err, "Error reading")
checkFrame(t, hdr, body)
}

89
vendor/github.com/bifurcation/mint/fuzz_test.go generated vendored Normal file
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@ -0,0 +1,89 @@
package mint
import (
"math/rand"
"testing"
)
var structs = []interface{}{
// Handshake messages
&ClientHelloBody{},
&ServerHelloBody{},
&FinishedBody{VerifyDataLen: 32},
&EncryptedExtensionsBody{},
&CertificateBody{},
&CertificateVerifyBody{},
// Extensions
&Extension{},
&ExtensionList{},
new(ServerNameExtension),
&ALPNExtension{},
&KeyShareExtension{HandshakeType: HandshakeTypeClientHello},
&KeyShareExtension{HandshakeType: HandshakeTypeHelloRetryRequest},
&KeyShareExtension{HandshakeType: HandshakeTypeServerHello},
&SupportedGroupsExtension{},
&SignatureAlgorithmsExtension{},
&PreSharedKeyExtension{HandshakeType: HandshakeTypeClientHello},
&PreSharedKeyExtension{HandshakeType: HandshakeTypeServerHello},
&SupportedVersionsExtension{},
}
var validHex = []string{
// Handshake messages
chValidHex,
shValidHex,
finValidHex,
encExtValidHex,
certValidHex,
certVerifyValidHex,
// Extensions
extValidHex,
extListValidHex,
validExtensionTestCases[ExtensionTypeServerName].marshaledHex,
validExtensionTestCases[ExtensionTypeALPN].marshaledHex,
keyShareClientHex,
keyShareHelloRetryHex,
keyShareServerHex,
validExtensionTestCases[ExtensionTypeSupportedGroups].marshaledHex,
validExtensionTestCases[ExtensionTypeSignatureAlgorithms].marshaledHex,
pskClientHex,
pskServerHex,
validExtensionTestCases[ExtensionTypeSupportedVersions].marshaledHex,
}
func randomBytes(n int, rand *rand.Rand) []byte {
r := make([]byte, n)
for i := 0; i < n; i++ {
r[i] = byte(rand.Int31())
}
return r
}
type unmarshaler interface {
Unmarshal([]byte) (int, error)
}
// This just looks for crashes due to bounds errors etc.
func TestFuzz(t *testing.T) {
rand := rand.New(rand.NewSource(0))
for i, iface := range structs {
m := iface.(unmarshaler)
// Provide random data
for j := 0; j < 100; j++ {
len := rand.Intn(1024)
bytes := randomBytes(len, rand)
m.Unmarshal(bytes)
}
// Provide partially valid data
valid := unhex(validHex[i])
random := randomBytes(10*len(valid), rand)
for cut := 0; cut < len(valid)-1; cut++ {
testCase := append(valid[:cut], random...)
m.Unmarshal(testCase)
}
}
}

495
vendor/github.com/bifurcation/mint/handshake-layer.go generated vendored Normal file
View File

@ -0,0 +1,495 @@
package mint
import (
"fmt"
"io"
"net"
)
const (
handshakeHeaderLenTLS = 4 // handshake message header length
handshakeHeaderLenDTLS = 12 // handshake message header length
maxHandshakeMessageLen = 1 << 24 // max handshake message length
)
// struct {
// HandshakeType msg_type; /* handshake type */
// uint24 length; /* bytes in message */
// select (HandshakeType) {
// ...
// } body;
// } Handshake;
//
// We do the select{...} part in a different layer, so we treat the
// actual message body as opaque:
//
// struct {
// HandshakeType msg_type;
// opaque msg<0..2^24-1>
// } Handshake;
//
type HandshakeMessage struct {
msgType HandshakeType
seq uint32
body []byte
datagram bool
offset uint32 // Used for DTLS
length uint32
records []uint64 // Used for DTLS
cipher *cipherState
}
// Note: This could be done with the `syntax` module, using the simplified
// syntax as discussed above. However, since this is so simple, there's not
// much benefit to doing so.
// When datagram is set, we marshal this as a whole DTLS record.
func (hm *HandshakeMessage) Marshal() []byte {
if hm == nil {
return []byte{}
}
fragLen := len(hm.body)
var data []byte
if hm.datagram {
data = make([]byte, handshakeHeaderLenDTLS+fragLen)
} else {
data = make([]byte, handshakeHeaderLenTLS+fragLen)
}
tmp := data
tmp = encodeUint(uint64(hm.msgType), 1, tmp)
tmp = encodeUint(uint64(hm.length), 3, tmp)
if hm.datagram {
tmp = encodeUint(uint64(hm.seq), 2, tmp)
tmp = encodeUint(uint64(hm.offset), 3, tmp)
tmp = encodeUint(uint64(fragLen), 3, tmp)
}
copy(tmp, hm.body)
return data
}
func (hm HandshakeMessage) ToBody() (HandshakeMessageBody, error) {
logf(logTypeHandshake, "HandshakeMessage.toBody [%d] [%x]", hm.msgType, hm.body)
var body HandshakeMessageBody
switch hm.msgType {
case HandshakeTypeClientHello:
body = new(ClientHelloBody)
case HandshakeTypeServerHello:
body = new(ServerHelloBody)
case HandshakeTypeEncryptedExtensions:
body = new(EncryptedExtensionsBody)
case HandshakeTypeCertificate:
body = new(CertificateBody)
case HandshakeTypeCertificateRequest:
body = new(CertificateRequestBody)
case HandshakeTypeCertificateVerify:
body = new(CertificateVerifyBody)
case HandshakeTypeFinished:
body = &FinishedBody{VerifyDataLen: len(hm.body)}
case HandshakeTypeNewSessionTicket:
body = new(NewSessionTicketBody)
case HandshakeTypeKeyUpdate:
body = new(KeyUpdateBody)
case HandshakeTypeEndOfEarlyData:
body = new(EndOfEarlyDataBody)
default:
return body, fmt.Errorf("tls.handshakemessage: Unsupported body type")
}
err := safeUnmarshal(body, hm.body)
return body, err
}
func (h *HandshakeLayer) HandshakeMessageFromBody(body HandshakeMessageBody) (*HandshakeMessage, error) {
data, err := body.Marshal()
if err != nil {
return nil, err
}
m := &HandshakeMessage{
msgType: body.Type(),
body: data,
seq: h.msgSeq,
datagram: h.datagram,
length: uint32(len(data)),
}
h.msgSeq++
return m, nil
}
type HandshakeLayer struct {
nonblocking bool // Should we operate in nonblocking mode
conn *RecordLayer // Used for reading/writing records
frame *frameReader // The buffered frame reader
datagram bool // Is this DTLS?
msgSeq uint32 // The DTLS message sequence number
queued []*HandshakeMessage // In/out queue
sent []*HandshakeMessage // Sent messages for DTLS
maxFragmentLen int
}
type handshakeLayerFrameDetails struct {
datagram bool
}
func (d handshakeLayerFrameDetails) headerLen() int {
if d.datagram {
return handshakeHeaderLenDTLS
}
return handshakeHeaderLenTLS
}
func (d handshakeLayerFrameDetails) defaultReadLen() int {
return d.headerLen() + maxFragmentLen
}
func (d handshakeLayerFrameDetails) frameLen(hdr []byte) (int, error) {
logf(logTypeIO, "Header=%x", hdr)
// The length of this fragment (as opposed to the message)
// is always the last three bytes for both TLS and DTLS
val, _ := decodeUint(hdr[len(hdr)-3:], 3)
return int(val), nil
}
func NewHandshakeLayerTLS(r *RecordLayer) *HandshakeLayer {
h := HandshakeLayer{}
h.conn = r
h.datagram = false
h.frame = newFrameReader(&handshakeLayerFrameDetails{false})
h.maxFragmentLen = maxFragmentLen
return &h
}
func NewHandshakeLayerDTLS(r *RecordLayer) *HandshakeLayer {
h := HandshakeLayer{}
h.conn = r
h.datagram = true
h.frame = newFrameReader(&handshakeLayerFrameDetails{true})
h.maxFragmentLen = initialMtu // Not quite right
return &h
}
func (h *HandshakeLayer) readRecord() error {
logf(logTypeVerbose, "Trying to read record")
pt, err := h.conn.ReadRecord()
if err != nil {
return err
}
if pt.contentType != RecordTypeHandshake &&
pt.contentType != RecordTypeAlert {
return fmt.Errorf("tls.handshakelayer: Unexpected record type %d", pt.contentType)
}
if pt.contentType == RecordTypeAlert {
logf(logTypeIO, "read alert %v", pt.fragment[1])
if len(pt.fragment) < 2 {
h.sendAlert(AlertUnexpectedMessage)
return io.EOF
}
return Alert(pt.fragment[1])
}
h.frame.addChunk(pt.fragment)
return nil
}
// sendAlert sends a TLS alert message.
func (h *HandshakeLayer) sendAlert(err Alert) error {
tmp := make([]byte, 2)
tmp[0] = AlertLevelError
tmp[1] = byte(err)
h.conn.WriteRecord(&TLSPlaintext{
contentType: RecordTypeAlert,
fragment: tmp},
)
// closeNotify is a special case in that it isn't an error:
if err != AlertCloseNotify {
return &net.OpError{Op: "local error", Err: err}
}
return nil
}
func (h *HandshakeLayer) noteMessageDelivered(seq uint32) {
h.msgSeq = seq + 1
var i int
var m *HandshakeMessage
for i, m = range h.queued {
if m.seq > seq {
break
}
}
h.queued = h.queued[i:]
}
func (h *HandshakeLayer) newFragmentReceived(hm *HandshakeMessage) (*HandshakeMessage, error) {
if hm.seq < h.msgSeq {
return nil, WouldBlock
}
if hm.seq == h.msgSeq && hm.offset == 0 && hm.length == uint32(len(hm.body)) {
// TODO(ekr@rtfm.com): Check the length?
// This is complete.
h.noteMessageDelivered(hm.seq)
return hm, nil
}
// Now insert sorted.
var i int
for i = 0; i < len(h.queued); i++ {
f := h.queued[i]
if hm.seq < f.seq {
break
}
if hm.offset < f.offset {
break
}
}
tmp := make([]*HandshakeMessage, 0, len(h.queued)+1)
tmp = append(tmp, h.queued[:i]...)
tmp = append(tmp, hm)
tmp = append(tmp, h.queued[i:]...)
h.queued = tmp
return h.checkMessageAvailable()
}
func (h *HandshakeLayer) checkMessageAvailable() (*HandshakeMessage, error) {
if len(h.queued) == 0 {
return nil, WouldBlock
}
hm := h.queued[0]
if hm.seq != h.msgSeq {
return nil, WouldBlock
}
if hm.seq == h.msgSeq && hm.offset == 0 && hm.length == uint32(len(hm.body)) {
// TODO(ekr@rtfm.com): Check the length?
// This is complete.
h.noteMessageDelivered(hm.seq)
return hm, nil
}
// OK, this at least might complete the message.
end := uint32(0)
buf := make([]byte, hm.length)
for _, f := range h.queued {
// Out of fragments
if f.seq > hm.seq {
break
}
if f.length != uint32(len(buf)) {
return nil, fmt.Errorf("Mismatched DTLS length")
}
if f.offset > end {
break
}
if f.offset+uint32(len(f.body)) > end {
// OK, this is adding something we don't know about
copy(buf[f.offset:], f.body)
end = f.offset + uint32(len(f.body))
if end == hm.length {
h2 := *hm
h2.offset = 0
h2.body = buf
h.noteMessageDelivered(hm.seq)
return &h2, nil
}
}
}
return nil, WouldBlock
}
func (h *HandshakeLayer) ReadMessage() (*HandshakeMessage, error) {
var hdr, body []byte
var err error
hm, err := h.checkMessageAvailable()
if err == nil {
return hm, err
}
if err != WouldBlock {
return nil, err
}
for {
logf(logTypeVerbose, "ReadMessage() buffered=%v", len(h.frame.remainder))
if h.frame.needed() > 0 {
logf(logTypeVerbose, "Trying to read a new record")
err = h.readRecord()
if err != nil && (h.nonblocking || err != WouldBlock) {
return nil, err
}
}
hdr, body, err = h.frame.process()
if err == nil {
break
}
if err != nil && (h.nonblocking || err != WouldBlock) {
return nil, err
}
}
logf(logTypeHandshake, "read handshake message")
hm = &HandshakeMessage{}
hm.msgType = HandshakeType(hdr[0])
hm.datagram = h.datagram
hm.body = make([]byte, len(body))
copy(hm.body, body)
logf(logTypeHandshake, "Read message with type: %v", hm.msgType)
if h.datagram {
tmp, hdr := decodeUint(hdr[1:], 3)
hm.length = uint32(tmp)
tmp, hdr = decodeUint(hdr, 2)
hm.seq = uint32(tmp)
tmp, hdr = decodeUint(hdr, 3)
hm.offset = uint32(tmp)
return h.newFragmentReceived(hm)
}
hm.length = uint32(len(body))
return hm, nil
}
func (h *HandshakeLayer) QueueMessage(hm *HandshakeMessage) error {
hm.cipher = h.conn.cipher
h.queued = append(h.queued, hm)
return nil
}
func (h *HandshakeLayer) SendQueuedMessages() error {
logf(logTypeHandshake, "Sending outgoing messages")
err := h.WriteMessages(h.queued)
h.ClearQueuedMessages() // This isn't going to work for DTLS, but we'll
// get there.
return err
}
func (h *HandshakeLayer) ClearQueuedMessages() {
logf(logTypeHandshake, "Clearing outgoing hs message queue")
h.queued = nil
}
func (h *HandshakeLayer) writeFragment(hm *HandshakeMessage, start int, room int) (int, error) {
var buf []byte
// Figure out if we're going to want the full header or just
// the body
hdrlen := 0
if hm.datagram {
hdrlen = handshakeHeaderLenDTLS
} else if start == 0 {
hdrlen = handshakeHeaderLenTLS
}
// Compute the amount of body we can fit in
room -= hdrlen
if room == 0 {
// This works because we are doing one record per
// message
panic("Too short max fragment len")
}
bodylen := len(hm.body) - start
if bodylen > room {
bodylen = room
}
body := hm.body[start : start+bodylen]
// Encode the data.
if hdrlen > 0 {
hm2 := *hm
hm2.offset = uint32(start)
hm2.body = body
buf = hm2.Marshal()
} else {
buf = body
}
return start + bodylen, h.conn.writeRecordWithPadding(
&TLSPlaintext{
contentType: RecordTypeHandshake,
fragment: buf,
},
hm.cipher, 0)
}
func (h *HandshakeLayer) WriteMessage(hm *HandshakeMessage) error {
start := int(0)
if len(hm.body) > maxHandshakeMessageLen {
return fmt.Errorf("Tried to write a handshake message that's too long")
}
// Always make one pass through to allow EOED (which is empty).
for {
var err error
start, err = h.writeFragment(hm, start, h.maxFragmentLen)
if err != nil {
return err
}
if start >= len(hm.body) {
break
}
}
return nil
}
func (h *HandshakeLayer) WriteMessages(hms []*HandshakeMessage) error {
for _, hm := range hms {
logf(logTypeHandshake, "WriteMessage [%d] %x", hm.msgType, hm.body)
err := h.WriteMessage(hm)
if err != nil {
return err
}
}
return nil
}
func encodeUint(v uint64, size int, out []byte) []byte {
for i := size - 1; i >= 0; i-- {
out[i] = byte(v & 0xff)
v >>= 8
}
return out[size:]
}
func decodeUint(in []byte, size int) (uint64, []byte) {
val := uint64(0)
for i := 0; i < size; i++ {
val <<= 8
val += uint64(in[i])
}
return val, in[size:]
}
type marshalledPDU interface {
Marshal() ([]byte, error)
Unmarshal(data []byte) (int, error)
}
func safeUnmarshal(pdu marshalledPDU, data []byte) error {
read, err := pdu.Unmarshal(data)
if err != nil {
return err
}
if len(data) != read {
return fmt.Errorf("Invalid encoding: Extra data not consumed")
}
return nil
}

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@ -0,0 +1,384 @@
package mint
import (
"bytes"
"encoding/hex"
"fmt"
"testing"
)
type ErrorReadWriter struct{}
func (e ErrorReadWriter) Read(p []byte) (n int, err error) {
return 0, fmt.Errorf("Unknown read error")
}
func (e ErrorReadWriter) Write(p []byte) (n int, err error) {
return 0, fmt.Errorf("Unknown write error")
}
func recordHeaderHex(data []byte) string {
dataLen := len(data)
return hex.EncodeToString([]byte{0x16, 0x03, 0x01, byte(dataLen >> 8), byte(dataLen)})
}
var (
messageType = HandshakeTypeClientHello
tinyMessageIn = &HandshakeMessage{
msgType: messageType,
body: []byte{0, 0, 0, 0},
length: 4,
}
tinyMessageHex = "0100000400000000"
// short: 0x000040
// long: 0x007fe0 = 0x4000 + 0x3fe0
shortMessageLen = 64
longMessageLen = 2*maxFragmentLen - (shortMessageLen / 2)
shortMessageHeader = []byte{byte(messageType), 0x00, 0x00, byte(shortMessageLen)}
shortMessageBody = bytes.Repeat([]byte{0xab}, shortMessageLen)
shortMessage = append(shortMessageHeader, shortMessageBody...)
longMessageHeader = []byte{byte(messageType), 0x00, byte(longMessageLen >> 8), byte(longMessageLen)}
longMessageBody = bytes.Repeat([]byte{0xcd}, longMessageLen)
longMessage = append(longMessageHeader, longMessageBody...)
shortLongMessage = append(shortMessage, longMessage...)
shortLongShortMessage = append(shortLongMessage, shortMessage...)
shortHex = recordHeaderHex(shortMessage) + hex.EncodeToString(shortMessage)
shortMessageIn = &HandshakeMessage{
msgType: messageType,
body: shortMessageBody,
length: uint32(len(shortMessageBody)),
}
longMessageIn = &HandshakeMessage{
msgType: messageType,
body: longMessageBody,
length: uint32(len(longMessageBody)),
}
tooLongMessageIn = &HandshakeMessage{
msgType: messageType,
body: bytes.Repeat([]byte{0xef}, maxHandshakeMessageLen+1),
}
longFragment1 = longMessage[:maxFragmentLen]
longFragment2 = longMessage[maxFragmentLen:]
longHex = recordHeaderHex(longFragment1) + hex.EncodeToString(longFragment1) +
recordHeaderHex(longFragment2) + hex.EncodeToString(longFragment2)
slsFragment1 = shortLongShortMessage[:maxFragmentLen]
slsFragment2 = shortLongShortMessage[maxFragmentLen : 2*maxFragmentLen]
slsFragment3 = shortLongShortMessage[2*maxFragmentLen:]
shortLongShortHex = recordHeaderHex(slsFragment1) + hex.EncodeToString(slsFragment1) +
recordHeaderHex(slsFragment2) + hex.EncodeToString(slsFragment2) +
recordHeaderHex(slsFragment3) + hex.EncodeToString(slsFragment3)
insufficientDataHex = "1603010004" + "01000004" + "1603010002" + "0000"
nonHandshakeHex = "15030100020000"
)
func TestMessageMarshal(t *testing.T) {
tinyMessage := unhex(tinyMessageHex)
out := tinyMessageIn.Marshal()
assertByteEquals(t, out, tinyMessage)
}
func newTestHandshakeMessage(t HandshakeType, m []byte) HandshakeMessage {
return HandshakeMessage{
msgType: t,
body: m,
}
}
func TestMessageToBody(t *testing.T) {
// Borrowing serialized bodies from handshake-messages_test.go
chValid := unhex(chValidHex)
shValid := unhex(shValidHex)
finValid := unhex(finValidHex)
encExtValid := unhex(encExtValidHex)
certValid := unhex(certValidHex)
certVerifyValid := unhex(certVerifyValidHex)
ticketValid := unhex(ticketValidHex)
// Test successful marshal of ClientHello
hm := newTestHandshakeMessage(HandshakeTypeClientHello, chValid)
_, err := hm.ToBody()
assertNotError(t, err, "Failed to convert ClientHello body")
// Test successful marshal of ServerHello
hm = newTestHandshakeMessage(HandshakeTypeServerHello, shValid)
_, err = hm.ToBody()
assertNotError(t, err, "Failed to convert ServerHello body")
// Test successful marshal of EncryptedExtensions
hm = newTestHandshakeMessage(HandshakeTypeEncryptedExtensions, encExtValid)
_, err = hm.ToBody()
assertNotError(t, err, "Failed to convert EncryptedExtensions body")
// Test successful marshal of Certificate
hm = newTestHandshakeMessage(HandshakeTypeCertificate, certValid)
_, err = hm.ToBody()
assertNotError(t, err, "Failed to convert Certificate body")
// Test successful marshal of CertificateVerify
hm = newTestHandshakeMessage(HandshakeTypeCertificateVerify, certVerifyValid)
_, err = hm.ToBody()
assertNotError(t, err, "Failed to convert CertificateVerify body")
// Test successful marshal of Finished
hm = newTestHandshakeMessage(HandshakeTypeFinished, finValid)
_, err = hm.ToBody()
assertNotError(t, err, "Failed to convert Finished body")
// Test successful marshal of NewSessionTicket
hm = newTestHandshakeMessage(HandshakeTypeNewSessionTicket, ticketValid)
_, err = hm.ToBody()
assertNotError(t, err, "Failed to convert NewSessionTicket body")
// Test failure on unsupported body type
hm = newTestHandshakeMessage(HandshakeTypeHelloRetryRequest, []byte{})
_, err = hm.ToBody()
assertError(t, err, "Converted an unsupported message")
// Test failure on marshal failure
hm = newTestHandshakeMessage(HandshakeTypeClientHello, []byte{})
_, err = hm.ToBody()
assertError(t, err, "Converted an empty message")
}
func TestMessageFromBody(t *testing.T) {
chValid := unhex(chValidHex)
b := bytes.NewBuffer(nil)
h := NewHandshakeLayerTLS(NewRecordLayerTLS(b))
// Test successful conversion
hm, err := h.HandshakeMessageFromBody(&chValidIn)
assertNotError(t, err, "Failed to convert ClientHello body to message")
assertEquals(t, hm.msgType, chValidIn.Type())
assertByteEquals(t, hm.body, chValid)
// Test conversion failure on marshal failure
chValidIn.CipherSuites = []CipherSuite{}
hm, err = h.HandshakeMessageFromBody(&chValidIn)
assertError(t, err, "Converted a ClientHello that should not have marshaled")
chValidIn.CipherSuites = chCipherSuites
}
func TestReadHandshakeMessage(t *testing.T) {
short := unhex(shortHex)
long := unhex(longHex)
shortLongShort := unhex(shortLongShortHex)
insufficientData := unhex(insufficientDataHex)
nonHandshake := unhex(nonHandshakeHex)
// Test successful read of a message in a single record
b := bytes.NewBuffer(short)
h := NewHandshakeLayerTLS(NewRecordLayerTLS(b))
hm, err := h.ReadMessage()
assertNotError(t, err, "Failed to read a short handshake message")
assertDeepEquals(t, hm, shortMessageIn)
// Test successful read of a message split across records
b = bytes.NewBuffer(long)
h = NewHandshakeLayerTLS(NewRecordLayerTLS(b))
hm, err = h.ReadMessage()
assertNotError(t, err, "Failed to read a long handshake message")
assertDeepEquals(t, hm, longMessageIn)
// Test successful read of multiple messages sequentially
b = bytes.NewBuffer(shortLongShort)
h = NewHandshakeLayerTLS(NewRecordLayerTLS(b))
hm1, err := h.ReadMessage()
assertNotError(t, err, "Failed to read first handshake message")
assertDeepEquals(t, hm1, shortMessageIn)
hm2, err := h.ReadMessage()
assertNotError(t, err, "Failed to read second handshake message")
assertDeepEquals(t, hm2, longMessageIn)
hm3, err := h.ReadMessage()
assertNotError(t, err, "Failed to read third handshake message")
assertDeepEquals(t, hm3, shortMessageIn)
// Test read failure on inability to read header
b = bytes.NewBuffer(short[:handshakeHeaderLenTLS-1])
h = NewHandshakeLayerTLS(NewRecordLayerTLS(b))
hm, err = h.ReadMessage()
assertError(t, err, "Read handshake message with an incomplete header")
// Test read failure on inability to read body
b = bytes.NewBuffer(insufficientData)
h = NewHandshakeLayerTLS(NewRecordLayerTLS(b))
hm, err = h.ReadMessage()
assertError(t, err, "Read handshake message with an incomplete body")
// Test read failure on receiving a non-handshake record
b = bytes.NewBuffer(nonHandshake)
h = NewHandshakeLayerTLS(NewRecordLayerTLS(b))
hm, err = h.ReadMessage()
assertError(t, err, "Read handshake message from a non-handshake record")
}
func testWriteHandshakeMessage(h *HandshakeLayer, hm *HandshakeMessage) error {
hm.cipher = h.conn.cipher
return h.WriteMessage(hm)
}
func TestWriteHandshakeMessage(t *testing.T) {
short := unhex(shortHex)
long := unhex(longHex)
// Test successful write of single message
b := bytes.NewBuffer(nil)
h := NewHandshakeLayerTLS(NewRecordLayerTLS(b))
err := testWriteHandshakeMessage(h, shortMessageIn)
assertNotError(t, err, "Failed to write valid short message")
assertByteEquals(t, b.Bytes(), short)
// Test successful write of single long message
b = bytes.NewBuffer(nil)
h = NewHandshakeLayerTLS(NewRecordLayerTLS(b))
err = testWriteHandshakeMessage(h, longMessageIn)
assertNotError(t, err, "Failed to write valid long message")
assertByteEquals(t, b.Bytes(), long)
// Test write failure on message too large
b = bytes.NewBuffer(nil)
h = NewHandshakeLayerTLS(NewRecordLayerTLS(b))
err = testWriteHandshakeMessage(h, tooLongMessageIn)
assertError(t, err, "Wrote a message exceeding the length bound")
// Test write failure on underlying write failure
h = NewHandshakeLayerTLS(NewRecordLayerTLS(ErrorReadWriter{}))
err = testWriteHandshakeMessage(h, longMessageIn)
assertError(t, err, "Write succeeded despite error in full fragment send")
err = testWriteHandshakeMessage(h, shortMessageIn)
assertError(t, err, "Write succeeded despite error in last fragment send")
}
type testReassembleFixture struct {
t *testing.T
h *HandshakeLayer
r *RecordLayer
rd *pipeConn
wr *pipeConn
m0 *HandshakeMessage
m0f0 *HandshakeMessage
m0f1 *HandshakeMessage
m0f2 *HandshakeMessage
m0f1x *HandshakeMessage
m0f1y *HandshakeMessage
m1 *HandshakeMessage
}
func newTestReassembleFixture(t *testing.T) *testReassembleFixture {
f := testReassembleFixture{t: t}
// Make two messages, m0 and m1, with m0 fragmented
m0 := make([]byte, 2048)
for i, _ := range m0 {
m0[i] = byte(i % 13)
}
f.m0 = newHsFragment(m0, 0, 0, 2048)
f.m0f0 = newHsFragment(m0, 0, 0, 1024)
f.m0f1 = newHsFragment(m0, 0, 1024, 512)
f.m0f2 = newHsFragment(m0, 0, 1536, 512)
f.m0f1x = newHsFragment(m0, 0, 512, 1000)
f.m0f1y = newHsFragment(m0, 0, 512, 1048)
m1 := make([]byte, 2048)
for i, _ := range m1 {
m1[i] = byte(i % 23)
}
f.m1 = newHsFragment(m1, 1, 0, 2048)
f.rd, f.wr = pipe()
f.r = NewRecordLayerDTLS(f.rd)
f.h = NewHandshakeLayerDTLS(f.r)
f.h.nonblocking = true
return &f
}
func newHsFragment(full []byte, seq uint32, offset uint32, fragLen uint32) *HandshakeMessage {
return &HandshakeMessage{
HandshakeTypeClientHello,
seq,
full[offset : offset+fragLen],
true,
offset,
uint32(len(full)),
nil,
nil,
}
}
func (f *testReassembleFixture) addFragment(in *HandshakeMessage, expected *HandshakeMessage) {
if in != nil {
b := in.Marshal()
r := []byte{byte(RecordTypeHandshake), 0xfe, 0xff,
0, 0, 0, 0, 0, 0, 0, 0,
byte((len(b) >> 8) & 0xff), byte(len(b) & 0xff)}
r = append(r, b...)
f.wr.Write(r)
}
h2, err := f.h.ReadMessage()
if expected == nil {
assertEquals(f.t, (*HandshakeMessage)(nil), h2)
assertEquals(f.t, WouldBlock, err)
} else {
assertNotError(f.t, err, "Error reading handshake")
assertEquals(f.t, expected.seq, h2.seq)
assertByteEquals(f.t, expected.body, h2.body)
}
}
func TestHandshakeDTLSInOrder(t *testing.T) {
f := newTestReassembleFixture(t)
f.addFragment(f.m0, f.m0)
f.addFragment(f.m0, nil) // Should block
f.addFragment(f.m1, f.m1)
}
func TestHandshakeDTLSOutOfOrder(t *testing.T) {
f := newTestReassembleFixture(t)
f.addFragment(f.m1, nil)
f.addFragment(f.m0, f.m0)
f.addFragment(nil, f.m1)
}
func TestHandshakeDTLSNonOverlappingFragments(t *testing.T) {
f := newTestReassembleFixture(t)
f.addFragment(f.m0f0, nil)
f.addFragment(f.m0f1, nil)
f.addFragment(f.m0f2, f.m0)
}
func TestHandshakeDTLSNonOverlappingFragmentsOO(t *testing.T) {
f := newTestReassembleFixture(t)
f.addFragment(f.m0f0, nil)
f.addFragment(f.m0f2, nil)
f.addFragment(f.m0f1, f.m0)
}
func TestHandshakeDTLSOverlappingFragments1(t *testing.T) {
f := newTestReassembleFixture(t)
f.addFragment(f.m0f0, nil)
f.addFragment(f.m0f1, nil)
f.addFragment(f.m0f1x, nil)
f.addFragment(f.m0f2, f.m0)
}
func TestHandshakeDTLSOverlappingFragments2(t *testing.T) {
f := newTestReassembleFixture(t)
f.addFragment(f.m0f0, nil)
f.addFragment(f.m0f1y, nil)
f.addFragment(f.m0f2, f.m0)
}

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@ -0,0 +1,436 @@
package mint
import (
"bytes"
"crypto"
"crypto/x509"
"encoding/binary"
"fmt"
"github.com/bifurcation/mint/syntax"
)
type HandshakeMessageBody interface {
Type() HandshakeType
Marshal() ([]byte, error)
Unmarshal(data []byte) (int, error)
}
// struct {
// ProtocolVersion legacy_version = 0x0303; /* TLS v1.2 */
// Random random;
// opaque legacy_session_id<0..32>;
// CipherSuite cipher_suites<2..2^16-2>;
// opaque legacy_compression_methods<1..2^8-1>;
// Extension extensions<0..2^16-1>;
// } ClientHello;
type ClientHelloBody struct {
// Omitted: clientVersion
Random [32]byte
LegacySessionID []byte
CipherSuites []CipherSuite
Extensions ExtensionList
}
type clientHelloBodyInner struct {
LegacyVersion uint16
Random [32]byte
LegacySessionID []byte `tls:"head=1,max=32"`
CipherSuites []CipherSuite `tls:"head=2,min=2"`
LegacyCompressionMethods []byte `tls:"head=1,min=1"`
Extensions []Extension `tls:"head=2"`
}
func (ch ClientHelloBody) Type() HandshakeType {
return HandshakeTypeClientHello
}
func (ch ClientHelloBody) Marshal() ([]byte, error) {
return syntax.Marshal(clientHelloBodyInner{
LegacyVersion: tls12Version,
Random: ch.Random,
LegacySessionID: []byte{},
CipherSuites: ch.CipherSuites,
LegacyCompressionMethods: []byte{0},
Extensions: ch.Extensions,
})
}
func (ch *ClientHelloBody) Unmarshal(data []byte) (int, error) {
var inner clientHelloBodyInner
read, err := syntax.Unmarshal(data, &inner)
if err != nil {
return 0, err
}
// We are strict about these things because we only support 1.3
if inner.LegacyVersion != tls12Version {
return 0, fmt.Errorf("tls.clienthello: Incorrect version number")
}
if len(inner.LegacyCompressionMethods) != 1 || inner.LegacyCompressionMethods[0] != 0 {
return 0, fmt.Errorf("tls.clienthello: Invalid compression method")
}
ch.Random = inner.Random
ch.LegacySessionID = inner.LegacySessionID
ch.CipherSuites = inner.CipherSuites
ch.Extensions = inner.Extensions
return read, nil
}
// TODO: File a spec bug to clarify this
func (ch ClientHelloBody) Truncated() ([]byte, error) {
if len(ch.Extensions) == 0 {
return nil, fmt.Errorf("tls.clienthello.truncate: No extensions")
}
pskExt := ch.Extensions[len(ch.Extensions)-1]
if pskExt.ExtensionType != ExtensionTypePreSharedKey {
return nil, fmt.Errorf("tls.clienthello.truncate: Last extension is not PSK")
}
body, err := ch.Marshal()
if err != nil {
return nil, err
}
chm := &HandshakeMessage{
msgType: ch.Type(),
body: body,
length: uint32(len(body)),
}
chData := chm.Marshal()
psk := PreSharedKeyExtension{
HandshakeType: HandshakeTypeClientHello,
}
_, err = psk.Unmarshal(pskExt.ExtensionData)
if err != nil {
return nil, err
}
// Marshal just the binders so that we know how much to truncate
binders := struct {
Binders []PSKBinderEntry `tls:"head=2,min=33"`
}{Binders: psk.Binders}
binderData, _ := syntax.Marshal(binders)
binderLen := len(binderData)
chLen := len(chData)
return chData[:chLen-binderLen], nil
}
// struct {
// ProtocolVersion legacy_version = 0x0303; /* TLS v1.2 */
// Random random;
// opaque legacy_session_id_echo<0..32>;
// CipherSuite cipher_suite;
// uint8 legacy_compression_method = 0;
// Extension extensions<6..2^16-1>;
// } ServerHello;
type ServerHelloBody struct {
Version uint16
Random [32]byte
LegacySessionID []byte `tls:"head=1,max=32"`
CipherSuite CipherSuite
LegacyCompressionMethod uint8
Extensions ExtensionList `tls:"head=2"`
}
func (sh ServerHelloBody) Type() HandshakeType {
return HandshakeTypeServerHello
}
func (sh ServerHelloBody) Marshal() ([]byte, error) {
return syntax.Marshal(sh)
}
func (sh *ServerHelloBody) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, sh)
}
// struct {
// opaque verify_data[verify_data_length];
// } Finished;
//
// verifyDataLen is not a field in the TLS struct, but we add it here so
// that calling code can tell us how much data to expect when we marshal /
// unmarshal. (We could add this to the marshal/unmarshal methods, but let's
// try to keep the signature consistent for now.)
//
// For similar reasons, we don't use the `syntax` module here, because this
// struct doesn't map well to standard TLS presentation language concepts.
//
// TODO: File a spec bug
type FinishedBody struct {
VerifyDataLen int
VerifyData []byte
}
func (fin FinishedBody) Type() HandshakeType {
return HandshakeTypeFinished
}
func (fin FinishedBody) Marshal() ([]byte, error) {
if len(fin.VerifyData) != fin.VerifyDataLen {
return nil, fmt.Errorf("tls.finished: data length mismatch")
}
body := make([]byte, len(fin.VerifyData))
copy(body, fin.VerifyData)
return body, nil
}
func (fin *FinishedBody) Unmarshal(data []byte) (int, error) {
if len(data) < fin.VerifyDataLen {
return 0, fmt.Errorf("tls.finished: Malformed finished; too short")
}
fin.VerifyData = make([]byte, fin.VerifyDataLen)
copy(fin.VerifyData, data[:fin.VerifyDataLen])
return fin.VerifyDataLen, nil
}
// struct {
// Extension extensions<0..2^16-1>;
// } EncryptedExtensions;
//
// Marshal() and Unmarshal() are handled by ExtensionList
type EncryptedExtensionsBody struct {
Extensions ExtensionList `tls:"head=2"`
}
func (ee EncryptedExtensionsBody) Type() HandshakeType {
return HandshakeTypeEncryptedExtensions
}
func (ee EncryptedExtensionsBody) Marshal() ([]byte, error) {
return syntax.Marshal(ee)
}
func (ee *EncryptedExtensionsBody) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, ee)
}
// opaque ASN1Cert<1..2^24-1>;
//
// struct {
// ASN1Cert cert_data;
// Extension extensions<0..2^16-1>
// } CertificateEntry;
//
// struct {
// opaque certificate_request_context<0..2^8-1>;
// CertificateEntry certificate_list<0..2^24-1>;
// } Certificate;
type CertificateEntry struct {
CertData *x509.Certificate
Extensions ExtensionList
}
type CertificateBody struct {
CertificateRequestContext []byte
CertificateList []CertificateEntry
}
type certificateEntryInner struct {
CertData []byte `tls:"head=3,min=1"`
Extensions ExtensionList `tls:"head=2"`
}
type certificateBodyInner struct {
CertificateRequestContext []byte `tls:"head=1"`
CertificateList []certificateEntryInner `tls:"head=3"`
}
func (c CertificateBody) Type() HandshakeType {
return HandshakeTypeCertificate
}
func (c CertificateBody) Marshal() ([]byte, error) {
inner := certificateBodyInner{
CertificateRequestContext: c.CertificateRequestContext,
CertificateList: make([]certificateEntryInner, len(c.CertificateList)),
}
for i, entry := range c.CertificateList {
inner.CertificateList[i] = certificateEntryInner{
CertData: entry.CertData.Raw,
Extensions: entry.Extensions,
}
}
return syntax.Marshal(inner)
}
func (c *CertificateBody) Unmarshal(data []byte) (int, error) {
inner := certificateBodyInner{}
read, err := syntax.Unmarshal(data, &inner)
if err != nil {
return read, err
}
c.CertificateRequestContext = inner.CertificateRequestContext
c.CertificateList = make([]CertificateEntry, len(inner.CertificateList))
for i, entry := range inner.CertificateList {
c.CertificateList[i].CertData, err = x509.ParseCertificate(entry.CertData)
if err != nil {
return 0, fmt.Errorf("tls:certificate: Certificate failed to parse: %v", err)
}
c.CertificateList[i].Extensions = entry.Extensions
}
return read, nil
}
// struct {
// SignatureScheme algorithm;
// opaque signature<0..2^16-1>;
// } CertificateVerify;
type CertificateVerifyBody struct {
Algorithm SignatureScheme
Signature []byte `tls:"head=2"`
}
func (cv CertificateVerifyBody) Type() HandshakeType {
return HandshakeTypeCertificateVerify
}
func (cv CertificateVerifyBody) Marshal() ([]byte, error) {
return syntax.Marshal(cv)
}
func (cv *CertificateVerifyBody) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, cv)
}
func (cv *CertificateVerifyBody) EncodeSignatureInput(data []byte) []byte {
// TODO: Change context for client auth
// TODO: Put this in a const
const context = "TLS 1.3, server CertificateVerify"
sigInput := bytes.Repeat([]byte{0x20}, 64)
sigInput = append(sigInput, []byte(context)...)
sigInput = append(sigInput, []byte{0}...)
sigInput = append(sigInput, data...)
return sigInput
}
func (cv *CertificateVerifyBody) Sign(privateKey crypto.Signer, handshakeHash []byte) (err error) {
sigInput := cv.EncodeSignatureInput(handshakeHash)
cv.Signature, err = sign(cv.Algorithm, privateKey, sigInput)
logf(logTypeHandshake, "Signed: alg=[%04x] sigInput=[%x], sig=[%x]", cv.Algorithm, sigInput, cv.Signature)
return
}
func (cv *CertificateVerifyBody) Verify(publicKey crypto.PublicKey, handshakeHash []byte) error {
sigInput := cv.EncodeSignatureInput(handshakeHash)
logf(logTypeHandshake, "About to verify: alg=[%04x] sigInput=[%x], sig=[%x]", cv.Algorithm, sigInput, cv.Signature)
return verify(cv.Algorithm, publicKey, sigInput, cv.Signature)
}
// struct {
// opaque certificate_request_context<0..2^8-1>;
// Extension extensions<2..2^16-1>;
// } CertificateRequest;
type CertificateRequestBody struct {
CertificateRequestContext []byte `tls:"head=1"`
Extensions ExtensionList `tls:"head=2"`
}
func (cr CertificateRequestBody) Type() HandshakeType {
return HandshakeTypeCertificateRequest
}
func (cr CertificateRequestBody) Marshal() ([]byte, error) {
return syntax.Marshal(cr)
}
func (cr *CertificateRequestBody) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, cr)
}
// struct {
// uint32 ticket_lifetime;
// uint32 ticket_age_add;
// opaque ticket_nonce<1..255>;
// opaque ticket<1..2^16-1>;
// Extension extensions<0..2^16-2>;
// } NewSessionTicket;
type NewSessionTicketBody struct {
TicketLifetime uint32
TicketAgeAdd uint32
TicketNonce []byte `tls:"head=1,min=1"`
Ticket []byte `tls:"head=2,min=1"`
Extensions ExtensionList `tls:"head=2"`
}
const ticketNonceLen = 16
func NewSessionTicket(ticketLen int, ticketLifetime uint32) (*NewSessionTicketBody, error) {
buf := make([]byte, 4+ticketNonceLen+ticketLen)
_, err := prng.Read(buf)
if err != nil {
return nil, err
}
tkt := &NewSessionTicketBody{
TicketLifetime: ticketLifetime,
TicketAgeAdd: binary.BigEndian.Uint32(buf[:4]),
TicketNonce: buf[4 : 4+ticketNonceLen],
Ticket: buf[4+ticketNonceLen:],
}
return tkt, err
}
func (tkt NewSessionTicketBody) Type() HandshakeType {
return HandshakeTypeNewSessionTicket
}
func (tkt NewSessionTicketBody) Marshal() ([]byte, error) {
return syntax.Marshal(tkt)
}
func (tkt *NewSessionTicketBody) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, tkt)
}
// enum {
// update_not_requested(0), update_requested(1), (255)
// } KeyUpdateRequest;
//
// struct {
// KeyUpdateRequest request_update;
// } KeyUpdate;
type KeyUpdateBody struct {
KeyUpdateRequest KeyUpdateRequest
}
func (ku KeyUpdateBody) Type() HandshakeType {
return HandshakeTypeKeyUpdate
}
func (ku KeyUpdateBody) Marshal() ([]byte, error) {
return syntax.Marshal(ku)
}
func (ku *KeyUpdateBody) Unmarshal(data []byte) (int, error) {
return syntax.Unmarshal(data, ku)
}
// struct {} EndOfEarlyData;
type EndOfEarlyDataBody struct{}
func (eoed EndOfEarlyDataBody) Type() HandshakeType {
return HandshakeTypeEndOfEarlyData
}
func (eoed EndOfEarlyDataBody) Marshal() ([]byte, error) {
return []byte{}, nil
}
func (eoed *EndOfEarlyDataBody) Unmarshal(data []byte) (int, error) {
return 0, nil
}

View File

@ -0,0 +1,688 @@
package mint
import (
"bytes"
"crypto/x509"
"encoding/hex"
"testing"
)
const (
fixedClientHelloBodyLen = 39
fixedServerHelloBodyLen = 36
maxCipherSuites = 1 << 15
maxExtensionDataLen = (1 << 16) - 1
maxCertRequestContextLen = 255
maxTicketLen = (1 << 16) - 1
)
var (
supportedVersionHex = hex.EncodeToString([]byte{
byte(supportedVersion >> 8),
byte(supportedVersion & 0xff),
})
tls12VersionHex = hex.EncodeToString([]byte{
byte(tls12Version >> 8),
byte(tls12Version & 0xff),
})
// ClientHello test cases
// NB: Borrowing some values from extensions_test.go
helloRandom = [32]byte{0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07,
0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17,
0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x26, 0x27,
0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37}
chCipherSuites = []CipherSuite{0x0001, 0x0002, 0x0003}
chValidIn = ClientHelloBody{
Random: helloRandom,
CipherSuites: chCipherSuites,
Extensions: extListValidIn,
LegacySessionID: []byte{},
}
chValidHex = "0303" + hex.EncodeToString(helloRandom[:]) + "00" +
"0006000100020003" + "0100" + extListValidHex
chOverflowHex = "0303" + hex.EncodeToString(helloRandom[:]) + "00" +
"0006000100020003" + "0100" + extListOverflowOuterHex
// ClientHello truncation test cases
chTruncPSKData = unhex(pskClientHex)
chTruncHex = "01000062" + "0303" + hex.EncodeToString(helloRandom[:]) +
"00" + "0006000100020003" + "0100" + "00330029002f000a00040102030405060708"
chTruncValid = ClientHelloBody{
Random: helloRandom,
CipherSuites: chCipherSuites,
Extensions: []Extension{
{
ExtensionType: ExtensionTypePreSharedKey,
ExtensionData: chTruncPSKData,
},
},
}
chTruncInvalid = ClientHelloBody{}
chTruncNoExt = ClientHelloBody{
Random: helloRandom,
CipherSuites: chCipherSuites,
Extensions: []Extension{},
}
chTruncNoPSK = ClientHelloBody{
Random: helloRandom,
CipherSuites: chCipherSuites,
Extensions: []Extension{
{ExtensionType: ExtensionTypeEarlyData},
},
}
chTruncBadPSK = ClientHelloBody{
Random: helloRandom,
CipherSuites: chCipherSuites,
Extensions: []Extension{
{ExtensionType: ExtensionTypePreSharedKey},
},
}
// ServerHello test cases
shValidIn = ServerHelloBody{
Version: tls12Version,
Random: helloRandom,
LegacySessionID: []byte{},
CipherSuite: CipherSuite(0x0001),
Extensions: extListValidIn,
}
shEmptyIn = ServerHelloBody{
Version: tls12Version,
Random: helloRandom,
CipherSuite: CipherSuite(0x0001),
}
shValidHex = tls12VersionHex + hex.EncodeToString(helloRandom[:]) + "00" + "0001" + "00" + extListValidHex
shEmptyHex = tls12VersionHex + hex.EncodeToString(helloRandom[:]) + "00" + "0001" + "00" + "0000"
shOverflowHex = tls12VersionHex + hex.EncodeToString(helloRandom[:]) + "0001" + extListOverflowOuterHex
// Finished test cases
finValidIn = FinishedBody{
VerifyDataLen: len(helloRandom),
VerifyData: helloRandom[:],
}
finValidHex = hex.EncodeToString(helloRandom[:])
// EncryptedExtensions test cases
encExtValidIn = EncryptedExtensionsBody{extListValidIn}
encExtValidHex = extListValidHex
// Certificate test cases
cert1Hex = "308201653082010ba003020102020500a0a0a0a0300a0608" +
"2a8648ce3d0403023017311530130603550403130c657861" +
"6d706c65312e636f6d3022180f3030303130313031303030" +
"3030305a180f30303031303130313030303030305a301731" +
"1530130603550403130c6578616d706c65312e636f6d3059" +
"301306072a8648ce3d020106082a8648ce3d030107034200" +
"044460e6de2a170e0c7c8d1306c82386db31980bd76647bd" +
"e9b96055d075fc64ea7d8d3864afcf0ff16da73c68df6880" +
"a597303243410016ef2e36f5962584d187a340303e300e06" +
"03551d0f0101ff0404030203a830130603551d25040c300a" +
"06082b0601050507030130170603551d110410300e820c65" +
"78616d706c65312e636f6d300a06082a8648ce3d04030203" +
"48003045022005937d0bf7a7cb4589715bb83dddd2505335" +
"829e6305b75cfeae6f2dcc2230b6022100f6f0e75436cd59" +
"b94ceedffb18bcf5bb2f161260a282f7b63d1376e5805c51" +
"b6"
cert2Hex = "308201643082010ba003020102020500a0a0a0a0300a0608" +
"2a8648ce3d0403043017311530130603550403130c657861" +
"6d706c65322e636f6d3022180f3030303130313031303030" +
"3030305a180f30303031303130313030303030305a301731" +
"1530130603550403130c6578616d706c65322e636f6d3059" +
"301306072a8648ce3d020106082a8648ce3d030107034200" +
"044460e6de2a170e0c7c8d1306c82386db31980bd76647bd" +
"e9b96055d075fc64ea7d8d3864afcf0ff16da73c68df6880" +
"a597303243410016ef2e36f5962584d187a340303e300e06" +
"03551d0f0101ff0404030203a830130603551d25040c300a" +
"06082b0601050507030130170603551d110410300e820c65" +
"78616d706c65322e636f6d300a06082a8648ce3d04030403" +
"470030440220718254f2b3c1cc0fa4c53bf43182f8acbc19" +
"04e45ee1a3abdc8bc50a155712b4022010664cc29b80fae9" +
"150027726da5b144df764a76007eee2a52b6ae0c995395fb"
cert1Bytes = unhex(cert1Hex)
cert2Bytes = unhex(cert2Hex)
cert1, _ = x509.ParseCertificate(cert1Bytes)
cert2, _ = x509.ParseCertificate(cert2Bytes)
certValidIn = CertificateBody{
CertificateRequestContext: []byte{0, 0, 0, 0},
CertificateList: []CertificateEntry{
{
CertData: cert1,
Extensions: extListValidIn,
},
{
CertData: cert2,
Extensions: extListValidIn,
},
},
}
certOverflowIn = CertificateBody{
CertificateRequestContext: []byte{0, 0, 0, 0},
CertificateList: []CertificateEntry{
{
CertData: cert1,
Extensions: extListSingleTooLongIn,
},
},
}
certValidHex = "0400000000" +
"0002f5" +
"000169" + cert1Hex + extListValidHex +
"000168" + cert2Hex + extListValidHex
certTooShortHex = "000000023081"
// CertificateVerify test cases
certVerifyValidIn = CertificateVerifyBody{
Algorithm: ECDSA_P256_SHA256,
Signature: []byte{0, 0, 0, 0},
}
certVerifyValidHex = "0403000400000000"
certVerifyCipherSuite = TLS_AES_128_GCM_SHA256
// CertificateRequest test cases
certReqValidIn = CertificateRequestBody{
CertificateRequestContext: []byte{0, 1, 2, 3, 4, 5, 6, 7},
Extensions: []Extension{
{
ExtensionType: ExtensionTypeSignatureAlgorithms,
ExtensionData: unhex("000404030503"),
},
},
}
certReqValidHex = "080001020304050607" + // context
"000a000d0006000404030503" // extensions
// NewSessionTicket test cases
ticketValidHex = "00010203" + "04050607" + "0408090a0b" + "00040c0d0e0f" + "0006eeff00021122"
ticketValidIn = NewSessionTicketBody{
TicketLifetime: 0x00010203,
TicketAgeAdd: 0x04050607,
TicketNonce: []byte{0x08, 0x09, 0x0a, 0x0b},
Ticket: []byte{0x0c, 0x0d, 0x0e, 0x0f},
Extensions: []Extension{
{
ExtensionType: 0xeeff,
ExtensionData: []byte{0x11, 0x22},
},
},
}
ticketTooBigIn = NewSessionTicketBody{
TicketLifetime: 0x00010203,
Ticket: make([]byte, maxTicketLen+1),
}
ticketExtensionsTooBigIn = NewSessionTicketBody{
Extensions: extListSingleTooLongIn,
}
// KeyUpdate test cases
keyUpdateValidHex = "01"
keyUpdateValidIn = KeyUpdateBody{
KeyUpdateRequest: KeyUpdateRequested,
}
// EndOfEarlyData test cases
endOfEarlyDataValidHex = ""
endOfEarlyDataValidIn = EndOfEarlyDataBody{}
)
func TestHandshakeMessageTypes(t *testing.T) {
assertEquals(t, ClientHelloBody{}.Type(), HandshakeTypeClientHello)
assertEquals(t, ServerHelloBody{}.Type(), HandshakeTypeServerHello)
assertEquals(t, FinishedBody{}.Type(), HandshakeTypeFinished)
assertEquals(t, EncryptedExtensionsBody{}.Type(), HandshakeTypeEncryptedExtensions)
assertEquals(t, CertificateBody{}.Type(), HandshakeTypeCertificate)
assertEquals(t, CertificateVerifyBody{}.Type(), HandshakeTypeCertificateVerify)
}
func TestClientHelloMarshalUnmarshal(t *testing.T) {
chValid := unhex(chValidHex)
chOverflow := unhex(chOverflowHex)
// Test correctness of handshake type
assertEquals(t, (ClientHelloBody{}).Type(), HandshakeTypeClientHello)
// Test successful marshal
out, err := chValidIn.Marshal()
assertNotError(t, err, "Failed to marshal a valid ClientHello")
assertByteEquals(t, out, chValid)
// Test marshal failure on empty ciphersuites
chValidIn.CipherSuites = []CipherSuite{}
out, err = chValidIn.Marshal()
assertError(t, err, "Marshaled a ClientHello with no CipherSuites")
chValidIn.CipherSuites = chCipherSuites
// Test marshal failure on too many ciphersuites
tooManyCipherSuites := make([]CipherSuite, maxCipherSuites+1)
for i := range tooManyCipherSuites {
tooManyCipherSuites[i] = CipherSuite(0x0001)
}
chValidIn.CipherSuites = tooManyCipherSuites
out, err = chValidIn.Marshal()
assertError(t, err, "Marshaled a ClientHello with too many CipherSuites")
chValidIn.CipherSuites = chCipherSuites
// Test marshal failure on extension list marshal failure
chValidIn.Extensions = extListTooLongIn
out, err = chValidIn.Marshal()
assertError(t, err, "Marshaled a ClientHello with bad extensions")
chValidIn.Extensions = extListValidIn
// Test successful unmarshal
var ch ClientHelloBody
read, err := ch.Unmarshal(chValid)
assertNotError(t, err, "Failed to unmarshal a valid ClientHello")
assertEquals(t, read, len(chValid))
assertDeepEquals(t, ch, chValidIn)
// Test unmarshal failure on too-short ClientHello
_, err = ch.Unmarshal(chValid[:fixedClientHelloBodyLen-1])
assertError(t, err, "Unmarshaled a ClientHello below the min length")
// Test unmarshal failure on wrong version
chValid[1]--
_, err = ch.Unmarshal(chValid)
assertError(t, err, "Unmarshaled a ClientHello with the wrong version")
chValid[1]++
// Test unmarshal failure on ciphersuite size overflow
chValid[35] = 0xFF
_, err = ch.Unmarshal(chValid)
assertError(t, err, "Unmarshaled a ClientHello an overflowing cipherSuite list")
chValid[35] = 0x00
// Test unmarshal failure on odd ciphersuite size
chValid[36] ^= 0x01
_, err = ch.Unmarshal(chValid)
assertError(t, err, "Unmarshaled a ClientHello an odd cipherSuite list length")
chValid[36] ^= 0x01
// Test unmarshal failure on missing compression methods
_, err = ch.Unmarshal(chValid[:37+6])
assertError(t, err, "Unmarshaled a ClientHello truncated before the compression methods")
// Test unmarshal failure on incorrect compression methods
chValid[37+6] = 0x03
_, err = ch.Unmarshal(chValid)
assertError(t, err, "Unmarshaled a ClientHello more than one compression method")
chValid[37+6] = 0x01
chValid[37+7] = 0x01
_, err = ch.Unmarshal(chValid)
assertError(t, err, "Unmarshaled a ClientHello the wrong compression method")
chValid[37+7] = 0x00
// Test unmarshal failure on extension list unmarshal failure
_, err = ch.Unmarshal(chOverflow)
assertError(t, err, "Unmarshaled a ClientHello with invalid extensions")
}
func TestClientHelloTruncate(t *testing.T) {
chTrunc := unhex(chTruncHex)
// Test success
trunc, err := chTruncValid.Truncated()
assertNotError(t, err, "Error truncating valid ClientHello")
assertByteEquals(t, trunc, chTrunc)
// Test failure on marshal failure
_, err = chTruncInvalid.Truncated()
assertError(t, err, "Truncated a ClientHello that should not have marshaled")
// Test failure on no extensions
_, err = chTruncNoExt.Truncated()
assertError(t, err, "Truncated a ClientHello with no extensions")
// Test failure on last extension not PSK
_, err = chTruncNoPSK.Truncated()
assertError(t, err, "Truncated a ClientHello whose last extension was not a PSK")
// Test failiure on last extension malformed PSK
_, err = chTruncBadPSK.Truncated()
assertError(t, err, "Truncated a ClientHello with a mal-formed PSK")
}
func TestServerHelloMarshalUnmarshal(t *testing.T) {
shValid := unhex(shValidHex)
shEmpty := unhex(shEmptyHex)
shOverflow := unhex(shOverflowHex)
// Test correctness of handshake type
assertEquals(t, (ServerHelloBody{}).Type(), HandshakeTypeServerHello)
// Test successful marshal
out, err := shValidIn.Marshal()
assertNotError(t, err, "Failed to marshal a valid ServerHello")
assertByteEquals(t, out, shValid)
// Test successful marshal with no extensions present
out, err = shEmptyIn.Marshal()
assertNotError(t, err, "Failed to marshal a valid ServerHello with no extensions")
assertByteEquals(t, out, shEmpty)
// Test marshal failure on extension list marshal failure
shValidIn.Extensions = extListTooLongIn
out, err = shValidIn.Marshal()
assertError(t, err, "Marshaled a ServerHello with bad extensions")
shValidIn.Extensions = extListValidIn
// Test successful unmarshal
var sh ServerHelloBody
read, err := sh.Unmarshal(shValid)
assertNotError(t, err, "Failed to unmarshal a valid ServerHello")
assertEquals(t, read, len(shValid))
assertDeepEquals(t, sh, shValidIn)
// Test successful unmarshal with no extensions present
read, err = sh.Unmarshal(shEmpty)
assertNotError(t, err, "Failed to unmarshal a valid ServerHello")
assertEquals(t, read, len(shEmpty))
assertByteEquals(t, sh.Random[:], shEmptyIn.Random[:])
assertEquals(t, sh.CipherSuite, shEmptyIn.CipherSuite)
assertEquals(t, len(sh.Extensions), 0)
// Test unmarshal failure on too-short ServerHello
_, err = sh.Unmarshal(shValid[:fixedServerHelloBodyLen-1])
assertError(t, err, "Unmarshaled a too-short ServerHello")
// Test unmarshal failure on extension list unmarshal failure
_, err = sh.Unmarshal(shOverflow)
assertError(t, err, "Unmarshaled a ServerHello with invalid extensions")
}
func TestFinishedMarshalUnmarshal(t *testing.T) {
finValid := unhex(finValidHex)
// Test correctness of handshake type
assertEquals(t, (FinishedBody{}).Type(), HandshakeTypeFinished)
// Test successful marshal
out, err := finValidIn.Marshal()
assertNotError(t, err, "Failed to marshal a valid Finished")
assertByteEquals(t, out, finValid)
// Test marshal failure on incorrect data length
finValidIn.VerifyDataLen--
out, err = finValidIn.Marshal()
assertError(t, err, "Marshaled a Finished with the wrong data length")
finValidIn.VerifyDataLen++
// Test successful unmarshal
var fin FinishedBody
fin.VerifyDataLen = len(finValid)
read, err := fin.Unmarshal(finValid)
assertNotError(t, err, "Failed to unmarshal a valid Finished")
assertEquals(t, read, len(finValid))
assertDeepEquals(t, fin, finValidIn)
// Test unmarshal failure on insufficient data
fin.VerifyDataLen++
_, err = fin.Unmarshal(finValid)
assertError(t, err, "Unmarshaled a Finished with too little data")
fin.VerifyDataLen--
}
// This one is a little brief because it is just an extensionList
func TestEncrypteExtensionsMarshalUnmarshal(t *testing.T) {
encExtValid := unhex(encExtValidHex)
// Test correctness of handshake type
assertEquals(t, (EncryptedExtensionsBody{}).Type(), HandshakeTypeEncryptedExtensions)
// Test successful marshal
out, err := encExtValidIn.Marshal()
assertNotError(t, err, "Failed to marshal a valid EncryptedExtensions")
assertByteEquals(t, out, encExtValid)
// Test successful unmarshal
var ee EncryptedExtensionsBody
read, err := ee.Unmarshal(encExtValid)
assertNotError(t, err, "Failed to unmarshal a valid EncryptedExtensions")
assertEquals(t, read, len(encExtValid))
assertDeepEquals(t, ee, encExtValidIn)
}
func TestCertificateMarshalUnmarshal(t *testing.T) {
// Create a couple of certificates and manually encode
certValid := unhex(certValidHex)
certTooShort := unhex(certTooShortHex)
// Test correctness of handshake type
assertEquals(t, (CertificateBody{}).Type(), HandshakeTypeCertificate)
// Test successful marshal
out, err := certValidIn.Marshal()
assertNotError(t, err, "Failed to marshal valid Certificate")
assertByteEquals(t, out, certValid)
// Test marshal failure on context too long
originalContext := certValidIn.CertificateRequestContext
certValidIn.CertificateRequestContext = bytes.Repeat([]byte{0}, maxCertRequestContextLen+1)
out, err = certValidIn.Marshal()
assertError(t, err, "Marshaled a Certificate with a too-long context")
certValidIn.CertificateRequestContext = originalContext
// Test marshal failure on no raw certa
originalRaw := cert1.Raw
cert1.Raw = []byte{}
out, err = certValidIn.Marshal()
assertError(t, err, "Marshaled a Certificate with an empty cert")
cert1.Raw = originalRaw
// Test marshal failure on extension list marshal failure
out, err = certOverflowIn.Marshal()
assertError(t, err, "Marshaled a Certificate with an too-long extension list")
// Test successful unmarshal
cert := CertificateBody{}
read, err := cert.Unmarshal(certValid)
assertNotError(t, err, "Failed to unmarshal valid Certificate")
assertEquals(t, read, len(certValid))
assertDeepEquals(t, cert, certValidIn)
// Test unmarshal failure on truncated header
_, err = cert.Unmarshal(certValid[:0])
assertError(t, err, "Unmarshaled a Certificate with a truncated header")
// Test unmarshal failure on truncated context
_, err = cert.Unmarshal(certValid[:7])
assertError(t, err, "Unmarshaled a Certificate with a truncated context")
// Test unmarshal failure on truncated certificates
_, err = cert.Unmarshal(certValid[:12])
assertError(t, err, "Unmarshaled a Certificate with truncated certificates")
// Test unmarshal failure on a too-short certificates field
_, err = cert.Unmarshal(certTooShort)
assertError(t, err, "Unmarshaled a Certificate with truncated certificate length")
// Test unmarshal failure on truncated certificate
certValid[8] ^= 0xFF // Make length of first cert huge
_, err = cert.Unmarshal(certValid)
assertError(t, err, "Unmarshaled a Certificate with truncated certificates")
certValid[8] ^= 0xFF
// Test unmarshal failure on malformed certificate
certValid[11] ^= 0xFF // Clobber first octet of first cert
_, err = cert.Unmarshal(certValid)
assertError(t, err, "Unmarshaled a Certificate with truncated certificates")
certValid[11] ^= 0xFF
}
func TestCertificateVerifyMarshalUnmarshal(t *testing.T) {
certVerifyValid := unhex(certVerifyValidHex)
handshakeHash := []byte{0, 1, 2, 3}
privRSA, err := newSigningKey(RSA_PSS_SHA256)
assertNotError(t, err, "failed to generate RSA private key")
// Test correctness of handshake type
assertEquals(t, (CertificateVerifyBody{}).Type(), HandshakeTypeCertificateVerify)
// Test successful marshal
out, err := certVerifyValidIn.Marshal()
assertNotError(t, err, "Failed to marshal a valid CertificateVerify")
assertByteEquals(t, out, certVerifyValid)
// Test successful unmarshal
var cv CertificateVerifyBody
read, err := cv.Unmarshal(certVerifyValid)
assertNotError(t, err, "Failed to unmarshal a valid CertificateVerify")
assertEquals(t, read, len(certVerifyValid))
assertDeepEquals(t, cv, certVerifyValidIn)
// Test unmarshal failure on truncated header
_, err = cv.Unmarshal(certVerifyValid[:1])
assertError(t, err, "Unmarshaled a CertificateVerify with no header")
// Test unmarshal failure on truncated signature
_, err = cv.Unmarshal(certVerifyValid[:5])
assertError(t, err, "Unmarshaled a CertificateVerify with no header")
// Test successful sign / verify round-trip
certVerifyValidIn.Algorithm = RSA_PSS_SHA256
err = certVerifyValidIn.Sign(privRSA, handshakeHash)
assertNotError(t, err, "Failed to sign CertificateVerify")
// Test sign failure on algorithm
originalAlg := certVerifyValidIn.Algorithm
certVerifyValidIn.Algorithm = SignatureScheme(0)
err = certVerifyValidIn.Sign(privRSA, handshakeHash)
assertError(t, err, "Signed CertificateVerify despite bad algorithm")
certVerifyValidIn.Algorithm = originalAlg
// Test successful verify
certVerifyValidIn = CertificateVerifyBody{Algorithm: RSA_PSS_SHA256}
err = certVerifyValidIn.Sign(privRSA, handshakeHash)
assertNotError(t, err, "Failed to sign CertificateVerify")
err = certVerifyValidIn.Verify(privRSA.Public(), handshakeHash)
assertNotError(t, err, "Failed to verify CertificateVerify")
// Test verify failure on bad algorithm
originalAlg = certVerifyValidIn.Algorithm
certVerifyValidIn.Algorithm = SignatureScheme(0)
err = certVerifyValidIn.Verify(privRSA.Public(), handshakeHash)
assertError(t, err, "Verified CertificateVerify despite bad hash algorithm")
certVerifyValidIn.Algorithm = originalAlg
}
func TestCertificateRequestMarshalUnmarshal(t *testing.T) {
certReqValid := unhex(certReqValidHex)
// Test correctness of handshake type
assertEquals(t, (CertificateRequestBody{}).Type(), HandshakeTypeCertificateRequest)
// Test successful marshal
out, err := certReqValidIn.Marshal()
assertNotError(t, err, "Failed to marshal a valid CertificateRequest")
assertByteEquals(t, out, certReqValid)
// Test successful unmarshal
var cv CertificateRequestBody
read, err := cv.Unmarshal(certReqValid)
assertNotError(t, err, "Failed to unmarshal a valid CertificateRequest")
assertEquals(t, read, len(certReqValid))
assertDeepEquals(t, cv, certReqValidIn)
}
func TestNewSessionTicketMarshalUnmarshal(t *testing.T) {
ticketValid := unhex(ticketValidHex)
// Test correctness of handshake type
assertEquals(t, (NewSessionTicketBody{}).Type(), HandshakeTypeNewSessionTicket)
// Test creation of a new random ticket
tkt, err := NewSessionTicket(16, 3)
assertNotError(t, err, "Failed to create session ticket")
assertEquals(t, tkt.TicketLifetime, uint32(3))
assertEquals(t, len(tkt.Ticket), 16)
// Test successful marshal
out, err := ticketValidIn.Marshal()
assertNotError(t, err, "Failed to marshal a valid NewSessionTicket")
assertByteEquals(t, out, ticketValid)
// Test marshal failure on a ticket that's too large
out, err = ticketTooBigIn.Marshal()
assertError(t, err, "Marshaled a NewSessionTicket with an invalid data length")
// Test marshal failure on extensions too large
out, err = ticketExtensionsTooBigIn.Marshal()
assertError(t, err, "Marshaled a NewSessionTicket with extensions that are too big")
// Test successful unmarshal
read, err := tkt.Unmarshal(ticketValid)
assertNotError(t, err, "Failed to unmarshal a valid NewSessionTicket")
assertEquals(t, read, len(ticketValid))
assertDeepEquals(t, *tkt, ticketValidIn)
// Test unmarshal failure on insufficient data
_, err = tkt.Unmarshal(ticketValid[:4])
assertError(t, err, "Unmarshaled a NewSessionTicket with an incomplete header")
_, err = tkt.Unmarshal(ticketValid[:13])
assertError(t, err, "Unmarshaled a NewSessionTicket with an incomplete ticket")
_, err = tkt.Unmarshal(ticketValid[:20])
assertError(t, err, "Unmarshaled a NewSessionTicket with incomplete extensions")
}
func TestKeyUpdateMarshalUnmarshal(t *testing.T) {
keyUpdateValid := unhex(keyUpdateValidHex)
// Test correctness of handshake type
assertEquals(t, (KeyUpdateBody{}).Type(), HandshakeTypeKeyUpdate)
// Test successful marshal
out, err := keyUpdateValidIn.Marshal()
assertNotError(t, err, "Failed to marshal a valid KeyUpdate")
assertByteEquals(t, out, keyUpdateValid)
// Test successful unmarshal
var ku KeyUpdateBody
read, err := ku.Unmarshal(keyUpdateValid)
assertNotError(t, err, "Failed to unmarshal a valid KeyUpdate")
assertEquals(t, read, len(keyUpdateValid))
assertDeepEquals(t, ku, keyUpdateValidIn)
}
func TestEndOfEarlyDataMarshalUnmarshal(t *testing.T) {
endOfEarlyDataValid := unhex(endOfEarlyDataValidHex)
// Test correctness of handshake type
assertEquals(t, (EndOfEarlyDataBody{}).Type(), HandshakeTypeEndOfEarlyData)
// Test successful marshal
out, err := endOfEarlyDataValidIn.Marshal()
assertNotError(t, err, "Failed to marshal a valid KeyUpdate")
assertByteEquals(t, out, endOfEarlyDataValid)
// Test successful unmarshal
var eoed EndOfEarlyDataBody
read, err := eoed.Unmarshal(endOfEarlyDataValid)
assertNotError(t, err, "Failed to unmarshal a valid KeyUpdate")
assertEquals(t, read, len(endOfEarlyDataValid))
assertDeepEquals(t, eoed, endOfEarlyDataValidIn)
}
func TestsafeUnmarshal(t *testing.T) {
chValid := unhex(chValidHex)
tooLong := append(chValid, 0)
var ch ClientHelloBody
// Check that safeUnmarshal works normally
err := safeUnmarshal(&ch, chValid)
assertNotError(t, err, "Failed to unmarshal ClientHello")
// Test successful unmarshal
read, err := ch.Unmarshal(tooLong)
assertNotError(t, err, "Failed to unmarshal a too long ClientHello")
assertEquals(t, read, len(chValid))
assertDeepEquals(t, ch, chValidIn)
// Now test that safeUnmarshal barfs
err = safeUnmarshal(&ch, tooLong)
assertError(t, err, "Unmarshalled something too long")
}

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vendor/github.com/bifurcation/mint/log.go generated vendored Normal file
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package mint
import (
"fmt"
"log"
"os"
"strings"
)
// We use this environment variable to control logging. It should be a
// comma-separated list of log tags (see below) or "*" to enable all logging.
const logConfigVar = "MINT_LOG"
// Pre-defined log types
const (
logTypeCrypto = "crypto"
logTypeHandshake = "handshake"
logTypeNegotiation = "negotiation"
logTypeIO = "io"
logTypeFrameReader = "frame"
logTypeVerbose = "verbose"
)
var (
logFunction = log.Printf
logAll = false
logSettings = map[string]bool{}
)
func init() {
parseLogEnv(os.Environ())
}
func parseLogEnv(env []string) {
for _, stmt := range env {
if strings.HasPrefix(stmt, logConfigVar+"=") {
val := stmt[len(logConfigVar)+1:]
if val == "*" {
logAll = true
} else {
for _, t := range strings.Split(val, ",") {
logSettings[t] = true
}
}
}
}
}
func logf(tag string, format string, args ...interface{}) {
if logAll || logSettings[tag] {
fullFormat := fmt.Sprintf("[%s] %s", tag, format)
logFunction(fullFormat, args...)
}
}

57
vendor/github.com/bifurcation/mint/log_test.go generated vendored Normal file
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package mint
import (
"fmt"
"testing"
)
var logLine = ""
func testLogFunction(format string, v ...interface{}) {
logLine = fmt.Sprintf(format, v...)
}
func TestLogging(t *testing.T) {
originalLogFunction := logFunction
originalLogAll := logAll
originalLogSettings := logSettings
logAll = false
logSettings = map[string]bool{}
env := []string{"MINT_LOG=*"}
parseLogEnv(env)
assert(t, logAll, "Failed to parse wildcard log directive")
assert(t, len(logSettings) == 0, "Mistakenly set log settings")
logAll = false
logSettings = map[string]bool{}
env = []string{"MINT_LOG=foo,bar"}
parseLogEnv(env)
assert(t, !logAll, "Mistakenly set logAll")
assert(t, logSettings["foo"] && logSettings["bar"], "Failed to parse string log directive")
logFunction = testLogFunction
logAll = false
logSettings = map[string]bool{"foo": true}
// Test that we print matching lines
logLine = ""
logf("foo", "This is an integer: %d", 1)
assertEquals(t, logLine, "[foo] This is an integer: 1")
// Test that we ignore non-matching lines
logLine = ""
logf("bar", "This is an integer: %d", 1)
assertEquals(t, logLine, "")
// Test that logAll enables all
logAll = true
logLine = ""
logf("bar", "This is an integer: %d", 1)
assertEquals(t, logLine, "[bar] This is an integer: 1")
// Restore original values for globals
logFunction = originalLogFunction
logAll = originalLogAll
logSettings = originalLogSettings
}

101
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217
vendor/github.com/bifurcation/mint/negotiation.go generated vendored Normal file
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package mint
import (
"bytes"
"encoding/hex"
"fmt"
"time"
)
func VersionNegotiation(offered, supported []uint16) (bool, uint16) {
for _, offeredVersion := range offered {
for _, supportedVersion := range supported {
logf(logTypeHandshake, "[server] version offered by client [%04x] <> [%04x]", offeredVersion, supportedVersion)
if offeredVersion == supportedVersion {
// XXX: Should probably be highest supported version, but for now, we
// only support one version, so it doesn't really matter.
return true, offeredVersion
}
}
}
return false, 0
}
func DHNegotiation(keyShares []KeyShareEntry, groups []NamedGroup) (bool, NamedGroup, []byte, []byte) {
for _, share := range keyShares {
for _, group := range groups {
if group != share.Group {
continue
}
pub, priv, err := newKeyShare(share.Group)
if err != nil {
// If we encounter an error, just keep looking
continue
}
dhSecret, err := keyAgreement(share.Group, share.KeyExchange, priv)
if err != nil {
// If we encounter an error, just keep looking
continue
}
return true, group, pub, dhSecret
}
}
return false, 0, nil, nil
}
const (
ticketAgeTolerance uint32 = 5 * 1000 // five seconds in milliseconds
)
func PSKNegotiation(identities []PSKIdentity, binders []PSKBinderEntry, context []byte, psks PreSharedKeyCache) (bool, int, *PreSharedKey, CipherSuiteParams, error) {
logf(logTypeNegotiation, "Negotiating PSK offered=[%d] supported=[%d]", len(identities), psks.Size())
for i, id := range identities {
identityHex := hex.EncodeToString(id.Identity)
psk, ok := psks.Get(identityHex)
if !ok {
logf(logTypeNegotiation, "No PSK for identity %x", identityHex)
continue
}
// For resumption, make sure the ticket age is correct
if psk.IsResumption {
extTicketAge := id.ObfuscatedTicketAge - psk.TicketAgeAdd
knownTicketAge := uint32(time.Since(psk.ReceivedAt) / time.Millisecond)
ticketAgeDelta := knownTicketAge - extTicketAge
if knownTicketAge < extTicketAge {
ticketAgeDelta = extTicketAge - knownTicketAge
}
if ticketAgeDelta > ticketAgeTolerance {
logf(logTypeNegotiation, "WARNING potential replay [%x]", psk.Identity)
logf(logTypeNegotiation, "Ticket age exceeds tolerance |%d - %d| = [%d] > [%d]",
extTicketAge, knownTicketAge, ticketAgeDelta, ticketAgeTolerance)
return false, 0, nil, CipherSuiteParams{}, fmt.Errorf("WARNING Potential replay for identity %x", psk.Identity)
}
}
params, ok := cipherSuiteMap[psk.CipherSuite]
if !ok {
err := fmt.Errorf("tls.cryptoinit: Unsupported ciphersuite from PSK [%04x]", psk.CipherSuite)
return false, 0, nil, CipherSuiteParams{}, err
}
// Compute binder
binderLabel := labelExternalBinder
if psk.IsResumption {
binderLabel = labelResumptionBinder
}
h0 := params.Hash.New().Sum(nil)
zero := bytes.Repeat([]byte{0}, params.Hash.Size())
earlySecret := HkdfExtract(params.Hash, zero, psk.Key)
binderKey := deriveSecret(params, earlySecret, binderLabel, h0)
// context = ClientHello[truncated]
// context = ClientHello1 + HelloRetryRequest + ClientHello2[truncated]
ctxHash := params.Hash.New()
ctxHash.Write(context)
binder := computeFinishedData(params, binderKey, ctxHash.Sum(nil))
if !bytes.Equal(binder, binders[i].Binder) {
logf(logTypeNegotiation, "Binder check failed for identity %x; [%x] != [%x]", psk.Identity, binder, binders[i].Binder)
return false, 0, nil, CipherSuiteParams{}, fmt.Errorf("Binder check failed identity %x", psk.Identity)
}
logf(logTypeNegotiation, "Using PSK with identity %x", psk.Identity)
return true, i, &psk, params, nil
}
logf(logTypeNegotiation, "Failed to find a usable PSK")
return false, 0, nil, CipherSuiteParams{}, nil
}
func PSKModeNegotiation(canDoDH, canDoPSK bool, modes []PSKKeyExchangeMode) (bool, bool) {
logf(logTypeNegotiation, "Negotiating PSK modes [%v] [%v] [%+v]", canDoDH, canDoPSK, modes)
dhAllowed := false
dhRequired := true
for _, mode := range modes {
dhAllowed = dhAllowed || (mode == PSKModeDHEKE)
dhRequired = dhRequired && (mode == PSKModeDHEKE)
}
// Use PSK if we can meet DH requirement and modes were provided
usingPSK := canDoPSK && (!dhRequired || canDoDH) && (len(modes) > 0)
// Use DH if allowed
usingDH := canDoDH && (dhAllowed || !usingPSK)
logf(logTypeNegotiation, "Results of PSK mode negotiation: usingDH=[%v] usingPSK=[%v]", usingDH, usingPSK)
return usingDH, usingPSK
}
func CertificateSelection(serverName *string, signatureSchemes []SignatureScheme, certs []*Certificate) (*Certificate, SignatureScheme, error) {
// Select for server name if provided
candidates := certs
if serverName != nil {
candidatesByName := []*Certificate{}
for _, cert := range certs {
for _, name := range cert.Chain[0].DNSNames {
if len(*serverName) > 0 && name == *serverName {
candidatesByName = append(candidatesByName, cert)
}
}
}
if len(candidatesByName) == 0 {
return nil, 0, fmt.Errorf("No certificates available for server name: %s", *serverName)
}
candidates = candidatesByName
}
// Select for signature scheme
for _, cert := range candidates {
for _, scheme := range signatureSchemes {
if !schemeValidForKey(scheme, cert.PrivateKey) {
continue
}
return cert, scheme, nil
}
}
return nil, 0, fmt.Errorf("No certificates compatible with signature schemes")
}
func EarlyDataNegotiation(usingPSK, gotEarlyData, allowEarlyData bool) bool {
usingEarlyData := gotEarlyData && usingPSK && allowEarlyData
logf(logTypeNegotiation, "Early data negotiation (%v, %v, %v) => %v", usingPSK, gotEarlyData, allowEarlyData, usingEarlyData)
return usingEarlyData
}
func CipherSuiteNegotiation(psk *PreSharedKey, offered, supported []CipherSuite) (CipherSuite, error) {
for _, s1 := range offered {
if psk != nil {
if s1 == psk.CipherSuite {
return s1, nil
}
continue
}
for _, s2 := range supported {
if s1 == s2 {
return s1, nil
}
}
}
return 0, fmt.Errorf("No overlap between offered and supproted ciphersuites (psk? [%v])", psk != nil)
}
func ALPNNegotiation(psk *PreSharedKey, offered, supported []string) (string, error) {
for _, p1 := range offered {
if psk != nil {
if p1 != psk.NextProto {
continue
}
}
for _, p2 := range supported {
if p1 == p2 {
return p1, nil
}
}
}
// If the client offers ALPN on resumption, it must match the earlier one
var err error
if psk != nil && psk.IsResumption && (len(offered) > 0) {
err = fmt.Errorf("ALPN for PSK not provided")
}
return "", err
}

201
vendor/github.com/bifurcation/mint/negotiation_test.go generated vendored Normal file
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package mint
import (
"bytes"
"testing"
)
func TestVersionNegotiation(t *testing.T) {
// Test successful negotiation
ok, negotiated := VersionNegotiation([]uint16{0x0301, 0x7f12}, []uint16{0x0302, 0x7f12})
assertEquals(t, ok, true)
assertEquals(t, negotiated, uint16(0x7f12))
// Test failed negotiation
ok, negotiated = VersionNegotiation([]uint16{0x0300}, []uint16{0x0400})
assertEquals(t, ok, false)
}
func TestDHNegotiation(t *testing.T) {
keyShares := []KeyShareEntry{
{Group: P256, KeyExchange: random(keyExchangeSizeFromNamedGroup(P256))},
{Group: X25519, KeyExchange: random(keyExchangeSizeFromNamedGroup(X25519))},
}
badKeyShares := []KeyShareEntry{
{Group: P256, KeyExchange: random(keyExchangeSizeFromNamedGroup(P256) - 2)},
{Group: X25519, KeyExchange: random(keyExchangeSizeFromNamedGroup(X25519))},
}
// Test successful negotiation
ok, group, pub, secret := DHNegotiation(keyShares, []NamedGroup{X25519})
assertEquals(t, ok, true)
assertEquals(t, group, X25519)
assertNotNil(t, pub, "Nil public key")
assertNotNil(t, secret, "Nil DH secret")
// Test continuation on newKeyShare failure
// XXX: Would be better to test success, but more difficult. This will at
// least cover the branch
originalPRNG := prng
prng = bytes.NewBuffer(nil)
ok, group, pub, secret = DHNegotiation(badKeyShares, []NamedGroup{P256, X25519})
assertEquals(t, ok, false)
prng = originalPRNG
// Test continuation on keyAgreement failure
ok, group, pub, secret = DHNegotiation(badKeyShares, []NamedGroup{P256, X25519})
assertEquals(t, ok, true)
assertEquals(t, group, X25519)
assertNotNil(t, pub, "Nil public key")
assertNotNil(t, secret, "Nil DH secret")
// Test failure
ok, _, _, _ = DHNegotiation(keyShares, []NamedGroup{P521})
assertEquals(t, ok, false)
}
func TestPSKNegotiation(t *testing.T) {
chTrunc := unhex("0001020304050607")
binderValue := unhex("13a468af471adc19b94dcc0b888135423a11911f2c13050238b579d0f19d41c9")
identities := []PSKIdentity{
{Identity: []byte{0, 1, 2, 3}},
{Identity: []byte{4, 5, 6, 7}},
}
binders := []PSKBinderEntry{
{Binder: binderValue},
{Binder: binderValue},
}
badBinders := []PSKBinderEntry{
{Binder: []byte{}},
{Binder: []byte{}},
}
psks := &PSKMapCache{
"04050607": {
CipherSuite: TLS_AES_128_GCM_SHA256,
Identity: []byte{4, 5, 6, 7},
Key: []byte{0, 1, 2, 3},
},
}
// Test successful negotiation
ok, selected, psk, params, err := PSKNegotiation(identities, binders, chTrunc, psks)
assertEquals(t, ok, true)
assertEquals(t, selected, 1)
assertNotNil(t, psk, "PSK not set")
assertEquals(t, params.Suite, psk.CipherSuite)
assertNotError(t, err, "Valid PSK negotiation failed")
// Test negotiation failure on binder value failure
ok, _, _, _, err = PSKNegotiation(identities, badBinders, chTrunc, psks)
assertEquals(t, ok, false)
assertError(t, err, "Failed to error on binder failure")
// Test negotiation failure on no PSK overlap
ok, _, _, _, err = PSKNegotiation(identities, binders, chTrunc, &PSKMapCache{})
assertEquals(t, ok, false)
assertNotError(t, err, "Errored on PSK negotiation failure")
}
func TestPSKModeNegotiation(t *testing.T) {
// Test that everything that's allowed gets used
usingDH, usingPSK := PSKModeNegotiation(true, true, []PSKKeyExchangeMode{PSKModeKE, PSKModeDHEKE})
assert(t, usingDH, "Unnecessarily disabled DH")
assert(t, usingPSK, "Unnecessarily disabled PSK")
// Test that DH is disabled when not allowed with the PSK
usingDH, usingPSK = PSKModeNegotiation(true, true, []PSKKeyExchangeMode{PSKModeKE})
assert(t, !usingDH, "Should not have enabled DH")
assert(t, usingPSK, "Unnecessarily disabled PSK")
// Test that the PSK is disabled when DH is required but not possible
usingDH, usingPSK = PSKModeNegotiation(false, true, []PSKKeyExchangeMode{PSKModeDHEKE})
assert(t, !usingDH, "Should not have enabled DH")
assert(t, !usingPSK, "Should not have enabled PSK")
}
func TestCertificateSelection(t *testing.T) {
goodName := "example.com"
badName := "not-example.com"
rsa := []SignatureScheme{RSA_PKCS1_SHA256}
eddsa := []SignatureScheme{Ed25519}
// Test success
cert, scheme, err := CertificateSelection(&goodName, rsa, certificates)
assertNotError(t, err, "Failed to find certificate in a valid set")
assertNotNil(t, cert, "Failed to set certificate")
assertEquals(t, scheme, RSA_PKCS1_SHA256)
// Test success with no name specified
cert, scheme, err = CertificateSelection(nil, rsa, certificates)
assertNotError(t, err, "Failed to find certificate in a valid set")
assertNotNil(t, cert, "Failed to set certificate")
assertEquals(t, scheme, RSA_PKCS1_SHA256)
// Test failure on no certs matching host name
_, _, err = CertificateSelection(&badName, rsa, certificates)
assertError(t, err, "Found a certificate for an incorrect host name")
// Test failure on no certs matching signature scheme
_, _, err = CertificateSelection(&goodName, eddsa, certificates)
assertError(t, err, "Found a certificate for an incorrect signature scheme")
}
func TestEarlyDataNegotiation(t *testing.T) {
useEarlyData := EarlyDataNegotiation(true, true, true)
assert(t, useEarlyData, "Did not use early data when allowed")
useEarlyData = EarlyDataNegotiation(false, true, true)
assert(t, !useEarlyData, "Allowed early data when not using PSK")
useEarlyData = EarlyDataNegotiation(true, false, true)
assert(t, !useEarlyData, "Allowed early data when not signaled")
useEarlyData = EarlyDataNegotiation(true, true, false)
assert(t, !useEarlyData, "Allowed early data when not allowed")
}
func TestCipherSuiteNegotiation(t *testing.T) {
offered := []CipherSuite{TLS_AES_128_GCM_SHA256, TLS_AES_256_GCM_SHA384, TLS_CHACHA20_POLY1305_SHA256}
supported := []CipherSuite{TLS_AES_256_GCM_SHA384, TLS_CHACHA20_POLY1305_SHA256}
psk := &PreSharedKey{CipherSuite: TLS_CHACHA20_POLY1305_SHA256}
// Test success with PSK-specified suite
suite, err := CipherSuiteNegotiation(psk, offered, supported)
assertNotError(t, err, "CipherSuite negotiation with PSK failed")
assertEquals(t, suite, psk.CipherSuite)
// Test success with no PSK
suite, err = CipherSuiteNegotiation(nil, offered, supported)
assertNotError(t, err, "CipherSuite negotiation without PSK failed")
assertEquals(t, suite, TLS_AES_256_GCM_SHA384)
// Test failure
_, err = CipherSuiteNegotiation(nil, []CipherSuite{TLS_AES_128_GCM_SHA256}, supported)
assertError(t, err, "CipherSuite negotiation succeeded with no overlap")
}
func TestALPNNegotiation(t *testing.T) {
offered := []string{"http/1.1", "h2"}
supported := []string{"h2", "spdy/1.1"}
psk := &PreSharedKey{NextProto: "h2", IsResumption: true}
// Test success with PSK-specified protocol
proto, err := ALPNNegotiation(psk, offered, supported)
assertNotError(t, err, "ALPN negotiation with PSK failed")
assertEquals(t, proto, psk.NextProto)
// Test success with no PSK
proto, err = ALPNNegotiation(nil, offered, supported)
assertNotError(t, err, "ALPN negotiation without PSK failed")
assertEquals(t, proto, "h2")
// Test failure on resumption and mismatch
proto, err = ALPNNegotiation(psk, []string{"http/1.1"}, []string{})
assertError(t, err, "Resumption allowed without offer having previous ALPN")
// Test failure without resumption
proto, err = ALPNNegotiation(nil, []string{"http/1.1"}, []string{})
assertNotError(t, err, "ALPN mismatch caused an error")
assertEquals(t, proto, "")
}

376
vendor/github.com/bifurcation/mint/record-layer.go generated vendored Normal file
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package mint
import (
"bytes"
"crypto/cipher"
"fmt"
"io"
"sync"
)
const (
sequenceNumberLen = 8 // sequence number length
recordHeaderLenTLS = 5 // record header length (TLS)
recordHeaderLenDTLS = 13 // record header length (DTLS)
maxFragmentLen = 1 << 14 // max number of bytes in a record
)
type DecryptError string
func (err DecryptError) Error() string {
return string(err)
}
// struct {
// ContentType type;
// ProtocolVersion record_version [0301 for CH, 0303 for others]
// uint16 length;
// opaque fragment[TLSPlaintext.length];
// } TLSPlaintext;
type TLSPlaintext struct {
// Omitted: record_version (static)
// Omitted: length (computed from fragment)
contentType RecordType
fragment []byte
}
type cipherState struct {
epoch Epoch // DTLS epoch
ivLength int // Length of the seq and nonce fields
seq []byte // Zero-padded sequence number
iv []byte // Buffer for the IV
cipher cipher.AEAD // AEAD cipher
}
type RecordLayer struct {
sync.Mutex
version uint16 // The current version number
conn io.ReadWriter // The underlying connection
frame *frameReader // The buffered frame reader
nextData []byte // The next record to send
cachedRecord *TLSPlaintext // Last record read, cached to enable "peek"
cachedError error // Error on the last record read
cipher *cipherState
datagram bool
}
type recordLayerFrameDetails struct {
datagram bool
}
func (d recordLayerFrameDetails) headerLen() int {
if d.datagram {
return recordHeaderLenDTLS
}
return recordHeaderLenTLS
}
func (d recordLayerFrameDetails) defaultReadLen() int {
return d.headerLen() + maxFragmentLen
}
func (d recordLayerFrameDetails) frameLen(hdr []byte) (int, error) {
return (int(hdr[d.headerLen()-2]) << 8) | int(hdr[d.headerLen()-1]), nil
}
func newCipherStateNull() *cipherState {
return &cipherState{EpochClear, 0, bytes.Repeat([]byte{0}, sequenceNumberLen), nil, nil}
}
func newCipherStateAead(epoch Epoch, factory aeadFactory, key []byte, iv []byte) (*cipherState, error) {
cipher, err := factory(key)
if err != nil {
return nil, err
}
return &cipherState{epoch, len(iv), bytes.Repeat([]byte{0}, sequenceNumberLen), iv, cipher}, nil
}
func NewRecordLayerTLS(conn io.ReadWriter) *RecordLayer {
r := RecordLayer{}
r.conn = conn
r.frame = newFrameReader(recordLayerFrameDetails{false})
r.cipher = newCipherStateNull()
r.version = tls10Version
return &r
}
func NewRecordLayerDTLS(conn io.ReadWriter) *RecordLayer {
r := RecordLayer{}
r.conn = conn
r.frame = newFrameReader(recordLayerFrameDetails{true})
r.cipher = newCipherStateNull()
r.datagram = true
return &r
}
func (r *RecordLayer) SetVersion(v uint16) {
r.version = v
}
func (r *RecordLayer) Rekey(epoch Epoch, factory aeadFactory, key []byte, iv []byte) error {
cipher, err := newCipherStateAead(epoch, factory, key, iv)
if err != nil {
return err
}
r.cipher = cipher
return nil
}
func (c *cipherState) computeNonce(seq []byte) []byte {
nonce := make([]byte, len(c.iv))
copy(nonce, c.iv)
offset := len(c.iv) - len(seq)
for i, b := range seq {
nonce[i+offset] ^= b
}
return nonce
}
func (c *cipherState) incrementSequenceNumber() {
var i int
for i = len(c.seq) - 1; i >= 0; i-- {
c.seq[i]++
if c.seq[i] != 0 {
break
}
}
if i < 0 {
// Not allowed to let sequence number wrap.
// Instead, must renegotiate before it does.
// Not likely enough to bothec.
// TODO(ekr@rtfm.com): Check for DTLS here
// because the limit is soonec.
panic("TLS: sequence number wraparound")
}
}
func (c *cipherState) overhead() int {
if c.cipher == nil {
return 0
}
return c.cipher.Overhead()
}
func (r *RecordLayer) encrypt(cipher *cipherState, pt *TLSPlaintext, padLen int) *TLSPlaintext {
// Expand the fragment to hold contentType, padding, and overhead
originalLen := len(pt.fragment)
plaintextLen := originalLen + 1 + padLen
ciphertextLen := plaintextLen + cipher.overhead()
// Assemble the revised plaintext
out := &TLSPlaintext{
contentType: RecordTypeApplicationData,
fragment: make([]byte, ciphertextLen),
}
copy(out.fragment, pt.fragment)
out.fragment[originalLen] = byte(pt.contentType)
for i := 1; i <= padLen; i++ {
out.fragment[originalLen+i] = 0
}
// Encrypt the fragment
payload := out.fragment[:plaintextLen]
cipher.cipher.Seal(payload[:0], cipher.computeNonce(cipher.seq), payload, nil)
return out
}
func (r *RecordLayer) decrypt(pt *TLSPlaintext, seq []byte) (*TLSPlaintext, int, error) {
if len(pt.fragment) < r.cipher.overhead() {
msg := fmt.Sprintf("tls.record.decrypt: Record too short [%d] < [%d]", len(pt.fragment), r.cipher.overhead())
return nil, 0, DecryptError(msg)
}
decryptLen := len(pt.fragment) - r.cipher.overhead()
out := &TLSPlaintext{
contentType: pt.contentType,
fragment: make([]byte, decryptLen),
}
// Decrypt
_, err := r.cipher.cipher.Open(out.fragment[:0], r.cipher.computeNonce(seq), pt.fragment, nil)
if err != nil {
logf(logTypeIO, "AEAD decryption failure [%x]", pt)
return nil, 0, DecryptError("tls.record.decrypt: AEAD decrypt failed")
}
// Find the padding boundary
padLen := 0
for ; padLen < decryptLen+1 && out.fragment[decryptLen-padLen-1] == 0; padLen++ {
}
// Transfer the content type
newLen := decryptLen - padLen - 1
out.contentType = RecordType(out.fragment[newLen])
// Truncate the message to remove contentType, padding, overhead
out.fragment = out.fragment[:newLen]
return out, padLen, nil
}
func (r *RecordLayer) PeekRecordType(block bool) (RecordType, error) {
var pt *TLSPlaintext
var err error
for {
pt, err = r.nextRecord()
if err == nil {
break
}
if !block || err != WouldBlock {
return 0, err
}
}
return pt.contentType, nil
}
func (r *RecordLayer) ReadRecord() (*TLSPlaintext, error) {
pt, err := r.nextRecord()
// Consume the cached record if there was one
r.cachedRecord = nil
r.cachedError = nil
return pt, err
}
func (r *RecordLayer) nextRecord() (*TLSPlaintext, error) {
cipher := r.cipher
if r.cachedRecord != nil {
logf(logTypeIO, "Returning cached record")
return r.cachedRecord, r.cachedError
}
// Loop until one of three things happens:
//
// 1. We get a frame
// 2. We try to read off the socket and get nothing, in which case
// return WouldBlock
// 3. We get an error.
err := WouldBlock
var header, body []byte
for err != nil {
if r.frame.needed() > 0 {
buf := make([]byte, r.frame.details.headerLen()+maxFragmentLen)
n, err := r.conn.Read(buf)
if err != nil {
logf(logTypeIO, "Error reading, %v", err)
return nil, err
}
if n == 0 {
return nil, WouldBlock
}
logf(logTypeIO, "Read %v bytes", n)
buf = buf[:n]
r.frame.addChunk(buf)
}
header, body, err = r.frame.process()
// Loop around on WouldBlock to see if some
// data is now available.
if err != nil && err != WouldBlock {
return nil, err
}
}
pt := &TLSPlaintext{}
// Validate content type
switch RecordType(header[0]) {
default:
return nil, fmt.Errorf("tls.record: Unknown content type %02x", header[0])
case RecordTypeAlert, RecordTypeHandshake, RecordTypeApplicationData:
pt.contentType = RecordType(header[0])
}
// Validate version
if !allowWrongVersionNumber && (header[1] != 0x03 || header[2] != 0x01) {
return nil, fmt.Errorf("tls.record: Invalid version %02x%02x", header[1], header[2])
}
// Validate size < max
size := (int(header[len(header)-2]) << 8) + int(header[len(header)-1])
if size > maxFragmentLen+256 {
return nil, fmt.Errorf("tls.record: Ciphertext size too big")
}
pt.fragment = make([]byte, size)
copy(pt.fragment, body)
// Attempt to decrypt fragment
if cipher.cipher != nil {
seq := cipher.seq
if r.datagram {
seq = header[3:11]
}
logf(logTypeIO, "RecordLayer.ReadRecord epoch=[%s] seq=[%x] [%d] ciphertext=[%x]", cipher.epoch.label(), seq, pt.contentType, pt.fragment)
pt, _, err = r.decrypt(pt, seq)
if err != nil {
logf(logTypeIO, "Decryption failed")
return nil, err
}
}
// Check that plaintext length is not too long
if len(pt.fragment) > maxFragmentLen {
return nil, fmt.Errorf("tls.record: Plaintext size too big")
}
logf(logTypeIO, "RecordLayer.ReadRecord [%d] [%x]", pt.contentType, pt.fragment)
r.cachedRecord = pt
cipher.incrementSequenceNumber()
return pt, nil
}
func (r *RecordLayer) WriteRecord(pt *TLSPlaintext) error {
return r.writeRecordWithPadding(pt, r.cipher, 0)
}
func (r *RecordLayer) WriteRecordWithPadding(pt *TLSPlaintext, padLen int) error {
return r.writeRecordWithPadding(pt, r.cipher, padLen)
}
func (r *RecordLayer) writeRecordWithPadding(pt *TLSPlaintext, cipher *cipherState, padLen int) error {
if cipher.cipher != nil {
logf(logTypeIO, "RecordLayer.WriteRecord epoch=[%s] seq=[%x] [%d] plaintext=[%x]", cipher.epoch.label(), cipher.seq, pt.contentType, pt.fragment)
pt = r.encrypt(cipher, pt, padLen)
} else if padLen > 0 {
return fmt.Errorf("tls.record: Padding can only be done on encrypted records")
}
if len(pt.fragment) > maxFragmentLen {
return fmt.Errorf("tls.record: Record size too big")
}
length := len(pt.fragment)
var header []byte
if !r.datagram {
header = []byte{byte(pt.contentType),
byte(r.version >> 8), byte(r.version & 0xff),
byte(length >> 8), byte(length)}
} else {
// TODO(ekr@rtfm.com): Double check version
seq := cipher.seq
header = []byte{byte(pt.contentType), 0xfe, 0xff,
0x00, 0x00, // TODO(ekr@rtfm.com): double-check epoch
seq[2], seq[3], seq[4], seq[5], seq[6], seq[7],
byte(length >> 8), byte(length)}
}
record := append(header, pt.fragment...)
logf(logTypeIO, "RecordLayer.WriteRecord epoch=[%s] seq=[%x] [%d] ciphertext=[%x]", cipher.epoch.label(), cipher.seq, pt.contentType, pt.fragment)
cipher.incrementSequenceNumber()
_, err := r.conn.Write(record)
return err
}

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vendor/github.com/bifurcation/mint/record-layer_test.go generated vendored Normal file
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package mint
import (
"bytes"
"fmt"
"io"
"net"
"testing"
)
const (
plaintextHex = "1503010005F0F1F2F3F4"
// Random key and IV; hand-encoded ciphertext for the above plaintext
keyHex = "45c71e5819170d622a9f4e3a089a0beb"
ivHex = "2b7fbbf689f240e3e7aa44a6"
paddingLength = 4
sequenceChange = 17
ciphertext0Hex = "1703010016621a75932c037ff74d2a9ec7776790e09dcd4811db97"
ciphertext1Hex = "170301001a621a75932c03076e386b3cebbb8dbf2f37e49ad3e82a70a17833"
ciphertext2Hex = "170301001a1da650d5da822b7f4eba67f954767fcbbbd4c4bc7f1c61daf701"
)
func TestRekey(t *testing.T) {
key := unhex(keyHex)
iv := unhex(ivHex)
r := NewRecordLayerTLS(bytes.NewBuffer(nil))
err := r.Rekey(EpochApplicationData, newAESGCM, key, iv)
assertNotError(t, err, "Failed to rekey")
}
func TestSequenceNumberRollover(t *testing.T) {
defer func() {
r := recover()
assert(t, r != nil, "failed to panic on sequence number overflow")
}()
key := unhex(keyHex)
iv := unhex(ivHex)
cs, err := newCipherStateAead(EpochApplicationData, newAESGCM, key, iv)
assertNotError(t, err, "Couldn't create cipher state")
for i := 0; i < sequenceNumberLen; i++ {
cs.seq[cs.ivLength-i-1] = 0xFF
}
cs.incrementSequenceNumber()
}
func TestReadRecord(t *testing.T) {
plaintext := unhex(plaintextHex)
// Test that a known-good frame decodes properly
r := NewRecordLayerTLS(bytes.NewBuffer(plaintext))
pt, err := r.ReadRecord()
assertNotError(t, err, "Failed to decode valid plaintext")
assertEquals(t, pt.contentType, RecordTypeAlert)
assertByteEquals(t, pt.fragment, plaintext[5:])
// Test failure on unkown record type
plaintext[0] = 0xFF
r = NewRecordLayerTLS(bytes.NewBuffer(plaintext))
pt, err = r.ReadRecord()
assertError(t, err, "Failed to reject record with unknown type")
plaintext[0] = 0x15
// Test failure on wrong version
originalAllowWrongVersionNumber := allowWrongVersionNumber
allowWrongVersionNumber = false
plaintext[2] = 0x02
r = NewRecordLayerTLS(bytes.NewBuffer(plaintext))
pt, err = r.ReadRecord()
assertError(t, err, "Failed to reject record with incorrect version")
plaintext[2] = 0x01
allowWrongVersionNumber = originalAllowWrongVersionNumber
// Test failure on size too big
plaintext[3] = 0xFF
r = NewRecordLayerTLS(bytes.NewBuffer(plaintext))
pt, err = r.ReadRecord()
assertError(t, err, "Failed to reject record exceeding size limit")
plaintext[3] = 0x00
// Test failure on header read failure
r = NewRecordLayerTLS(bytes.NewBuffer(plaintext[:3]))
pt, err = r.ReadRecord()
assertError(t, err, "Didn't fail when unable to read header")
// Test failure on body read failure
r = NewRecordLayerTLS(bytes.NewBuffer(plaintext[:7]))
pt, err = r.ReadRecord()
assertError(t, err, "Didn't fail when unable to read fragment")
}
func TestWriteRecord(t *testing.T) {
plaintext := unhex(plaintextHex)
// Test that plain WriteRecord works
pt := &TLSPlaintext{
contentType: RecordType(plaintext[0]),
fragment: plaintext[5:],
}
b := bytes.NewBuffer(nil)
r := NewRecordLayerTLS(b)
err := r.WriteRecord(pt)
assertNotError(t, err, "Failed to write valid record")
assertByteEquals(t, b.Bytes(), plaintext)
// Test failure on size too big
pt = &TLSPlaintext{
contentType: RecordType(plaintext[0]),
fragment: bytes.Repeat([]byte{0}, maxFragmentLen+1),
}
err = r.WriteRecord(pt)
assertError(t, err, "Allowed a too-large record")
// Test failure if padding is requested without encryption
pt = &TLSPlaintext{
contentType: RecordType(plaintext[0]),
fragment: bytes.Repeat([]byte{0}, 5),
}
err = r.WriteRecordWithPadding(pt, 5)
assertError(t, err, "Allowed padding without encryption")
}
func TestDecryptRecord(t *testing.T) {
key := unhex(keyHex)
iv := unhex(ivHex)
plaintext := unhex(plaintextHex)
ciphertext1 := unhex(ciphertext1Hex)
ciphertext2 := unhex(ciphertext2Hex)
// Test successful decrypt
r := NewRecordLayerTLS(bytes.NewBuffer(ciphertext1))
r.Rekey(EpochApplicationData, newAESGCM, key, iv)
pt, err := r.ReadRecord()
assertNotError(t, err, "Failed to decrypt valid record")
assertEquals(t, pt.contentType, RecordTypeAlert)
assertByteEquals(t, pt.fragment, plaintext[5:])
// Test successful decrypt after sequence number change
r = NewRecordLayerTLS(bytes.NewBuffer(ciphertext2))
r.Rekey(EpochApplicationData, newAESGCM, key, iv)
for i := 0; i < sequenceChange; i++ {
r.cipher.incrementSequenceNumber()
}
pt, err = r.ReadRecord()
assertNotError(t, err, "Failed to properly handle sequence number change")
assertEquals(t, pt.contentType, RecordTypeAlert)
assertByteEquals(t, pt.fragment, plaintext[5:])
// Test failure on decrypt failure
ciphertext1[7] ^= 0xFF
r = NewRecordLayerTLS(bytes.NewBuffer(ciphertext1))
r.Rekey(EpochApplicationData, newAESGCM, key, iv)
pt, err = r.ReadRecord()
assertError(t, err, "Failed to reject invalid record")
ciphertext1[7] ^= 0xFF
}
func TestEncryptRecord(t *testing.T) {
key := unhex(keyHex)
iv := unhex(ivHex)
plaintext := unhex(plaintextHex)
ciphertext0 := unhex(ciphertext0Hex)
ciphertext1 := unhex(ciphertext1Hex)
ciphertext2 := unhex(ciphertext2Hex)
// Test successful encrypt
b := bytes.NewBuffer(nil)
r := NewRecordLayerTLS(b)
r.Rekey(EpochApplicationData, newAESGCM, key, iv)
pt := &TLSPlaintext{
contentType: RecordType(plaintext[0]),
fragment: plaintext[5:],
}
err := r.WriteRecord(pt)
assertNotError(t, err, "Failed to encrypt valid record")
assertByteEquals(t, b.Bytes(), ciphertext0)
// Test successful encrypt with padding
b.Truncate(0)
r = NewRecordLayerTLS(b)
r.Rekey(EpochApplicationData, newAESGCM, key, iv)
pt = &TLSPlaintext{
contentType: RecordType(plaintext[0]),
fragment: plaintext[5:],
}
err = r.WriteRecordWithPadding(pt, paddingLength)
assertNotError(t, err, "Failed to encrypt valid record")
assertByteEquals(t, b.Bytes(), ciphertext1)
// Test successful enc after sequence number change
b.Truncate(0)
r = NewRecordLayerTLS(b)
r.Rekey(EpochApplicationData, newAESGCM, key, iv)
for i := 0; i < sequenceChange; i++ {
r.cipher.incrementSequenceNumber()
}
pt = &TLSPlaintext{
contentType: RecordType(plaintext[0]),
fragment: plaintext[5:],
}
err = r.WriteRecordWithPadding(pt, paddingLength)
assertNotError(t, err, "Failed to properly handle sequence number change")
assertByteEquals(t, b.Bytes(), ciphertext2)
// Test failure on size too big after encrypt
b.Truncate(0)
r = NewRecordLayerTLS(b)
r.Rekey(EpochApplicationData, newAESGCM, key, iv)
pt = &TLSPlaintext{
contentType: RecordType(plaintext[0]),
fragment: bytes.Repeat([]byte{0}, maxFragmentLen-paddingLength),
}
err = r.WriteRecordWithPadding(pt, paddingLength)
assertError(t, err, "Allowed a too-large record")
}
func TestReadWriteTLS(t *testing.T) {
key := unhex(keyHex)
iv := unhex(ivHex)
plaintext := unhex(plaintextHex)
b := bytes.NewBuffer(nil)
out := NewRecordLayerTLS(b)
in := NewRecordLayerTLS(b)
// Unencrypted
ptIn := &TLSPlaintext{
contentType: RecordType(plaintext[0]),
fragment: plaintext[5:],
}
err := out.WriteRecord(ptIn)
assertNotError(t, err, "Failed to write record")
ptOut, err := in.ReadRecord()
assertNotError(t, err, "Failed to read record")
assertEquals(t, ptIn.contentType, ptOut.contentType)
assertByteEquals(t, ptIn.fragment, ptOut.fragment)
// Encrypted
in.Rekey(EpochApplicationData, newAESGCM, key, iv)
out.Rekey(EpochApplicationData, newAESGCM, key, iv)
err = out.WriteRecord(ptIn)
assertNotError(t, err, "Failed to write record")
ptOut, err = in.ReadRecord()
assertNotError(t, err, "Failed to read record")
assertEquals(t, ptIn.contentType, ptOut.contentType)
assertByteEquals(t, ptIn.fragment, ptOut.fragment)
}
func TestReadWriteDTLS(t *testing.T) {
key := unhex(keyHex)
iv := unhex(ivHex)
plaintext := unhex(plaintextHex)
b := bytes.NewBuffer(nil)
out := NewRecordLayerDTLS(b)
in := NewRecordLayerDTLS(b)
// Unencrypted
ptIn := &TLSPlaintext{
contentType: RecordType(plaintext[0]),
fragment: plaintext[5:],
}
err := out.WriteRecord(ptIn)
assertNotError(t, err, "Failed to write record")
ptOut, err := in.ReadRecord()
assertNotError(t, err, "Failed to read record")
assertEquals(t, ptIn.contentType, ptOut.contentType)
assertByteEquals(t, ptIn.fragment, ptOut.fragment)
// Encrypted
in.Rekey(EpochApplicationData, newAESGCM, key, iv)
out.Rekey(EpochApplicationData, newAESGCM, key, iv)
err = out.WriteRecord(ptIn)
assertNotError(t, err, "Failed to write record")
ptOut, err = in.ReadRecord()
assertNotError(t, err, "Failed to read record")
assertEquals(t, ptIn.contentType, ptOut.contentType)
assertByteEquals(t, ptIn.fragment, ptOut.fragment)
}
func TestOverSocket(t *testing.T) {
key := unhex(keyHex)
iv := unhex(ivHex)
plaintext := unhex(plaintextHex)
socketReady := make(chan bool)
done := make(chan TLSPlaintext, 1)
port := ":9001"
ptIn := TLSPlaintext{
contentType: RecordType(plaintext[0]),
fragment: plaintext[5:],
}
go func() {
ln, err := net.Listen("tcp", port)
assertNotError(t, err, "Unable to listen")
socketReady <- true
conn, err := ln.Accept()
assertNotError(t, err, "Unable to accept")
defer conn.Close()
in := NewRecordLayerTLS(conn)
in.Rekey(EpochApplicationData, newAESGCM, key, iv)
pt, err := in.ReadRecord()
assertNotError(t, err, "Unable to read record")
done <- *pt
}()
<-socketReady
conn, err := net.Dial("tcp", port)
assertNotError(t, err, "Unable to dial")
out := NewRecordLayerTLS(conn)
out.Rekey(EpochApplicationData, newAESGCM, key, iv)
err = out.WriteRecord(&ptIn)
assertNotError(t, err, "Unable to write record")
ptOut := <-done
assertEquals(t, ptIn.contentType, ptOut.contentType)
assertByteEquals(t, ptIn.fragment, ptOut.fragment)
}
type NoEofReader struct {
r *bytes.Buffer
}
func (p *NoEofReader) Read(data []byte) (n int, err error) {
n, err = p.r.Read(data)
// Suppress bytes.Buffer's EOF on an empty buffer
if err == io.EOF {
err = nil
}
return
}
func (p *NoEofReader) Write(data []byte) (n int, err error) {
return 0, fmt.Errorf("Not allowed")
}
func TestNonblockingRecord(t *testing.T) {
key := unhex(keyHex)
iv := unhex(ivHex)
plaintext := unhex(plaintextHex)
ciphertext1 := unhex(ciphertext1Hex)
// Add the prefix, which should cause blocking.
b := bytes.NewBuffer(ciphertext1[:1])
r := NewRecordLayerTLS(&NoEofReader{b})
r.Rekey(EpochApplicationData, newAESGCM, key, iv)
pt, err := r.ReadRecord()
assertEquals(t, err, WouldBlock)
// Now the rest of the record, which lets us decrypt it
b.Write(ciphertext1[1:])
pt, err = r.ReadRecord()
assertNotError(t, err, "Failed to decrypt valid record")
assertEquals(t, pt.contentType, RecordTypeAlert)
assertByteEquals(t, pt.fragment, plaintext[5:])
}

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262
vendor/github.com/bifurcation/mint/state-machine.go generated vendored Normal file
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package mint
import (
"time"
)
// Marker interface for actions that an implementation should take based on
// state transitions.
type HandshakeAction interface{}
type QueueHandshakeMessage struct {
Message *HandshakeMessage
}
type SendQueuedHandshake struct{}
type SendEarlyData struct{}
type ReadEarlyData struct{}
type ReadPastEarlyData struct{}
type RekeyIn struct {
epoch Epoch
KeySet keySet
}
type RekeyOut struct {
epoch Epoch
KeySet keySet
}
type StorePSK struct {
PSK PreSharedKey
}
type HandshakeState interface {
Next(handshakeMessageReader) (HandshakeState, []HandshakeAction, Alert)
State() State
}
type AppExtensionHandler interface {
Send(hs HandshakeType, el *ExtensionList) error
Receive(hs HandshakeType, el *ExtensionList) error
}
// Capabilities objects represent the capabilities of a TLS client or server,
// as an input to TLS negotiation
type Capabilities struct {
// For both client and server
CipherSuites []CipherSuite
Groups []NamedGroup
SignatureSchemes []SignatureScheme
PSKs PreSharedKeyCache
Certificates []*Certificate
AuthCertificate func(chain []CertificateEntry) error
ExtensionHandler AppExtensionHandler
UseDTLS bool
// For client
PSKModes []PSKKeyExchangeMode
// For server
NextProtos []string
AllowEarlyData bool
RequireCookie bool
CookieProtector CookieProtector
CookieHandler CookieHandler
RequireClientAuth bool
}
// ConnectionOptions objects represent per-connection settings for a client
// initiating a connection
type ConnectionOptions struct {
ServerName string
NextProtos []string
EarlyData []byte
}
// ConnectionParameters objects represent the parameters negotiated for a
// connection.
type ConnectionParameters struct {
UsingPSK bool
UsingDH bool
ClientSendingEarlyData bool
UsingEarlyData bool
UsingClientAuth bool
CipherSuite CipherSuite
ServerName string
NextProto string
}
// Working state for the handshake.
type HandshakeContext struct {
hIn, hOut *HandshakeLayer
}
func (hc *HandshakeContext) SetVersion(version uint16) {
if hc.hIn.conn != nil {
hc.hIn.conn.SetVersion(version)
}
if hc.hOut.conn != nil {
hc.hOut.conn.SetVersion(version)
}
}
// StateConnected is symmetric between client and server
type StateConnected struct {
Params ConnectionParameters
hsCtx HandshakeContext
isClient bool
cryptoParams CipherSuiteParams
resumptionSecret []byte
clientTrafficSecret []byte
serverTrafficSecret []byte
exporterSecret []byte
}
var _ HandshakeState = &StateConnected{}
func (state StateConnected) State() State {
if state.isClient {
return StateClientConnected
}
return StateServerConnected
}
func (state *StateConnected) KeyUpdate(request KeyUpdateRequest) ([]HandshakeAction, Alert) {
var trafficKeys keySet
if state.isClient {
state.clientTrafficSecret = HkdfExpandLabel(state.cryptoParams.Hash, state.clientTrafficSecret,
labelClientApplicationTrafficSecret, []byte{}, state.cryptoParams.Hash.Size())
trafficKeys = makeTrafficKeys(state.cryptoParams, state.clientTrafficSecret)
} else {
state.serverTrafficSecret = HkdfExpandLabel(state.cryptoParams.Hash, state.serverTrafficSecret,
labelServerApplicationTrafficSecret, []byte{}, state.cryptoParams.Hash.Size())
trafficKeys = makeTrafficKeys(state.cryptoParams, state.serverTrafficSecret)
}
kum, err := state.hsCtx.hOut.HandshakeMessageFromBody(&KeyUpdateBody{KeyUpdateRequest: request})
if err != nil {
logf(logTypeHandshake, "[StateConnected] Error marshaling key update message: %v", err)
return nil, AlertInternalError
}
toSend := []HandshakeAction{
QueueHandshakeMessage{kum},
SendQueuedHandshake{},
RekeyOut{epoch: EpochUpdate, KeySet: trafficKeys},
}
return toSend, AlertNoAlert
}
func (state *StateConnected) NewSessionTicket(length int, lifetime, earlyDataLifetime uint32) ([]HandshakeAction, Alert) {
tkt, err := NewSessionTicket(length, lifetime)
if err != nil {
logf(logTypeHandshake, "[StateConnected] Error generating NewSessionTicket: %v", err)
return nil, AlertInternalError
}
err = tkt.Extensions.Add(&TicketEarlyDataInfoExtension{earlyDataLifetime})
if err != nil {
logf(logTypeHandshake, "[StateConnected] Error adding extension to NewSessionTicket: %v", err)
return nil, AlertInternalError
}
resumptionKey := HkdfExpandLabel(state.cryptoParams.Hash, state.resumptionSecret,
labelResumption, tkt.TicketNonce, state.cryptoParams.Hash.Size())
newPSK := PreSharedKey{
CipherSuite: state.cryptoParams.Suite,
IsResumption: true,
Identity: tkt.Ticket,
Key: resumptionKey,
NextProto: state.Params.NextProto,
ReceivedAt: time.Now(),
ExpiresAt: time.Now().Add(time.Duration(tkt.TicketLifetime) * time.Second),
TicketAgeAdd: tkt.TicketAgeAdd,
}
tktm, err := state.hsCtx.hOut.HandshakeMessageFromBody(tkt)
if err != nil {
logf(logTypeHandshake, "[StateConnected] Error marshaling NewSessionTicket: %v", err)
return nil, AlertInternalError
}
toSend := []HandshakeAction{
StorePSK{newPSK},
QueueHandshakeMessage{tktm},
SendQueuedHandshake{},
}
return toSend, AlertNoAlert
}
// Next does nothing for this state.
func (state StateConnected) Next(hr handshakeMessageReader) (HandshakeState, []HandshakeAction, Alert) {
return state, nil, AlertNoAlert
}
func (state StateConnected) ProcessMessage(hm *HandshakeMessage) (HandshakeState, []HandshakeAction, Alert) {
if hm == nil {
logf(logTypeHandshake, "[StateConnected] Unexpected message")
return nil, nil, AlertUnexpectedMessage
}
bodyGeneric, err := hm.ToBody()
if err != nil {
logf(logTypeHandshake, "[StateConnected] Error decoding message: %v", err)
return nil, nil, AlertDecodeError
}
switch body := bodyGeneric.(type) {
case *KeyUpdateBody:
var trafficKeys keySet
if !state.isClient {
state.clientTrafficSecret = HkdfExpandLabel(state.cryptoParams.Hash, state.clientTrafficSecret,
labelClientApplicationTrafficSecret, []byte{}, state.cryptoParams.Hash.Size())
trafficKeys = makeTrafficKeys(state.cryptoParams, state.clientTrafficSecret)
} else {
state.serverTrafficSecret = HkdfExpandLabel(state.cryptoParams.Hash, state.serverTrafficSecret,
labelServerApplicationTrafficSecret, []byte{}, state.cryptoParams.Hash.Size())
trafficKeys = makeTrafficKeys(state.cryptoParams, state.serverTrafficSecret)
}
toSend := []HandshakeAction{RekeyIn{epoch: EpochUpdate, KeySet: trafficKeys}}
// If requested, roll outbound keys and send a KeyUpdate
if body.KeyUpdateRequest == KeyUpdateRequested {
logf(logTypeHandshake, "Received key update, update requested", body.KeyUpdateRequest)
moreToSend, alert := state.KeyUpdate(KeyUpdateNotRequested)
if alert != AlertNoAlert {
return nil, nil, alert
}
toSend = append(toSend, moreToSend...)
}
return state, toSend, AlertNoAlert
case *NewSessionTicketBody:
// XXX: Allow NewSessionTicket in both directions?
if !state.isClient {
return nil, nil, AlertUnexpectedMessage
}
resumptionKey := HkdfExpandLabel(state.cryptoParams.Hash, state.resumptionSecret,
labelResumption, body.TicketNonce, state.cryptoParams.Hash.Size())
psk := PreSharedKey{
CipherSuite: state.cryptoParams.Suite,
IsResumption: true,
Identity: body.Ticket,
Key: resumptionKey,
NextProto: state.Params.NextProto,
ReceivedAt: time.Now(),
ExpiresAt: time.Now().Add(time.Duration(body.TicketLifetime) * time.Second),
TicketAgeAdd: body.TicketAgeAdd,
}
toSend := []HandshakeAction{StorePSK{psk}}
return state, toSend, AlertNoAlert
}
logf(logTypeHandshake, "[StateConnected] Unexpected message type %v", hm.msgType)
return nil, nil, AlertUnexpectedMessage
}

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@ -0,0 +1,451 @@
package mint
import (
"fmt"
"reflect"
"testing"
)
type mockHandshakeMessageReader struct {
queue []*HandshakeMessage
}
var _ handshakeMessageReader = &mockHandshakeMessageReader{}
func (m *mockHandshakeMessageReader) ReadMessage() (*HandshakeMessage, Alert) {
if len(m.queue) == 0 {
return nil, AlertWouldBlock
}
message := m.queue[0]
m.queue = m.queue[1:]
return message, AlertNoAlert
}
// TODO: Track instructions other than state changes
func messagesFromActions(instructions []HandshakeAction) []*HandshakeMessage {
msgs := []*HandshakeMessage{}
for _, instr := range instructions {
msg, ok := instr.(QueueHandshakeMessage)
if !ok {
continue
}
msgs = append(msgs, msg.Message)
}
return msgs
}
// TODO: Unit tests for individual states
func TestStateMachineIntegration(t *testing.T) {
cookieProtector, err := NewDefaultCookieProtector()
assertNotError(t, err, "error creating cookie source")
var (
stateMachineIntegrationCases = map[string]struct {
clientCapabilities Capabilities
clientOptions ConnectionOptions
serverCapabilities Capabilities
clientStateSequence []HandshakeState
serverStateSequence []HandshakeState
}{
"normal": {
clientCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{},
},
clientOptions: ConnectionOptions{
ServerName: "example.com",
NextProtos: []string{"h2"},
},
serverCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{},
Certificates: certificates,
CookieProtector: cookieProtector,
},
clientStateSequence: []HandshakeState{
ClientStateStart{},
ClientStateWaitSH{},
ClientStateWaitEE{},
ClientStateWaitCertCR{},
ClientStateWaitCV{},
ClientStateWaitFinished{},
StateConnected{},
},
serverStateSequence: []HandshakeState{
ServerStateStart{},
ServerStateNegotiated{},
ServerStateWaitFlight2{},
ServerStateWaitFinished{},
StateConnected{},
},
},
"helloRetryRequest": {
clientCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{},
},
clientOptions: ConnectionOptions{
ServerName: "example.com",
NextProtos: []string{"h2"},
},
serverCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{},
Certificates: certificates,
RequireCookie: true,
CookieProtector: cookieProtector,
},
clientStateSequence: []HandshakeState{
ClientStateStart{},
ClientStateWaitSH{},
ClientStateStart{},
ClientStateWaitSH{},
ClientStateWaitEE{},
ClientStateWaitCertCR{},
ClientStateWaitCV{},
ClientStateWaitFinished{},
StateConnected{},
},
serverStateSequence: []HandshakeState{
ServerStateStart{},
ServerStateStart{},
ServerStateNegotiated{},
ServerStateWaitFlight2{},
ServerStateWaitFinished{},
StateConnected{},
},
},
// PSK case, no early data
"psk": {
clientCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{
"example.com": psk,
},
},
clientOptions: ConnectionOptions{
ServerName: "example.com",
NextProtos: []string{"h2"},
},
serverCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{
"00010203": psk,
},
Certificates: certificates,
},
clientStateSequence: []HandshakeState{
ClientStateStart{},
ClientStateWaitSH{},
ClientStateWaitEE{},
ClientStateWaitFinished{},
StateConnected{},
},
serverStateSequence: []HandshakeState{
ServerStateStart{},
ServerStateNegotiated{},
ServerStateWaitFlight2{},
ServerStateWaitFinished{},
StateConnected{},
},
},
// PSK case, with early data
"pskWithEarlyData": {
clientCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{
"example.com": psk,
},
},
clientOptions: ConnectionOptions{
ServerName: "example.com",
NextProtos: []string{"h2"},
EarlyData: []byte{0, 1, 2, 3},
},
serverCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{
"00010203": psk,
},
Certificates: certificates,
AllowEarlyData: true,
},
clientStateSequence: []HandshakeState{
ClientStateStart{},
ClientStateWaitSH{},
ClientStateWaitEE{},
ClientStateWaitFinished{},
StateConnected{},
},
serverStateSequence: []HandshakeState{
ServerStateStart{},
ServerStateNegotiated{},
ServerStateWaitEOED{},
ServerStateWaitFlight2{},
ServerStateWaitFinished{},
StateConnected{},
},
},
// PSK case, server rejects PSK
"pskRejected": {
clientCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{
"example.com": psk,
},
},
clientOptions: ConnectionOptions{
ServerName: "example.com",
NextProtos: []string{"h2"},
},
serverCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{},
Certificates: certificates,
},
clientStateSequence: []HandshakeState{
ClientStateStart{},
ClientStateWaitSH{},
ClientStateWaitEE{},
ClientStateWaitCertCR{},
ClientStateWaitCV{},
ClientStateWaitFinished{},
StateConnected{},
},
serverStateSequence: []HandshakeState{
ServerStateStart{},
ServerStateNegotiated{},
ServerStateWaitFlight2{},
ServerStateWaitFinished{},
StateConnected{},
},
},
// Client auth, successful
"clientAuth": {
clientCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{},
Certificates: certificates,
},
clientOptions: ConnectionOptions{
ServerName: "example.com",
NextProtos: []string{"h2"},
},
serverCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{},
Certificates: certificates,
RequireClientAuth: true,
},
clientStateSequence: []HandshakeState{
ClientStateStart{},
ClientStateWaitSH{},
ClientStateWaitEE{},
ClientStateWaitCertCR{},
ClientStateWaitCert{},
ClientStateWaitCV{},
ClientStateWaitFinished{},
StateConnected{},
},
serverStateSequence: []HandshakeState{
ServerStateStart{},
ServerStateNegotiated{},
ServerStateWaitFlight2{},
ServerStateWaitCert{},
ServerStateWaitCV{},
ServerStateWaitFinished{},
StateConnected{},
},
},
// Client auth, no certificate found
"clientAuthNoCertificate": {
clientCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{},
},
clientOptions: ConnectionOptions{
ServerName: "example.com",
NextProtos: []string{"h2"},
},
serverCapabilities: Capabilities{
Groups: []NamedGroup{P256},
SignatureSchemes: []SignatureScheme{RSA_PSS_SHA256},
PSKModes: []PSKKeyExchangeMode{PSKModeDHEKE},
CipherSuites: []CipherSuite{TLS_AES_128_GCM_SHA256},
PSKs: &PSKMapCache{},
Certificates: certificates,
RequireClientAuth: true,
},
clientStateSequence: []HandshakeState{
ClientStateStart{},
ClientStateWaitSH{},
ClientStateWaitEE{},
ClientStateWaitCertCR{},
ClientStateWaitCert{},
ClientStateWaitCV{},
ClientStateWaitFinished{},
StateConnected{},
},
serverStateSequence: []HandshakeState{
ServerStateStart{},
ServerStateNegotiated{},
ServerStateWaitFlight2{},
ServerStateWaitCert{},
ServerStateWaitFinished{},
StateConnected{},
},
},
}
)
for caseName, params := range stateMachineIntegrationCases {
t.Run(caseName, func(t *testing.T) {
chsCtx := HandshakeContext{
hIn: &HandshakeLayer{},
hOut: &HandshakeLayer{},
}
chsCtx.SetVersion(tls10Version)
shsCtx := chsCtx
var clientState, serverState HandshakeState
clientState = ClientStateStart{
Caps: params.clientCapabilities,
Opts: params.clientOptions,
hsCtx: chsCtx,
}
serverState = ServerStateStart{Caps: params.serverCapabilities, hsCtx: shsCtx}
t.Logf("Client: %s", reflect.TypeOf(clientState).Name())
t.Logf("Server: %s", reflect.TypeOf(serverState).Name())
clientStateSequence := []HandshakeState{clientState}
serverStateSequence := []HandshakeState{serverState}
serverHandshakeMessageReader := &mockHandshakeMessageReader{}
clientHandshakeMessageReader := &mockHandshakeMessageReader{}
// Create the ClientHello
clientState, clientInstr, alert := clientState.Next(nil)
serverHandshakeMessageReader.queue = append(serverHandshakeMessageReader.queue, messagesFromActions(clientInstr)...)
assertEquals(t, alert, AlertNoAlert)
t.Logf("Client: %s", reflect.TypeOf(clientState).Name())
clientStateSequence = append(clientStateSequence, clientState)
assertEquals(t, len(serverHandshakeMessageReader.queue), 1)
for {
var clientInstr, serverInstr []HandshakeAction
var alert Alert
// Client -> Server
for {
if _, connected := serverState.(StateConnected); connected {
break
}
var nextState HandshakeState
nextState, serverInstr, alert = serverState.Next(serverHandshakeMessageReader)
if alert == AlertWouldBlock {
break
}
serverState = nextState
serverResponses := messagesFromActions(serverInstr)
assert(t, alert == AlertNoAlert || alert == AlertStatelessRetry, fmt.Sprintf("Alert from server [%v]", alert))
serverStateSequence = append(serverStateSequence, serverState)
t.Logf("Server: %s", reflect.TypeOf(serverState).Name())
clientHandshakeMessageReader.queue = append(clientHandshakeMessageReader.queue, serverResponses...)
}
// Server -> Client
for {
if _, connected := clientState.(StateConnected); connected {
break
}
var nextState HandshakeState
nextState, clientInstr, alert = clientState.Next(clientHandshakeMessageReader)
if alert == AlertWouldBlock {
break
}
clientState = nextState
clientResponses := messagesFromActions(clientInstr)
assert(t, alert == AlertNoAlert, fmt.Sprintf("Alert from client [%v]", alert))
clientStateSequence = append(clientStateSequence, clientState)
t.Logf("Client: %s", reflect.TypeOf(clientState).Name())
serverHandshakeMessageReader.queue = append(serverHandshakeMessageReader.queue, clientResponses...)
}
clientConnected := reflect.TypeOf(clientState) == reflect.TypeOf(StateConnected{})
serverConnected := reflect.TypeOf(serverState) == reflect.TypeOf(StateConnected{})
if clientConnected && serverConnected {
c := clientState.(StateConnected)
s := serverState.(StateConnected)
// Test that we ended up at the same state
assertDeepEquals(t, c.Params, s.Params)
assertCipherSuiteParamsEquals(t, c.cryptoParams, s.cryptoParams)
assertByteEquals(t, c.resumptionSecret, s.resumptionSecret)
assertByteEquals(t, c.clientTrafficSecret, s.clientTrafficSecret)
assertByteEquals(t, c.serverTrafficSecret, s.serverTrafficSecret)
// Test that the client went through the expected sequence of states
assertEquals(t, len(clientStateSequence), len(params.clientStateSequence))
for i, state := range clientStateSequence {
t.Logf("-- %d %s", i, reflect.TypeOf(state).Name())
assertSameType(t, state, params.clientStateSequence[i])
}
// Test that the server went through the expected sequence of states
assertEquals(t, len(serverStateSequence), len(params.serverStateSequence))
for i, state := range serverStateSequence {
t.Logf("-- %d %s", i, reflect.TypeOf(state).Name())
assertSameType(t, state, params.serverStateSequence[i])
}
break
}
}
})
}
}

74
vendor/github.com/bifurcation/mint/syntax/README.md generated vendored Normal file
View File

@ -0,0 +1,74 @@
TLS Syntax
==========
TLS defines [its own syntax](https://tlswg.github.io/tls13-spec/#rfc.section.3)
for describing structures used in that protocol. To facilitate experimentation
with TLS in Go, this module maps that syntax to the Go structure syntax, taking
advantage of Go's type annotations to encode non-type information carried in the
TLS presentation format.
For example, in the TLS specification, a ClientHello message has the following
structure:
~~~~~
uint16 ProtocolVersion;
opaque Random[32];
uint8 CipherSuite[2];
enum { ... (65535)} ExtensionType;
struct {
ExtensionType extension_type;
opaque extension_data<0..2^16-1>;
} Extension;
struct {
ProtocolVersion legacy_version = 0x0303; /* TLS v1.2 */
Random random;
opaque legacy_session_id<0..32>;
CipherSuite cipher_suites<2..2^16-2>;
opaque legacy_compression_methods<1..2^8-1>;
Extension extensions<0..2^16-1>;
} ClientHello;
~~~~~
This maps to the following Go type definitions:
~~~~~
type protocolVersion uint16
type random [32]byte
type cipherSuite uint16 // or [2]byte
type extensionType uint16
type extension struct {
ExtensionType extensionType
ExtensionData []byte `tls:"head=2"`
}
type clientHello struct {
LegacyVersion protocolVersion
Random random
LegacySessionID []byte `tls:"head=1,max=32"`
CipherSuites []cipherSuite `tls:"head=2,min=2"`
LegacyCompressionMethods []byte `tls:"head=1,min=1"`
Extensions []extension `tls:"head=2"`
}
~~~~~
Then you can just declare, marshal, and unmarshal structs just like you would
with, say JSON.
The available annotations right now are all related to vectors:
* `head`: The number of bytes of length to use as a "header"
* `min`: The minimum length of the vector, in bytes
* `max`: The maximum length of the vector, in bytes
## Not supported
* The `select()` syntax for creating alternate version of the same struct (see,
e.g., the KeyShare extension)
* The backreference syntax for array lengths or select parameters, as in `opaque
fragment[TLSPlaintext.length]`. Note, however, that in cases where the length
immediately preceds the array, these can be reframed as vectors with
appropriate sizes.

310
vendor/github.com/bifurcation/mint/syntax/decode.go generated vendored Normal file
View File

@ -0,0 +1,310 @@
package syntax
import (
"bytes"
"fmt"
"reflect"
"runtime"
)
func Unmarshal(data []byte, v interface{}) (int, error) {
// Check for well-formedness.
// Avoids filling out half a data structure
// before discovering a JSON syntax error.
d := decodeState{}
d.Write(data)
return d.unmarshal(v)
}
// Unmarshaler is the interface implemented by types that can
// unmarshal a TLS description of themselves. Note that unlike the
// JSON unmarshaler interface, it is not known a priori how much of
// the input data will be consumed. So the Unmarshaler must state
// how much of the input data it consumed.
type Unmarshaler interface {
UnmarshalTLS([]byte) (int, error)
}
// These are the options that can be specified in the struct tag. Right now,
// all of them apply to variable-length vectors and nothing else
type decOpts struct {
head uint // length of length in bytes
min uint // minimum size in bytes
max uint // maximum size in bytes
varint bool // whether to decode as a varint
}
type decodeState struct {
bytes.Buffer
}
func (d *decodeState) unmarshal(v interface{}) (read int, err error) {
defer func() {
if r := recover(); r != nil {
if _, ok := r.(runtime.Error); ok {
panic(r)
}
if s, ok := r.(string); ok {
panic(s)
}
err = r.(error)
}
}()
rv := reflect.ValueOf(v)
if rv.Kind() != reflect.Ptr || rv.IsNil() {
return 0, fmt.Errorf("Invalid unmarshal target (non-pointer or nil)")
}
read = d.value(rv)
return read, nil
}
func (e *decodeState) value(v reflect.Value) int {
return valueDecoder(v)(e, v, decOpts{})
}
type decoderFunc func(e *decodeState, v reflect.Value, opts decOpts) int
func valueDecoder(v reflect.Value) decoderFunc {
return typeDecoder(v.Type().Elem())
}
func typeDecoder(t reflect.Type) decoderFunc {
// Note: Omits the caching / wait-group things that encoding/json uses
return newTypeDecoder(t)
}
var (
unmarshalerType = reflect.TypeOf(new(Unmarshaler)).Elem()
)
func newTypeDecoder(t reflect.Type) decoderFunc {
if t.Kind() != reflect.Ptr && reflect.PtrTo(t).Implements(unmarshalerType) {
return unmarshalerDecoder
}
switch t.Kind() {
case reflect.Uint8, reflect.Uint16, reflect.Uint32, reflect.Uint64:
return uintDecoder
case reflect.Array:
return newArrayDecoder(t)
case reflect.Slice:
return newSliceDecoder(t)
case reflect.Struct:
return newStructDecoder(t)
case reflect.Ptr:
return newPointerDecoder(t)
default:
panic(fmt.Errorf("Unsupported type (%s)", t))
}
}
///// Specific decoders below
func unmarshalerDecoder(d *decodeState, v reflect.Value, opts decOpts) int {
um, ok := v.Interface().(Unmarshaler)
if !ok {
panic(fmt.Errorf("Non-Unmarshaler passed to unmarshalerEncoder"))
}
read, err := um.UnmarshalTLS(d.Bytes())
if err != nil {
panic(err)
}
if read > d.Len() {
panic(fmt.Errorf("Invalid return value from UnmarshalTLS"))
}
d.Next(read)
return read
}
//////////
func uintDecoder(d *decodeState, v reflect.Value, opts decOpts) int {
if opts.varint {
return varintDecoder(d, v, opts)
}
uintLen := int(v.Elem().Type().Size())
buf := d.Next(uintLen)
if len(buf) != uintLen {
panic(fmt.Errorf("Insufficient data to read uint"))
}
return setUintFromBuffer(v, buf)
}
func varintDecoder(d *decodeState, v reflect.Value, opts decOpts) int {
// Read the first octet and decide the size of the presented varint
first := d.Next(1)
if len(first) != 1 {
panic(fmt.Errorf("Insufficient data to read varint length"))
}
uintLen := int(v.Elem().Type().Size())
twoBits := uint(first[0] >> 6)
varintLen := 1 << twoBits
if uintLen < varintLen {
panic(fmt.Errorf("Uint too small to fit varint: %d < %d"))
}
rest := d.Next(varintLen - 1)
if len(rest) != varintLen-1 {
panic(fmt.Errorf("Insufficient data to read varint"))
}
buf := append(first, rest...)
buf[0] &= 0x3f
return setUintFromBuffer(v, buf)
}
func setUintFromBuffer(v reflect.Value, buf []byte) int {
val := uint64(0)
for _, b := range buf {
val = (val << 8) + uint64(b)
}
v.Elem().SetUint(val)
return len(buf)
}
//////////
type arrayDecoder struct {
elemDec decoderFunc
}
func (ad *arrayDecoder) decode(d *decodeState, v reflect.Value, opts decOpts) int {
n := v.Elem().Type().Len()
read := 0
for i := 0; i < n; i += 1 {
read += ad.elemDec(d, v.Elem().Index(i).Addr(), opts)
}
return read
}
func newArrayDecoder(t reflect.Type) decoderFunc {
dec := &arrayDecoder{typeDecoder(t.Elem())}
return dec.decode
}
//////////
type sliceDecoder struct {
elementType reflect.Type
elementDec decoderFunc
}
func (sd *sliceDecoder) decode(d *decodeState, v reflect.Value, opts decOpts) int {
if opts.head == 0 {
panic(fmt.Errorf("Cannot decode a slice without a header length"))
}
lengthBytes := d.Next(int(opts.head))
if len(lengthBytes) != int(opts.head) {
panic(fmt.Errorf("Not enough data to read header"))
}
length := uint(0)
for _, b := range lengthBytes {
length = (length << 8) + uint(b)
}
if opts.max > 0 && length > opts.max {
panic(fmt.Errorf("Length of vector exceeds declared max"))
}
if length < opts.min {
panic(fmt.Errorf("Length of vector below declared min"))
}
data := d.Next(int(length))
if len(data) != int(length) {
panic(fmt.Errorf("Available data less than declared length [%d < %d]", len(data), length))
}
elemBuf := &decodeState{}
elemBuf.Write(data)
elems := []reflect.Value{}
read := int(opts.head)
for elemBuf.Len() > 0 {
elem := reflect.New(sd.elementType)
read += sd.elementDec(elemBuf, elem, opts)
elems = append(elems, elem)
}
v.Elem().Set(reflect.MakeSlice(v.Elem().Type(), len(elems), len(elems)))
for i := 0; i < len(elems); i += 1 {
v.Elem().Index(i).Set(elems[i].Elem())
}
return read
}
func newSliceDecoder(t reflect.Type) decoderFunc {
dec := &sliceDecoder{
elementType: t.Elem(),
elementDec: typeDecoder(t.Elem()),
}
return dec.decode
}
//////////
type structDecoder struct {
fieldOpts []decOpts
fieldDecs []decoderFunc
}
func (sd *structDecoder) decode(d *decodeState, v reflect.Value, opts decOpts) int {
read := 0
for i := range sd.fieldDecs {
read += sd.fieldDecs[i](d, v.Elem().Field(i).Addr(), sd.fieldOpts[i])
}
return read
}
func newStructDecoder(t reflect.Type) decoderFunc {
n := t.NumField()
sd := structDecoder{
fieldOpts: make([]decOpts, n),
fieldDecs: make([]decoderFunc, n),
}
for i := 0; i < n; i += 1 {
f := t.Field(i)
tag := f.Tag.Get("tls")
tagOpts := parseTag(tag)
sd.fieldOpts[i] = decOpts{
head: tagOpts["head"],
max: tagOpts["max"],
min: tagOpts["min"],
varint: tagOpts[varintOption] > 0,
}
sd.fieldDecs[i] = typeDecoder(f.Type)
}
return sd.decode
}
//////////
type pointerDecoder struct {
base decoderFunc
}
func (pd *pointerDecoder) decode(d *decodeState, v reflect.Value, opts decOpts) int {
v.Elem().Set(reflect.New(v.Elem().Type().Elem()))
return pd.base(d, v.Elem(), opts)
}
func newPointerDecoder(t reflect.Type) decoderFunc {
baseDecoder := typeDecoder(t.Elem())
pd := pointerDecoder{base: baseDecoder}
return pd.decode
}

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@ -0,0 +1,219 @@
package syntax
import (
"reflect"
"testing"
)
func TestDecodeUnsupported(t *testing.T) {
var y struct {
Strings []string
}
read, err := Unmarshal(z8, &y)
if err == nil || read != 0 {
t.Fatalf("Agreed to unmarshal an unsupported type")
}
var yi int
read, err = Unmarshal(z8, yi)
if err == nil || read != 0 {
t.Fatalf("Agreed to unmarshal to a non-pointer")
}
read, err = Unmarshal(z8, nil)
if err == nil || read != 0 {
t.Fatalf("Agreed to unmarshal to a nil pointer")
}
}
func TestDecodeBasicTypes(t *testing.T) {
var y8 uint8
read, err := Unmarshal(z8, &y8)
if err != nil || y8 != x8 || read != 1 {
t.Fatalf("uint8 decode failed [%v] [%x]", err, y8)
}
var y16 uint16
read, err = Unmarshal(z16, &y16)
if err != nil || y16 != x16 || read != 2 {
t.Fatalf("uint16 decode failed [%v] [%x]", err, y16)
}
var y32 uint32
read, err = Unmarshal(z32, &y32)
if err != nil || y32 != x32 || read != 4 {
t.Fatalf("uint32 decode failed [%v] [%x]", err, y32)
}
var y64 uint64
read, err = Unmarshal(z64, &y64)
if err != nil || y64 != x64 || read != 8 {
t.Fatalf("uint64 decode failed [%v] [%x]", err, y64)
}
read, err = Unmarshal(z8[:0], &y8)
if err == nil || read != 0 {
t.Fatalf("Allowed uint8 decode from an empty buffer")
}
read, err = Unmarshal(z64[:2], &y64)
if err == nil || read != 0 {
t.Fatalf("Allowed uint64 decode from an incomplete buffer")
}
}
func TestDecodeVarint(t *testing.T) {
var yvi struct {
U8 uint8 `tls:"varint"`
U16 uint16 `tls:"varint"`
U32 uint32 `tls:"varint"`
U64 uint64 `tls:"varint"`
}
read, err := Unmarshal(zvi, &yvi)
if err != nil || !reflect.DeepEqual(yvi, xvi) || read != len(zvi) {
t.Fatalf("varint decode failed [%v] [%v]", err, yvi)
}
}
func TestDecodeArray(t *testing.T) {
var ya [5]uint16
read, err := Unmarshal(za, &ya)
if err != nil || !reflect.DeepEqual(ya, xa) || read != 10 {
t.Fatalf("[5]uint16 decode failed [%v] [%x]", err, ya)
}
}
func TestDecodeSlice(t *testing.T) {
var yv20 struct {
V []byte `tls:"head=1"`
}
read, err := Unmarshal(zv20, &yv20)
if err != nil || !reflect.DeepEqual(yv20, xv20) || read != len(zv20) {
t.Fatalf("[0x20]uint8 decode failed [%v] [%x]", err, yv20.V)
}
var yv200 struct {
V []byte `tls:"head=2"`
}
read, err = Unmarshal(zv200, &yv200)
if err != nil || !reflect.DeepEqual(yv200, xv200) || read != len(zv200) {
t.Fatalf("[0x200]uint8 decode failed [%v] [%x]", err, yv200.V)
}
var yv20000 struct {
V []byte `tls:"head=3"`
}
read, err = Unmarshal(zv20000, &yv20000)
if err != nil || !reflect.DeepEqual(yv20000, xv20000) || read != len(zv20000) {
t.Fatalf("[0x20000]uint8 decode failed [%v] [%x]", err, yv20000.V)
}
var yvEhead struct {
V []byte
}
read, err = Unmarshal(zv20, &yvEhead)
if err == nil || read != 0 {
t.Fatalf("Allowed a vector decode with no head")
}
var yvEmax struct {
V []byte `tls:"head=1,max=31"`
}
read, err = Unmarshal(zv20, &yvEmax)
if err == nil || read != 0 {
t.Fatalf("Allowed a vector decode with length exceeding max")
}
var yvEmin struct {
V []byte `tls:"head=1,min=33"`
}
read, err = Unmarshal(zv20, &yvEmin)
if err == nil || read != 0 {
t.Fatalf("Allowed a vector decode with length below min")
}
read, err = Unmarshal(zv200[:0], &yv200)
if err == nil || read != 0 {
t.Fatalf("Allowed a vector decode from an empty buffer")
}
read, err = Unmarshal(zv200[:1], &yv200)
if err == nil || read != 0 {
t.Fatalf("Allowed a vector decode with length too short")
}
read, err = Unmarshal(zv200[:2], &yv200)
if err == nil || read != 0 {
t.Fatalf("Allowed a vector decode shorter than declared length [%x]", yv200.V)
}
read, err = Unmarshal(zv200[:5], &yv200)
if err == nil || read != 0 {
t.Fatalf("Allowed a vector decode shorter than declared length [%x]", yv200.V)
}
}
func TestDecodeStruct(t *testing.T) {
var ys1 struct {
A uint16
B []uint8 `tls:"head=2"`
C [4]uint32
}
read, err := Unmarshal(zs1, &ys1)
if err != nil || !reflect.DeepEqual(ys1, xs1) || read != len(zs1) {
t.Fatalf("struct decode failed [%v] [%v]", err, ys1)
}
}
func TestDecodeUnmarshaler(t *testing.T) {
crypticStringUnmarshalCalls = 0
var ym CrypticString
read, err := Unmarshal(zm, &ym)
if err != nil || !reflect.DeepEqual(ym, xm) || read != len(zm) {
t.Fatalf("Unmarshaler decode failed [%v] [%v]", err, ym)
}
if crypticStringUnmarshalCalls != 1 {
t.Fatalf("CrypticString.UnmarshalTLS() was not called exactly once [%v]", crypticStringUnmarshalCalls)
}
crypticStringUnmarshalCalls = 0
var ysm struct {
A CrypticString
B uint16
C CrypticString
}
read, err = Unmarshal(zsm, &ysm)
if err != nil || !reflect.DeepEqual(ysm, xsm) || read != len(zsm) {
t.Fatalf("Struct-embedded unmarshaler decode failed [%v] [%v]", err, ysm)
}
if crypticStringUnmarshalCalls != 2 {
t.Fatalf("CrypticString.UnmarshalTLS() was not called exactly twice [%v]", crypticStringUnmarshalCalls)
}
}
func TestDecodeStructWithPointer(t *testing.T) {
var ysp struct {
A uint16
B *CrypticString
}
read, err := Unmarshal(zsp, &ysp)
if err != nil || !reflect.DeepEqual(ysp, xsp) || read != len(zsp) {
t.Fatalf("struct decode failed [%v] [%v]", err, ysp)
}
}
func TestIgnoreExtraData(t *testing.T) {
zsExtra := append(zs1, 0)
var ys1 struct {
A uint16
B []uint8 `tls:"head=2"`
C [4]uint32
}
read, err := Unmarshal(zsExtra, &ys1)
if err != nil || !reflect.DeepEqual(ys1, xs1) || read != len(zs1) {
t.Fatalf("struct decode failed [%v] [%v]", err, ys1)
}
}

266
vendor/github.com/bifurcation/mint/syntax/encode.go generated vendored Normal file
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@ -0,0 +1,266 @@
package syntax
import (
"bytes"
"fmt"
"reflect"
"runtime"
)
func Marshal(v interface{}) ([]byte, error) {
e := &encodeState{}
err := e.marshal(v, encOpts{})
if err != nil {
return nil, err
}
return e.Bytes(), nil
}
// Marshaler is the interface implemented by types that
// have a defined TLS encoding.
type Marshaler interface {
MarshalTLS() ([]byte, error)
}
// These are the options that can be specified in the struct tag. Right now,
// all of them apply to variable-length vectors and nothing else
type encOpts struct {
head uint // length of length in bytes
min uint // minimum size in bytes
max uint // maximum size in bytes
varint bool // whether to encode as a varint
}
type encodeState struct {
bytes.Buffer
}
func (e *encodeState) marshal(v interface{}, opts encOpts) (err error) {
defer func() {
if r := recover(); r != nil {
if _, ok := r.(runtime.Error); ok {
panic(r)
}
if s, ok := r.(string); ok {
panic(s)
}
err = r.(error)
}
}()
e.reflectValue(reflect.ValueOf(v), opts)
return nil
}
func (e *encodeState) reflectValue(v reflect.Value, opts encOpts) {
valueEncoder(v)(e, v, opts)
}
type encoderFunc func(e *encodeState, v reflect.Value, opts encOpts)
func valueEncoder(v reflect.Value) encoderFunc {
if !v.IsValid() {
panic(fmt.Errorf("Cannot encode an invalid value"))
}
return typeEncoder(v.Type())
}
func typeEncoder(t reflect.Type) encoderFunc {
// Note: Omits the caching / wait-group things that encoding/json uses
return newTypeEncoder(t)
}
var (
marshalerType = reflect.TypeOf(new(Marshaler)).Elem()
)
func newTypeEncoder(t reflect.Type) encoderFunc {
if t.Implements(marshalerType) {
return marshalerEncoder
}
switch t.Kind() {
case reflect.Uint8, reflect.Uint16, reflect.Uint32, reflect.Uint64:
return uintEncoder
case reflect.Array:
return newArrayEncoder(t)
case reflect.Slice:
return newSliceEncoder(t)
case reflect.Struct:
return newStructEncoder(t)
case reflect.Ptr:
return newPointerEncoder(t)
default:
panic(fmt.Errorf("Unsupported type (%s)", t))
}
}
///// Specific encoders below
func marshalerEncoder(e *encodeState, v reflect.Value, opts encOpts) {
if v.Kind() == reflect.Ptr && v.IsNil() {
panic(fmt.Errorf("Cannot encode nil pointer"))
}
m, ok := v.Interface().(Marshaler)
if !ok {
panic(fmt.Errorf("Non-Marshaler passed to marshalerEncoder"))
}
b, err := m.MarshalTLS()
if err == nil {
_, err = e.Write(b)
}
if err != nil {
panic(err)
}
}
//////////
func uintEncoder(e *encodeState, v reflect.Value, opts encOpts) {
if opts.varint {
varintEncoder(e, v, opts)
return
}
writeUint(e, v.Uint(), int(v.Type().Size()))
}
func varintEncoder(e *encodeState, v reflect.Value, opts encOpts) {
u := v.Uint()
if (u >> 62) > 0 {
panic(fmt.Errorf("uint value is too big for varint"))
}
var varintLen int
for _, len := range []uint{1, 2, 4, 8} {
if u < (uint64(1) << (8*len - 2)) {
varintLen = int(len)
break
}
}
twoBits := map[int]uint64{1: 0x00, 2: 0x01, 4: 0x02, 8: 0x03}[varintLen]
shift := uint(8*varintLen - 2)
writeUint(e, u|(twoBits<<shift), varintLen)
}
func writeUint(e *encodeState, u uint64, len int) {
data := make([]byte, len)
for i := 0; i < len; i += 1 {
data[i] = byte(u >> uint(8*(len-i-1)))
}
e.Write(data)
}
//////////
type arrayEncoder struct {
elemEnc encoderFunc
}
func (ae *arrayEncoder) encode(e *encodeState, v reflect.Value, opts encOpts) {
n := v.Len()
for i := 0; i < n; i += 1 {
ae.elemEnc(e, v.Index(i), opts)
}
}
func newArrayEncoder(t reflect.Type) encoderFunc {
enc := &arrayEncoder{typeEncoder(t.Elem())}
return enc.encode
}
//////////
type sliceEncoder struct {
ae *arrayEncoder
}
func (se *sliceEncoder) encode(e *encodeState, v reflect.Value, opts encOpts) {
if opts.head == 0 {
panic(fmt.Errorf("Cannot encode a slice without a header length"))
}
arrayState := &encodeState{}
se.ae.encode(arrayState, v, opts)
n := uint(arrayState.Len())
if opts.max > 0 && n > opts.max {
panic(fmt.Errorf("Encoded length more than max [%d > %d]", n, opts.max))
}
if n>>(8*opts.head) > 0 {
panic(fmt.Errorf("Encoded length too long for header length [%d, %d]", n, opts.head))
}
if n < opts.min {
panic(fmt.Errorf("Encoded length less than min [%d < %d]", n, opts.min))
}
for i := int(opts.head - 1); i >= 0; i -= 1 {
e.WriteByte(byte(n >> (8 * uint(i))))
}
e.Write(arrayState.Bytes())
}
func newSliceEncoder(t reflect.Type) encoderFunc {
enc := &sliceEncoder{&arrayEncoder{typeEncoder(t.Elem())}}
return enc.encode
}
//////////
type structEncoder struct {
fieldOpts []encOpts
fieldEncs []encoderFunc
}
func (se *structEncoder) encode(e *encodeState, v reflect.Value, opts encOpts) {
for i := range se.fieldEncs {
se.fieldEncs[i](e, v.Field(i), se.fieldOpts[i])
}
}
func newStructEncoder(t reflect.Type) encoderFunc {
n := t.NumField()
se := structEncoder{
fieldOpts: make([]encOpts, n),
fieldEncs: make([]encoderFunc, n),
}
for i := 0; i < n; i += 1 {
f := t.Field(i)
tag := f.Tag.Get("tls")
tagOpts := parseTag(tag)
se.fieldOpts[i] = encOpts{
head: tagOpts["head"],
max: tagOpts["max"],
min: tagOpts["min"],
varint: tagOpts[varintOption] > 0,
}
se.fieldEncs[i] = typeEncoder(f.Type)
}
return se.encode
}
//////////
type pointerEncoder struct {
base encoderFunc
}
func (pe pointerEncoder) encode(e *encodeState, v reflect.Value, opts encOpts) {
if v.IsNil() {
panic(fmt.Errorf("Cannot marshal a struct containing a nil pointer"))
}
pe.base(e, v.Elem(), opts)
}
func newPointerEncoder(t reflect.Type) encoderFunc {
baseEncoder := typeEncoder(t.Elem())
pe := pointerEncoder{base: baseEncoder}
return pe.encode
}

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@ -0,0 +1,269 @@
package syntax
import (
"bytes"
"encoding/hex"
"fmt"
"strings"
"testing"
)
type CrypticString string
var (
crypticStringMarshalCalls = 0
crypticStringUnmarshalCalls = 0
)
// A CrypticString marshalls as one length octet followed by the
// UTF-8 bytes of the string, XOR'ed with an increasing sequence
// starting with the length plus one (L+1, L+2, ...).
func (cs CrypticString) MarshalTLS() ([]byte, error) {
crypticStringMarshalCalls += 1
l := byte(len(cs))
b := []byte(cs)
for i := range b {
b[i] ^= l + byte(i) + 1
}
return append([]byte{l}, b...), nil
}
func (cs *CrypticString) UnmarshalTLS(data []byte) (int, error) {
crypticStringUnmarshalCalls += 1
if len(data) == 0 {
return 0, fmt.Errorf("Length of CrypticString must be at least 1")
}
l := data[0]
if len(data) < int(l)+1 {
return 0, fmt.Errorf("TLS data not long enough for CrypticString")
}
b := data[1 : l+1]
for i := range b {
b[i] ^= l + byte(i) + 1
}
*cs = CrypticString(string(b))
return int(l + 1), nil
}
// Test cases to use for encode and decode
var (
x8 uint8 = 0xA0
z8 = []byte{0xA0}
x16 uint16 = 0xB0A0
z16, _ = hex.DecodeString("B0A0")
x32 uint32 = 0xD0C0B0A0
z32, _ = hex.DecodeString("D0C0B0A0")
x64 uint64 = 0xD0C0B0A090807060
z64, _ = hex.DecodeString("D0C0B0A090807060")
xvi = struct {
U8 uint8 `tls:"varint"`
U16 uint16 `tls:"varint"`
U32 uint32 `tls:"varint"`
U64 uint64 `tls:"varint"`
}{
U8: 0x3f,
U16: 0x3fff,
U32: 0x3fffffff,
U64: 0x3fffffffffffffff,
}
zvi, _ = hex.DecodeString("3f" + "7fff" + "bfffffff" + "ffffffffffffffff")
xa = [5]uint16{0x1111, 0x2222, 0x3333, 0x4444, 0x5555}
za, _ = hex.DecodeString("11112222333344445555")
xv20 = struct {
V []byte `tls:"head=1"`
}{V: bytes.Repeat([]byte{0xA0}, 0x20)}
zv20, _ = hex.DecodeString("20" + strings.Repeat("A0", 0x20))
xv200 = struct {
V []byte `tls:"head=2"`
}{V: bytes.Repeat([]byte{0xA0}, 0x200)}
zv200, _ = hex.DecodeString("0200" + strings.Repeat("A0", 0x200))
xv20000 = struct {
V []byte `tls:"head=3"`
}{V: bytes.Repeat([]byte{0xA0}, 0x20000)}
zv20000, _ = hex.DecodeString("020000" + strings.Repeat("A0", 0x20000))
xvENohead = struct {
V []byte
}{V: xv20.V}
xvEhead = struct {
V []byte `tls:"head=1"`
}{V: bytes.Repeat([]byte{0xA0}, 0x100)}
xvEmax = struct {
V []byte `tls:"head=1,max=31"`
}{V: xv20.V}
xvEmin = struct {
V []byte `tls:"head=1,min=33"`
}{V: xv20.V}
xs1 = struct {
A uint16
B []uint8 `tls:"head=2"`
C [4]uint32
}{
A: 0xB0A0,
B: []uint8{0xA0, 0xA1, 0xA2, 0xA3, 0xA4},
C: [4]uint32{0x10111213, 0x20212223, 0x30313233, 0x40414243},
}
zs1, _ = hex.DecodeString("B0A0" + "0005A0A1A2A3A4" + "10111213202122233031323340414243")
xm = CrypticString("hello")
zm, _ = hex.DecodeString("056e62646565")
xsm = struct {
A CrypticString
B uint16
C CrypticString
}{
A: CrypticString("hello"),
B: x16,
C: CrypticString("... world!"),
}
zsm, _ = hex.DecodeString("056e62646565" + "B0A0" + "0a2522232e787f637e7735")
xsp = struct {
A uint16
B *CrypticString
}{
A: x16,
B: &xm,
}
zsp, _ = hex.DecodeString("B0A0" + "056e62646565")
)
func TestEncodeInvalidCases(t *testing.T) {
x := struct {
Strings []string
}{Strings: []string{"asdf"}}
_, err := Marshal(x)
if err == nil {
t.Fatalf("Agreed to marshal an unsupported type")
}
}
func TestEncodeBasicTypes(t *testing.T) {
y8, err := Marshal(x8)
if err != nil || !bytes.Equal(y8, z8) {
t.Fatalf("uint8 encode failed [%v] [%x]", err, y8)
}
y16, err := Marshal(x16)
if err != nil || !bytes.Equal(y16, z16) {
t.Fatalf("uint16 encode failed [%v] [%x]", err, y16)
}
y32, err := Marshal(x32)
if err != nil || !bytes.Equal(y32, z32) {
t.Fatalf("uint32 encode failed [%v] [%x]", err, y32)
}
y64, err := Marshal(x64)
if err != nil || !bytes.Equal(y64, z64) {
t.Fatalf("uint64 encode failed [%v] [%x]", err, y64)
}
}
func TestEncodeVarint(t *testing.T) {
yvi, err := Marshal(xvi)
if err != nil || !bytes.Equal(yvi, zvi) {
t.Fatalf("varint encode failed [%v] [%x]", err, yvi)
}
}
func TestEncodeArray(t *testing.T) {
ya, err := Marshal(xa)
if err != nil || !bytes.Equal(ya, za) {
t.Fatalf("[5]uint8 encode failed [%v] [%x]", err, ya)
}
}
func TestEncodeSlice(t *testing.T) {
yv20, err := Marshal(xv20)
if err != nil || !bytes.Equal(yv20, zv20) {
t.Fatalf("[0x20]uint8 encode failed [%v] [%x]", err, yv20)
}
yv200, err := Marshal(xv200)
if err != nil || !bytes.Equal(yv200, zv200) {
t.Fatalf("[0x200]uint8 encode failed [%v] [%x]", err, yv200)
}
yv20000, err := Marshal(xv20000)
if err != nil || !bytes.Equal(yv20000, zv20000) {
t.Fatalf("[0x20000]uint8 encode failed [%v] [%x]", err, yv20000)
}
yE, err := Marshal(xvENohead)
if err == nil {
t.Fatalf("Allowed marshal with no header size [%x]", yE)
}
yE, err = Marshal(xvEhead)
if err == nil {
t.Fatalf("Allowed marshal exceeding header size [%x]", yE)
}
yE, err = Marshal(xvEmax)
if err == nil {
t.Fatalf("Allowed marshal exceeding max [%x]", yE)
}
yE, err = Marshal(xvEmin)
if err == nil {
t.Fatalf("Allowed marshal below min [%x]", yE)
}
}
func TestEncodeStruct(t *testing.T) {
ys1, err := Marshal(xs1)
if err != nil || !bytes.Equal(ys1, zs1) {
t.Fatalf("struct encode failed [%v] [%x]", err, ys1)
}
}
func TestEncodeMarshaler(t *testing.T) {
crypticStringMarshalCalls = 0
ym, err := Marshal(xm)
if err != nil || !bytes.Equal(ym, zm) {
t.Fatalf("Marshaler encode failed [%v] [%x]", err, ym)
}
if crypticStringMarshalCalls != 1 {
t.Fatalf("MarshalTLS() was not called exactly once [%v]", crypticStringMarshalCalls)
}
crypticStringMarshalCalls = 0
ysm, err := Marshal(xsm)
if err != nil || !bytes.Equal(ysm, zsm) {
t.Fatalf("Struct-embedded marshaler encode failed [%v] [%x]", err, ysm)
}
if crypticStringMarshalCalls != 2 {
t.Fatalf("MarshalTLS() was not called exactly twice [%v]", crypticStringMarshalCalls)
}
}
func TestEncodeStructWithPointer(t *testing.T) {
ysp, err := Marshal(xsp)
if err != nil || !bytes.Equal(ysp, zsp) {
t.Fatalf("struct encode failed [%v] [%x]", err, ysp)
}
}

40
vendor/github.com/bifurcation/mint/syntax/tags.go generated vendored Normal file
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@ -0,0 +1,40 @@
package syntax
import (
"strconv"
"strings"
)
// `tls:"head=2,min=2,max=255,varint"`
type tagOptions map[string]uint
var (
varintOption = "varint"
)
// parseTag parses a struct field's "tls" tag as a comma-separated list of
// name=value pairs, where the values MUST be unsigned integers
func parseTag(tag string) tagOptions {
opts := tagOptions{}
for _, token := range strings.Split(tag, ",") {
if token == varintOption {
opts[varintOption] = 1
continue
}
parts := strings.Split(token, "=")
if len(parts[0]) == 0 {
continue
}
if len(parts) == 1 {
continue
}
if val, err := strconv.Atoi(parts[1]); err == nil && val >= 0 {
opts[parts[0]] = uint(val)
}
}
return opts
}

15
vendor/github.com/bifurcation/mint/syntax/tags_test.go generated vendored Normal file
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@ -0,0 +1,15 @@
package syntax
import (
"testing"
)
func TestTagParsing(t *testing.T) {
opts := parseTag("=x,head=2,min=3,max=60000")
if len(opts) != 3 {
t.Fatalf("Failed to parse all fields")
}
if opts["head"] != 2 || opts["min"] != 3 || opts["max"] != 60000 {
t.Fatalf("Parsed fields incorrectly")
}
}

128
vendor/github.com/bifurcation/mint/syntax/tls_test.go generated vendored Normal file
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@ -0,0 +1,128 @@
package syntax
import (
"bytes"
"encoding/hex"
"fmt"
"reflect"
"testing"
)
type ProtocolVersion uint16
type ExtensionType uint16
type Extension struct {
ExtensionType ExtensionType
ExtensionData []byte `tls:"head=2"`
}
type Random [32]byte
type CipherSuite uint16
type ClientHello struct {
LegacyVersion ProtocolVersion
Random Random
LegacySessionID []byte `tls:"head=1,max=32"`
CipherSuites []CipherSuite `tls:"head=2,min=2"`
LegacyCompressionMethods []byte `tls:"head=1,min=1"`
Extensions []Extension `tls:"head=2"`
}
type ServerHello struct {
Version ProtocolVersion
Random Random
CipherSuite CipherSuite
Extensions []Extension `tls:"head=2"`
}
var (
extValidIn = Extension{
ExtensionType: ExtensionType(0x000a),
ExtensionData: []byte{0xf0, 0xf1, 0xf2, 0xf3, 0xf4},
}
extEmptyIn = Extension{
ExtensionType: ExtensionType(0x000a),
ExtensionData: []byte{},
}
extListValidIn = []Extension{extValidIn, extEmptyIn}
extListValidHex = "000d000a0005f0f1f2f3f4000a0000"
helloRandom = [32]byte{0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07,
0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17,
0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x26, 0x27,
0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37}
chValidIn = ClientHello{
LegacyVersion: 0x0303,
Random: helloRandom,
LegacySessionID: []byte{},
CipherSuites: []CipherSuite{0x0001, 0x0002, 0x0003},
LegacyCompressionMethods: []byte{0},
Extensions: extListValidIn,
}
chValidHex = "0303" + hex.EncodeToString(helloRandom[:]) + "00" +
"0006000100020003" + "0100" + extListValidHex
shValidIn = ServerHello{
Version: 0x7f12,
Random: helloRandom,
CipherSuite: CipherSuite(0x0001),
Extensions: extListValidIn,
}
shValidHex = "7f12" + hex.EncodeToString(helloRandom[:]) + "0001" + extListValidHex
)
func TestTLSMarshal(t *testing.T) {
chValid, _ := hex.DecodeString(chValidHex)
shValid, _ := hex.DecodeString(shValidHex)
// ClientHello marshal
out, err := Marshal(chValidIn)
if err != nil {
t.Fatalf("Failed to marshal a valid ClientHello [%v]", err)
}
if !bytes.Equal(out, chValid) {
t.Fatalf("Failed to marshal a valid ClientHello [%x] != [%x]", out, chValid)
}
// ServerHello marshal
out, err = Marshal(shValidIn)
if err != nil {
t.Fatalf("Failed to marshal a valid ServerHello [%v]", err)
}
if !bytes.Equal(out, shValid) {
t.Fatalf("Failed to marshal a valid ServerHello [%x] != [%x]", out, shValid)
}
}
func TestTLSUnmarshal(t *testing.T) {
chValid, _ := hex.DecodeString(chValidHex)
shValid, _ := hex.DecodeString(shValidHex)
// ClientHello marshal
var ch ClientHello
read, err := Unmarshal(chValid, &ch)
if err != nil || read != len(chValid) {
t.Fatalf("Failed to unmarshal a valid ClientHello [%v]", err)
}
if !reflect.DeepEqual(ch, chValidIn) {
fmt.Println("LegacyVersion", reflect.DeepEqual(ch.LegacyVersion, chValidIn.LegacyVersion))
fmt.Println("Random", reflect.DeepEqual(ch.Random, chValidIn.Random))
fmt.Println("LegacySessionID")
fmt.Printf(" %+v\n", ch.LegacySessionID == nil)
fmt.Printf(" %+v\n", chValidIn.LegacySessionID == nil)
fmt.Println("CipherSuites", reflect.DeepEqual(ch.CipherSuites, chValidIn.CipherSuites))
fmt.Println("LegacyCompressionMethods", reflect.DeepEqual(ch.LegacyCompressionMethods, chValidIn.LegacyCompressionMethods))
fmt.Println("Extensions", reflect.DeepEqual(ch.Extensions, chValidIn.Extensions))
t.Errorf("Failed to unmarshal a valid ClientHello [%+v] [%+v]", ch, chValidIn)
}
// ServerHello marshal
var sh ServerHello
read, err = Unmarshal(shValid, &sh)
if err != nil || read != len(shValid) {
t.Fatalf("Failed to unmarshal a valid ServerHello [%v]", err)
}
if !reflect.DeepEqual(sh, shValidIn) {
t.Errorf("Failed to unmarshal a valid ServerHello")
}
}

174
vendor/github.com/bifurcation/mint/tls.go generated vendored Normal file
View File

@ -0,0 +1,174 @@
package mint
// XXX(rlb): This file is borrowed pretty much wholesale from crypto/tls
import (
"errors"
"net"
"strings"
"time"
)
// Server returns a new TLS server side connection
// using conn as the underlying transport.
// The configuration config must be non-nil and must include
// at least one certificate or else set GetCertificate.
func Server(conn net.Conn, config *Config) *Conn {
return NewConn(conn, config, false)
}
// Client returns a new TLS client side connection
// using conn as the underlying transport.
// The config cannot be nil: users must set either ServerName or
// InsecureSkipVerify in the config.
func Client(conn net.Conn, config *Config) *Conn {
return NewConn(conn, config, true)
}
// A listener implements a network listener (net.Listener) for TLS connections.
type Listener struct {
net.Listener
config *Config
}
// Accept waits for and returns the next incoming TLS connection.
// The returned connection c is a *tls.Conn.
func (l *Listener) Accept() (c net.Conn, err error) {
c, err = l.Listener.Accept()
if err != nil {
return
}
server := Server(c, l.config)
err = server.Handshake()
if err == AlertNoAlert {
err = nil
}
c = server
return
}
// NewListener creates a Listener which accepts connections from an inner
// Listener and wraps each connection with Server.
// The configuration config must be non-nil and must include
// at least one certificate or else set GetCertificate.
func NewListener(inner net.Listener, config *Config) (net.Listener, error) {
if config != nil && config.NonBlocking {
return nil, errors.New("listening not possible in non-blocking mode")
}
l := new(Listener)
l.Listener = inner
l.config = config
return l, nil
}
// Listen creates a TLS listener accepting connections on the
// given network address using net.Listen.
// The configuration config must be non-nil and must include
// at least one certificate or else set GetCertificate.
func Listen(network, laddr string, config *Config) (net.Listener, error) {
if config == nil || !config.ValidForServer() {
return nil, errors.New("tls: neither Certificates nor GetCertificate set in Config")
}
l, err := net.Listen(network, laddr)
if err != nil {
return nil, err
}
return NewListener(l, config)
}
type TimeoutError struct{}
func (TimeoutError) Error() string { return "tls: DialWithDialer timed out" }
func (TimeoutError) Timeout() bool { return true }
func (TimeoutError) Temporary() bool { return true }
// DialWithDialer connects to the given network address using dialer.Dial and
// then initiates a TLS handshake, returning the resulting TLS connection. Any
// timeout or deadline given in the dialer apply to connection and TLS
// handshake as a whole.
//
// DialWithDialer interprets a nil configuration as equivalent to the zero
// configuration; see the documentation of Config for the defaults.
func DialWithDialer(dialer *net.Dialer, network, addr string, config *Config) (*Conn, error) {
if config != nil && config.NonBlocking {
return nil, errors.New("dialing not possible in non-blocking mode")
}
// We want the Timeout and Deadline values from dialer to cover the
// whole process: TCP connection and TLS handshake. This means that we
// also need to start our own timers now.
timeout := dialer.Timeout
if !dialer.Deadline.IsZero() {
deadlineTimeout := dialer.Deadline.Sub(time.Now())
if timeout == 0 || deadlineTimeout < timeout {
timeout = deadlineTimeout
}
}
var errChannel chan error
if timeout != 0 {
errChannel = make(chan error, 2)
time.AfterFunc(timeout, func() {
errChannel <- TimeoutError{}
})
}
rawConn, err := dialer.Dial(network, addr)
if err != nil {
return nil, err
}
colonPos := strings.LastIndex(addr, ":")
if colonPos == -1 {
colonPos = len(addr)
}
hostname := addr[:colonPos]
if config == nil {
config = &Config{}
}
// If no ServerName is set, infer the ServerName
// from the hostname we're connecting to.
if config.ServerName == "" {
// Make a copy to avoid polluting argument or default.
c := config.Clone()
c.ServerName = hostname
config = c
}
conn := Client(rawConn, config)
if timeout == 0 {
err = conn.Handshake()
if err == AlertNoAlert {
err = nil
}
} else {
go func() {
errChannel <- conn.Handshake()
}()
err = <-errChannel
if err == AlertNoAlert {
err = nil
}
}
if err != nil {
rawConn.Close()
return nil, err
}
return conn, nil
}
// Dial connects to the given network address using net.Dial
// and then initiates a TLS handshake, returning the resulting
// TLS connection.
// Dial interprets a nil configuration as equivalent to
// the zero configuration; see the documentation of Config
// for the defaults.
func Dial(network, addr string, config *Config) (*Conn, error) {
return DialWithDialer(new(net.Dialer), network, addr, config)
}

244
vendor/github.com/bifurcation/mint/tls_test.go generated vendored Normal file
View File

@ -0,0 +1,244 @@
package mint
import (
"fmt"
"net"
"strings"
"testing"
"time"
)
func newLocalListener(t *testing.T) net.Listener {
ln, err := net.Listen("tcp", "127.0.0.1:0")
if err != nil {
ln, err = net.Listen("tcp6", "[::1]:0")
}
if err != nil {
t.Fatal(err)
}
return ln
}
func TestDialTimeout(t *testing.T) {
if testing.Short() {
t.Skip("skipping in short mode")
}
listener := newLocalListener(t)
addr := listener.Addr().String()
defer listener.Close()
complete := make(chan bool)
defer close(complete)
go func() {
conn, err := listener.Accept()
if err != nil {
t.Error(err)
return
}
<-complete
conn.Close()
}()
dialer := &net.Dialer{
Timeout: 10 * time.Millisecond,
}
var err error
if _, err = DialWithDialer(dialer, "tcp", addr, nil); err == nil {
t.Fatal("DialWithTimeout completed successfully")
}
if !strings.Contains(err.Error(), "timed out") {
t.Errorf("resulting error not a timeout: %s", err)
}
}
func TestDialNonBlocking(t *testing.T) {
config := &Config{NonBlocking: true}
_, err := Dial("tcp", "localhost:1234", config)
assertEquals(t, err.Error(), "dialing not possible in non-blocking mode")
_, err = DialWithDialer(&net.Dialer{}, "tcp", "localhost:1234", config)
assertEquals(t, err.Error(), "dialing not possible in non-blocking mode")
}
func TestListenNonBlocking(t *testing.T) {
config := &Config{
NonBlocking: true,
Certificates: certificates,
}
_, err := Listen("tcp", "localhost:1234", config)
assertEquals(t, err.Error(), "listening not possible in non-blocking mode")
_, err = NewListener(newLocalListener(t), config)
assertEquals(t, err.Error(), "listening not possible in non-blocking mode")
}
// tests that Conn.Read returns (non-zero, io.EOF) instead of
// (non-zero, nil) when a Close (alertCloseNotify) is sitting right
// behind the application data in the buffer.
func DISABLEDTestConnReadNonzeroAndEOF(t *testing.T) {
// This test is racy: it assumes that after a write to a
// localhost TCP connection, the peer TCP connection can
// immediately read it. Because it's racy, we skip this test
// in short mode, and then retry it several times with an
// increasing sleep in between our final write (via srv.Close
// below) and the following read.
if testing.Short() {
t.Skip("skipping in short mode")
}
var err error
for delay := time.Millisecond; delay <= 64*time.Millisecond; delay *= 2 {
if err = testConnReadNonzeroAndEOF(t, delay); err == nil {
return
}
}
t.Error(err)
}
func testConnReadNonzeroAndEOF(t *testing.T, delay time.Duration) error {
ln := newLocalListener(t)
defer ln.Close()
srvCh := make(chan *Conn, 1)
var serr error
go func() {
sconn, err := ln.Accept()
if err != nil {
serr = err
srvCh <- nil
return
}
serverConfig := Config{ServerName: "example.com"}
srv := Server(sconn, &serverConfig)
if alert := srv.Handshake(); alert != AlertNoAlert {
serr = fmt.Errorf("handshake: %v", alert)
srvCh <- nil
return
}
srvCh <- srv
}()
clientConfig := Config{ServerName: "example.com"}
conn, err := Dial("tcp", ln.Addr().String(), &clientConfig)
if err != nil {
t.Fatal(err)
}
defer conn.Close()
srv := <-srvCh
if srv == nil {
return serr
}
buf := make([]byte, 16)
buf = buf[0:6]
// Consume NST.
zeroBuf := []byte{}
conn.Read(zeroBuf)
srv.Write([]byte("foobar"))
n, err := conn.Read(buf)
if n != 6 || err != nil || string(buf) != "foobar" {
return fmt.Errorf("Read = %d, %v, data %q; want 6, nil, foobar", n, err, buf)
}
srv.Write([]byte("foobartoo"))
n, err = conn.Read(buf)
if n != 6 || err != nil || string(buf) != "foobar" {
return fmt.Errorf("Read = %d, %v, data %q; want 6, nil, foobar", n, err, buf)
}
n, err = conn.Read(buf)
if n != 3 || err != nil || string(buf[0:3]) != "too" {
return fmt.Errorf("Read = %d, %v, data %q; want 3, nil, too", n, err, buf)
}
srv.Write([]byte("four"))
n, err = conn.Read(buf)
if n != 4 || err != nil || string(buf[0:4]) != "four" {
return fmt.Errorf("Read = %d, %v, data %q; want 4, nil, foor", n, err, buf)
}
srv.Write([]byte("abcdefgh"))
srv.Close()
time.Sleep(delay)
n, err = conn.Read(buf)
if n != 6 || string(buf) != "abcdef" {
return fmt.Errorf("Read = %d, buf= %q; want 6, abcdef", n, buf)
}
if err != nil {
return fmt.Errorf("First Read error = %v; want nil", err)
}
n, err = conn.Read(buf)
if n != 2 || string(buf[0:2]) != "gh" {
return fmt.Errorf("Read = %d, buf= %q; want 2, gh", n, buf)
}
return nil
}
func TestExchangeData(t *testing.T) {
ln := newLocalListener(t)
defer ln.Close()
srvCh := make(chan *Conn, 1)
var serr error
go func() {
sconn, err := ln.Accept()
if err != nil {
serr = err
srvCh <- nil
return
}
serverConfig := Config{ServerName: "example.com"}
srv := Server(sconn, &serverConfig)
if alert := srv.Handshake(); alert != AlertNoAlert {
serr = fmt.Errorf("handshake: %v", alert)
srvCh <- nil
return
}
srvCh <- srv
}()
clientConfig := Config{ServerName: "example.com"}
conn, err := Dial("tcp", ln.Addr().String(), &clientConfig)
if err != nil {
t.Fatal(err)
}
defer conn.Close()
srv := <-srvCh
assertNotNil(t, srv, "Server should have completed handshake")
buf := make([]byte, 16)
buf = buf[0:6]
srv.Write([]byte("foobar"))
n, err := conn.Read(buf)
if n != 6 || err != nil || string(buf) != "foobar" {
t.Fatalf("Read = %d, %v, data %q; want 6, nil, foobar", n, err, buf)
return
}
srv.Write([]byte("foobartoo"))
n, err = conn.Read(buf)
if n != 6 || err != nil || string(buf) != "foobar" {
t.Fatalf("Read = %d, %v, data %q; want 6, nil, foobar", n, err, buf)
return
}
n, err = conn.Read(buf)
if n != 3 || err != nil || string(buf[0:3]) != "too" {
t.Fatalf("Read = %d, %v, data %q; want 3, nil, too", n, err, buf)
return
}
srv.Write([]byte("four"))
n, err = conn.Read(buf)
if n != 4 || err != nil || string(buf[0:4]) != "four" {
t.Fatalf("Read = %d, %v, data %q; want 4, nil, four", n, err, buf)
return
}
return
}

View File

@ -57,7 +57,7 @@ $ PRODUCTION=true HOSTS="host1:host2:host3" DURATION=1s go run examples/first.go
## Supported types and defaults
The library has support for the following types:
The library has built-in support for the following types:
* `string`
* `int`
@ -71,6 +71,8 @@ The library has support for the following types:
* `[]bool`
* `[]float32`
* `[]float64`
* `time.Duration`
* .. or use/define a [custom parser func](#custom-parser-funcs) for any other type
If you set the `envDefault` tag for something, this value will be used in the
case of absence of it in the environment. If you don't do that AND the
@ -80,6 +82,20 @@ and `0` for `int`s.
By default, slice types will split the environment value on `,`; you can change this behavior by setting the `envSeparator` tag.
## Custom Parser Funcs
If you have a type that is not supported out of the box by the lib, you are able
to use (or define) and pass custom parsers (and their associated `reflect.Type`) to the
`env.ParseWithFuncs()` function.
In addition to accepting a struct pointer (same as `Parse()`), this function also
accepts a `env.CustomParsers` arg that under the covers is a `map[reflect.Type]env.ParserFunc`.
To see what this looks like in practice, take a look at the [commented block in the example](https://github.com/caarlos0/env/blob/master/examples/first.go#L35-L39).
`env` also ships with some pre-built custom parser funcs for common types. You
can check them out [here](parsers/).
## Required fields
The `env` tag option `required` (e.g., `env:"tagKey,required"`) can be added

View File

@ -2,6 +2,7 @@ package env
import (
"errors"
"fmt"
"os"
"reflect"
"strconv"
@ -26,6 +27,12 @@ var (
sliceOfFloat64s = reflect.TypeOf([]float64(nil))
)
// CustomParsers is a friendly name for the type that `ParseWithFuncs()` accepts
type CustomParsers map[reflect.Type]ParserFunc
// ParserFunc defines the signature of a function that can be used within `CustomParsers`
type ParserFunc func(v string) (interface{}, error)
// Parse parses a struct containing `env` tags and loads its values from
// environment variables.
func Parse(v interface{}) error {
@ -37,14 +44,35 @@ func Parse(v interface{}) error {
if ref.Kind() != reflect.Struct {
return ErrNotAStructPtr
}
return doParse(ref)
return doParse(ref, make(map[reflect.Type]ParserFunc, 0))
}
func doParse(ref reflect.Value) error {
// ParseWithFuncs is the same as `Parse` except it also allows the user to pass
// in custom parsers.
func ParseWithFuncs(v interface{}, funcMap CustomParsers) error {
ptrRef := reflect.ValueOf(v)
if ptrRef.Kind() != reflect.Ptr {
return ErrNotAStructPtr
}
ref := ptrRef.Elem()
if ref.Kind() != reflect.Struct {
return ErrNotAStructPtr
}
return doParse(ref, funcMap)
}
func doParse(ref reflect.Value, funcMap CustomParsers) error {
refType := ref.Type()
var errorList []string
for i := 0; i < refType.NumField(); i++ {
if reflect.Ptr == ref.Field(i).Kind() && !ref.Field(i).IsNil() && ref.Field(i).CanSet() {
err := Parse(ref.Field(i).Interface())
if nil != err {
return err
}
continue
}
value, err := get(refType.Field(i))
if err != nil {
errorList = append(errorList, err.Error())
@ -53,7 +81,7 @@ func doParse(ref reflect.Value) error {
if value == "" {
continue
}
if err := set(ref.Field(i), refType.Field(i), value); err != nil {
if err := set(ref.Field(i), refType.Field(i), value, funcMap); err != nil {
errorList = append(errorList, err.Error())
continue
}
@ -114,7 +142,7 @@ func getOr(key, defaultValue string) string {
return defaultValue
}
func set(field reflect.Value, refType reflect.StructField, value string) error {
func set(field reflect.Value, refType reflect.StructField, value string, funcMap CustomParsers) error {
switch field.Kind() {
case reflect.Slice:
separator := refType.Tag.Get("envSeparator")
@ -165,12 +193,35 @@ func set(field reflect.Value, refType reflect.StructField, value string) error {
}
field.SetInt(intValue)
}
case reflect.Struct:
return handleStruct(field, refType, value, funcMap)
default:
return ErrUnsupportedType
}
return nil
}
func handleStruct(field reflect.Value, refType reflect.StructField, value string, funcMap CustomParsers) error {
// Does the custom parser func map contain this type?
parserFunc, ok := funcMap[field.Type()]
if !ok {
// Map does not contain a custom parser for this type
return ErrUnsupportedType
}
// Call on the custom parser func
data, err := parserFunc(value)
if err != nil {
return fmt.Errorf("Custom parser error: %v", err)
}
// Set the field to the data returned by the customer parser func
rv := reflect.ValueOf(data)
field.Set(rv)
return nil
}
func handleSlice(field reflect.Value, value, separator string) error {
if separator == "" {
separator = ","

View File

@ -1,8 +1,11 @@
package env_test
import (
"errors"
"fmt"
"net/http"
"os"
"reflect"
"testing"
"time"
@ -29,6 +32,16 @@ type Config struct {
Float64s []float64 `env:"FLOAT64S"`
}
type ParentStruct struct {
InnerStruct *InnerStruct
unexported *InnerStruct
Ignored *http.Client
}
type InnerStruct struct {
Inner string `env:"innervar"`
}
func TestParsesEnv(t *testing.T) {
os.Setenv("somevar", "somevalue")
os.Setenv("othervar", "true")
@ -68,6 +81,24 @@ func TestParsesEnv(t *testing.T) {
assert.Equal(t, []float64{float64(1.0), float64(2.0), float64(3.0)}, cfg.Float64s)
}
func TestParsesEnvInner(t *testing.T) {
os.Setenv("innervar", "someinnervalue")
defer os.Clearenv()
cfg := ParentStruct{
InnerStruct: &InnerStruct{},
unexported: &InnerStruct{},
}
assert.NoError(t, env.Parse(&cfg))
assert.Equal(t, "someinnervalue", cfg.InnerStruct.Inner)
}
func TestParsesEnvInnerNil(t *testing.T) {
os.Setenv("innervar", "someinnervalue")
defer os.Clearenv()
cfg := ParentStruct{}
assert.NoError(t, env.Parse(&cfg))
}
func TestEmptyVars(t *testing.T) {
cfg := Config{}
assert.NoError(t, env.Parse(&cfg))
@ -200,6 +231,82 @@ func TestErrorRequiredNotSet(t *testing.T) {
assert.Error(t, env.Parse(cfg))
}
func TestCustomParser(t *testing.T) {
type foo struct {
name string
}
type config struct {
Var foo `env:"VAR"`
}
os.Setenv("VAR", "test")
customParserFunc := func(v string) (interface{}, error) {
return foo{name: v}, nil
}
cfg := &config{}
err := env.ParseWithFuncs(cfg, map[reflect.Type]env.ParserFunc{
reflect.TypeOf(foo{}): customParserFunc,
})
assert.NoError(t, err)
assert.Equal(t, cfg.Var.name, "test")
}
func TestParseWithFuncsNoPtr(t *testing.T) {
type foo struct{}
err := env.ParseWithFuncs(foo{}, nil)
assert.Error(t, err)
assert.Equal(t, err, env.ErrNotAStructPtr)
}
func TestParseWithFuncsInvalidType(t *testing.T) {
var c int
err := env.ParseWithFuncs(&c, nil)
assert.Error(t, err)
assert.Equal(t, err, env.ErrNotAStructPtr)
}
func TestCustomParserError(t *testing.T) {
type foo struct {
name string
}
type config struct {
Var foo `env:"VAR"`
}
os.Setenv("VAR", "test")
customParserFunc := func(v string) (interface{}, error) {
return nil, errors.New("something broke")
}
cfg := &config{}
err := env.ParseWithFuncs(cfg, map[reflect.Type]env.ParserFunc{
reflect.TypeOf(foo{}): customParserFunc,
})
assert.Empty(t, cfg.Var.name, "Var.name should not be filled out when parse errors")
assert.Error(t, err)
assert.Equal(t, err.Error(), "Custom parser error: something broke")
}
func TestUnsupportedStructType(t *testing.T) {
type config struct {
Foo http.Client `env:"FOO"`
}
os.Setenv("FOO", "foo")
cfg := &config{}
err := env.Parse(cfg)
assert.Error(t, err)
assert.Equal(t, env.ErrUnsupportedType, err)
}
func TestEmptyOption(t *testing.T) {
type config struct {
Var string `env:"VAR,"`

View File

@ -1,6 +1,7 @@
# Go support for Protocol Buffers
[![Build Status](https://travis-ci.org/golang/protobuf.svg?branch=master)](https://travis-ci.org/golang/protobuf)
[![GoDoc](https://godoc.org/github.com/golang/protobuf?status.svg)](https://godoc.org/github.com/golang/protobuf)
Google's data interchange format.
Copyright 2010 The Go Authors.

43
vendor/github.com/hashicorp/go-cleanhttp/handlers.go generated vendored Normal file
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@ -0,0 +1,43 @@
package cleanhttp
import (
"net/http"
"strings"
"unicode"
)
// HandlerInput provides input options to cleanhttp's handlers
type HandlerInput struct {
ErrStatus int
}
// PrintablePathCheckHandler is a middleware that ensures the request path
// contains only printable runes.
func PrintablePathCheckHandler(next http.Handler, input *HandlerInput) http.Handler {
// Nil-check on input to make it optional
if input == nil {
input = &HandlerInput{
ErrStatus: http.StatusBadRequest,
}
}
// Default to http.StatusBadRequest on error
if input.ErrStatus == 0 {
input.ErrStatus = http.StatusBadRequest
}
return http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
// Check URL path for non-printable characters
idx := strings.IndexFunc(r.URL.Path, func(c rune) bool {
return !unicode.IsPrint(c)
})
if idx != -1 {
w.WriteHeader(input.ErrStatus)
return
}
next.ServeHTTP(w, r)
return
})
}

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@ -0,0 +1,72 @@
package cleanhttp
import (
"fmt"
"net/http"
"net/http/httptest"
"testing"
)
func TestPrintablePathCheckHandler(t *testing.T) {
getTestHandler := http.HandlerFunc(func(w http.ResponseWriter, r *http.Request) {
fmt.Fprintln(w, "Hello, client")
})
cases := map[string]struct {
path string
expectCode int
input *HandlerInput
}{
"valid nil input": {
path: "/valid",
expectCode: http.StatusOK,
input: nil,
},
"valid empty error status": {
path: "/valid",
expectCode: http.StatusOK,
input: &HandlerInput{},
},
"invalid newline": {
path: "/invalid\n",
expectCode: http.StatusBadRequest,
},
"invalid carriage return": {
path: "/invalid\r",
expectCode: http.StatusBadRequest,
},
"invalid null": {
path: "/invalid\x00",
expectCode: http.StatusBadRequest,
},
"invalid alternate status": {
path: "/invalid\n",
expectCode: http.StatusInternalServerError,
input: &HandlerInput{
ErrStatus: http.StatusInternalServerError,
},
},
}
for name, tc := range cases {
t.Run(name, func(t *testing.T) {
// Create test HTTP server
ts := httptest.NewServer(PrintablePathCheckHandler(getTestHandler, tc.input))
defer ts.Close()
res, err := http.Get(ts.URL + tc.path)
if err != nil {
t.Fatal(err)
}
if tc.expectCode != res.StatusCode {
t.Fatalf("expected %d, got :%d", tc.expectCode, res.StatusCode)
}
})
}
}

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@ -11,6 +11,7 @@ language: go
go:
- 1.8.x
- 1.9.x
- master
branches:

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@ -3,7 +3,7 @@ sudo: false
language: go
go:
- 1.6
- 1.x
branches:
only:

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@ -123,6 +123,12 @@ func (s *Session) IsClosed() bool {
}
}
// CloseChan returns a read-only channel which is closed as
// soon as the session is closed.
func (s *Session) CloseChan() <-chan struct{} {
return s.shutdownCh
}
// NumStreams returns the number of currently open streams
func (s *Session) NumStreams() int {
s.streamLock.Lock()

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@ -619,7 +619,7 @@ func TestHalfClose(t *testing.T) {
if err != nil {
t.Fatalf("err: %v", err)
}
if _, err := stream.Write([]byte("a")); err != nil {
if _, err = stream.Write([]byte("a")); err != nil {
t.Fatalf("err: %v", err)
}
@ -639,7 +639,7 @@ func TestHalfClose(t *testing.T) {
}
// Send more
if _, err := stream.Write([]byte("bcd")); err != nil {
if _, err = stream.Write([]byte("bcd")); err != nil {
t.Fatalf("err: %v", err)
}
stream.Close()

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@ -47,8 +47,8 @@ type Stream struct {
recvNotifyCh chan struct{}
sendNotifyCh chan struct{}
readDeadline time.Time
writeDeadline time.Time
readDeadline atomic.Value // time.Time
writeDeadline atomic.Value // time.Time
}
// newStream is used to construct a new stream within
@ -67,6 +67,8 @@ func newStream(session *Session, id uint32, state streamState) *Stream {
recvNotifyCh: make(chan struct{}, 1),
sendNotifyCh: make(chan struct{}, 1),
}
s.readDeadline.Store(time.Time{})
s.writeDeadline.Store(time.Time{})
return s
}
@ -122,8 +124,9 @@ START:
WAIT:
var timeout <-chan time.Time
var timer *time.Timer
if !s.readDeadline.IsZero() {
delay := s.readDeadline.Sub(time.Now())
readDeadline := s.readDeadline.Load().(time.Time)
if !readDeadline.IsZero() {
delay := readDeadline.Sub(time.Now())
timer = time.NewTimer(delay)
timeout = timer.C
}
@ -188,7 +191,7 @@ START:
// Send the header
s.sendHdr.encode(typeData, flags, s.id, max)
if err := s.session.waitForSendErr(s.sendHdr, body, s.sendErr); err != nil {
if err = s.session.waitForSendErr(s.sendHdr, body, s.sendErr); err != nil {
return 0, err
}
@ -200,8 +203,9 @@ START:
WAIT:
var timeout <-chan time.Time
if !s.writeDeadline.IsZero() {
delay := s.writeDeadline.Sub(time.Now())
writeDeadline := s.writeDeadline.Load().(time.Time)
if !writeDeadline.IsZero() {
delay := writeDeadline.Sub(time.Now())
timeout = time.After(delay)
}
select {
@ -435,13 +439,13 @@ func (s *Stream) SetDeadline(t time.Time) error {
// SetReadDeadline sets the deadline for future Read calls.
func (s *Stream) SetReadDeadline(t time.Time) error {
s.readDeadline = t
s.readDeadline.Store(t)
return nil
}
// SetWriteDeadline sets the deadline for future Write calls
func (s *Stream) SetWriteDeadline(t time.Time) error {
s.writeDeadline = t
s.writeDeadline.Store(t)
return nil
}

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@ -22,19 +22,3 @@ _testmain.go
*.exe
*.test
*.prof
/.idea
/backup
/loopunroll/
cpu.out
mathtool/galois/
mathtool/matrix/
mem.out
/examples/
/.DS_Store
/mathtool/cntinverse
/invert
/bakcup
/buf.svg
*.svg
*.out
/escape

24
vendor/github.com/klauspost/cpuid/.travis.yml generated vendored Normal file
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@ -0,0 +1,24 @@
language: go
sudo: false
os:
- linux
- osx
go:
- 1.5.x
- 1.6.x
- 1.7.x
- 1.8.x
- master
script:
- go vet ./...
- go test -v ./...
- go test -race ./...
- diff <(gofmt -d .) <("")
matrix:
allow_failures:
- go: 'master'
fast_finish: true

22
vendor/github.com/klauspost/cpuid/LICENSE generated vendored Normal file
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@ -0,0 +1,22 @@
The MIT License (MIT)
Copyright (c) 2015 Klaus Post
Permission is hereby granted, free of charge, to any person obtaining a copy
of this software and associated documentation files (the "Software"), to deal
in the Software without restriction, including without limitation the rights
to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
copies of the Software, and to permit persons to whom the Software is
furnished to do so, subject to the following conditions:
The above copyright notice and this permission notice shall be included in all
copies or substantial portions of the Software.
THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
SOFTWARE.

145
vendor/github.com/klauspost/cpuid/README.md generated vendored Normal file
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@ -0,0 +1,145 @@
# cpuid
Package cpuid provides information about the CPU running the current program.
CPU features are detected on startup, and kept for fast access through the life of the application.
Currently x86 / x64 (AMD64) is supported, and no external C (cgo) code is used, which should make the library very easy to use.
You can access the CPU information by accessing the shared CPU variable of the cpuid library.
Package home: https://github.com/klauspost/cpuid
[![GoDoc][1]][2] [![Build Status][3]][4]
[1]: https://godoc.org/github.com/klauspost/cpuid?status.svg
[2]: https://godoc.org/github.com/klauspost/cpuid
[3]: https://travis-ci.org/klauspost/cpuid.svg
[4]: https://travis-ci.org/klauspost/cpuid
# features
## CPU Instructions
* **CMOV** (i686 CMOV)
* **NX** (NX (No-Execute) bit)
* **AMD3DNOW** (AMD 3DNOW)
* **AMD3DNOWEXT** (AMD 3DNowExt)
* **MMX** (standard MMX)
* **MMXEXT** (SSE integer functions or AMD MMX ext)
* **SSE** (SSE functions)
* **SSE2** (P4 SSE functions)
* **SSE3** (Prescott SSE3 functions)
* **SSSE3** (Conroe SSSE3 functions)
* **SSE4** (Penryn SSE4.1 functions)
* **SSE4A** (AMD Barcelona microarchitecture SSE4a instructions)
* **SSE42** (Nehalem SSE4.2 functions)
* **AVX** (AVX functions)
* **AVX2** (AVX2 functions)
* **FMA3** (Intel FMA 3)
* **FMA4** (Bulldozer FMA4 functions)
* **XOP** (Bulldozer XOP functions)
* **F16C** (Half-precision floating-point conversion)
* **BMI1** (Bit Manipulation Instruction Set 1)
* **BMI2** (Bit Manipulation Instruction Set 2)
* **TBM** (AMD Trailing Bit Manipulation)
* **LZCNT** (LZCNT instruction)
* **POPCNT** (POPCNT instruction)
* **AESNI** (Advanced Encryption Standard New Instructions)
* **CLMUL** (Carry-less Multiplication)
* **HTT** (Hyperthreading (enabled))
* **HLE** (Hardware Lock Elision)
* **RTM** (Restricted Transactional Memory)
* **RDRAND** (RDRAND instruction is available)
* **RDSEED** (RDSEED instruction is available)
* **ADX** (Intel ADX (Multi-Precision Add-Carry Instruction Extensions))
* **SHA** (Intel SHA Extensions)
* **AVX512F** (AVX-512 Foundation)
* **AVX512DQ** (AVX-512 Doubleword and Quadword Instructions)
* **AVX512IFMA** (AVX-512 Integer Fused Multiply-Add Instructions)
* **AVX512PF** (AVX-512 Prefetch Instructions)
* **AVX512ER** (AVX-512 Exponential and Reciprocal Instructions)
* **AVX512CD** (AVX-512 Conflict Detection Instructions)
* **AVX512BW** (AVX-512 Byte and Word Instructions)
* **AVX512VL** (AVX-512 Vector Length Extensions)
* **AVX512VBMI** (AVX-512 Vector Bit Manipulation Instructions)
* **MPX** (Intel MPX (Memory Protection Extensions))
* **ERMS** (Enhanced REP MOVSB/STOSB)
* **RDTSCP** (RDTSCP Instruction)
* **CX16** (CMPXCHG16B Instruction)
* **SGX** (Software Guard Extensions, with activation details)
## Performance
* **RDTSCP()** Returns current cycle count. Can be used for benchmarking.
* **SSE2SLOW** (SSE2 is supported, but usually not faster)
* **SSE3SLOW** (SSE3 is supported, but usually not faster)
* **ATOM** (Atom processor, some SSSE3 instructions are slower)
* **Cache line** (Probable size of a cache line).
* **L1, L2, L3 Cache size** on newer Intel/AMD CPUs.
## Cpu Vendor/VM
* **Intel**
* **AMD**
* **VIA**
* **Transmeta**
* **NSC**
* **KVM** (Kernel-based Virtual Machine)
* **MSVM** (Microsoft Hyper-V or Windows Virtual PC)
* **VMware**
* **XenHVM**
# installing
```go get github.com/klauspost/cpuid```
# example
```Go
package main
import (
"fmt"
"github.com/klauspost/cpuid"
)
func main() {
// Print basic CPU information:
fmt.Println("Name:", cpuid.CPU.BrandName)
fmt.Println("PhysicalCores:", cpuid.CPU.PhysicalCores)
fmt.Println("ThreadsPerCore:", cpuid.CPU.ThreadsPerCore)
fmt.Println("LogicalCores:", cpuid.CPU.LogicalCores)
fmt.Println("Family", cpuid.CPU.Family, "Model:", cpuid.CPU.Model)
fmt.Println("Features:", cpuid.CPU.Features)
fmt.Println("Cacheline bytes:", cpuid.CPU.CacheLine)
fmt.Println("L1 Data Cache:", cpuid.CPU.Cache.L1D, "bytes")
fmt.Println("L1 Instruction Cache:", cpuid.CPU.Cache.L1D, "bytes")
fmt.Println("L2 Cache:", cpuid.CPU.Cache.L2, "bytes")
fmt.Println("L3 Cache:", cpuid.CPU.Cache.L3, "bytes")
// Test if we have a specific feature:
if cpuid.CPU.SSE() {
fmt.Println("We have Streaming SIMD Extensions")
}
}
```
Sample output:
```
>go run main.go
Name: Intel(R) Core(TM) i5-2540M CPU @ 2.60GHz
PhysicalCores: 2
ThreadsPerCore: 2
LogicalCores: 4
Family 6 Model: 42
Features: CMOV,MMX,MMXEXT,SSE,SSE2,SSE3,SSSE3,SSE4.1,SSE4.2,AVX,AESNI,CLMUL
Cacheline bytes: 64
We have Streaming SIMD Extensions
```
# private package
In the "private" folder you can find an autogenerated version of the library you can include in your own packages.
For this purpose all exports are removed, and functions and constants are lowercased.
This is not a recommended way of using the library, but provided for convenience, if it is difficult for you to use external packages.
# license
This code is published under an MIT license. See LICENSE file for more information.

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vendor/github.com/klauspost/cpuid/cpuid.go generated vendored Normal file

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42
vendor/github.com/klauspost/cpuid/cpuid_386.s generated vendored Normal file
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@ -0,0 +1,42 @@
// Copyright (c) 2015 Klaus Post, released under MIT License. See LICENSE file.
// +build 386,!gccgo
// func asmCpuid(op uint32) (eax, ebx, ecx, edx uint32)
TEXT ·asmCpuid(SB), 7, $0
XORL CX, CX
MOVL op+0(FP), AX
CPUID
MOVL AX, eax+4(FP)
MOVL BX, ebx+8(FP)
MOVL CX, ecx+12(FP)
MOVL DX, edx+16(FP)
RET
// func asmCpuidex(op, op2 uint32) (eax, ebx, ecx, edx uint32)
TEXT ·asmCpuidex(SB), 7, $0
MOVL op+0(FP), AX
MOVL op2+4(FP), CX
CPUID
MOVL AX, eax+8(FP)
MOVL BX, ebx+12(FP)
MOVL CX, ecx+16(FP)
MOVL DX, edx+20(FP)
RET
// func xgetbv(index uint32) (eax, edx uint32)
TEXT ·asmXgetbv(SB), 7, $0
MOVL index+0(FP), CX
BYTE $0x0f; BYTE $0x01; BYTE $0xd0 // XGETBV
MOVL AX, eax+4(FP)
MOVL DX, edx+8(FP)
RET
// func asmRdtscpAsm() (eax, ebx, ecx, edx uint32)
TEXT ·asmRdtscpAsm(SB), 7, $0
BYTE $0x0F; BYTE $0x01; BYTE $0xF9 // RDTSCP
MOVL AX, eax+0(FP)
MOVL BX, ebx+4(FP)
MOVL CX, ecx+8(FP)
MOVL DX, edx+12(FP)
RET

42
vendor/github.com/klauspost/cpuid/cpuid_amd64.s generated vendored Normal file
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@ -0,0 +1,42 @@
// Copyright (c) 2015 Klaus Post, released under MIT License. See LICENSE file.
//+build amd64,!gccgo
// func asmCpuid(op uint32) (eax, ebx, ecx, edx uint32)
TEXT ·asmCpuid(SB), 7, $0
XORQ CX, CX
MOVL op+0(FP), AX
CPUID
MOVL AX, eax+8(FP)
MOVL BX, ebx+12(FP)
MOVL CX, ecx+16(FP)
MOVL DX, edx+20(FP)
RET
// func asmCpuidex(op, op2 uint32) (eax, ebx, ecx, edx uint32)
TEXT ·asmCpuidex(SB), 7, $0
MOVL op+0(FP), AX
MOVL op2+4(FP), CX
CPUID
MOVL AX, eax+8(FP)
MOVL BX, ebx+12(FP)
MOVL CX, ecx+16(FP)
MOVL DX, edx+20(FP)
RET
// func asmXgetbv(index uint32) (eax, edx uint32)
TEXT ·asmXgetbv(SB), 7, $0
MOVL index+0(FP), CX
BYTE $0x0f; BYTE $0x01; BYTE $0xd0 // XGETBV
MOVL AX, eax+8(FP)
MOVL DX, edx+12(FP)
RET
// func asmRdtscpAsm() (eax, ebx, ecx, edx uint32)
TEXT ·asmRdtscpAsm(SB), 7, $0
BYTE $0x0F; BYTE $0x01; BYTE $0xF9 // RDTSCP
MOVL AX, eax+0(FP)
MOVL BX, ebx+4(FP)
MOVL CX, ecx+8(FP)
MOVL DX, edx+12(FP)
RET

737
vendor/github.com/klauspost/cpuid/cpuid_test.go generated vendored Normal file
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@ -0,0 +1,737 @@
// Copyright (c) 2015 Klaus Post, released under MIT License. See LICENSE file.
package cpuid
import (
"fmt"
"testing"
)
// There is no real way to test a CPU identifier, since results will
// obviously differ on each machine.
func TestCPUID(t *testing.T) {
n := maxFunctionID()
t.Logf("Max Function:0x%x\n", n)
n = maxExtendedFunction()
t.Logf("Max Extended Function:0x%x\n", n)
t.Log("Name:", CPU.BrandName)
t.Log("PhysicalCores:", CPU.PhysicalCores)
t.Log("ThreadsPerCore:", CPU.ThreadsPerCore)
t.Log("LogicalCores:", CPU.LogicalCores)
t.Log("Family", CPU.Family, "Model:", CPU.Model)
t.Log("Features:", CPU.Features)
t.Log("Cacheline bytes:", CPU.CacheLine)
t.Log("L1 Instruction Cache:", CPU.Cache.L1I, "bytes")
t.Log("L1 Data Cache:", CPU.Cache.L1D, "bytes")
t.Log("L2 Cache:", CPU.Cache.L2, "bytes")
t.Log("L3 Cache:", CPU.Cache.L3, "bytes")
if CPU.SSE2() {
t.Log("We have SSE2")
}
}
func TestDumpCPUID(t *testing.T) {
n := int(maxFunctionID())
for i := 0; i <= n; i++ {
a, b, c, d := cpuidex(uint32(i), 0)
t.Logf("CPUID %08x: %08x-%08x-%08x-%08x", i, a, b, c, d)
ex := uint32(1)
for {
a2, b2, c2, d2 := cpuidex(uint32(i), ex)
if a2 == a && b2 == b && d2 == d || ex > 50 || a2 == 0 {
break
}
t.Logf("CPUID %08x: %08x-%08x-%08x-%08x", i, a2, b2, c2, d2)
a, b, c, d = a2, b2, c2, d2
ex++
}
}
n2 := maxExtendedFunction()
for i := uint32(0x80000000); i <= n2; i++ {
a, b, c, d := cpuid(i)
t.Logf("CPUID %08x: %08x-%08x-%08x-%08x", i, a, b, c, d)
}
}
func Example() {
// Print basic CPU information:
fmt.Println("Name:", CPU.BrandName)
fmt.Println("PhysicalCores:", CPU.PhysicalCores)
fmt.Println("ThreadsPerCore:", CPU.ThreadsPerCore)
fmt.Println("LogicalCores:", CPU.LogicalCores)
fmt.Println("Family", CPU.Family, "Model:", CPU.Model)
fmt.Println("Features:", CPU.Features)
fmt.Println("Cacheline bytes:", CPU.CacheLine)
// Test if we have a specific feature:
if CPU.SSE() {
fmt.Println("We have Streaming SIMD Extensions")
}
}
func TestBrandNameZero(t *testing.T) {
if len(CPU.BrandName) > 0 {
// Cut out last byte
last := []byte(CPU.BrandName[len(CPU.BrandName)-1:])
if last[0] == 0 {
t.Fatal("last byte was zero")
} else if last[0] == 32 {
t.Fatal("whitespace wasn't trimmed")
}
}
}
// Generated here: http://play.golang.org/p/mko-0tFt0Q
// TestCmov tests Cmov() function
func TestCmov(t *testing.T) {
got := CPU.Cmov()
expected := CPU.Features&CMOV == CMOV
if got != expected {
t.Fatalf("Cmov: expected %v, got %v", expected, got)
}
t.Log("CMOV Support:", got)
}
// TestAmd3dnow tests Amd3dnow() function
func TestAmd3dnow(t *testing.T) {
got := CPU.Amd3dnow()
expected := CPU.Features&AMD3DNOW == AMD3DNOW
if got != expected {
t.Fatalf("Amd3dnow: expected %v, got %v", expected, got)
}
t.Log("AMD3DNOW Support:", got)
}
// TestAmd3dnowExt tests Amd3dnowExt() function
func TestAmd3dnowExt(t *testing.T) {
got := CPU.Amd3dnowExt()
expected := CPU.Features&AMD3DNOWEXT == AMD3DNOWEXT
if got != expected {
t.Fatalf("Amd3dnowExt: expected %v, got %v", expected, got)
}
t.Log("AMD3DNOWEXT Support:", got)
}
// TestMMX tests MMX() function
func TestMMX(t *testing.T) {
got := CPU.MMX()
expected := CPU.Features&MMX == MMX
if got != expected {
t.Fatalf("MMX: expected %v, got %v", expected, got)
}
t.Log("MMX Support:", got)
}
// TestMMXext tests MMXext() function
func TestMMXext(t *testing.T) {
got := CPU.MMXExt()
expected := CPU.Features&MMXEXT == MMXEXT
if got != expected {
t.Fatalf("MMXExt: expected %v, got %v", expected, got)
}
t.Log("MMXEXT Support:", got)
}
// TestSSE tests SSE() function
func TestSSE(t *testing.T) {
got := CPU.SSE()
expected := CPU.Features&SSE == SSE
if got != expected {
t.Fatalf("SSE: expected %v, got %v", expected, got)
}
t.Log("SSE Support:", got)
}
// TestSSE2 tests SSE2() function
func TestSSE2(t *testing.T) {
got := CPU.SSE2()
expected := CPU.Features&SSE2 == SSE2
if got != expected {
t.Fatalf("SSE2: expected %v, got %v", expected, got)
}
t.Log("SSE2 Support:", got)
}
// TestSSE3 tests SSE3() function
func TestSSE3(t *testing.T) {
got := CPU.SSE3()
expected := CPU.Features&SSE3 == SSE3
if got != expected {
t.Fatalf("SSE3: expected %v, got %v", expected, got)
}
t.Log("SSE3 Support:", got)
}
// TestSSSE3 tests SSSE3() function
func TestSSSE3(t *testing.T) {
got := CPU.SSSE3()
expected := CPU.Features&SSSE3 == SSSE3
if got != expected {
t.Fatalf("SSSE3: expected %v, got %v", expected, got)
}
t.Log("SSSE3 Support:", got)
}
// TestSSE4 tests SSE4() function
func TestSSE4(t *testing.T) {
got := CPU.SSE4()
expected := CPU.Features&SSE4 == SSE4
if got != expected {
t.Fatalf("SSE4: expected %v, got %v", expected, got)
}
t.Log("SSE4 Support:", got)
}
// TestSSE42 tests SSE42() function
func TestSSE42(t *testing.T) {
got := CPU.SSE42()
expected := CPU.Features&SSE42 == SSE42
if got != expected {
t.Fatalf("SSE42: expected %v, got %v", expected, got)
}
t.Log("SSE42 Support:", got)
}
// TestAVX tests AVX() function
func TestAVX(t *testing.T) {
got := CPU.AVX()
expected := CPU.Features&AVX == AVX
if got != expected {
t.Fatalf("AVX: expected %v, got %v", expected, got)
}
t.Log("AVX Support:", got)
}
// TestAVX2 tests AVX2() function
func TestAVX2(t *testing.T) {
got := CPU.AVX2()
expected := CPU.Features&AVX2 == AVX2
if got != expected {
t.Fatalf("AVX2: expected %v, got %v", expected, got)
}
t.Log("AVX2 Support:", got)
}
// TestFMA3 tests FMA3() function
func TestFMA3(t *testing.T) {
got := CPU.FMA3()
expected := CPU.Features&FMA3 == FMA3
if got != expected {
t.Fatalf("FMA3: expected %v, got %v", expected, got)
}
t.Log("FMA3 Support:", got)
}
// TestFMA4 tests FMA4() function
func TestFMA4(t *testing.T) {
got := CPU.FMA4()
expected := CPU.Features&FMA4 == FMA4
if got != expected {
t.Fatalf("FMA4: expected %v, got %v", expected, got)
}
t.Log("FMA4 Support:", got)
}
// TestXOP tests XOP() function
func TestXOP(t *testing.T) {
got := CPU.XOP()
expected := CPU.Features&XOP == XOP
if got != expected {
t.Fatalf("XOP: expected %v, got %v", expected, got)
}
t.Log("XOP Support:", got)
}
// TestF16C tests F16C() function
func TestF16C(t *testing.T) {
got := CPU.F16C()
expected := CPU.Features&F16C == F16C
if got != expected {
t.Fatalf("F16C: expected %v, got %v", expected, got)
}
t.Log("F16C Support:", got)
}
// TestCX16 tests CX16() function
func TestCX16(t *testing.T) {
got := CPU.CX16()
expected := CPU.Features&CX16 == CX16
if got != expected {
t.Fatalf("CX16: expected %v, got %v", expected, got)
}
t.Log("CX16 Support:", got)
}
// TestSGX tests SGX() function
func TestSGX(t *testing.T) {
got := CPU.SGX.Available
expected := CPU.Features&SGX == SGX
if got != expected {
t.Fatalf("SGX: expected %v, got %v", expected, got)
}
t.Log("SGX Support:", got)
}
// TestBMI1 tests BMI1() function
func TestBMI1(t *testing.T) {
got := CPU.BMI1()
expected := CPU.Features&BMI1 == BMI1
if got != expected {
t.Fatalf("BMI1: expected %v, got %v", expected, got)
}
t.Log("BMI1 Support:", got)
}
// TestBMI2 tests BMI2() function
func TestBMI2(t *testing.T) {
got := CPU.BMI2()
expected := CPU.Features&BMI2 == BMI2
if got != expected {
t.Fatalf("BMI2: expected %v, got %v", expected, got)
}
t.Log("BMI2 Support:", got)
}
// TestTBM tests TBM() function
func TestTBM(t *testing.T) {
got := CPU.TBM()
expected := CPU.Features&TBM == TBM
if got != expected {
t.Fatalf("TBM: expected %v, got %v", expected, got)
}
t.Log("TBM Support:", got)
}
// TestLzcnt tests Lzcnt() function
func TestLzcnt(t *testing.T) {
got := CPU.Lzcnt()
expected := CPU.Features&LZCNT == LZCNT
if got != expected {
t.Fatalf("Lzcnt: expected %v, got %v", expected, got)
}
t.Log("LZCNT Support:", got)
}
// TestLzcnt tests Lzcnt() function
func TestPopcnt(t *testing.T) {
got := CPU.Popcnt()
expected := CPU.Features&POPCNT == POPCNT
if got != expected {
t.Fatalf("Popcnt: expected %v, got %v", expected, got)
}
t.Log("POPCNT Support:", got)
}
// TestAesNi tests AesNi() function
func TestAesNi(t *testing.T) {
got := CPU.AesNi()
expected := CPU.Features&AESNI == AESNI
if got != expected {
t.Fatalf("AesNi: expected %v, got %v", expected, got)
}
t.Log("AESNI Support:", got)
}
// TestHTT tests HTT() function
func TestHTT(t *testing.T) {
got := CPU.HTT()
expected := CPU.Features&HTT == HTT
if got != expected {
t.Fatalf("HTT: expected %v, got %v", expected, got)
}
t.Log("HTT Support:", got)
}
// TestClmul tests Clmul() function
func TestClmul(t *testing.T) {
got := CPU.Clmul()
expected := CPU.Features&CLMUL == CLMUL
if got != expected {
t.Fatalf("Clmul: expected %v, got %v", expected, got)
}
t.Log("CLMUL Support:", got)
}
// TestSSE2Slow tests SSE2Slow() function
func TestSSE2Slow(t *testing.T) {
got := CPU.SSE2Slow()
expected := CPU.Features&SSE2SLOW == SSE2SLOW
if got != expected {
t.Fatalf("SSE2Slow: expected %v, got %v", expected, got)
}
t.Log("SSE2SLOW Support:", got)
}
// TestSSE3Slow tests SSE3slow() function
func TestSSE3Slow(t *testing.T) {
got := CPU.SSE3Slow()
expected := CPU.Features&SSE3SLOW == SSE3SLOW
if got != expected {
t.Fatalf("SSE3slow: expected %v, got %v", expected, got)
}
t.Log("SSE3SLOW Support:", got)
}
// TestAtom tests Atom() function
func TestAtom(t *testing.T) {
got := CPU.Atom()
expected := CPU.Features&ATOM == ATOM
if got != expected {
t.Fatalf("Atom: expected %v, got %v", expected, got)
}
t.Log("ATOM Support:", got)
}
// TestNX tests NX() function (NX (No-Execute) bit)
func TestNX(t *testing.T) {
got := CPU.NX()
expected := CPU.Features&NX == NX
if got != expected {
t.Fatalf("NX: expected %v, got %v", expected, got)
}
t.Log("NX Support:", got)
}
// TestSSE4A tests SSE4A() function (AMD Barcelona microarchitecture SSE4a instructions)
func TestSSE4A(t *testing.T) {
got := CPU.SSE4A()
expected := CPU.Features&SSE4A == SSE4A
if got != expected {
t.Fatalf("SSE4A: expected %v, got %v", expected, got)
}
t.Log("SSE4A Support:", got)
}
// TestHLE tests HLE() function (Hardware Lock Elision)
func TestHLE(t *testing.T) {
got := CPU.HLE()
expected := CPU.Features&HLE == HLE
if got != expected {
t.Fatalf("HLE: expected %v, got %v", expected, got)
}
t.Log("HLE Support:", got)
}
// TestRTM tests RTM() function (Restricted Transactional Memory)
func TestRTM(t *testing.T) {
got := CPU.RTM()
expected := CPU.Features&RTM == RTM
if got != expected {
t.Fatalf("RTM: expected %v, got %v", expected, got)
}
t.Log("RTM Support:", got)
}
// TestRdrand tests RDRAND() function (RDRAND instruction is available)
func TestRdrand(t *testing.T) {
got := CPU.Rdrand()
expected := CPU.Features&RDRAND == RDRAND
if got != expected {
t.Fatalf("Rdrand: expected %v, got %v", expected, got)
}
t.Log("Rdrand Support:", got)
}
// TestRdseed tests RDSEED() function (RDSEED instruction is available)
func TestRdseed(t *testing.T) {
got := CPU.Rdseed()
expected := CPU.Features&RDSEED == RDSEED
if got != expected {
t.Fatalf("Rdseed: expected %v, got %v", expected, got)
}
t.Log("Rdseed Support:", got)
}
// TestADX tests ADX() function (Intel ADX (Multi-Precision Add-Carry Instruction Extensions))
func TestADX(t *testing.T) {
got := CPU.ADX()
expected := CPU.Features&ADX == ADX
if got != expected {
t.Fatalf("ADX: expected %v, got %v", expected, got)
}
t.Log("ADX Support:", got)
}
// TestSHA tests SHA() function (Intel SHA Extensions)
func TestSHA(t *testing.T) {
got := CPU.SHA()
expected := CPU.Features&SHA == SHA
if got != expected {
t.Fatalf("SHA: expected %v, got %v", expected, got)
}
t.Log("SHA Support:", got)
}
// TestAVX512F tests AVX512F() function (AVX-512 Foundation)
func TestAVX512F(t *testing.T) {
got := CPU.AVX512F()
expected := CPU.Features&AVX512F == AVX512F
if got != expected {
t.Fatalf("AVX512F: expected %v, got %v", expected, got)
}
t.Log("AVX512F Support:", got)
}
// TestAVX512DQ tests AVX512DQ() function (AVX-512 Doubleword and Quadword Instructions)
func TestAVX512DQ(t *testing.T) {
got := CPU.AVX512DQ()
expected := CPU.Features&AVX512DQ == AVX512DQ
if got != expected {
t.Fatalf("AVX512DQ: expected %v, got %v", expected, got)
}
t.Log("AVX512DQ Support:", got)
}
// TestAVX512IFMA tests AVX512IFMA() function (AVX-512 Integer Fused Multiply-Add Instructions)
func TestAVX512IFMA(t *testing.T) {
got := CPU.AVX512IFMA()
expected := CPU.Features&AVX512IFMA == AVX512IFMA
if got != expected {
t.Fatalf("AVX512IFMA: expected %v, got %v", expected, got)
}
t.Log("AVX512IFMA Support:", got)
}
// TestAVX512PF tests AVX512PF() function (AVX-512 Prefetch Instructions)
func TestAVX512PF(t *testing.T) {
got := CPU.AVX512PF()
expected := CPU.Features&AVX512PF == AVX512PF
if got != expected {
t.Fatalf("AVX512PF: expected %v, got %v", expected, got)
}
t.Log("AVX512PF Support:", got)
}
// TestAVX512ER tests AVX512ER() function (AVX-512 Exponential and Reciprocal Instructions)
func TestAVX512ER(t *testing.T) {
got := CPU.AVX512ER()
expected := CPU.Features&AVX512ER == AVX512ER
if got != expected {
t.Fatalf("AVX512ER: expected %v, got %v", expected, got)
}
t.Log("AVX512ER Support:", got)
}
// TestAVX512CD tests AVX512CD() function (AVX-512 Conflict Detection Instructions)
func TestAVX512CD(t *testing.T) {
got := CPU.AVX512CD()
expected := CPU.Features&AVX512CD == AVX512CD
if got != expected {
t.Fatalf("AVX512CD: expected %v, got %v", expected, got)
}
t.Log("AVX512CD Support:", got)
}
// TestAVX512BW tests AVX512BW() function (AVX-512 Byte and Word Instructions)
func TestAVX512BW(t *testing.T) {
got := CPU.AVX512BW()
expected := CPU.Features&AVX512BW == AVX512BW
if got != expected {
t.Fatalf("AVX512BW: expected %v, got %v", expected, got)
}
t.Log("AVX512BW Support:", got)
}
// TestAVX512VL tests AVX512VL() function (AVX-512 Vector Length Extensions)
func TestAVX512VL(t *testing.T) {
got := CPU.AVX512VL()
expected := CPU.Features&AVX512VL == AVX512VL
if got != expected {
t.Fatalf("AVX512VL: expected %v, got %v", expected, got)
}
t.Log("AVX512VL Support:", got)
}
// TestAVX512VL tests AVX512VBMI() function (AVX-512 Vector Bit Manipulation Instructions)
func TestAVX512VBMI(t *testing.T) {
got := CPU.AVX512VBMI()
expected := CPU.Features&AVX512VBMI == AVX512VBMI
if got != expected {
t.Fatalf("AVX512VBMI: expected %v, got %v", expected, got)
}
t.Log("AVX512VBMI Support:", got)
}
// TestMPX tests MPX() function (Intel MPX (Memory Protection Extensions))
func TestMPX(t *testing.T) {
got := CPU.MPX()
expected := CPU.Features&MPX == MPX
if got != expected {
t.Fatalf("MPX: expected %v, got %v", expected, got)
}
t.Log("MPX Support:", got)
}
// TestERMS tests ERMS() function (Enhanced REP MOVSB/STOSB)
func TestERMS(t *testing.T) {
got := CPU.ERMS()
expected := CPU.Features&ERMS == ERMS
if got != expected {
t.Fatalf("ERMS: expected %v, got %v", expected, got)
}
t.Log("ERMS Support:", got)
}
// TestVendor writes the detected vendor. Will be 0 if unknown
func TestVendor(t *testing.T) {
t.Log("Vendor ID:", CPU.VendorID)
}
// Intel returns true if vendor is recognized as Intel
func TestIntel(t *testing.T) {
got := CPU.Intel()
expected := CPU.VendorID == Intel
if got != expected {
t.Fatalf("TestIntel: expected %v, got %v", expected, got)
}
t.Log("TestIntel:", got)
}
// AMD returns true if vendor is recognized as AMD
func TestAMD(t *testing.T) {
got := CPU.AMD()
expected := CPU.VendorID == AMD
if got != expected {
t.Fatalf("TestAMD: expected %v, got %v", expected, got)
}
t.Log("TestAMD:", got)
}
// Transmeta returns true if vendor is recognized as Transmeta
func TestTransmeta(t *testing.T) {
got := CPU.Transmeta()
expected := CPU.VendorID == Transmeta
if got != expected {
t.Fatalf("TestTransmeta: expected %v, got %v", expected, got)
}
t.Log("TestTransmeta:", got)
}
// NSC returns true if vendor is recognized as National Semiconductor
func TestNSC(t *testing.T) {
got := CPU.NSC()
expected := CPU.VendorID == NSC
if got != expected {
t.Fatalf("TestNSC: expected %v, got %v", expected, got)
}
t.Log("TestNSC:", got)
}
// VIA returns true if vendor is recognized as VIA
func TestVIA(t *testing.T) {
got := CPU.VIA()
expected := CPU.VendorID == VIA
if got != expected {
t.Fatalf("TestVIA: expected %v, got %v", expected, got)
}
t.Log("TestVIA:", got)
}
// Test VM function
func TestVM(t *testing.T) {
t.Log("Vendor ID:", CPU.VM())
}
// NSC returns true if vendor is recognized as National Semiconductor
func TestCPUInfo_TSX(t *testing.T) {
got := CPU.TSX()
expected := CPU.HLE() && CPU.RTM()
if got != expected {
t.Fatalf("TestNSC: expected %v, got %v", expected, got)
}
t.Log("TestNSC:", got)
}
// Test RTCounter function
func TestRtCounter(t *testing.T) {
a := CPU.RTCounter()
b := CPU.RTCounter()
t.Log("CPU Counter:", a, b, b-a)
}
// Prints the value of Ia32TscAux()
func TestIa32TscAux(t *testing.T) {
ecx := CPU.Ia32TscAux()
t.Logf("Ia32TscAux:0x%x\n", ecx)
if ecx != 0 {
chip := (ecx & 0xFFF000) >> 12
core := ecx & 0xFFF
t.Log("Likely chip, core:", chip, core)
}
}
func TestThreadsPerCoreNZ(t *testing.T) {
if CPU.ThreadsPerCore == 0 {
t.Fatal("threads per core is zero")
}
}
// Prints the value of LogicalCPU()
func TestLogicalCPU(t *testing.T) {
t.Log("Currently executing on cpu:", CPU.LogicalCPU())
}
func TestMaxFunction(t *testing.T) {
expect := maxFunctionID()
if CPU.maxFunc != expect {
t.Fatal("Max function does not match, expected", expect, "but got", CPU.maxFunc)
}
expect = maxExtendedFunction()
if CPU.maxExFunc != expect {
t.Fatal("Max Extended function does not match, expected", expect, "but got", CPU.maxFunc)
}
}
// This example will calculate the chip/core number on Linux
// Linux encodes numa id (<<12) and core id (8bit) into TSC_AUX.
func ExampleCPUInfo_Ia32TscAux() {
ecx := CPU.Ia32TscAux()
if ecx == 0 {
fmt.Println("Unknown CPU ID")
return
}
chip := (ecx & 0xFFF000) >> 12
core := ecx & 0xFFF
fmt.Println("Chip, Core:", chip, core)
}
/*
func TestPhysical(t *testing.T) {
var test16 = "CPUID 00000000: 0000000d-756e6547-6c65746e-49656e69 \nCPUID 00000001: 000206d7-03200800-1fbee3ff-bfebfbff \nCPUID 00000002: 76035a01-00f0b2ff-00000000-00ca0000 \nCPUID 00000003: 00000000-00000000-00000000-00000000 \nCPUID 00000004: 3c004121-01c0003f-0000003f-00000000 \nCPUID 00000004: 3c004122-01c0003f-0000003f-00000000 \nCPUID 00000004: 3c004143-01c0003f-000001ff-00000000 \nCPUID 00000004: 3c07c163-04c0003f-00003fff-00000006 \nCPUID 00000005: 00000040-00000040-00000003-00021120 \nCPUID 00000006: 00000075-00000002-00000009-00000000 \nCPUID 00000007: 00000000-00000000-00000000-00000000 \nCPUID 00000008: 00000000-00000000-00000000-00000000 \nCPUID 00000009: 00000001-00000000-00000000-00000000 \nCPUID 0000000a: 07300403-00000000-00000000-00000603 \nCPUID 0000000b: 00000000-00000000-00000003-00000003 \nCPUID 0000000b: 00000005-00000010-00000201-00000003 \nCPUID 0000000c: 00000000-00000000-00000000-00000000 \nCPUID 0000000d: 00000007-00000340-00000340-00000000 \nCPUID 0000000d: 00000001-00000000-00000000-00000000 \nCPUID 0000000d: 00000100-00000240-00000000-00000000 \nCPUID 80000000: 80000008-00000000-00000000-00000000 \nCPUID 80000001: 00000000-00000000-00000001-2c100800 \nCPUID 80000002: 20202020-49202020-6c65746e-20295228 \nCPUID 80000003: 6e6f6558-20295228-20555043-322d3545 \nCPUID 80000004: 20303636-20402030-30322e32-007a4847 \nCPUID 80000005: 00000000-00000000-00000000-00000000 \nCPUID 80000006: 00000000-00000000-01006040-00000000 \nCPUID 80000007: 00000000-00000000-00000000-00000100 \nCPUID 80000008: 0000302e-00000000-00000000-00000000"
restore := mockCPU([]byte(test16))
Detect()
t.Log("Name:", CPU.BrandName)
n := maxFunctionID()
t.Logf("Max Function:0x%x\n", n)
n = maxExtendedFunction()
t.Logf("Max Extended Function:0x%x\n", n)
t.Log("PhysicalCores:", CPU.PhysicalCores)
t.Log("ThreadsPerCore:", CPU.ThreadsPerCore)
t.Log("LogicalCores:", CPU.LogicalCores)
t.Log("Family", CPU.Family, "Model:", CPU.Model)
t.Log("Features:", CPU.Features)
t.Log("Cacheline bytes:", CPU.CacheLine)
t.Log("L1 Instruction Cache:", CPU.Cache.L1I, "bytes")
t.Log("L1 Data Cache:", CPU.Cache.L1D, "bytes")
t.Log("L2 Cache:", CPU.Cache.L2, "bytes")
t.Log("L3 Cache:", CPU.Cache.L3, "bytes")
if CPU.LogicalCores > 0 && CPU.PhysicalCores > 0 {
if CPU.LogicalCores != CPU.PhysicalCores*CPU.ThreadsPerCore {
t.Fatalf("Core count mismatch, LogicalCores (%d) != PhysicalCores (%d) * CPU.ThreadsPerCore (%d)",
CPU.LogicalCores, CPU.PhysicalCores, CPU.ThreadsPerCore)
}
}
if CPU.ThreadsPerCore > 1 && !CPU.HTT() {
t.Fatalf("Hyperthreading not detected")
}
if CPU.ThreadsPerCore == 1 && CPU.HTT() {
t.Fatalf("Hyperthreading detected, but only 1 Thread per core")
}
restore()
Detect()
TestCPUID(t)
}
*/

17
vendor/github.com/klauspost/cpuid/detect_intel.go generated vendored Normal file
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@ -0,0 +1,17 @@
// Copyright (c) 2015 Klaus Post, released under MIT License. See LICENSE file.
// +build 386,!gccgo amd64,!gccgo
package cpuid
func asmCpuid(op uint32) (eax, ebx, ecx, edx uint32)
func asmCpuidex(op, op2 uint32) (eax, ebx, ecx, edx uint32)
func asmXgetbv(index uint32) (eax, edx uint32)
func asmRdtscpAsm() (eax, ebx, ecx, edx uint32)
func initCPU() {
cpuid = asmCpuid
cpuidex = asmCpuidex
xgetbv = asmXgetbv
rdtscpAsm = asmRdtscpAsm
}

23
vendor/github.com/klauspost/cpuid/detect_ref.go generated vendored Normal file
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@ -0,0 +1,23 @@
// Copyright (c) 2015 Klaus Post, released under MIT License. See LICENSE file.
// +build !amd64,!386 gccgo
package cpuid
func initCPU() {
cpuid = func(op uint32) (eax, ebx, ecx, edx uint32) {
return 0, 0, 0, 0
}
cpuidex = func(op, op2 uint32) (eax, ebx, ecx, edx uint32) {
return 0, 0, 0, 0
}
xgetbv = func(index uint32) (eax, edx uint32) {
return 0, 0
}
rdtscpAsm = func() (eax, ebx, ecx, edx uint32) {
return 0, 0, 0, 0
}
}

4
vendor/github.com/klauspost/cpuid/generate.go generated vendored Normal file
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package cpuid
//go:generate go run private-gen.go
//go:generate gofmt -w ./private

209
vendor/github.com/klauspost/cpuid/mockcpu_test.go generated vendored Normal file
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@ -0,0 +1,209 @@
package cpuid
import (
"archive/zip"
"fmt"
"io/ioutil"
"sort"
"strings"
"testing"
)
type fakecpuid map[uint32][][]uint32
type idfuncs struct {
cpuid func(op uint32) (eax, ebx, ecx, edx uint32)
cpuidex func(op, op2 uint32) (eax, ebx, ecx, edx uint32)
xgetbv func(index uint32) (eax, edx uint32)
}
func (f fakecpuid) String() string {
var out = make([]string, 0, len(f))
for key, val := range f {
for _, v := range val {
out = append(out, fmt.Sprintf("CPUID %08x: [%08x, %08x, %08x, %08x]", key, v[0], v[1], v[2], v[3]))
}
}
sorter := sort.StringSlice(out)
sort.Sort(&sorter)
return strings.Join(sorter, "\n")
}
func mockCPU(def []byte) func() {
lines := strings.Split(string(def), "\n")
anyfound := false
fakeID := make(fakecpuid)
for _, line := range lines {
line = strings.Trim(line, "\r\t ")
if !strings.HasPrefix(line, "CPUID") {
continue
}
// Only collect for first cpu
if strings.HasPrefix(line, "CPUID 00000000") {
if anyfound {
break
}
}
if !strings.Contains(line, "-") {
//continue
}
items := strings.Split(line, ":")
if len(items) < 2 {
if len(line) == 51 || len(line) == 50 {
items = []string{line[0:14], line[15:]}
} else {
items = strings.Split(line, "\t")
if len(items) != 2 {
//fmt.Println("not found:", line, "len:", len(line))
continue
}
}
}
items = items[0:2]
vals := strings.Trim(items[1], "\r\n ")
var idV uint32
n, err := fmt.Sscanf(items[0], "CPUID %x", &idV)
if err != nil || n != 1 {
continue
}
existing, ok := fakeID[idV]
if !ok {
existing = make([][]uint32, 0)
}
values := make([]uint32, 4)
n, err = fmt.Sscanf(vals, "%x-%x-%x-%x", &values[0], &values[1], &values[2], &values[3])
if n != 4 || err != nil {
n, err = fmt.Sscanf(vals, "%x %x %x %x", &values[0], &values[1], &values[2], &values[3])
if n != 4 || err != nil {
//fmt.Println("scanned", vals, "got", n, "Err:", err)
continue
}
}
existing = append(existing, values)
fakeID[idV] = existing
anyfound = true
}
restorer := func(f idfuncs) func() {
return func() {
cpuid = f.cpuid
cpuidex = f.cpuidex
xgetbv = f.xgetbv
}
}(idfuncs{cpuid: cpuid, cpuidex: cpuidex, xgetbv: xgetbv})
cpuid = func(op uint32) (eax, ebx, ecx, edx uint32) {
if op == 0x80000000 || op == 0 {
var ok bool
_, ok = fakeID[op]
if !ok {
return 0, 0, 0, 0
}
}
first, ok := fakeID[op]
if !ok {
if op > maxFunctionID() {
panic(fmt.Sprintf("Base not found: %v, request:%#v\n", fakeID, op))
} else {
// we have some entries missing
return 0, 0, 0, 0
}
}
theid := first[0]
return theid[0], theid[1], theid[2], theid[3]
}
cpuidex = func(op, op2 uint32) (eax, ebx, ecx, edx uint32) {
if op == 0x80000000 {
var ok bool
_, ok = fakeID[op]
if !ok {
return 0, 0, 0, 0
}
}
first, ok := fakeID[op]
if !ok {
if op > maxExtendedFunction() {
panic(fmt.Sprintf("Extended not found Info: %v, request:%#v, %#v\n", fakeID, op, op2))
} else {
// we have some entries missing
return 0, 0, 0, 0
}
}
if int(op2) >= len(first) {
//fmt.Printf("Extended not found Info: %v, request:%#v, %#v\n", fakeID, op, op2)
return 0, 0, 0, 0
}
theid := first[op2]
return theid[0], theid[1], theid[2], theid[3]
}
xgetbv = func(index uint32) (eax, edx uint32) {
first, ok := fakeID[1]
if !ok {
panic(fmt.Sprintf("XGETBV not supported %v", fakeID))
}
second := first[0]
// ECX bit 26 must be set
if (second[2] & 1 << 26) == 0 {
panic(fmt.Sprintf("XGETBV not supported %v", fakeID))
}
// We don't have any data to return, unfortunately
return 0, 0
}
return restorer
}
func TestMocks(t *testing.T) {
zr, err := zip.OpenReader("testdata/cpuid_data.zip")
if err != nil {
t.Skip("No testdata:", err)
}
defer zr.Close()
for _, f := range zr.File {
rc, err := f.Open()
if err != nil {
t.Fatal(err)
}
content, err := ioutil.ReadAll(rc)
if err != nil {
t.Fatal(err)
}
rc.Close()
t.Log("Opening", f.FileInfo().Name())
restore := mockCPU(content)
Detect()
t.Log("Name:", CPU.BrandName)
n := maxFunctionID()
t.Logf("Max Function:0x%x\n", n)
n = maxExtendedFunction()
t.Logf("Max Extended Function:0x%x\n", n)
t.Log("PhysicalCores:", CPU.PhysicalCores)
t.Log("ThreadsPerCore:", CPU.ThreadsPerCore)
t.Log("LogicalCores:", CPU.LogicalCores)
t.Log("Family", CPU.Family, "Model:", CPU.Model)
t.Log("Features:", CPU.Features)
t.Log("Cacheline bytes:", CPU.CacheLine)
t.Log("L1 Instruction Cache:", CPU.Cache.L1I, "bytes")
t.Log("L1 Data Cache:", CPU.Cache.L1D, "bytes")
t.Log("L2 Cache:", CPU.Cache.L2, "bytes")
t.Log("L3 Cache:", CPU.Cache.L3, "bytes")
if CPU.LogicalCores > 0 && CPU.PhysicalCores > 0 {
if CPU.LogicalCores != CPU.PhysicalCores*CPU.ThreadsPerCore {
t.Fatalf("Core count mismatch, LogicalCores (%d) != PhysicalCores (%d) * CPU.ThreadsPerCore (%d)",
CPU.LogicalCores, CPU.PhysicalCores, CPU.ThreadsPerCore)
}
}
if CPU.ThreadsPerCore > 1 && !CPU.HTT() {
t.Fatalf("Hyperthreading not detected")
}
if CPU.ThreadsPerCore == 1 && CPU.HTT() {
t.Fatalf("Hyperthreading detected, but only 1 Thread per core")
}
restore()
}
Detect()
}

476
vendor/github.com/klauspost/cpuid/private-gen.go generated vendored Normal file
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@ -0,0 +1,476 @@
// +build ignore
package main
import (
"bytes"
"fmt"
"go/ast"
"go/parser"
"go/printer"
"go/token"
"io"
"io/ioutil"
"log"
"os"
"reflect"
"strings"
"unicode"
"unicode/utf8"
)
var inFiles = []string{"cpuid.go", "cpuid_test.go"}
var copyFiles = []string{"cpuid_amd64.s", "cpuid_386.s", "detect_ref.go", "detect_intel.go"}
var fileSet = token.NewFileSet()
var reWrites = []rewrite{
initRewrite("CPUInfo -> cpuInfo"),
initRewrite("Vendor -> vendor"),
initRewrite("Flags -> flags"),
initRewrite("Detect -> detect"),
initRewrite("CPU -> cpu"),
}
var excludeNames = map[string]bool{"string": true, "join": true, "trim": true,
// cpuid_test.go
"t": true, "println": true, "logf": true, "log": true, "fatalf": true, "fatal": true,
}
var excludePrefixes = []string{"test", "benchmark"}
func main() {
Package := "private"
parserMode := parser.ParseComments
exported := make(map[string]rewrite)
for _, file := range inFiles {
in, err := os.Open(file)
if err != nil {
log.Fatalf("opening input", err)
}
src, err := ioutil.ReadAll(in)
if err != nil {
log.Fatalf("reading input", err)
}
astfile, err := parser.ParseFile(fileSet, file, src, parserMode)
if err != nil {
log.Fatalf("parsing input", err)
}
for _, rw := range reWrites {
astfile = rw(astfile)
}
// Inspect the AST and print all identifiers and literals.
var startDecl token.Pos
var endDecl token.Pos
ast.Inspect(astfile, func(n ast.Node) bool {
var s string
switch x := n.(type) {
case *ast.Ident:
if x.IsExported() {
t := strings.ToLower(x.Name)
for _, pre := range excludePrefixes {
if strings.HasPrefix(t, pre) {
return true
}
}
if excludeNames[t] != true {
//if x.Pos() > startDecl && x.Pos() < endDecl {
exported[x.Name] = initRewrite(x.Name + " -> " + t)
}
}
case *ast.GenDecl:
if x.Tok == token.CONST && x.Lparen > 0 {
startDecl = x.Lparen
endDecl = x.Rparen
// fmt.Printf("Decl:%s -> %s\n", fileSet.Position(startDecl), fileSet.Position(endDecl))
}
}
if s != "" {
fmt.Printf("%s:\t%s\n", fileSet.Position(n.Pos()), s)
}
return true
})
for _, rw := range exported {
astfile = rw(astfile)
}
var buf bytes.Buffer
printer.Fprint(&buf, fileSet, astfile)
// Remove package documentation and insert information
s := buf.String()
ind := strings.Index(buf.String(), "\npackage cpuid")
s = s[ind:]
s = "// Generated, DO NOT EDIT,\n" +
"// but copy it to your own project and rename the package.\n" +
"// See more at http://github.com/klauspost/cpuid\n" +
s
outputName := Package + string(os.PathSeparator) + file
err = ioutil.WriteFile(outputName, []byte(s), 0644)
if err != nil {
log.Fatalf("writing output: %s", err)
}
log.Println("Generated", outputName)
}
for _, file := range copyFiles {
dst := ""
if strings.HasPrefix(file, "cpuid") {
dst = Package + string(os.PathSeparator) + file
} else {
dst = Package + string(os.PathSeparator) + "cpuid_" + file
}
err := copyFile(file, dst)
if err != nil {
log.Fatalf("copying file: %s", err)
}
log.Println("Copied", dst)
}
}
// CopyFile copies a file from src to dst. If src and dst files exist, and are
// the same, then return success. Copy the file contents from src to dst.
func copyFile(src, dst string) (err error) {
sfi, err := os.Stat(src)
if err != nil {
return
}
if !sfi.Mode().IsRegular() {
// cannot copy non-regular files (e.g., directories,
// symlinks, devices, etc.)
return fmt.Errorf("CopyFile: non-regular source file %s (%q)", sfi.Name(), sfi.Mode().String())
}
dfi, err := os.Stat(dst)
if err != nil {
if !os.IsNotExist(err) {
return
}
} else {
if !(dfi.Mode().IsRegular()) {
return fmt.Errorf("CopyFile: non-regular destination file %s (%q)", dfi.Name(), dfi.Mode().String())
}
if os.SameFile(sfi, dfi) {
return
}
}
err = copyFileContents(src, dst)
return
}
// copyFileContents copies the contents of the file named src to the file named
// by dst. The file will be created if it does not already exist. If the
// destination file exists, all it's contents will be replaced by the contents
// of the source file.
func copyFileContents(src, dst string) (err error) {
in, err := os.Open(src)
if err != nil {
return
}
defer in.Close()
out, err := os.Create(dst)
if err != nil {
return
}
defer func() {
cerr := out.Close()
if err == nil {
err = cerr
}
}()
if _, err = io.Copy(out, in); err != nil {
return
}
err = out.Sync()
return
}
type rewrite func(*ast.File) *ast.File
// Mostly copied from gofmt
func initRewrite(rewriteRule string) rewrite {
f := strings.Split(rewriteRule, "->")
if len(f) != 2 {
fmt.Fprintf(os.Stderr, "rewrite rule must be of the form 'pattern -> replacement'\n")
os.Exit(2)
}
pattern := parseExpr(f[0], "pattern")
replace := parseExpr(f[1], "replacement")
return func(p *ast.File) *ast.File { return rewriteFile(pattern, replace, p) }
}
// parseExpr parses s as an expression.
// It might make sense to expand this to allow statement patterns,
// but there are problems with preserving formatting and also
// with what a wildcard for a statement looks like.
func parseExpr(s, what string) ast.Expr {
x, err := parser.ParseExpr(s)
if err != nil {
fmt.Fprintf(os.Stderr, "parsing %s %s at %s\n", what, s, err)
os.Exit(2)
}
return x
}
// Keep this function for debugging.
/*
func dump(msg string, val reflect.Value) {
fmt.Printf("%s:\n", msg)
ast.Print(fileSet, val.Interface())
fmt.Println()
}
*/
// rewriteFile applies the rewrite rule 'pattern -> replace' to an entire file.
func rewriteFile(pattern, replace ast.Expr, p *ast.File) *ast.File {
cmap := ast.NewCommentMap(fileSet, p, p.Comments)
m := make(map[string]reflect.Value)
pat := reflect.ValueOf(pattern)
repl := reflect.ValueOf(replace)
var rewriteVal func(val reflect.Value) reflect.Value
rewriteVal = func(val reflect.Value) reflect.Value {
// don't bother if val is invalid to start with
if !val.IsValid() {
return reflect.Value{}
}
for k := range m {
delete(m, k)
}
val = apply(rewriteVal, val)
if match(m, pat, val) {
val = subst(m, repl, reflect.ValueOf(val.Interface().(ast.Node).Pos()))
}
return val
}
r := apply(rewriteVal, reflect.ValueOf(p)).Interface().(*ast.File)
r.Comments = cmap.Filter(r).Comments() // recreate comments list
return r
}
// set is a wrapper for x.Set(y); it protects the caller from panics if x cannot be changed to y.
func set(x, y reflect.Value) {
// don't bother if x cannot be set or y is invalid
if !x.CanSet() || !y.IsValid() {
return
}
defer func() {
if x := recover(); x != nil {
if s, ok := x.(string); ok &&
(strings.Contains(s, "type mismatch") || strings.Contains(s, "not assignable")) {
// x cannot be set to y - ignore this rewrite
return
}
panic(x)
}
}()
x.Set(y)
}
// Values/types for special cases.
var (
objectPtrNil = reflect.ValueOf((*ast.Object)(nil))
scopePtrNil = reflect.ValueOf((*ast.Scope)(nil))
identType = reflect.TypeOf((*ast.Ident)(nil))
objectPtrType = reflect.TypeOf((*ast.Object)(nil))
positionType = reflect.TypeOf(token.NoPos)
callExprType = reflect.TypeOf((*ast.CallExpr)(nil))
scopePtrType = reflect.TypeOf((*ast.Scope)(nil))
)
// apply replaces each AST field x in val with f(x), returning val.
// To avoid extra conversions, f operates on the reflect.Value form.
func apply(f func(reflect.Value) reflect.Value, val reflect.Value) reflect.Value {
if !val.IsValid() {
return reflect.Value{}
}
// *ast.Objects introduce cycles and are likely incorrect after
// rewrite; don't follow them but replace with nil instead
if val.Type() == objectPtrType {
return objectPtrNil
}
// similarly for scopes: they are likely incorrect after a rewrite;
// replace them with nil
if val.Type() == scopePtrType {
return scopePtrNil
}
switch v := reflect.Indirect(val); v.Kind() {
case reflect.Slice:
for i := 0; i < v.Len(); i++ {
e := v.Index(i)
set(e, f(e))
}
case reflect.Struct:
for i := 0; i < v.NumField(); i++ {
e := v.Field(i)
set(e, f(e))
}
case reflect.Interface:
e := v.Elem()
set(v, f(e))
}
return val
}
func isWildcard(s string) bool {
rune, size := utf8.DecodeRuneInString(s)
return size == len(s) && unicode.IsLower(rune)
}
// match returns true if pattern matches val,
// recording wildcard submatches in m.
// If m == nil, match checks whether pattern == val.
func match(m map[string]reflect.Value, pattern, val reflect.Value) bool {
// Wildcard matches any expression. If it appears multiple
// times in the pattern, it must match the same expression
// each time.
if m != nil && pattern.IsValid() && pattern.Type() == identType {
name := pattern.Interface().(*ast.Ident).Name
if isWildcard(name) && val.IsValid() {
// wildcards only match valid (non-nil) expressions.
if _, ok := val.Interface().(ast.Expr); ok && !val.IsNil() {
if old, ok := m[name]; ok {
return match(nil, old, val)
}
m[name] = val
return true
}
}
}
// Otherwise, pattern and val must match recursively.
if !pattern.IsValid() || !val.IsValid() {
return !pattern.IsValid() && !val.IsValid()
}
if pattern.Type() != val.Type() {
return false
}
// Special cases.
switch pattern.Type() {
case identType:
// For identifiers, only the names need to match
// (and none of the other *ast.Object information).
// This is a common case, handle it all here instead
// of recursing down any further via reflection.
p := pattern.Interface().(*ast.Ident)
v := val.Interface().(*ast.Ident)
return p == nil && v == nil || p != nil && v != nil && p.Name == v.Name
case objectPtrType, positionType:
// object pointers and token positions always match
return true
case callExprType:
// For calls, the Ellipsis fields (token.Position) must
// match since that is how f(x) and f(x...) are different.
// Check them here but fall through for the remaining fields.
p := pattern.Interface().(*ast.CallExpr)
v := val.Interface().(*ast.CallExpr)
if p.Ellipsis.IsValid() != v.Ellipsis.IsValid() {
return false
}
}
p := reflect.Indirect(pattern)
v := reflect.Indirect(val)
if !p.IsValid() || !v.IsValid() {
return !p.IsValid() && !v.IsValid()
}
switch p.Kind() {
case reflect.Slice:
if p.Len() != v.Len() {
return false
}
for i := 0; i < p.Len(); i++ {
if !match(m, p.Index(i), v.Index(i)) {
return false
}
}
return true
case reflect.Struct:
for i := 0; i < p.NumField(); i++ {
if !match(m, p.Field(i), v.Field(i)) {
return false
}
}
return true
case reflect.Interface:
return match(m, p.Elem(), v.Elem())
}
// Handle token integers, etc.
return p.Interface() == v.Interface()
}
// subst returns a copy of pattern with values from m substituted in place
// of wildcards and pos used as the position of tokens from the pattern.
// if m == nil, subst returns a copy of pattern and doesn't change the line
// number information.
func subst(m map[string]reflect.Value, pattern reflect.Value, pos reflect.Value) reflect.Value {
if !pattern.IsValid() {
return reflect.Value{}
}
// Wildcard gets replaced with map value.
if m != nil && pattern.Type() == identType {
name := pattern.Interface().(*ast.Ident).Name
if isWildcard(name) {
if old, ok := m[name]; ok {
return subst(nil, old, reflect.Value{})
}
}
}
if pos.IsValid() && pattern.Type() == positionType {
// use new position only if old position was valid in the first place
if old := pattern.Interface().(token.Pos); !old.IsValid() {
return pattern
}
return pos
}
// Otherwise copy.
switch p := pattern; p.Kind() {
case reflect.Slice:
v := reflect.MakeSlice(p.Type(), p.Len(), p.Len())
for i := 0; i < p.Len(); i++ {
v.Index(i).Set(subst(m, p.Index(i), pos))
}
return v
case reflect.Struct:
v := reflect.New(p.Type()).Elem()
for i := 0; i < p.NumField(); i++ {
v.Field(i).Set(subst(m, p.Field(i), pos))
}
return v
case reflect.Ptr:
v := reflect.New(p.Type()).Elem()
if elem := p.Elem(); elem.IsValid() {
v.Set(subst(m, elem, pos).Addr())
}
return v
case reflect.Interface:
v := reflect.New(p.Type()).Elem()
if elem := p.Elem(); elem.IsValid() {
v.Set(subst(m, elem, pos))
}
return v
}
return pattern
}

26
vendor/github.com/klauspost/reedsolomon/.gitignore generated vendored Normal file
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@ -0,0 +1,26 @@
# Compiled Object files, Static and Dynamic libs (Shared Objects)
*.o
*.a
*.so
# Folders
_obj
_test
# Architecture specific extensions/prefixes
*.[568vq]
[568vq].out
*.cgo1.go
*.cgo2.c
_cgo_defun.c
_cgo_gotypes.go
_cgo_export.*
_testmain.go
*.exe
*.test
*.prof
.idea

32
vendor/github.com/klauspost/reedsolomon/.travis.yml generated vendored Normal file
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@ -0,0 +1,32 @@
language: go
sudo: false
os:
- linux
- osx
go:
- 1.7.x
- 1.8.x
- 1.9.x
- master
install:
- go get ./...
script:
- go vet ./...
- go test -v -cpu=1,2,4 .
- go test -v -cpu=1,2,4 -short -race .
- go test -tags=noasm -v -cpu=1,2,4 -short -race .
- go build examples/simple-decoder.go
- go build examples/simple-encoder.go
- go build examples/stream-decoder.go
- go build examples/stream-encoder.go
- diff <(gofmt -d .) <("")
matrix:
allow_failures:
- go: 'master'
fast_finish: true

View File

@ -1,6 +1,5 @@
MIT License
The MIT License (MIT)
Copyright (c) 2017 Templexxx
Copyright (c) 2015 Klaus Post
Copyright (c) 2015 Backblaze
@ -21,3 +20,4 @@ AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
SOFTWARE.

273
vendor/github.com/klauspost/reedsolomon/README.md generated vendored Normal file
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@ -0,0 +1,273 @@
# Reed-Solomon
[![GoDoc][1]][2] [![Build Status][3]][4]
[1]: https://godoc.org/github.com/klauspost/reedsolomon?status.svg
[2]: https://godoc.org/github.com/klauspost/reedsolomon
[3]: https://travis-ci.org/klauspost/reedsolomon.svg?branch=master
[4]: https://travis-ci.org/klauspost/reedsolomon
Reed-Solomon Erasure Coding in Go, with speeds exceeding 1GB/s/cpu core implemented in pure Go.
This is a Go port of the [JavaReedSolomon](https://github.com/Backblaze/JavaReedSolomon) library released by [Backblaze](http://backblaze.com), with some additional optimizations.
For an introduction on erasure coding, see the post on the [Backblaze blog](https://www.backblaze.com/blog/reed-solomon/).
Package home: https://github.com/klauspost/reedsolomon
Godoc: https://godoc.org/github.com/klauspost/reedsolomon
# Installation
To get the package use the standard:
```bash
go get -u github.com/klauspost/reedsolomon
```
# Changes
## October 1, 2017
* [Cauchy Matrix](https://godoc.org/github.com/klauspost/reedsolomon#WithCauchyMatrix) is now an option. Thanks to [templexxx](https://github.com/templexxx) for the basis of this.
* Default maximum number of [goroutines](https://godoc.org/github.com/klauspost/reedsolomon#WithMaxGoroutines) has been increased for better multi-core scaling.
* After several requests the Reconstruct and ReconstructData now slices of zero length but sufficient capacityto be used instead of allocating new memory.
## August 26, 2017
* The[`Encoder()`](https://godoc.org/github.com/klauspost/reedsolomon#Encoder) now contains an `Update` function contributed by [chenzhongtao](https://github.com/chenzhongtao).
* [Frank Wessels](https://github.com/fwessels) kindly contributed ARM 64 bit assembly, which gives a huge performance boost on this platform.
## July 20, 2017
`ReconstructData` added to [`Encoder`](https://godoc.org/github.com/klauspost/reedsolomon#Encoder) interface. This can cause compatibility issues if you implement your own Encoder. A simple workaround can be added:
```Go
func (e *YourEnc) ReconstructData(shards [][]byte) error {
return ReconstructData(shards)
}
```
You can of course also do your own implementation. The [`StreamEncoder`](https://godoc.org/github.com/klauspost/reedsolomon#StreamEncoder) handles this without modifying the interface. This is a good lesson on why returning interfaces is not a good design.
# Usage
This section assumes you know the basics of Reed-Solomon encoding. A good start is this [Backblaze blog post](https://www.backblaze.com/blog/reed-solomon/).
This package performs the calculation of the parity sets. The usage is therefore relatively simple.
First of all, you need to choose your distribution of data and parity shards. A 'good' distribution is very subjective, and will depend a lot on your usage scenario. A good starting point is above 5 and below 257 data shards (the maximum supported number), and the number of parity shards to be 2 or above, and below the number of data shards.
To create an encoder with 10 data shards (where your data goes) and 3 parity shards (calculated):
```Go
enc, err := reedsolomon.New(10, 3)
```
This encoder will work for all parity sets with this distribution of data and parity shards. The error will only be set if you specify 0 or negative values in any of the parameters, or if you specify more than 256 data shards.
The you send and receive data is a simple slice of byte slices; `[][]byte`. In the example above, the top slice must have a length of 13.
```Go
data := make([][]byte, 13)
```
You should then fill the 10 first slices with *equally sized* data, and create parity shards that will be populated with parity data. In this case we create the data in memory, but you could for instance also use [mmap](https://github.com/edsrzf/mmap-go) to map files.
```Go
// Create all shards, size them at 50000 each
for i := range input {
data[i] := make([]byte, 50000)
}
// Fill some data into the data shards
for i, in := range data[:10] {
for j:= range in {
in[j] = byte((i+j)&0xff)
}
}
```
To populate the parity shards, you simply call `Encode()` with your data.
```Go
err = enc.Encode(data)
```
The only cases where you should get an error is, if the data shards aren't of equal size. The last 3 shards now contain parity data. You can verify this by calling `Verify()`:
```Go
ok, err = enc.Verify(data)
```
The final (and important) part is to be able to reconstruct missing shards. For this to work, you need to know which parts of your data is missing. The encoder *does not know which parts are invalid*, so if data corruption is a likely scenario, you need to implement a hash check for each shard. If a byte has changed in your set, and you don't know which it is, there is no way to reconstruct the data set.
To indicate missing data, you set the shard to nil before calling `Reconstruct()`:
```Go
// Delete two data shards
data[3] = nil
data[7] = nil
// Reconstruct the missing shards
err := enc.Reconstruct(data)
```
The missing data and parity shards will be recreated. If more than 3 shards are missing, the reconstruction will fail.
If you are only interested in the data shards (for reading purposes) you can call `ReconstructData()`:
```Go
// Delete two data shards
data[3] = nil
data[7] = nil
// Reconstruct just the missing data shards
err := enc.ReconstructData(data)
```
So to sum up reconstruction:
* The number of data/parity shards must match the numbers used for encoding.
* The order of shards must be the same as used when encoding.
* You may only supply data you know is valid.
* Invalid shards should be set to nil.
For complete examples of an encoder and decoder see the [examples folder](https://github.com/klauspost/reedsolomon/tree/master/examples).
# Splitting/Joining Data
You might have a large slice of data. To help you split this, there are some helper functions that can split and join a single byte slice.
```Go
bigfile, _ := ioutil.Readfile("myfile.data")
// Split the file
split, err := enc.Split(bigfile)
```
This will split the file into the number of data shards set when creating the encoder and create empty parity shards.
An important thing to note is that you have to *keep track of the exact input size*. If the size of the input isn't divisible by the number of data shards, extra zeros will be inserted in the last shard.
To join a data set, use the `Join()` function, which will join the shards and write it to the `io.Writer` you supply:
```Go
// Join a data set and write it to io.Discard.
err = enc.Join(io.Discard, data, len(bigfile))
```
# Streaming/Merging
It might seem like a limitation that all data should be in memory, but an important property is that *as long as the number of data/parity shards are the same, you can merge/split data sets*, and they will remain valid as a separate set.
```Go
// Split the data set of 50000 elements into two of 25000
splitA := make([][]byte, 13)
splitB := make([][]byte, 13)
// Merge into a 100000 element set
merged := make([][]byte, 13)
for i := range data {
splitA[i] = data[i][:25000]
splitB[i] = data[i][25000:]
// Concencate it to itself
merged[i] = append(make([]byte, 0, len(data[i])*2), data[i]...)
merged[i] = append(merged[i], data[i]...)
}
// Each part should still verify as ok.
ok, err := enc.Verify(splitA)
if ok && err == nil {
log.Println("splitA ok")
}
ok, err = enc.Verify(splitB)
if ok && err == nil {
log.Println("splitB ok")
}
ok, err = enc.Verify(merge)
if ok && err == nil {
log.Println("merge ok")
}
```
This means that if you have a data set that may not fit into memory, you can split processing into smaller blocks. For the best throughput, don't use too small blocks.
This also means that you can divide big input up into smaller blocks, and do reconstruction on parts of your data. This doesn't give the same flexibility of a higher number of data shards, but it will be much more performant.
# Streaming API
There has been added support for a streaming API, to help perform fully streaming operations, which enables you to do the same operations, but on streams. To use the stream API, use [`NewStream`](https://godoc.org/github.com/klauspost/reedsolomon#NewStream) function to create the encoding/decoding interfaces. You can use [`NewStreamC`](https://godoc.org/github.com/klauspost/reedsolomon#NewStreamC) to ready an interface that reads/writes concurrently from the streams.
Input is delivered as `[]io.Reader`, output as `[]io.Writer`, and functionality corresponds to the in-memory API. Each stream must supply the same amount of data, similar to how each slice must be similar size with the in-memory API.
If an error occurs in relation to a stream, a [`StreamReadError`](https://godoc.org/github.com/klauspost/reedsolomon#StreamReadError) or [`StreamWriteError`](https://godoc.org/github.com/klauspost/reedsolomon#StreamWriteError) will help you determine which stream was the offender.
There is no buffering or timeouts/retry specified. If you want to add that, you need to add it to the Reader/Writer.
For complete examples of a streaming encoder and decoder see the [examples folder](https://github.com/klauspost/reedsolomon/tree/master/examples).
# Advanced Options
You can modify internal options which affects how jobs are split between and processed by goroutines.
To create options, use the WithXXX functions. You can supply options to `New`, `NewStream` and `NewStreamC`. If no Options are supplied, default options are used.
Example of how to supply options:
```Go
enc, err := reedsolomon.New(10, 3, WithMaxGoroutines(25))
```
# Performance
Performance depends mainly on the number of parity shards. In rough terms, doubling the number of parity shards will double the encoding time.
Here are the throughput numbers with some different selections of data and parity shards. For reference each shard is 1MB random data, and 2 CPU cores are used for encoding.
| Data | Parity | Parity | MB/s | SSSE3 MB/s | SSSE3 Speed | Rel. Speed |
|------|--------|--------|--------|-------------|-------------|------------|
| 5 | 2 | 40% | 576,11 | 2599,2 | 451% | 100,00% |
| 10 | 2 | 20% | 587,73 | 3100,28 | 528% | 102,02% |
| 10 | 4 | 40% | 298,38 | 2470,97 | 828% | 51,79% |
| 50 | 20 | 40% | 59,81 | 713,28 | 1193% | 10,38% |
If `runtime.GOMAXPROCS()` is set to a value higher than 1, the encoder will use multiple goroutines to perform the calculations in `Verify`, `Encode` and `Reconstruct`.
Example of performance scaling on Intel(R) Core(TM) i7-2600 CPU @ 3.40GHz - 4 physical cores, 8 logical cores. The example uses 10 blocks with 16MB data each and 4 parity blocks.
| Threads | MB/s | Speed |
|---------|---------|-------|
| 1 | 1355,11 | 100% |
| 2 | 2339,78 | 172% |
| 4 | 3179,33 | 235% |
| 8 | 4346,18 | 321% |
Benchmarking `Reconstruct()` followed by a `Verify()` (=`all`) versus just calling `ReconstructData()` (=`data`) gives the following result:
```
benchmark all MB/s data MB/s speedup
BenchmarkReconstruct10x2x10000-8 2011.67 10530.10 5.23x
BenchmarkReconstruct50x5x50000-8 4585.41 14301.60 3.12x
BenchmarkReconstruct10x2x1M-8 8081.15 28216.41 3.49x
BenchmarkReconstruct5x2x1M-8 5780.07 28015.37 4.85x
BenchmarkReconstruct10x4x1M-8 4352.56 14367.61 3.30x
BenchmarkReconstruct50x20x1M-8 1364.35 4189.79 3.07x
BenchmarkReconstruct10x4x16M-8 1484.35 5779.53 3.89x
```
# Performance on ARM64 NEON
By exploiting NEON instructions the performance for ARM has been accelerated. Below are the performance numbers for a single core on an ARM Cortex-A53 CPU @ 1.2GHz (Debian 8.0 Jessie running Go: 1.7.4):
| Data | Parity | Parity | ARM64 Go MB/s | ARM64 NEON MB/s | NEON Speed |
|------|--------|--------|--------------:|----------------:|-----------:|
| 5 | 2 | 40% | 189 | 1304 | 588% |
| 10 | 2 | 20% | 188 | 1738 | 925% |
| 10 | 4 | 40% | 96 | 839 | 877% |
# asm2plan9s
[asm2plan9s](https://github.com/fwessels/asm2plan9s) is used for assembling the AVX2 instructions into their BYTE/WORD/LONG equivalents.
# Links
* [Backblaze Open Sources Reed-Solomon Erasure Coding Source Code](https://www.backblaze.com/blog/reed-solomon/).
* [JavaReedSolomon](https://github.com/Backblaze/JavaReedSolomon). Compatible java library by Backblaze.
* [reedsolomon-c](https://github.com/jannson/reedsolomon-c). C version, compatible with output from this package.
* [Reed-Solomon Erasure Coding in Haskell](https://github.com/NicolasT/reedsolomon). Haskell port of the package with similar performance.
* [go-erasure](https://github.com/somethingnew2-0/go-erasure). A similar library using cgo, slower in my tests.
* [rsraid](https://github.com/goayame/rsraid). A similar library written in Go. Slower, but supports more shards.
* [Screaming Fast Galois Field Arithmetic](http://www.snia.org/sites/default/files2/SDC2013/presentations/NewThinking/EthanMiller_Screaming_Fast_Galois_Field%20Arithmetic_SIMD%20Instructions.pdf). Basis for SSE3 optimizations.
# License
This code, as the original [JavaReedSolomon](https://github.com/Backblaze/JavaReedSolomon) is published under an MIT license. See LICENSE file for more information.

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os: Visual Studio 2015
platform: x64
clone_folder: c:\gopath\src\github.com\klauspost\reedsolomon
# environment variables
environment:
GOPATH: c:\gopath
install:
- echo %PATH%
- echo %GOPATH%
- go version
- go env
- go get -d ./...
build_script:
- go test -v -cpu=2 ./...
- go test -cpu=1,2,4 -short -race ./...

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package reedsolomon_test
import (
"bytes"
"fmt"
"io"
"io/ioutil"
"log"
"math/rand"
"github.com/klauspost/reedsolomon"
)
func fillRandom(p []byte) {
for i := 0; i < len(p); i += 7 {
val := rand.Int63()
for j := 0; i+j < len(p) && j < 7; j++ {
p[i+j] = byte(val)
val >>= 8
}
}
}
// Simple example of how to use all functions of the Encoder.
// Note that all error checks have been removed to keep it short.
func ExampleEncoder() {
// Create some sample data
var data = make([]byte, 250000)
fillRandom(data)
// Create an encoder with 17 data and 3 parity slices.
enc, _ := reedsolomon.New(17, 3)
// Split the data into shards
shards, _ := enc.Split(data)
// Encode the parity set
_ = enc.Encode(shards)
// Verify the parity set
ok, _ := enc.Verify(shards)
if ok {
fmt.Println("ok")
}
// Delete two shards
shards[10], shards[11] = nil, nil
// Reconstruct the shards
_ = enc.Reconstruct(shards)
// Verify the data set
ok, _ = enc.Verify(shards)
if ok {
fmt.Println("ok")
}
// Output: ok
// ok
}
// This demonstrates that shards can be arbitrary sliced and
// merged and still remain valid.
func ExampleEncoder_slicing() {
// Create some sample data
var data = make([]byte, 250000)
fillRandom(data)
// Create 5 data slices of 50000 elements each
enc, _ := reedsolomon.New(5, 3)
shards, _ := enc.Split(data)
err := enc.Encode(shards)
if err != nil {
panic(err)
}
// Check that it verifies
ok, err := enc.Verify(shards)
if ok && err == nil {
fmt.Println("encode ok")
}
// Split the data set of 50000 elements into two of 25000
splitA := make([][]byte, 8)
splitB := make([][]byte, 8)
// Merge into a 100000 element set
merged := make([][]byte, 8)
// Split/merge the shards
for i := range shards {
splitA[i] = shards[i][:25000]
splitB[i] = shards[i][25000:]
// Concencate it to itself
merged[i] = append(make([]byte, 0, len(shards[i])*2), shards[i]...)
merged[i] = append(merged[i], shards[i]...)
}
// Each part should still verify as ok.
ok, err = enc.Verify(shards)
if ok && err == nil {
fmt.Println("splitA ok")
}
ok, err = enc.Verify(splitB)
if ok && err == nil {
fmt.Println("splitB ok")
}
ok, err = enc.Verify(merged)
if ok && err == nil {
fmt.Println("merge ok")
}
// Output: encode ok
// splitA ok
// splitB ok
// merge ok
}
// This demonstrates that shards can xor'ed and
// still remain a valid set.
//
// The xor value must be the same for element 'n' in each shard,
// except if you xor with a similar sized encoded shard set.
func ExampleEncoder_xor() {
// Create some sample data
var data = make([]byte, 25000)
fillRandom(data)
// Create 5 data slices of 5000 elements each
enc, _ := reedsolomon.New(5, 3)
shards, _ := enc.Split(data)
err := enc.Encode(shards)
if err != nil {
panic(err)
}
// Check that it verifies
ok, err := enc.Verify(shards)
if !ok || err != nil {
fmt.Println("falied initial verify", err)
}
// Create an xor'ed set
xored := make([][]byte, 8)
// We xor by the index, so you can see that the xor can change,
// It should however be constant vertically through your slices.
for i := range shards {
xored[i] = make([]byte, len(shards[i]))
for j := range xored[i] {
xored[i][j] = shards[i][j] ^ byte(j&0xff)
}
}
// Each part should still verify as ok.
ok, err = enc.Verify(xored)
if ok && err == nil {
fmt.Println("verified ok after xor")
}
// Output: verified ok after xor
}
// This will show a simple stream encoder where we encode from
// a []io.Reader which contain a reader for each shard.
//
// Input and output can be exchanged with files, network streams
// or what may suit your needs.
func ExampleStreamEncoder() {
dataShards := 5
parityShards := 2
// Create a StreamEncoder with the number of data and
// parity shards.
rs, err := reedsolomon.NewStream(dataShards, parityShards)
if err != nil {
log.Fatal(err)
}
shardSize := 50000
// Create input data shards.
input := make([][]byte, dataShards)
for s := range input {
input[s] = make([]byte, shardSize)
fillRandom(input[s])
}
// Convert our buffers to io.Readers
readers := make([]io.Reader, dataShards)
for i := range readers {
readers[i] = io.Reader(bytes.NewBuffer(input[i]))
}
// Create our output io.Writers
out := make([]io.Writer, parityShards)
for i := range out {
out[i] = ioutil.Discard
}
// Encode from input to output.
err = rs.Encode(readers, out)
if err != nil {
log.Fatal(err)
}
fmt.Println("ok")
// OUTPUT: ok
}

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/**
* 8-bit Galois Field
* Copyright 2015, Klaus Post
* Copyright 2015, Backblaze, Inc. All rights reserved.
*/
package reedsolomon
const (
// The number of elements in the field.
fieldSize = 256
// The polynomial used to generate the logarithm table.
//
// There are a number of polynomials that work to generate
// a Galois field of 256 elements. The choice is arbitrary,
// and we just use the first one.
//
// The possibilities are: 29, 43, 45, 77, 95, 99, 101, 105,
//* 113, 135, 141, 169, 195, 207, 231, and 245.
generatingPolynomial = 29
)
var logTable = [fieldSize]byte{
0, 0, 1, 25, 2, 50, 26, 198,
3, 223, 51, 238, 27, 104, 199, 75,
4, 100, 224, 14, 52, 141, 239, 129,
28, 193, 105, 248, 200, 8, 76, 113,
5, 138, 101, 47, 225, 36, 15, 33,
53, 147, 142, 218, 240, 18, 130, 69,
29, 181, 194, 125, 106, 39, 249, 185,
201, 154, 9, 120, 77, 228, 114, 166,
6, 191, 139, 98, 102, 221, 48, 253,
226, 152, 37, 179, 16, 145, 34, 136,
54, 208, 148, 206, 143, 150, 219, 189,
241, 210, 19, 92, 131, 56, 70, 64,
30, 66, 182, 163, 195, 72, 126, 110,
107, 58, 40, 84, 250, 133, 186, 61,
202, 94, 155, 159, 10, 21, 121, 43,
78, 212, 229, 172, 115, 243, 167, 87,
7, 112, 192, 247, 140, 128, 99, 13,
103, 74, 222, 237, 49, 197, 254, 24,
227, 165, 153, 119, 38, 184, 180, 124,
17, 68, 146, 217, 35, 32, 137, 46,
55, 63, 209, 91, 149, 188, 207, 205,
144, 135, 151, 178, 220, 252, 190, 97,
242, 86, 211, 171, 20, 42, 93, 158,
132, 60, 57, 83, 71, 109, 65, 162,
31, 45, 67, 216, 183, 123, 164, 118,
196, 23, 73, 236, 127, 12, 111, 246,
108, 161, 59, 82, 41, 157, 85, 170,
251, 96, 134, 177, 187, 204, 62, 90,
203, 89, 95, 176, 156, 169, 160, 81,
11, 245, 22, 235, 122, 117, 44, 215,
79, 174, 213, 233, 230, 231, 173, 232,
116, 214, 244, 234, 168, 80, 88, 175,
}
/**
* Inverse of the logarithm table. Maps integer logarithms
* to members of the field. There is no entry for 255
* because the highest log is 254.
*
* This table was generated by `go run gentables.go`
*/
var expTable = []byte{0x1, 0x2, 0x4, 0x8, 0x10, 0x20, 0x40, 0x80, 0x1d, 0x3a, 0x74, 0xe8, 0xcd, 0x87, 0x13, 0x26, 0x4c, 0x98, 0x2d, 0x5a, 0xb4, 0x75, 0xea, 0xc9, 0x8f, 0x3, 0x6, 0xc, 0x18, 0x30, 0x60, 0xc0, 0x9d, 0x27, 0x4e, 0x9c, 0x25, 0x4a, 0x94, 0x35, 0x6a, 0xd4, 0xb5, 0x77, 0xee, 0xc1, 0x9f, 0x23, 0x46, 0x8c, 0x5, 0xa, 0x14, 0x28, 0x50, 0xa0, 0x5d, 0xba, 0x69, 0xd2, 0xb9, 0x6f, 0xde, 0xa1, 0x5f, 0xbe, 0x61, 0xc2, 0x99, 0x2f, 0x5e, 0xbc, 0x65, 0xca, 0x89, 0xf, 0x1e, 0x3c, 0x78, 0xf0, 0xfd, 0xe7, 0xd3, 0xbb, 0x6b, 0xd6, 0xb1, 0x7f, 0xfe, 0xe1, 0xdf, 0xa3, 0x5b, 0xb6, 0x71, 0xe2, 0xd9, 0xaf, 0x43, 0x86, 0x11, 0x22, 0x44, 0x88, 0xd, 0x1a, 0x34, 0x68, 0xd0, 0xbd, 0x67, 0xce, 0x81, 0x1f, 0x3e, 0x7c, 0xf8, 0xed, 0xc7, 0x93, 0x3b, 0x76, 0xec, 0xc5, 0x97, 0x33, 0x66, 0xcc, 0x85, 0x17, 0x2e, 0x5c, 0xb8, 0x6d, 0xda, 0xa9, 0x4f, 0x9e, 0x21, 0x42, 0x84, 0x15, 0x2a, 0x54, 0xa8, 0x4d, 0x9a, 0x29, 0x52, 0xa4, 0x55, 0xaa, 0x49, 0x92, 0x39, 0x72, 0xe4, 0xd5, 0xb7, 0x73, 0xe6, 0xd1, 0xbf, 0x63, 0xc6, 0x91, 0x3f, 0x7e, 0xfc, 0xe5, 0xd7, 0xb3, 0x7b, 0xf6, 0xf1, 0xff, 0xe3, 0xdb, 0xab, 0x4b, 0x96, 0x31, 0x62, 0xc4, 0x95, 0x37, 0x6e, 0xdc, 0xa5, 0x57, 0xae, 0x41, 0x82, 0x19, 0x32, 0x64, 0xc8, 0x8d, 0x7, 0xe, 0x1c, 0x38, 0x70, 0xe0, 0xdd, 0xa7, 0x53, 0xa6, 0x51, 0xa2, 0x59, 0xb2, 0x79, 0xf2, 0xf9, 0xef, 0xc3, 0x9b, 0x2b, 0x56, 0xac, 0x45, 0x8a, 0x9, 0x12, 0x24, 0x48, 0x90, 0x3d, 0x7a, 0xf4, 0xf5, 0xf7, 0xf3, 0xfb, 0xeb, 0xcb, 0x8b, 0xb, 0x16, 0x2c, 0x58, 0xb0, 0x7d, 0xfa, 0xe9, 0xcf, 0x83, 0x1b, 0x36, 0x6c, 0xd8, 0xad, 0x47, 0x8e, 0x1, 0x2, 0x4, 0x8, 0x10, 0x20, 0x40, 0x80, 0x1d, 0x3a, 0x74, 0xe8, 0xcd, 0x87, 0x13, 0x26, 0x4c, 0x98, 0x2d, 0x5a, 0xb4, 0x75, 0xea, 0xc9, 0x8f, 0x3, 0x6, 0xc, 0x18, 0x30, 0x60, 0xc0, 0x9d, 0x27, 0x4e, 0x9c, 0x25, 0x4a, 0x94, 0x35, 0x6a, 0xd4, 0xb5, 0x77, 0xee, 0xc1, 0x9f, 0x23, 0x46, 0x8c, 0x5, 0xa, 0x14, 0x28, 0x50, 0xa0, 0x5d, 0xba, 0x69, 0xd2, 0xb9, 0x6f, 0xde, 0xa1, 0x5f, 0xbe, 0x61, 0xc2, 0x99, 0x2f, 0x5e, 0xbc, 0x65, 0xca, 0x89, 0xf, 0x1e, 0x3c, 0x78, 0xf0, 0xfd, 0xe7, 0xd3, 0xbb, 0x6b, 0xd6, 0xb1, 0x7f, 0xfe, 0xe1, 0xdf, 0xa3, 0x5b, 0xb6, 0x71, 0xe2, 0xd9, 0xaf, 0x43, 0x86, 0x11, 0x22, 0x44, 0x88, 0xd, 0x1a, 0x34, 0x68, 0xd0, 0xbd, 0x67, 0xce, 0x81, 0x1f, 0x3e, 0x7c, 0xf8, 0xed, 0xc7, 0x93, 0x3b, 0x76, 0xec, 0xc5, 0x97, 0x33, 0x66, 0xcc, 0x85, 0x17, 0x2e, 0x5c, 0xb8, 0x6d, 0xda, 0xa9, 0x4f, 0x9e, 0x21, 0x42, 0x84, 0x15, 0x2a, 0x54, 0xa8, 0x4d, 0x9a, 0x29, 0x52, 0xa4, 0x55, 0xaa, 0x49, 0x92, 0x39, 0x72, 0xe4, 0xd5, 0xb7, 0x73, 0xe6, 0xd1, 0xbf, 0x63, 0xc6, 0x91, 0x3f, 0x7e, 0xfc, 0xe5, 0xd7, 0xb3, 0x7b, 0xf6, 0xf1, 0xff, 0xe3, 0xdb, 0xab, 0x4b, 0x96, 0x31, 0x62, 0xc4, 0x95, 0x37, 0x6e, 0xdc, 0xa5, 0x57, 0xae, 0x41, 0x82, 0x19, 0x32, 0x64, 0xc8, 0x8d, 0x7, 0xe, 0x1c, 0x38, 0x70, 0xe0, 0xdd, 0xa7, 0x53, 0xa6, 0x51, 0xa2, 0x59, 0xb2, 0x79, 0xf2, 0xf9, 0xef, 0xc3, 0x9b, 0x2b, 0x56, 0xac, 0x45, 0x8a, 0x9, 0x12, 0x24, 0x48, 0x90, 0x3d, 0x7a, 0xf4, 0xf5, 0xf7, 0xf3, 0xfb, 0xeb, 0xcb, 0x8b, 0xb, 0x16, 0x2c, 0x58, 0xb0, 0x7d, 0xfa, 0xe9, 0xcf, 0x83, 0x1b, 0x36, 0x6c, 0xd8, 0xad, 0x47, 0x8e}
func galAdd(a, b byte) byte {
return a ^ b
}
func galSub(a, b byte) byte {
return a ^ b
}
// Table from https://github.com/templexxx/reedsolomon
var invTable = [256]byte{0x0, 0x1, 0x8e, 0xf4, 0x47, 0xa7, 0x7a, 0xba, 0xad, 0x9d, 0xdd, 0x98, 0x3d, 0xaa, 0x5d, 0x96, 0xd8, 0x72, 0xc0, 0x58, 0xe0, 0x3e, 0x4c, 0x66, 0x90, 0xde, 0x55, 0x80, 0xa0, 0x83, 0x4b, 0x2a, 0x6c, 0xed, 0x39, 0x51, 0x60, 0x56, 0x2c, 0x8a, 0x70, 0xd0, 0x1f, 0x4a, 0x26, 0x8b, 0x33, 0x6e, 0x48, 0x89, 0x6f, 0x2e, 0xa4, 0xc3, 0x40, 0x5e, 0x50, 0x22, 0xcf, 0xa9, 0xab, 0xc, 0x15, 0xe1, 0x36, 0x5f, 0xf8, 0xd5, 0x92, 0x4e, 0xa6, 0x4, 0x30, 0x88, 0x2b, 0x1e, 0x16, 0x67, 0x45, 0x93, 0x38, 0x23, 0x68, 0x8c, 0x81, 0x1a, 0x25, 0x61, 0x13, 0xc1, 0xcb, 0x63, 0x97, 0xe, 0x37, 0x41, 0x24, 0x57, 0xca, 0x5b, 0xb9, 0xc4, 0x17, 0x4d, 0x52, 0x8d, 0xef, 0xb3, 0x20, 0xec, 0x2f, 0x32, 0x28, 0xd1, 0x11, 0xd9, 0xe9, 0xfb, 0xda, 0x79, 0xdb, 0x77, 0x6, 0xbb, 0x84, 0xcd, 0xfe, 0xfc, 0x1b, 0x54, 0xa1, 0x1d, 0x7c, 0xcc, 0xe4, 0xb0, 0x49, 0x31, 0x27, 0x2d, 0x53, 0x69, 0x2, 0xf5, 0x18, 0xdf, 0x44, 0x4f, 0x9b, 0xbc, 0xf, 0x5c, 0xb, 0xdc, 0xbd, 0x94, 0xac, 0x9, 0xc7, 0xa2, 0x1c, 0x82, 0x9f, 0xc6, 0x34, 0xc2, 0x46, 0x5, 0xce, 0x3b, 0xd, 0x3c, 0x9c, 0x8, 0xbe, 0xb7, 0x87, 0xe5, 0xee, 0x6b, 0xeb, 0xf2, 0xbf, 0xaf, 0xc5, 0x64, 0x7, 0x7b, 0x95, 0x9a, 0xae, 0xb6, 0x12, 0x59, 0xa5, 0x35, 0x65, 0xb8, 0xa3, 0x9e, 0xd2, 0xf7, 0x62, 0x5a, 0x85, 0x7d, 0xa8, 0x3a, 0x29, 0x71, 0xc8, 0xf6, 0xf9, 0x43, 0xd7, 0xd6, 0x10, 0x73, 0x76, 0x78, 0x99, 0xa, 0x19, 0x91, 0x14, 0x3f, 0xe6, 0xf0, 0x86, 0xb1, 0xe2, 0xf1, 0xfa, 0x74, 0xf3, 0xb4, 0x6d, 0x21, 0xb2, 0x6a, 0xe3, 0xe7, 0xb5, 0xea, 0x3, 0x8f, 0xd3, 0xc9, 0x42, 0xd4, 0xe8, 0x75, 0x7f, 0xff, 0x7e, 0xfd}
var mulTable = [256][256]uint8{[256]uint8{0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0},
{0x0, 0x1, 0x2, 0x3, 0x4, 0x5, 0x6, 0x7, 0x8, 0x9, 0xa, 0xb, 0xc, 0xd, 0xe, 0xf, 0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17, 0x18, 0x19, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f, 0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x26, 0x27, 0x28, 0x29, 0x2a, 0x2b, 0x2c, 0x2d, 0x2e, 0x2f, 0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37, 0x38, 0x39, 0x3a, 0x3b, 0x3c, 0x3d, 0x3e, 0x3f, 0x40, 0x41, 0x42, 0x43, 0x44, 0x45, 0x46, 0x47, 0x48, 0x49, 0x4a, 0x4b, 0x4c, 0x4d, 0x4e, 0x4f, 0x50, 0x51, 0x52, 0x53, 0x54, 0x55, 0x56, 0x57, 0x58, 0x59, 0x5a, 0x5b, 0x5c, 0x5d, 0x5e, 0x5f, 0x60, 0x61, 0x62, 0x63, 0x64, 0x65, 0x66, 0x67, 0x68, 0x69, 0x6a, 0x6b, 0x6c, 0x6d, 0x6e, 0x6f, 0x70, 0x71, 0x72, 0x73, 0x74, 0x75, 0x76, 0x77, 0x78, 0x79, 0x7a, 0x7b, 0x7c, 0x7d, 0x7e, 0x7f, 0x80, 0x81, 0x82, 0x83, 0x84, 0x85, 0x86, 0x87, 0x88, 0x89, 0x8a, 0x8b, 0x8c, 0x8d, 0x8e, 0x8f, 0x90, 0x91, 0x92, 0x93, 0x94, 0x95, 0x96, 0x97, 0x98, 0x99, 0x9a, 0x9b, 0x9c, 0x9d, 0x9e, 0x9f, 0xa0, 0xa1, 0xa2, 0xa3, 0xa4, 0xa5, 0xa6, 0xa7, 0xa8, 0xa9, 0xaa, 0xab, 0xac, 0xad, 0xae, 0xaf, 0xb0, 0xb1, 0xb2, 0xb3, 0xb4, 0xb5, 0xb6, 0xb7, 0xb8, 0xb9, 0xba, 0xbb, 0xbc, 0xbd, 0xbe, 0xbf, 0xc0, 0xc1, 0xc2, 0xc3, 0xc4, 0xc5, 0xc6, 0xc7, 0xc8, 0xc9, 0xca, 0xcb, 0xcc, 0xcd, 0xce, 0xcf, 0xd0, 0xd1, 0xd2, 0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8, 0xd9, 0xda, 0xdb, 0xdc, 0xdd, 0xde, 0xdf, 0xe0, 0xe1, 0xe2, 0xe3, 0xe4, 0xe5, 0xe6, 0xe7, 0xe8, 0xe9, 0xea, 0xeb, 0xec, 0xed, 0xee, 0xef, 0xf0, 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7, 0xf8, 0xf9, 0xfa, 0xfb, 0xfc, 0xfd, 0xfe, 0xff},
{0x0, 0x2, 0x4, 0x6, 0x8, 0xa, 0xc, 0xe, 0x10, 0x12, 0x14, 0x16, 0x18, 0x1a, 0x1c, 0x1e, 0x20, 0x22, 0x24, 0x26, 0x28, 0x2a, 0x2c, 0x2e, 0x30, 0x32, 0x34, 0x36, 0x38, 0x3a, 0x3c, 0x3e, 0x40, 0x42, 0x44, 0x46, 0x48, 0x4a, 0x4c, 0x4e, 0x50, 0x52, 0x54, 0x56, 0x58, 0x5a, 0x5c, 0x5e, 0x60, 0x62, 0x64, 0x66, 0x68, 0x6a, 0x6c, 0x6e, 0x70, 0x72, 0x74, 0x76, 0x78, 0x7a, 0x7c, 0x7e, 0x80, 0x82, 0x84, 0x86, 0x88, 0x8a, 0x8c, 0x8e, 0x90, 0x92, 0x94, 0x96, 0x98, 0x9a, 0x9c, 0x9e, 0xa0, 0xa2, 0xa4, 0xa6, 0xa8, 0xaa, 0xac, 0xae, 0xb0, 0xb2, 0xb4, 0xb6, 0xb8, 0xba, 0xbc, 0xbe, 0xc0, 0xc2, 0xc4, 0xc6, 0xc8, 0xca, 0xcc, 0xce, 0xd0, 0xd2, 0xd4, 0xd6, 0xd8, 0xda, 0xdc, 0xde, 0xe0, 0xe2, 0xe4, 0xe6, 0xe8, 0xea, 0xec, 0xee, 0xf0, 0xf2, 0xf4, 0xf6, 0xf8, 0xfa, 0xfc, 0xfe, 0x1d, 0x1f, 0x19, 0x1b, 0x15, 0x17, 0x11, 0x13, 0xd, 0xf, 0x9, 0xb, 0x5, 0x7, 0x1, 0x3, 0x3d, 0x3f, 0x39, 0x3b, 0x35, 0x37, 0x31, 0x33, 0x2d, 0x2f, 0x29, 0x2b, 0x25, 0x27, 0x21, 0x23, 0x5d, 0x5f, 0x59, 0x5b, 0x55, 0x57, 0x51, 0x53, 0x4d, 0x4f, 0x49, 0x4b, 0x45, 0x47, 0x41, 0x43, 0x7d, 0x7f, 0x79, 0x7b, 0x75, 0x77, 0x71, 0x73, 0x6d, 0x6f, 0x69, 0x6b, 0x65, 0x67, 0x61, 0x63, 0x9d, 0x9f, 0x99, 0x9b, 0x95, 0x97, 0x91, 0x93, 0x8d, 0x8f, 0x89, 0x8b, 0x85, 0x87, 0x81, 0x83, 0xbd, 0xbf, 0xb9, 0xbb, 0xb5, 0xb7, 0xb1, 0xb3, 0xad, 0xaf, 0xa9, 0xab, 0xa5, 0xa7, 0xa1, 0xa3, 0xdd, 0xdf, 0xd9, 0xdb, 0xd5, 0xd7, 0xd1, 0xd3, 0xcd, 0xcf, 0xc9, 0xcb, 0xc5, 0xc7, 0xc1, 0xc3, 0xfd, 0xff, 0xf9, 0xfb, 0xf5, 0xf7, 0xf1, 0xf3, 0xed, 0xef, 0xe9, 0xeb, 0xe5, 0xe7, 0xe1, 0xe3},
{0x0, 0x3, 0x6, 0x5, 0xc, 0xf, 0xa, 0x9, 0x18, 0x1b, 0x1e, 0x1d, 0x14, 0x17, 0x12, 0x11, 0x30, 0x33, 0x36, 0x35, 0x3c, 0x3f, 0x3a, 0x39, 0x28, 0x2b, 0x2e, 0x2d, 0x24, 0x27, 0x22, 0x21, 0x60, 0x63, 0x66, 0x65, 0x6c, 0x6f, 0x6a, 0x69, 0x78, 0x7b, 0x7e, 0x7d, 0x74, 0x77, 0x72, 0x71, 0x50, 0x53, 0x56, 0x55, 0x5c, 0x5f, 0x5a, 0x59, 0x48, 0x4b, 0x4e, 0x4d, 0x44, 0x47, 0x42, 0x41, 0xc0, 0xc3, 0xc6, 0xc5, 0xcc, 0xcf, 0xca, 0xc9, 0xd8, 0xdb, 0xde, 0xdd, 0xd4, 0xd7, 0xd2, 0xd1, 0xf0, 0xf3, 0xf6, 0xf5, 0xfc, 0xff, 0xfa, 0xf9, 0xe8, 0xeb, 0xee, 0xed, 0xe4, 0xe7, 0xe2, 0xe1, 0xa0, 0xa3, 0xa6, 0xa5, 0xac, 0xaf, 0xaa, 0xa9, 0xb8, 0xbb, 0xbe, 0xbd, 0xb4, 0xb7, 0xb2, 0xb1, 0x90, 0x93, 0x96, 0x95, 0x9c, 0x9f, 0x9a, 0x99, 0x88, 0x8b, 0x8e, 0x8d, 0x84, 0x87, 0x82, 0x81, 0x9d, 0x9e, 0x9b, 0x98, 0x91, 0x92, 0x97, 0x94, 0x85, 0x86, 0x83, 0x80, 0x89, 0x8a, 0x8f, 0x8c, 0xad, 0xae, 0xab, 0xa8, 0xa1, 0xa2, 0xa7, 0xa4, 0xb5, 0xb6, 0xb3, 0xb0, 0xb9, 0xba, 0xbf, 0xbc, 0xfd, 0xfe, 0xfb, 0xf8, 0xf1, 0xf2, 0xf7, 0xf4, 0xe5, 0xe6, 0xe3, 0xe0, 0xe9, 0xea, 0xef, 0xec, 0xcd, 0xce, 0xcb, 0xc8, 0xc1, 0xc2, 0xc7, 0xc4, 0xd5, 0xd6, 0xd3, 0xd0, 0xd9, 0xda, 0xdf, 0xdc, 0x5d, 0x5e, 0x5b, 0x58, 0x51, 0x52, 0x57, 0x54, 0x45, 0x46, 0x43, 0x40, 0x49, 0x4a, 0x4f, 0x4c, 0x6d, 0x6e, 0x6b, 0x68, 0x61, 0x62, 0x67, 0x64, 0x75, 0x76, 0x73, 0x70, 0x79, 0x7a, 0x7f, 0x7c, 0x3d, 0x3e, 0x3b, 0x38, 0x31, 0x32, 0x37, 0x34, 0x25, 0x26, 0x23, 0x20, 0x29, 0x2a, 0x2f, 0x2c, 0xd, 0xe, 0xb, 0x8, 0x1, 0x2, 0x7, 0x4, 0x15, 0x16, 0x13, 0x10, 0x19, 0x1a, 0x1f, 0x1c},
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{0x0, 0xfb, 0xeb, 0x10, 0xcb, 0x30, 0x20, 0xdb, 0x8b, 0x70, 0x60, 0x9b, 0x40, 0xbb, 0xab, 0x50, 0xb, 0xf0, 0xe0, 0x1b, 0xc0, 0x3b, 0x2b, 0xd0, 0x80, 0x7b, 0x6b, 0x90, 0x4b, 0xb0, 0xa0, 0x5b, 0x16, 0xed, 0xfd, 0x6, 0xdd, 0x26, 0x36, 0xcd, 0x9d, 0x66, 0x76, 0x8d, 0x56, 0xad, 0xbd, 0x46, 0x1d, 0xe6, 0xf6, 0xd, 0xd6, 0x2d, 0x3d, 0xc6, 0x96, 0x6d, 0x7d, 0x86, 0x5d, 0xa6, 0xb6, 0x4d, 0x2c, 0xd7, 0xc7, 0x3c, 0xe7, 0x1c, 0xc, 0xf7, 0xa7, 0x5c, 0x4c, 0xb7, 0x6c, 0x97, 0x87, 0x7c, 0x27, 0xdc, 0xcc, 0x37, 0xec, 0x17, 0x7, 0xfc, 0xac, 0x57, 0x47, 0xbc, 0x67, 0x9c, 0x8c, 0x77, 0x3a, 0xc1, 0xd1, 0x2a, 0xf1, 0xa, 0x1a, 0xe1, 0xb1, 0x4a, 0x5a, 0xa1, 0x7a, 0x81, 0x91, 0x6a, 0x31, 0xca, 0xda, 0x21, 0xfa, 0x1, 0x11, 0xea, 0xba, 0x41, 0x51, 0xaa, 0x71, 0x8a, 0x9a, 0x61, 0x58, 0xa3, 0xb3, 0x48, 0x93, 0x68, 0x78, 0x83, 0xd3, 0x28, 0x38, 0xc3, 0x18, 0xe3, 0xf3, 0x8, 0x53, 0xa8, 0xb8, 0x43, 0x98, 0x63, 0x73, 0x88, 0xd8, 0x23, 0x33, 0xc8, 0x13, 0xe8, 0xf8, 0x3, 0x4e, 0xb5, 0xa5, 0x5e, 0x85, 0x7e, 0x6e, 0x95, 0xc5, 0x3e, 0x2e, 0xd5, 0xe, 0xf5, 0xe5, 0x1e, 0x45, 0xbe, 0xae, 0x55, 0x8e, 0x75, 0x65, 0x9e, 0xce, 0x35, 0x25, 0xde, 0x5, 0xfe, 0xee, 0x15, 0x74, 0x8f, 0x9f, 0x64, 0xbf, 0x44, 0x54, 0xaf, 0xff, 0x4, 0x14, 0xef, 0x34, 0xcf, 0xdf, 0x24, 0x7f, 0x84, 0x94, 0x6f, 0xb4, 0x4f, 0x5f, 0xa4, 0xf4, 0xf, 0x1f, 0xe4, 0x3f, 0xc4, 0xd4, 0x2f, 0x62, 0x99, 0x89, 0x72, 0xa9, 0x52, 0x42, 0xb9, 0xe9, 0x12, 0x2, 0xf9, 0x22, 0xd9, 0xc9, 0x32, 0x69, 0x92, 0x82, 0x79, 0xa2, 0x59, 0x49, 0xb2, 0xe2, 0x19, 0x9, 0xf2, 0x29, 0xd2, 0xc2, 0x39},
{0x0, 0xfc, 0xe5, 0x19, 0xd7, 0x2b, 0x32, 0xce, 0xb3, 0x4f, 0x56, 0xaa, 0x64, 0x98, 0x81, 0x7d, 0x7b, 0x87, 0x9e, 0x62, 0xac, 0x50, 0x49, 0xb5, 0xc8, 0x34, 0x2d, 0xd1, 0x1f, 0xe3, 0xfa, 0x6, 0xf6, 0xa, 0x13, 0xef, 0x21, 0xdd, 0xc4, 0x38, 0x45, 0xb9, 0xa0, 0x5c, 0x92, 0x6e, 0x77, 0x8b, 0x8d, 0x71, 0x68, 0x94, 0x5a, 0xa6, 0xbf, 0x43, 0x3e, 0xc2, 0xdb, 0x27, 0xe9, 0x15, 0xc, 0xf0, 0xf1, 0xd, 0x14, 0xe8, 0x26, 0xda, 0xc3, 0x3f, 0x42, 0xbe, 0xa7, 0x5b, 0x95, 0x69, 0x70, 0x8c, 0x8a, 0x76, 0x6f, 0x93, 0x5d, 0xa1, 0xb8, 0x44, 0x39, 0xc5, 0xdc, 0x20, 0xee, 0x12, 0xb, 0xf7, 0x7, 0xfb, 0xe2, 0x1e, 0xd0, 0x2c, 0x35, 0xc9, 0xb4, 0x48, 0x51, 0xad, 0x63, 0x9f, 0x86, 0x7a, 0x7c, 0x80, 0x99, 0x65, 0xab, 0x57, 0x4e, 0xb2, 0xcf, 0x33, 0x2a, 0xd6, 0x18, 0xe4, 0xfd, 0x1, 0xff, 0x3, 0x1a, 0xe6, 0x28, 0xd4, 0xcd, 0x31, 0x4c, 0xb0, 0xa9, 0x55, 0x9b, 0x67, 0x7e, 0x82, 0x84, 0x78, 0x61, 0x9d, 0x53, 0xaf, 0xb6, 0x4a, 0x37, 0xcb, 0xd2, 0x2e, 0xe0, 0x1c, 0x5, 0xf9, 0x9, 0xf5, 0xec, 0x10, 0xde, 0x22, 0x3b, 0xc7, 0xba, 0x46, 0x5f, 0xa3, 0x6d, 0x91, 0x88, 0x74, 0x72, 0x8e, 0x97, 0x6b, 0xa5, 0x59, 0x40, 0xbc, 0xc1, 0x3d, 0x24, 0xd8, 0x16, 0xea, 0xf3, 0xf, 0xe, 0xf2, 0xeb, 0x17, 0xd9, 0x25, 0x3c, 0xc0, 0xbd, 0x41, 0x58, 0xa4, 0x6a, 0x96, 0x8f, 0x73, 0x75, 0x89, 0x90, 0x6c, 0xa2, 0x5e, 0x47, 0xbb, 0xc6, 0x3a, 0x23, 0xdf, 0x11, 0xed, 0xf4, 0x8, 0xf8, 0x4, 0x1d, 0xe1, 0x2f, 0xd3, 0xca, 0x36, 0x4b, 0xb7, 0xae, 0x52, 0x9c, 0x60, 0x79, 0x85, 0x83, 0x7f, 0x66, 0x9a, 0x54, 0xa8, 0xb1, 0x4d, 0x30, 0xcc, 0xd5, 0x29, 0xe7, 0x1b, 0x2, 0xfe},
{0x0, 0xfd, 0xe7, 0x1a, 0xd3, 0x2e, 0x34, 0xc9, 0xbb, 0x46, 0x5c, 0xa1, 0x68, 0x95, 0x8f, 0x72, 0x6b, 0x96, 0x8c, 0x71, 0xb8, 0x45, 0x5f, 0xa2, 0xd0, 0x2d, 0x37, 0xca, 0x3, 0xfe, 0xe4, 0x19, 0xd6, 0x2b, 0x31, 0xcc, 0x5, 0xf8, 0xe2, 0x1f, 0x6d, 0x90, 0x8a, 0x77, 0xbe, 0x43, 0x59, 0xa4, 0xbd, 0x40, 0x5a, 0xa7, 0x6e, 0x93, 0x89, 0x74, 0x6, 0xfb, 0xe1, 0x1c, 0xd5, 0x28, 0x32, 0xcf, 0xb1, 0x4c, 0x56, 0xab, 0x62, 0x9f, 0x85, 0x78, 0xa, 0xf7, 0xed, 0x10, 0xd9, 0x24, 0x3e, 0xc3, 0xda, 0x27, 0x3d, 0xc0, 0x9, 0xf4, 0xee, 0x13, 0x61, 0x9c, 0x86, 0x7b, 0xb2, 0x4f, 0x55, 0xa8, 0x67, 0x9a, 0x80, 0x7d, 0xb4, 0x49, 0x53, 0xae, 0xdc, 0x21, 0x3b, 0xc6, 0xf, 0xf2, 0xe8, 0x15, 0xc, 0xf1, 0xeb, 0x16, 0xdf, 0x22, 0x38, 0xc5, 0xb7, 0x4a, 0x50, 0xad, 0x64, 0x99, 0x83, 0x7e, 0x7f, 0x82, 0x98, 0x65, 0xac, 0x51, 0x4b, 0xb6, 0xc4, 0x39, 0x23, 0xde, 0x17, 0xea, 0xf0, 0xd, 0x14, 0xe9, 0xf3, 0xe, 0xc7, 0x3a, 0x20, 0xdd, 0xaf, 0x52, 0x48, 0xb5, 0x7c, 0x81, 0x9b, 0x66, 0xa9, 0x54, 0x4e, 0xb3, 0x7a, 0x87, 0x9d, 0x60, 0x12, 0xef, 0xf5, 0x8, 0xc1, 0x3c, 0x26, 0xdb, 0xc2, 0x3f, 0x25, 0xd8, 0x11, 0xec, 0xf6, 0xb, 0x79, 0x84, 0x9e, 0x63, 0xaa, 0x57, 0x4d, 0xb0, 0xce, 0x33, 0x29, 0xd4, 0x1d, 0xe0, 0xfa, 0x7, 0x75, 0x88, 0x92, 0x6f, 0xa6, 0x5b, 0x41, 0xbc, 0xa5, 0x58, 0x42, 0xbf, 0x76, 0x8b, 0x91, 0x6c, 0x1e, 0xe3, 0xf9, 0x4, 0xcd, 0x30, 0x2a, 0xd7, 0x18, 0xe5, 0xff, 0x2, 0xcb, 0x36, 0x2c, 0xd1, 0xa3, 0x5e, 0x44, 0xb9, 0x70, 0x8d, 0x97, 0x6a, 0x73, 0x8e, 0x94, 0x69, 0xa0, 0x5d, 0x47, 0xba, 0xc8, 0x35, 0x2f, 0xd2, 0x1b, 0xe6, 0xfc, 0x1},
{0x0, 0xfe, 0xe1, 0x1f, 0xdf, 0x21, 0x3e, 0xc0, 0xa3, 0x5d, 0x42, 0xbc, 0x7c, 0x82, 0x9d, 0x63, 0x5b, 0xa5, 0xba, 0x44, 0x84, 0x7a, 0x65, 0x9b, 0xf8, 0x6, 0x19, 0xe7, 0x27, 0xd9, 0xc6, 0x38, 0xb6, 0x48, 0x57, 0xa9, 0x69, 0x97, 0x88, 0x76, 0x15, 0xeb, 0xf4, 0xa, 0xca, 0x34, 0x2b, 0xd5, 0xed, 0x13, 0xc, 0xf2, 0x32, 0xcc, 0xd3, 0x2d, 0x4e, 0xb0, 0xaf, 0x51, 0x91, 0x6f, 0x70, 0x8e, 0x71, 0x8f, 0x90, 0x6e, 0xae, 0x50, 0x4f, 0xb1, 0xd2, 0x2c, 0x33, 0xcd, 0xd, 0xf3, 0xec, 0x12, 0x2a, 0xd4, 0xcb, 0x35, 0xf5, 0xb, 0x14, 0xea, 0x89, 0x77, 0x68, 0x96, 0x56, 0xa8, 0xb7, 0x49, 0xc7, 0x39, 0x26, 0xd8, 0x18, 0xe6, 0xf9, 0x7, 0x64, 0x9a, 0x85, 0x7b, 0xbb, 0x45, 0x5a, 0xa4, 0x9c, 0x62, 0x7d, 0x83, 0x43, 0xbd, 0xa2, 0x5c, 0x3f, 0xc1, 0xde, 0x20, 0xe0, 0x1e, 0x1, 0xff, 0xe2, 0x1c, 0x3, 0xfd, 0x3d, 0xc3, 0xdc, 0x22, 0x41, 0xbf, 0xa0, 0x5e, 0x9e, 0x60, 0x7f, 0x81, 0xb9, 0x47, 0x58, 0xa6, 0x66, 0x98, 0x87, 0x79, 0x1a, 0xe4, 0xfb, 0x5, 0xc5, 0x3b, 0x24, 0xda, 0x54, 0xaa, 0xb5, 0x4b, 0x8b, 0x75, 0x6a, 0x94, 0xf7, 0x9, 0x16, 0xe8, 0x28, 0xd6, 0xc9, 0x37, 0xf, 0xf1, 0xee, 0x10, 0xd0, 0x2e, 0x31, 0xcf, 0xac, 0x52, 0x4d, 0xb3, 0x73, 0x8d, 0x92, 0x6c, 0x93, 0x6d, 0x72, 0x8c, 0x4c, 0xb2, 0xad, 0x53, 0x30, 0xce, 0xd1, 0x2f, 0xef, 0x11, 0xe, 0xf0, 0xc8, 0x36, 0x29, 0xd7, 0x17, 0xe9, 0xf6, 0x8, 0x6b, 0x95, 0x8a, 0x74, 0xb4, 0x4a, 0x55, 0xab, 0x25, 0xdb, 0xc4, 0x3a, 0xfa, 0x4, 0x1b, 0xe5, 0x86, 0x78, 0x67, 0x99, 0x59, 0xa7, 0xb8, 0x46, 0x7e, 0x80, 0x9f, 0x61, 0xa1, 0x5f, 0x40, 0xbe, 0xdd, 0x23, 0x3c, 0xc2, 0x2, 0xfc, 0xe3, 0x1d},
{0x0, 0xff, 0xe3, 0x1c, 0xdb, 0x24, 0x38, 0xc7, 0xab, 0x54, 0x48, 0xb7, 0x70, 0x8f, 0x93, 0x6c, 0x4b, 0xb4, 0xa8, 0x57, 0x90, 0x6f, 0x73, 0x8c, 0xe0, 0x1f, 0x3, 0xfc, 0x3b, 0xc4, 0xd8, 0x27, 0x96, 0x69, 0x75, 0x8a, 0x4d, 0xb2, 0xae, 0x51, 0x3d, 0xc2, 0xde, 0x21, 0xe6, 0x19, 0x5, 0xfa, 0xdd, 0x22, 0x3e, 0xc1, 0x6, 0xf9, 0xe5, 0x1a, 0x76, 0x89, 0x95, 0x6a, 0xad, 0x52, 0x4e, 0xb1, 0x31, 0xce, 0xd2, 0x2d, 0xea, 0x15, 0x9, 0xf6, 0x9a, 0x65, 0x79, 0x86, 0x41, 0xbe, 0xa2, 0x5d, 0x7a, 0x85, 0x99, 0x66, 0xa1, 0x5e, 0x42, 0xbd, 0xd1, 0x2e, 0x32, 0xcd, 0xa, 0xf5, 0xe9, 0x16, 0xa7, 0x58, 0x44, 0xbb, 0x7c, 0x83, 0x9f, 0x60, 0xc, 0xf3, 0xef, 0x10, 0xd7, 0x28, 0x34, 0xcb, 0xec, 0x13, 0xf, 0xf0, 0x37, 0xc8, 0xd4, 0x2b, 0x47, 0xb8, 0xa4, 0x5b, 0x9c, 0x63, 0x7f, 0x80, 0x62, 0x9d, 0x81, 0x7e, 0xb9, 0x46, 0x5a, 0xa5, 0xc9, 0x36, 0x2a, 0xd5, 0x12, 0xed, 0xf1, 0xe, 0x29, 0xd6, 0xca, 0x35, 0xf2, 0xd, 0x11, 0xee, 0x82, 0x7d, 0x61, 0x9e, 0x59, 0xa6, 0xba, 0x45, 0xf4, 0xb, 0x17, 0xe8, 0x2f, 0xd0, 0xcc, 0x33, 0x5f, 0xa0, 0xbc, 0x43, 0x84, 0x7b, 0x67, 0x98, 0xbf, 0x40, 0x5c, 0xa3, 0x64, 0x9b, 0x87, 0x78, 0x14, 0xeb, 0xf7, 0x8, 0xcf, 0x30, 0x2c, 0xd3, 0x53, 0xac, 0xb0, 0x4f, 0x88, 0x77, 0x6b, 0x94, 0xf8, 0x7, 0x1b, 0xe4, 0x23, 0xdc, 0xc0, 0x3f, 0x18, 0xe7, 0xfb, 0x4, 0xc3, 0x3c, 0x20, 0xdf, 0xb3, 0x4c, 0x50, 0xaf, 0x68, 0x97, 0x8b, 0x74, 0xc5, 0x3a, 0x26, 0xd9, 0x1e, 0xe1, 0xfd, 0x2, 0x6e, 0x91, 0x8d, 0x72, 0xb5, 0x4a, 0x56, 0xa9, 0x8e, 0x71, 0x6d, 0x92, 0x55, 0xaa, 0xb6, 0x49, 0x25, 0xda, 0xc6, 0x39, 0xfe, 0x1, 0x1d, 0xe2}}
var mulTableLow = [256][16]uint8{{0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0},
{0x0, 0x1, 0x2, 0x3, 0x4, 0x5, 0x6, 0x7, 0x8, 0x9, 0xa, 0xb, 0xc, 0xd, 0xe, 0xf},
{0x0, 0x2, 0x4, 0x6, 0x8, 0xa, 0xc, 0xe, 0x10, 0x12, 0x14, 0x16, 0x18, 0x1a, 0x1c, 0x1e},
{0x0, 0x3, 0x6, 0x5, 0xc, 0xf, 0xa, 0x9, 0x18, 0x1b, 0x1e, 0x1d, 0x14, 0x17, 0x12, 0x11},
{0x0, 0x4, 0x8, 0xc, 0x10, 0x14, 0x18, 0x1c, 0x20, 0x24, 0x28, 0x2c, 0x30, 0x34, 0x38, 0x3c},
{0x0, 0x5, 0xa, 0xf, 0x14, 0x11, 0x1e, 0x1b, 0x28, 0x2d, 0x22, 0x27, 0x3c, 0x39, 0x36, 0x33},
{0x0, 0x6, 0xc, 0xa, 0x18, 0x1e, 0x14, 0x12, 0x30, 0x36, 0x3c, 0x3a, 0x28, 0x2e, 0x24, 0x22},
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{0x0, 0xed, 0xc7, 0x2a, 0x93, 0x7e, 0x54, 0xb9, 0x3b, 0xd6, 0xfc, 0x11, 0xa8, 0x45, 0x6f, 0x82},
{0x0, 0xee, 0xc1, 0x2f, 0x9f, 0x71, 0x5e, 0xb0, 0x23, 0xcd, 0xe2, 0xc, 0xbc, 0x52, 0x7d, 0x93},
{0x0, 0xef, 0xc3, 0x2c, 0x9b, 0x74, 0x58, 0xb7, 0x2b, 0xc4, 0xe8, 0x7, 0xb0, 0x5f, 0x73, 0x9c},
{0x0, 0xf0, 0xfd, 0xd, 0xe7, 0x17, 0x1a, 0xea, 0xd3, 0x23, 0x2e, 0xde, 0x34, 0xc4, 0xc9, 0x39},
{0x0, 0xf1, 0xff, 0xe, 0xe3, 0x12, 0x1c, 0xed, 0xdb, 0x2a, 0x24, 0xd5, 0x38, 0xc9, 0xc7, 0x36},
{0x0, 0xf2, 0xf9, 0xb, 0xef, 0x1d, 0x16, 0xe4, 0xc3, 0x31, 0x3a, 0xc8, 0x2c, 0xde, 0xd5, 0x27},
{0x0, 0xf3, 0xfb, 0x8, 0xeb, 0x18, 0x10, 0xe3, 0xcb, 0x38, 0x30, 0xc3, 0x20, 0xd3, 0xdb, 0x28},
{0x0, 0xf4, 0xf5, 0x1, 0xf7, 0x3, 0x2, 0xf6, 0xf3, 0x7, 0x6, 0xf2, 0x4, 0xf0, 0xf1, 0x5},
{0x0, 0xf5, 0xf7, 0x2, 0xf3, 0x6, 0x4, 0xf1, 0xfb, 0xe, 0xc, 0xf9, 0x8, 0xfd, 0xff, 0xa},
{0x0, 0xf6, 0xf1, 0x7, 0xff, 0x9, 0xe, 0xf8, 0xe3, 0x15, 0x12, 0xe4, 0x1c, 0xea, 0xed, 0x1b},
{0x0, 0xf7, 0xf3, 0x4, 0xfb, 0xc, 0x8, 0xff, 0xeb, 0x1c, 0x18, 0xef, 0x10, 0xe7, 0xe3, 0x14},
{0x0, 0xf8, 0xed, 0x15, 0xc7, 0x3f, 0x2a, 0xd2, 0x93, 0x6b, 0x7e, 0x86, 0x54, 0xac, 0xb9, 0x41},
{0x0, 0xf9, 0xef, 0x16, 0xc3, 0x3a, 0x2c, 0xd5, 0x9b, 0x62, 0x74, 0x8d, 0x58, 0xa1, 0xb7, 0x4e},
{0x0, 0xfa, 0xe9, 0x13, 0xcf, 0x35, 0x26, 0xdc, 0x83, 0x79, 0x6a, 0x90, 0x4c, 0xb6, 0xa5, 0x5f},
{0x0, 0xfb, 0xeb, 0x10, 0xcb, 0x30, 0x20, 0xdb, 0x8b, 0x70, 0x60, 0x9b, 0x40, 0xbb, 0xab, 0x50},
{0x0, 0xfc, 0xe5, 0x19, 0xd7, 0x2b, 0x32, 0xce, 0xb3, 0x4f, 0x56, 0xaa, 0x64, 0x98, 0x81, 0x7d},
{0x0, 0xfd, 0xe7, 0x1a, 0xd3, 0x2e, 0x34, 0xc9, 0xbb, 0x46, 0x5c, 0xa1, 0x68, 0x95, 0x8f, 0x72},
{0x0, 0xfe, 0xe1, 0x1f, 0xdf, 0x21, 0x3e, 0xc0, 0xa3, 0x5d, 0x42, 0xbc, 0x7c, 0x82, 0x9d, 0x63},
{0x0, 0xff, 0xe3, 0x1c, 0xdb, 0x24, 0x38, 0xc7, 0xab, 0x54, 0x48, 0xb7, 0x70, 0x8f, 0x93, 0x6c}}
var mulTableHigh = [256][16]uint8{{0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0},
{0x0, 0x10, 0x20, 0x30, 0x40, 0x50, 0x60, 0x70, 0x80, 0x90, 0xa0, 0xb0, 0xc0, 0xd0, 0xe0, 0xf0},
{0x0, 0x20, 0x40, 0x60, 0x80, 0xa0, 0xc0, 0xe0, 0x1d, 0x3d, 0x5d, 0x7d, 0x9d, 0xbd, 0xdd, 0xfd},
{0x0, 0x30, 0x60, 0x50, 0xc0, 0xf0, 0xa0, 0x90, 0x9d, 0xad, 0xfd, 0xcd, 0x5d, 0x6d, 0x3d, 0xd},
{0x0, 0x40, 0x80, 0xc0, 0x1d, 0x5d, 0x9d, 0xdd, 0x3a, 0x7a, 0xba, 0xfa, 0x27, 0x67, 0xa7, 0xe7},
{0x0, 0x50, 0xa0, 0xf0, 0x5d, 0xd, 0xfd, 0xad, 0xba, 0xea, 0x1a, 0x4a, 0xe7, 0xb7, 0x47, 0x17},
{0x0, 0x60, 0xc0, 0xa0, 0x9d, 0xfd, 0x5d, 0x3d, 0x27, 0x47, 0xe7, 0x87, 0xba, 0xda, 0x7a, 0x1a},
{0x0, 0x70, 0xe0, 0x90, 0xdd, 0xad, 0x3d, 0x4d, 0xa7, 0xd7, 0x47, 0x37, 0x7a, 0xa, 0x9a, 0xea},
{0x0, 0x80, 0x1d, 0x9d, 0x3a, 0xba, 0x27, 0xa7, 0x74, 0xf4, 0x69, 0xe9, 0x4e, 0xce, 0x53, 0xd3},
{0x0, 0x90, 0x3d, 0xad, 0x7a, 0xea, 0x47, 0xd7, 0xf4, 0x64, 0xc9, 0x59, 0x8e, 0x1e, 0xb3, 0x23},
{0x0, 0xa0, 0x5d, 0xfd, 0xba, 0x1a, 0xe7, 0x47, 0x69, 0xc9, 0x34, 0x94, 0xd3, 0x73, 0x8e, 0x2e},
{0x0, 0xb0, 0x7d, 0xcd, 0xfa, 0x4a, 0x87, 0x37, 0xe9, 0x59, 0x94, 0x24, 0x13, 0xa3, 0x6e, 0xde},
{0x0, 0xc0, 0x9d, 0x5d, 0x27, 0xe7, 0xba, 0x7a, 0x4e, 0x8e, 0xd3, 0x13, 0x69, 0xa9, 0xf4, 0x34},
{0x0, 0xd0, 0xbd, 0x6d, 0x67, 0xb7, 0xda, 0xa, 0xce, 0x1e, 0x73, 0xa3, 0xa9, 0x79, 0x14, 0xc4},
{0x0, 0xe0, 0xdd, 0x3d, 0xa7, 0x47, 0x7a, 0x9a, 0x53, 0xb3, 0x8e, 0x6e, 0xf4, 0x14, 0x29, 0xc9},
{0x0, 0xf0, 0xfd, 0xd, 0xe7, 0x17, 0x1a, 0xea, 0xd3, 0x23, 0x2e, 0xde, 0x34, 0xc4, 0xc9, 0x39},
{0x0, 0x1d, 0x3a, 0x27, 0x74, 0x69, 0x4e, 0x53, 0xe8, 0xf5, 0xd2, 0xcf, 0x9c, 0x81, 0xa6, 0xbb},
{0x0, 0xd, 0x1a, 0x17, 0x34, 0x39, 0x2e, 0x23, 0x68, 0x65, 0x72, 0x7f, 0x5c, 0x51, 0x46, 0x4b},
{0x0, 0x3d, 0x7a, 0x47, 0xf4, 0xc9, 0x8e, 0xb3, 0xf5, 0xc8, 0x8f, 0xb2, 0x1, 0x3c, 0x7b, 0x46},
{0x0, 0x2d, 0x5a, 0x77, 0xb4, 0x99, 0xee, 0xc3, 0x75, 0x58, 0x2f, 0x2, 0xc1, 0xec, 0x9b, 0xb6},
{0x0, 0x5d, 0xba, 0xe7, 0x69, 0x34, 0xd3, 0x8e, 0xd2, 0x8f, 0x68, 0x35, 0xbb, 0xe6, 0x1, 0x5c},
{0x0, 0x4d, 0x9a, 0xd7, 0x29, 0x64, 0xb3, 0xfe, 0x52, 0x1f, 0xc8, 0x85, 0x7b, 0x36, 0xe1, 0xac},
{0x0, 0x7d, 0xfa, 0x87, 0xe9, 0x94, 0x13, 0x6e, 0xcf, 0xb2, 0x35, 0x48, 0x26, 0x5b, 0xdc, 0xa1},
{0x0, 0x6d, 0xda, 0xb7, 0xa9, 0xc4, 0x73, 0x1e, 0x4f, 0x22, 0x95, 0xf8, 0xe6, 0x8b, 0x3c, 0x51},
{0x0, 0x9d, 0x27, 0xba, 0x4e, 0xd3, 0x69, 0xf4, 0x9c, 0x1, 0xbb, 0x26, 0xd2, 0x4f, 0xf5, 0x68},
{0x0, 0x8d, 0x7, 0x8a, 0xe, 0x83, 0x9, 0x84, 0x1c, 0x91, 0x1b, 0x96, 0x12, 0x9f, 0x15, 0x98},
{0x0, 0xbd, 0x67, 0xda, 0xce, 0x73, 0xa9, 0x14, 0x81, 0x3c, 0xe6, 0x5b, 0x4f, 0xf2, 0x28, 0x95},
{0x0, 0xad, 0x47, 0xea, 0x8e, 0x23, 0xc9, 0x64, 0x1, 0xac, 0x46, 0xeb, 0x8f, 0x22, 0xc8, 0x65},
{0x0, 0xdd, 0xa7, 0x7a, 0x53, 0x8e, 0xf4, 0x29, 0xa6, 0x7b, 0x1, 0xdc, 0xf5, 0x28, 0x52, 0x8f},
{0x0, 0xcd, 0x87, 0x4a, 0x13, 0xde, 0x94, 0x59, 0x26, 0xeb, 0xa1, 0x6c, 0x35, 0xf8, 0xb2, 0x7f},
{0x0, 0xfd, 0xe7, 0x1a, 0xd3, 0x2e, 0x34, 0xc9, 0xbb, 0x46, 0x5c, 0xa1, 0x68, 0x95, 0x8f, 0x72},
{0x0, 0xed, 0xc7, 0x2a, 0x93, 0x7e, 0x54, 0xb9, 0x3b, 0xd6, 0xfc, 0x11, 0xa8, 0x45, 0x6f, 0x82},
{0x0, 0x3a, 0x74, 0x4e, 0xe8, 0xd2, 0x9c, 0xa6, 0xcd, 0xf7, 0xb9, 0x83, 0x25, 0x1f, 0x51, 0x6b},
{0x0, 0x2a, 0x54, 0x7e, 0xa8, 0x82, 0xfc, 0xd6, 0x4d, 0x67, 0x19, 0x33, 0xe5, 0xcf, 0xb1, 0x9b},
{0x0, 0x1a, 0x34, 0x2e, 0x68, 0x72, 0x5c, 0x46, 0xd0, 0xca, 0xe4, 0xfe, 0xb8, 0xa2, 0x8c, 0x96},
{0x0, 0xa, 0x14, 0x1e, 0x28, 0x22, 0x3c, 0x36, 0x50, 0x5a, 0x44, 0x4e, 0x78, 0x72, 0x6c, 0x66},
{0x0, 0x7a, 0xf4, 0x8e, 0xf5, 0x8f, 0x1, 0x7b, 0xf7, 0x8d, 0x3, 0x79, 0x2, 0x78, 0xf6, 0x8c},
{0x0, 0x6a, 0xd4, 0xbe, 0xb5, 0xdf, 0x61, 0xb, 0x77, 0x1d, 0xa3, 0xc9, 0xc2, 0xa8, 0x16, 0x7c},
{0x0, 0x5a, 0xb4, 0xee, 0x75, 0x2f, 0xc1, 0x9b, 0xea, 0xb0, 0x5e, 0x4, 0x9f, 0xc5, 0x2b, 0x71},
{0x0, 0x4a, 0x94, 0xde, 0x35, 0x7f, 0xa1, 0xeb, 0x6a, 0x20, 0xfe, 0xb4, 0x5f, 0x15, 0xcb, 0x81},
{0x0, 0xba, 0x69, 0xd3, 0xd2, 0x68, 0xbb, 0x1, 0xb9, 0x3, 0xd0, 0x6a, 0x6b, 0xd1, 0x2, 0xb8},
{0x0, 0xaa, 0x49, 0xe3, 0x92, 0x38, 0xdb, 0x71, 0x39, 0x93, 0x70, 0xda, 0xab, 0x1, 0xe2, 0x48},
{0x0, 0x9a, 0x29, 0xb3, 0x52, 0xc8, 0x7b, 0xe1, 0xa4, 0x3e, 0x8d, 0x17, 0xf6, 0x6c, 0xdf, 0x45},
{0x0, 0x8a, 0x9, 0x83, 0x12, 0x98, 0x1b, 0x91, 0x24, 0xae, 0x2d, 0xa7, 0x36, 0xbc, 0x3f, 0xb5},
{0x0, 0xfa, 0xe9, 0x13, 0xcf, 0x35, 0x26, 0xdc, 0x83, 0x79, 0x6a, 0x90, 0x4c, 0xb6, 0xa5, 0x5f},
{0x0, 0xea, 0xc9, 0x23, 0x8f, 0x65, 0x46, 0xac, 0x3, 0xe9, 0xca, 0x20, 0x8c, 0x66, 0x45, 0xaf},
{0x0, 0xda, 0xa9, 0x73, 0x4f, 0x95, 0xe6, 0x3c, 0x9e, 0x44, 0x37, 0xed, 0xd1, 0xb, 0x78, 0xa2},
{0x0, 0xca, 0x89, 0x43, 0xf, 0xc5, 0x86, 0x4c, 0x1e, 0xd4, 0x97, 0x5d, 0x11, 0xdb, 0x98, 0x52},
{0x0, 0x27, 0x4e, 0x69, 0x9c, 0xbb, 0xd2, 0xf5, 0x25, 0x2, 0x6b, 0x4c, 0xb9, 0x9e, 0xf7, 0xd0},
{0x0, 0x37, 0x6e, 0x59, 0xdc, 0xeb, 0xb2, 0x85, 0xa5, 0x92, 0xcb, 0xfc, 0x79, 0x4e, 0x17, 0x20},
{0x0, 0x7, 0xe, 0x9, 0x1c, 0x1b, 0x12, 0x15, 0x38, 0x3f, 0x36, 0x31, 0x24, 0x23, 0x2a, 0x2d},
{0x0, 0x17, 0x2e, 0x39, 0x5c, 0x4b, 0x72, 0x65, 0xb8, 0xaf, 0x96, 0x81, 0xe4, 0xf3, 0xca, 0xdd},
{0x0, 0x67, 0xce, 0xa9, 0x81, 0xe6, 0x4f, 0x28, 0x1f, 0x78, 0xd1, 0xb6, 0x9e, 0xf9, 0x50, 0x37},
{0x0, 0x77, 0xee, 0x99, 0xc1, 0xb6, 0x2f, 0x58, 0x9f, 0xe8, 0x71, 0x6, 0x5e, 0x29, 0xb0, 0xc7},
{0x0, 0x47, 0x8e, 0xc9, 0x1, 0x46, 0x8f, 0xc8, 0x2, 0x45, 0x8c, 0xcb, 0x3, 0x44, 0x8d, 0xca},
{0x0, 0x57, 0xae, 0xf9, 0x41, 0x16, 0xef, 0xb8, 0x82, 0xd5, 0x2c, 0x7b, 0xc3, 0x94, 0x6d, 0x3a},
{0x0, 0xa7, 0x53, 0xf4, 0xa6, 0x1, 0xf5, 0x52, 0x51, 0xf6, 0x2, 0xa5, 0xf7, 0x50, 0xa4, 0x3},
{0x0, 0xb7, 0x73, 0xc4, 0xe6, 0x51, 0x95, 0x22, 0xd1, 0x66, 0xa2, 0x15, 0x37, 0x80, 0x44, 0xf3},
{0x0, 0x87, 0x13, 0x94, 0x26, 0xa1, 0x35, 0xb2, 0x4c, 0xcb, 0x5f, 0xd8, 0x6a, 0xed, 0x79, 0xfe},
{0x0, 0x97, 0x33, 0xa4, 0x66, 0xf1, 0x55, 0xc2, 0xcc, 0x5b, 0xff, 0x68, 0xaa, 0x3d, 0x99, 0xe},
{0x0, 0xe7, 0xd3, 0x34, 0xbb, 0x5c, 0x68, 0x8f, 0x6b, 0x8c, 0xb8, 0x5f, 0xd0, 0x37, 0x3, 0xe4},
{0x0, 0xf7, 0xf3, 0x4, 0xfb, 0xc, 0x8, 0xff, 0xeb, 0x1c, 0x18, 0xef, 0x10, 0xe7, 0xe3, 0x14},
{0x0, 0xc7, 0x93, 0x54, 0x3b, 0xfc, 0xa8, 0x6f, 0x76, 0xb1, 0xe5, 0x22, 0x4d, 0x8a, 0xde, 0x19},
{0x0, 0xd7, 0xb3, 0x64, 0x7b, 0xac, 0xc8, 0x1f, 0xf6, 0x21, 0x45, 0x92, 0x8d, 0x5a, 0x3e, 0xe9},
{0x0, 0x74, 0xe8, 0x9c, 0xcd, 0xb9, 0x25, 0x51, 0x87, 0xf3, 0x6f, 0x1b, 0x4a, 0x3e, 0xa2, 0xd6},
{0x0, 0x64, 0xc8, 0xac, 0x8d, 0xe9, 0x45, 0x21, 0x7, 0x63, 0xcf, 0xab, 0x8a, 0xee, 0x42, 0x26},
{0x0, 0x54, 0xa8, 0xfc, 0x4d, 0x19, 0xe5, 0xb1, 0x9a, 0xce, 0x32, 0x66, 0xd7, 0x83, 0x7f, 0x2b},
{0x0, 0x44, 0x88, 0xcc, 0xd, 0x49, 0x85, 0xc1, 0x1a, 0x5e, 0x92, 0xd6, 0x17, 0x53, 0x9f, 0xdb},
{0x0, 0x34, 0x68, 0x5c, 0xd0, 0xe4, 0xb8, 0x8c, 0xbd, 0x89, 0xd5, 0xe1, 0x6d, 0x59, 0x5, 0x31},
{0x0, 0x24, 0x48, 0x6c, 0x90, 0xb4, 0xd8, 0xfc, 0x3d, 0x19, 0x75, 0x51, 0xad, 0x89, 0xe5, 0xc1},
{0x0, 0x14, 0x28, 0x3c, 0x50, 0x44, 0x78, 0x6c, 0xa0, 0xb4, 0x88, 0x9c, 0xf0, 0xe4, 0xd8, 0xcc},
{0x0, 0x4, 0x8, 0xc, 0x10, 0x14, 0x18, 0x1c, 0x20, 0x24, 0x28, 0x2c, 0x30, 0x34, 0x38, 0x3c},
{0x0, 0xf4, 0xf5, 0x1, 0xf7, 0x3, 0x2, 0xf6, 0xf3, 0x7, 0x6, 0xf2, 0x4, 0xf0, 0xf1, 0x5},
{0x0, 0xe4, 0xd5, 0x31, 0xb7, 0x53, 0x62, 0x86, 0x73, 0x97, 0xa6, 0x42, 0xc4, 0x20, 0x11, 0xf5},
{0x0, 0xd4, 0xb5, 0x61, 0x77, 0xa3, 0xc2, 0x16, 0xee, 0x3a, 0x5b, 0x8f, 0x99, 0x4d, 0x2c, 0xf8},
{0x0, 0xc4, 0x95, 0x51, 0x37, 0xf3, 0xa2, 0x66, 0x6e, 0xaa, 0xfb, 0x3f, 0x59, 0x9d, 0xcc, 0x8},
{0x0, 0xb4, 0x75, 0xc1, 0xea, 0x5e, 0x9f, 0x2b, 0xc9, 0x7d, 0xbc, 0x8, 0x23, 0x97, 0x56, 0xe2},
{0x0, 0xa4, 0x55, 0xf1, 0xaa, 0xe, 0xff, 0x5b, 0x49, 0xed, 0x1c, 0xb8, 0xe3, 0x47, 0xb6, 0x12},
{0x0, 0x94, 0x35, 0xa1, 0x6a, 0xfe, 0x5f, 0xcb, 0xd4, 0x40, 0xe1, 0x75, 0xbe, 0x2a, 0x8b, 0x1f},
{0x0, 0x84, 0x15, 0x91, 0x2a, 0xae, 0x3f, 0xbb, 0x54, 0xd0, 0x41, 0xc5, 0x7e, 0xfa, 0x6b, 0xef},
{0x0, 0x69, 0xd2, 0xbb, 0xb9, 0xd0, 0x6b, 0x2, 0x6f, 0x6, 0xbd, 0xd4, 0xd6, 0xbf, 0x4, 0x6d},
{0x0, 0x79, 0xf2, 0x8b, 0xf9, 0x80, 0xb, 0x72, 0xef, 0x96, 0x1d, 0x64, 0x16, 0x6f, 0xe4, 0x9d},
{0x0, 0x49, 0x92, 0xdb, 0x39, 0x70, 0xab, 0xe2, 0x72, 0x3b, 0xe0, 0xa9, 0x4b, 0x2, 0xd9, 0x90},
{0x0, 0x59, 0xb2, 0xeb, 0x79, 0x20, 0xcb, 0x92, 0xf2, 0xab, 0x40, 0x19, 0x8b, 0xd2, 0x39, 0x60},
{0x0, 0x29, 0x52, 0x7b, 0xa4, 0x8d, 0xf6, 0xdf, 0x55, 0x7c, 0x7, 0x2e, 0xf1, 0xd8, 0xa3, 0x8a},
{0x0, 0x39, 0x72, 0x4b, 0xe4, 0xdd, 0x96, 0xaf, 0xd5, 0xec, 0xa7, 0x9e, 0x31, 0x8, 0x43, 0x7a},
{0x0, 0x9, 0x12, 0x1b, 0x24, 0x2d, 0x36, 0x3f, 0x48, 0x41, 0x5a, 0x53, 0x6c, 0x65, 0x7e, 0x77},
{0x0, 0x19, 0x32, 0x2b, 0x64, 0x7d, 0x56, 0x4f, 0xc8, 0xd1, 0xfa, 0xe3, 0xac, 0xb5, 0x9e, 0x87},
{0x0, 0xe9, 0xcf, 0x26, 0x83, 0x6a, 0x4c, 0xa5, 0x1b, 0xf2, 0xd4, 0x3d, 0x98, 0x71, 0x57, 0xbe},
{0x0, 0xf9, 0xef, 0x16, 0xc3, 0x3a, 0x2c, 0xd5, 0x9b, 0x62, 0x74, 0x8d, 0x58, 0xa1, 0xb7, 0x4e},
{0x0, 0xc9, 0x8f, 0x46, 0x3, 0xca, 0x8c, 0x45, 0x6, 0xcf, 0x89, 0x40, 0x5, 0xcc, 0x8a, 0x43},
{0x0, 0xd9, 0xaf, 0x76, 0x43, 0x9a, 0xec, 0x35, 0x86, 0x5f, 0x29, 0xf0, 0xc5, 0x1c, 0x6a, 0xb3},
{0x0, 0xa9, 0x4f, 0xe6, 0x9e, 0x37, 0xd1, 0x78, 0x21, 0x88, 0x6e, 0xc7, 0xbf, 0x16, 0xf0, 0x59},
{0x0, 0xb9, 0x6f, 0xd6, 0xde, 0x67, 0xb1, 0x8, 0xa1, 0x18, 0xce, 0x77, 0x7f, 0xc6, 0x10, 0xa9},
{0x0, 0x89, 0xf, 0x86, 0x1e, 0x97, 0x11, 0x98, 0x3c, 0xb5, 0x33, 0xba, 0x22, 0xab, 0x2d, 0xa4},
{0x0, 0x99, 0x2f, 0xb6, 0x5e, 0xc7, 0x71, 0xe8, 0xbc, 0x25, 0x93, 0xa, 0xe2, 0x7b, 0xcd, 0x54},
{0x0, 0x4e, 0x9c, 0xd2, 0x25, 0x6b, 0xb9, 0xf7, 0x4a, 0x4, 0xd6, 0x98, 0x6f, 0x21, 0xf3, 0xbd},
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{0x0, 0xa1, 0x5f, 0xfe, 0xbe, 0x1f, 0xe1, 0x40, 0x61, 0xc0, 0x3e, 0x9f, 0xdf, 0x7e, 0x80, 0x21},
{0x0, 0xb1, 0x7f, 0xce, 0xfe, 0x4f, 0x81, 0x30, 0xe1, 0x50, 0x9e, 0x2f, 0x1f, 0xae, 0x60, 0xd1},
{0x0, 0xc1, 0x9f, 0x5e, 0x23, 0xe2, 0xbc, 0x7d, 0x46, 0x87, 0xd9, 0x18, 0x65, 0xa4, 0xfa, 0x3b},
{0x0, 0xd1, 0xbf, 0x6e, 0x63, 0xb2, 0xdc, 0xd, 0xc6, 0x17, 0x79, 0xa8, 0xa5, 0x74, 0x1a, 0xcb},
{0x0, 0xe1, 0xdf, 0x3e, 0xa3, 0x42, 0x7c, 0x9d, 0x5b, 0xba, 0x84, 0x65, 0xf8, 0x19, 0x27, 0xc6},
{0x0, 0xf1, 0xff, 0xe, 0xe3, 0x12, 0x1c, 0xed, 0xdb, 0x2a, 0x24, 0xd5, 0x38, 0xc9, 0xc7, 0x36},
{0x0, 0x1, 0x2, 0x3, 0x4, 0x5, 0x6, 0x7, 0x8, 0x9, 0xa, 0xb, 0xc, 0xd, 0xe, 0xf},
{0x0, 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88, 0x99, 0xaa, 0xbb, 0xcc, 0xdd, 0xee, 0xff},
{0x0, 0x21, 0x42, 0x63, 0x84, 0xa5, 0xc6, 0xe7, 0x15, 0x34, 0x57, 0x76, 0x91, 0xb0, 0xd3, 0xf2},
{0x0, 0x31, 0x62, 0x53, 0xc4, 0xf5, 0xa6, 0x97, 0x95, 0xa4, 0xf7, 0xc6, 0x51, 0x60, 0x33, 0x2},
{0x0, 0x41, 0x82, 0xc3, 0x19, 0x58, 0x9b, 0xda, 0x32, 0x73, 0xb0, 0xf1, 0x2b, 0x6a, 0xa9, 0xe8},
{0x0, 0x51, 0xa2, 0xf3, 0x59, 0x8, 0xfb, 0xaa, 0xb2, 0xe3, 0x10, 0x41, 0xeb, 0xba, 0x49, 0x18},
{0x0, 0x61, 0xc2, 0xa3, 0x99, 0xf8, 0x5b, 0x3a, 0x2f, 0x4e, 0xed, 0x8c, 0xb6, 0xd7, 0x74, 0x15},
{0x0, 0x71, 0xe2, 0x93, 0xd9, 0xa8, 0x3b, 0x4a, 0xaf, 0xde, 0x4d, 0x3c, 0x76, 0x7, 0x94, 0xe5},
{0x0, 0xa6, 0x51, 0xf7, 0xa2, 0x4, 0xf3, 0x55, 0x59, 0xff, 0x8, 0xae, 0xfb, 0x5d, 0xaa, 0xc},
{0x0, 0xb6, 0x71, 0xc7, 0xe2, 0x54, 0x93, 0x25, 0xd9, 0x6f, 0xa8, 0x1e, 0x3b, 0x8d, 0x4a, 0xfc},
{0x0, 0x86, 0x11, 0x97, 0x22, 0xa4, 0x33, 0xb5, 0x44, 0xc2, 0x55, 0xd3, 0x66, 0xe0, 0x77, 0xf1},
{0x0, 0x96, 0x31, 0xa7, 0x62, 0xf4, 0x53, 0xc5, 0xc4, 0x52, 0xf5, 0x63, 0xa6, 0x30, 0x97, 0x1},
{0x0, 0xe6, 0xd1, 0x37, 0xbf, 0x59, 0x6e, 0x88, 0x63, 0x85, 0xb2, 0x54, 0xdc, 0x3a, 0xd, 0xeb},
{0x0, 0xf6, 0xf1, 0x7, 0xff, 0x9, 0xe, 0xf8, 0xe3, 0x15, 0x12, 0xe4, 0x1c, 0xea, 0xed, 0x1b},
{0x0, 0xc6, 0x91, 0x57, 0x3f, 0xf9, 0xae, 0x68, 0x7e, 0xb8, 0xef, 0x29, 0x41, 0x87, 0xd0, 0x16},
{0x0, 0xd6, 0xb1, 0x67, 0x7f, 0xa9, 0xce, 0x18, 0xfe, 0x28, 0x4f, 0x99, 0x81, 0x57, 0x30, 0xe6},
{0x0, 0x26, 0x4c, 0x6a, 0x98, 0xbe, 0xd4, 0xf2, 0x2d, 0xb, 0x61, 0x47, 0xb5, 0x93, 0xf9, 0xdf},
{0x0, 0x36, 0x6c, 0x5a, 0xd8, 0xee, 0xb4, 0x82, 0xad, 0x9b, 0xc1, 0xf7, 0x75, 0x43, 0x19, 0x2f},
{0x0, 0x6, 0xc, 0xa, 0x18, 0x1e, 0x14, 0x12, 0x30, 0x36, 0x3c, 0x3a, 0x28, 0x2e, 0x24, 0x22},
{0x0, 0x16, 0x2c, 0x3a, 0x58, 0x4e, 0x74, 0x62, 0xb0, 0xa6, 0x9c, 0x8a, 0xe8, 0xfe, 0xc4, 0xd2},
{0x0, 0x66, 0xcc, 0xaa, 0x85, 0xe3, 0x49, 0x2f, 0x17, 0x71, 0xdb, 0xbd, 0x92, 0xf4, 0x5e, 0x38},
{0x0, 0x76, 0xec, 0x9a, 0xc5, 0xb3, 0x29, 0x5f, 0x97, 0xe1, 0x7b, 0xd, 0x52, 0x24, 0xbe, 0xc8},
{0x0, 0x46, 0x8c, 0xca, 0x5, 0x43, 0x89, 0xcf, 0xa, 0x4c, 0x86, 0xc0, 0xf, 0x49, 0x83, 0xc5},
{0x0, 0x56, 0xac, 0xfa, 0x45, 0x13, 0xe9, 0xbf, 0x8a, 0xdc, 0x26, 0x70, 0xcf, 0x99, 0x63, 0x35},
{0x0, 0xbb, 0x6b, 0xd0, 0xd6, 0x6d, 0xbd, 0x6, 0xb1, 0xa, 0xda, 0x61, 0x67, 0xdc, 0xc, 0xb7},
{0x0, 0xab, 0x4b, 0xe0, 0x96, 0x3d, 0xdd, 0x76, 0x31, 0x9a, 0x7a, 0xd1, 0xa7, 0xc, 0xec, 0x47},
{0x0, 0x9b, 0x2b, 0xb0, 0x56, 0xcd, 0x7d, 0xe6, 0xac, 0x37, 0x87, 0x1c, 0xfa, 0x61, 0xd1, 0x4a},
{0x0, 0x8b, 0xb, 0x80, 0x16, 0x9d, 0x1d, 0x96, 0x2c, 0xa7, 0x27, 0xac, 0x3a, 0xb1, 0x31, 0xba},
{0x0, 0xfb, 0xeb, 0x10, 0xcb, 0x30, 0x20, 0xdb, 0x8b, 0x70, 0x60, 0x9b, 0x40, 0xbb, 0xab, 0x50},
{0x0, 0xeb, 0xcb, 0x20, 0x8b, 0x60, 0x40, 0xab, 0xb, 0xe0, 0xc0, 0x2b, 0x80, 0x6b, 0x4b, 0xa0},
{0x0, 0xdb, 0xab, 0x70, 0x4b, 0x90, 0xe0, 0x3b, 0x96, 0x4d, 0x3d, 0xe6, 0xdd, 0x6, 0x76, 0xad},
{0x0, 0xcb, 0x8b, 0x40, 0xb, 0xc0, 0x80, 0x4b, 0x16, 0xdd, 0x9d, 0x56, 0x1d, 0xd6, 0x96, 0x5d},
{0x0, 0x3b, 0x76, 0x4d, 0xec, 0xd7, 0x9a, 0xa1, 0xc5, 0xfe, 0xb3, 0x88, 0x29, 0x12, 0x5f, 0x64},
{0x0, 0x2b, 0x56, 0x7d, 0xac, 0x87, 0xfa, 0xd1, 0x45, 0x6e, 0x13, 0x38, 0xe9, 0xc2, 0xbf, 0x94},
{0x0, 0x1b, 0x36, 0x2d, 0x6c, 0x77, 0x5a, 0x41, 0xd8, 0xc3, 0xee, 0xf5, 0xb4, 0xaf, 0x82, 0x99},
{0x0, 0xb, 0x16, 0x1d, 0x2c, 0x27, 0x3a, 0x31, 0x58, 0x53, 0x4e, 0x45, 0x74, 0x7f, 0x62, 0x69},
{0x0, 0x7b, 0xf6, 0x8d, 0xf1, 0x8a, 0x7, 0x7c, 0xff, 0x84, 0x9, 0x72, 0xe, 0x75, 0xf8, 0x83},
{0x0, 0x6b, 0xd6, 0xbd, 0xb1, 0xda, 0x67, 0xc, 0x7f, 0x14, 0xa9, 0xc2, 0xce, 0xa5, 0x18, 0x73},
{0x0, 0x5b, 0xb6, 0xed, 0x71, 0x2a, 0xc7, 0x9c, 0xe2, 0xb9, 0x54, 0xf, 0x93, 0xc8, 0x25, 0x7e},
{0x0, 0x4b, 0x96, 0xdd, 0x31, 0x7a, 0xa7, 0xec, 0x62, 0x29, 0xf4, 0xbf, 0x53, 0x18, 0xc5, 0x8e}}
// galMultiply multiplies to elements of the field.
// Uses lookup table ~40% faster
func galMultiply(a, b byte) byte {
return mulTable[a][b]
}
// Original function:
/*
// galMultiply multiplies to elements of the field.
func galMultiply(a, b byte) byte {
if a == 0 || b == 0 {
return 0
}
logA := int(logTable[a])
logB := int(logTable[b])
return expTable[logA+logB]
}
*/
// galDivide is inverse of galMultiply.
func galDivide(a, b byte) byte {
if a == 0 {
return 0
}
if b == 0 {
panic("Argument 'divisor' is 0")
}
logA := int(logTable[a])
logB := int(logTable[b])
logResult := logA - logB
if logResult < 0 {
logResult += 255
}
return expTable[logResult]
}
// Computes a**n.
//
// The result will be the same as multiplying a times itself n times.
func galExp(a byte, n int) byte {
if n == 0 {
return 1
}
if a == 0 {
return 0
}
logA := logTable[a]
logResult := int(logA) * n
for logResult >= 255 {
logResult -= 255
}
return byte(expTable[logResult])
}

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//+build !noasm
//+build !appengine
// Copyright 2015, Klaus Post, see LICENSE for details.
package reedsolomon
//go:noescape
func galMulSSSE3(low, high, in, out []byte)
//go:noescape
func galMulSSSE3Xor(low, high, in, out []byte)
//go:noescape
func galMulAVX2Xor(low, high, in, out []byte)
//go:noescape
func galMulAVX2(low, high, in, out []byte)
//go:noescape
func sSE2XorSlice(in, out []byte)
// This is what the assembler routines do in blocks of 16 bytes:
/*
func galMulSSSE3(low, high, in, out []byte) {
for n, input := range in {
l := input & 0xf
h := input >> 4
out[n] = low[l] ^ high[h]
}
}
func galMulSSSE3Xor(low, high, in, out []byte) {
for n, input := range in {
l := input & 0xf
h := input >> 4
out[n] ^= low[l] ^ high[h]
}
}
*/
func galMulSlice(c byte, in, out []byte, ssse3, avx2 bool) {
var done int
if avx2 {
galMulAVX2(mulTableLow[c][:], mulTableHigh[c][:], in, out)
done = (len(in) >> 5) << 5
} else if ssse3 {
galMulSSSE3(mulTableLow[c][:], mulTableHigh[c][:], in, out)
done = (len(in) >> 4) << 4
}
remain := len(in) - done
if remain > 0 {
mt := mulTable[c]
for i := done; i < len(in); i++ {
out[i] = mt[in[i]]
}
}
}
func galMulSliceXor(c byte, in, out []byte, ssse3, avx2 bool) {
var done int
if avx2 {
galMulAVX2Xor(mulTableLow[c][:], mulTableHigh[c][:], in, out)
done = (len(in) >> 5) << 5
} else if ssse3 {
galMulSSSE3Xor(mulTableLow[c][:], mulTableHigh[c][:], in, out)
done = (len(in) >> 4) << 4
}
remain := len(in) - done
if remain > 0 {
mt := mulTable[c]
for i := done; i < len(in); i++ {
out[i] ^= mt[in[i]]
}
}
}
// slice galois add
func sliceXor(in, out []byte, sse2 bool) {
var done int
if sse2 {
sSE2XorSlice(in, out)
done = (len(in) >> 4) << 4
}
remain := len(in) - done
if remain > 0 {
for i := done; i < len(in); i++ {
out[i] ^= in[i]
}
}
}

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//+build !noasm !appengine
// Copyright 2015, Klaus Post, see LICENSE for details.
// Based on http://www.snia.org/sites/default/files2/SDC2013/presentations/NewThinking/EthanMiller_Screaming_Fast_Galois_Field%20Arithmetic_SIMD%20Instructions.pdf
// and http://jerasure.org/jerasure/gf-complete/tree/master
// func galMulSSSE3Xor(low, high, in, out []byte)
TEXT ·galMulSSSE3Xor(SB), 7, $0
MOVQ low+0(FP), SI // SI: &low
MOVQ high+24(FP), DX // DX: &high
MOVOU (SI), X6 // X6 low
MOVOU (DX), X7 // X7: high
MOVQ $15, BX // BX: low mask
MOVQ BX, X8
PXOR X5, X5
MOVQ in+48(FP), SI // R11: &in
MOVQ in_len+56(FP), R9 // R9: len(in)
MOVQ out+72(FP), DX // DX: &out
PSHUFB X5, X8 // X8: lomask (unpacked)
SHRQ $4, R9 // len(in) / 16
CMPQ R9, $0
JEQ done_xor
loopback_xor:
MOVOU (SI), X0 // in[x]
MOVOU (DX), X4 // out[x]
MOVOU X0, X1 // in[x]
MOVOU X6, X2 // low copy
MOVOU X7, X3 // high copy
PSRLQ $4, X1 // X1: high input
PAND X8, X0 // X0: low input
PAND X8, X1 // X0: high input
PSHUFB X0, X2 // X2: mul low part
PSHUFB X1, X3 // X3: mul high part
PXOR X2, X3 // X3: Result
PXOR X4, X3 // X3: Result xor existing out
MOVOU X3, (DX) // Store
ADDQ $16, SI // in+=16
ADDQ $16, DX // out+=16
SUBQ $1, R9
JNZ loopback_xor
done_xor:
RET
// func galMulSSSE3(low, high, in, out []byte)
TEXT ·galMulSSSE3(SB), 7, $0
MOVQ low+0(FP), SI // SI: &low
MOVQ high+24(FP), DX // DX: &high
MOVOU (SI), X6 // X6 low
MOVOU (DX), X7 // X7: high
MOVQ $15, BX // BX: low mask
MOVQ BX, X8
PXOR X5, X5
MOVQ in+48(FP), SI // R11: &in
MOVQ in_len+56(FP), R9 // R9: len(in)
MOVQ out+72(FP), DX // DX: &out
PSHUFB X5, X8 // X8: lomask (unpacked)
SHRQ $4, R9 // len(in) / 16
CMPQ R9, $0
JEQ done
loopback:
MOVOU (SI), X0 // in[x]
MOVOU X0, X1 // in[x]
MOVOU X6, X2 // low copy
MOVOU X7, X3 // high copy
PSRLQ $4, X1 // X1: high input
PAND X8, X0 // X0: low input
PAND X8, X1 // X0: high input
PSHUFB X0, X2 // X2: mul low part
PSHUFB X1, X3 // X3: mul high part
PXOR X2, X3 // X3: Result
MOVOU X3, (DX) // Store
ADDQ $16, SI // in+=16
ADDQ $16, DX // out+=16
SUBQ $1, R9
JNZ loopback
done:
RET
// func galMulAVX2Xor(low, high, in, out []byte)
TEXT ·galMulAVX2Xor(SB), 7, $0
MOVQ low+0(FP), SI // SI: &low
MOVQ high+24(FP), DX // DX: &high
MOVQ $15, BX // BX: low mask
MOVQ BX, X5
MOVOU (SI), X6 // X6 low
MOVOU (DX), X7 // X7: high
MOVQ in_len+56(FP), R9 // R9: len(in)
LONG $0x384de3c4; WORD $0x01f6 // VINSERTI128 YMM6, YMM6, XMM6, 1 ; low
LONG $0x3845e3c4; WORD $0x01ff // VINSERTI128 YMM7, YMM7, XMM7, 1 ; high
LONG $0x787d62c4; BYTE $0xc5 // VPBROADCASTB YMM8, XMM5 ; X8: lomask (unpacked)
SHRQ $5, R9 // len(in) /32
MOVQ out+72(FP), DX // DX: &out
MOVQ in+48(FP), SI // R11: &in
TESTQ R9, R9
JZ done_xor_avx2
loopback_xor_avx2:
LONG $0x066ffec5 // VMOVDQU YMM0, [rsi]
LONG $0x226ffec5 // VMOVDQU YMM4, [rdx]
LONG $0xd073f5c5; BYTE $0x04 // VPSRLQ YMM1, YMM0, 4 ; X1: high input
LONG $0xdb7dc1c4; BYTE $0xc0 // VPAND YMM0, YMM0, YMM8 ; X0: low input
LONG $0xdb75c1c4; BYTE $0xc8 // VPAND YMM1, YMM1, YMM8 ; X1: high input
LONG $0x004de2c4; BYTE $0xd0 // VPSHUFB YMM2, YMM6, YMM0 ; X2: mul low part
LONG $0x0045e2c4; BYTE $0xd9 // VPSHUFB YMM3, YMM7, YMM1 ; X2: mul high part
LONG $0xdbefedc5 // VPXOR YMM3, YMM2, YMM3 ; X3: Result
LONG $0xe4efe5c5 // VPXOR YMM4, YMM3, YMM4 ; X4: Result
LONG $0x227ffec5 // VMOVDQU [rdx], YMM4
ADDQ $32, SI // in+=32
ADDQ $32, DX // out+=32
SUBQ $1, R9
JNZ loopback_xor_avx2
done_xor_avx2:
// VZEROUPPER
BYTE $0xc5; BYTE $0xf8; BYTE $0x77
RET
// func galMulAVX2(low, high, in, out []byte)
TEXT ·galMulAVX2(SB), 7, $0
MOVQ low+0(FP), SI // SI: &low
MOVQ high+24(FP), DX // DX: &high
MOVQ $15, BX // BX: low mask
MOVQ BX, X5
MOVOU (SI), X6 // X6 low
MOVOU (DX), X7 // X7: high
MOVQ in_len+56(FP), R9 // R9: len(in)
LONG $0x384de3c4; WORD $0x01f6 // VINSERTI128 YMM6, YMM6, XMM6, 1 ; low
LONG $0x3845e3c4; WORD $0x01ff // VINSERTI128 YMM7, YMM7, XMM7, 1 ; high
LONG $0x787d62c4; BYTE $0xc5 // VPBROADCASTB YMM8, XMM5 ; X8: lomask (unpacked)
SHRQ $5, R9 // len(in) /32
MOVQ out+72(FP), DX // DX: &out
MOVQ in+48(FP), SI // R11: &in
TESTQ R9, R9
JZ done_avx2
loopback_avx2:
LONG $0x066ffec5 // VMOVDQU YMM0, [rsi]
LONG $0xd073f5c5; BYTE $0x04 // VPSRLQ YMM1, YMM0, 4 ; X1: high input
LONG $0xdb7dc1c4; BYTE $0xc0 // VPAND YMM0, YMM0, YMM8 ; X0: low input
LONG $0xdb75c1c4; BYTE $0xc8 // VPAND YMM1, YMM1, YMM8 ; X1: high input
LONG $0x004de2c4; BYTE $0xd0 // VPSHUFB YMM2, YMM6, YMM0 ; X2: mul low part
LONG $0x0045e2c4; BYTE $0xd9 // VPSHUFB YMM3, YMM7, YMM1 ; X2: mul high part
LONG $0xe3efedc5 // VPXOR YMM4, YMM2, YMM3 ; X4: Result
LONG $0x227ffec5 // VMOVDQU [rdx], YMM4
ADDQ $32, SI // in+=32
ADDQ $32, DX // out+=32
SUBQ $1, R9
JNZ loopback_avx2
done_avx2:
BYTE $0xc5; BYTE $0xf8; BYTE $0x77 // VZEROUPPER
RET
// func sSE2XorSlice(in, out []byte)
TEXT ·sSE2XorSlice(SB), 7, $0
MOVQ in+0(FP), SI // SI: &in
MOVQ in_len+8(FP), R9 // R9: len(in)
MOVQ out+24(FP), DX // DX: &out
SHRQ $4, R9 // len(in) / 16
CMPQ R9, $0
JEQ done_xor_sse2
loopback_xor_sse2:
MOVOU (SI), X0 // in[x]
MOVOU (DX), X1 // out[x]
PXOR X0, X1
MOVOU X1, (DX)
ADDQ $16, SI // in+=16
ADDQ $16, DX // out+=16
SUBQ $1, R9
JNZ loopback_xor_sse2
done_xor_sse2:
RET

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//+build !noasm
//+build !appengine
// Copyright 2015, Klaus Post, see LICENSE for details.
// Copyright 2017, Minio, Inc.
package reedsolomon
//go:noescape
func galMulNEON(c uint64, in, out []byte)
//go:noescape
func galMulXorNEON(c uint64, in, out []byte)
func galMulSlice(c byte, in, out []byte, ssse3, avx2 bool) {
var done int
galMulNEON(uint64(c), in, out)
done = (len(in) >> 5) << 5
remain := len(in) - done
if remain > 0 {
mt := mulTable[c]
for i := done; i < len(in); i++ {
out[i] = mt[in[i]]
}
}
}
func galMulSliceXor(c byte, in, out []byte, ssse3, avx2 bool) {
var done int
galMulXorNEON(uint64(c), in, out)
done = (len(in) >> 5) << 5
remain := len(in) - done
if remain > 0 {
mt := mulTable[c]
for i := done; i < len(in); i++ {
out[i] ^= mt[in[i]]
}
}
}
// slice galois add
func sliceXor(in, out []byte, sse2 bool) {
for n, input := range in {
out[n] ^= input
}
}

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//+build !noasm !appengine
// Copyright 2015, Klaus Post, see LICENSE for details.
// Copyright 2017, Minio, Inc.
// Use github.com/minio/asm2plan9s on this file to assemble ARM instructions to
// the opcodes of their Plan9 equivalents
// polynomial multiplication
#define POLYNOMIAL_MULTIPLICATION \
WORD $0x0e3ce340 \ // pmull v0.8h,v26.8b,v28.8b
WORD $0x4e3ce346 \ // pmull2 v6.8h,v26.16b,v28.16b
WORD $0x0e3ce36c \ // pmull v12.8h,v27.8b,v28.8b
WORD $0x4e3ce372 // pmull2 v18.8h,v27.16b,v28.16b
// first reduction
#define FIRST_REDUCTION \
WORD $0x0f088402 \ // shrn v2.8b, v0.8h, #8
WORD $0x0f0884c8 \ // shrn v8.8b, v6.8h, #8
WORD $0x0f08858e \ // shrn v14.8b, v12.8h, #8
WORD $0x0f088654 \ // shrn v20.8b, v18.8h, #8
WORD $0x0e22e3c3 \ // pmull v3.8h,v30.8b,v2.8b
WORD $0x0e28e3c9 \ // pmull v9.8h,v30.8b,v8.8b
WORD $0x0e2ee3cf \ // pmull v15.8h,v30.8b,v14.8b
WORD $0x0e34e3d5 \ // pmull v21.8h,v30.8b,v20.8b
WORD $0x6e201c60 \ // eor v0.16b,v3.16b,v0.16b
WORD $0x6e261d26 \ // eor v6.16b,v9.16b,v6.16b
WORD $0x6e2c1dec \ // eor v12.16b,v15.16b,v12.16b
WORD $0x6e321eb2 // eor v18.16b,v21.16b,v18.16b
// second reduction
#define SECOND_REDUCTION \
WORD $0x0f088404 \ // shrn v4.8b, v0.8h, #8
WORD $0x0f0884ca \ // shrn v10.8b, v6.8h, #8
WORD $0x0f088590 \ // shrn v16.8b, v12.8h, #8
WORD $0x0f088656 \ // shrn v22.8b, v18.8h, #8
WORD $0x6e241c44 \ // eor v4.16b,v2.16b,v4.16b
WORD $0x6e2a1d0a \ // eor v10.16b,v8.16b,v10.16b
WORD $0x6e301dd0 \ // eor v16.16b,v14.16b,v16.16b
WORD $0x6e361e96 \ // eor v22.16b,v20.16b,v22.16b
WORD $0x0e24e3c5 \ // pmull v5.8h,v30.8b,v4.8b
WORD $0x0e2ae3cb \ // pmull v11.8h,v30.8b,v10.8b
WORD $0x0e30e3d1 \ // pmull v17.8h,v30.8b,v16.8b
WORD $0x0e36e3d7 \ // pmull v23.8h,v30.8b,v22.8b
WORD $0x6e201ca0 \ // eor v0.16b,v5.16b,v0.16b
WORD $0x6e261d61 \ // eor v1.16b,v11.16b,v6.16b
WORD $0x6e2c1e22 \ // eor v2.16b,v17.16b,v12.16b
WORD $0x6e321ee3 // eor v3.16b,v23.16b,v18.16b
// func galMulNEON(c uint64, in, out []byte)
TEXT ·galMulNEON(SB), 7, $0
MOVD c+0(FP), R0
MOVD in_base+8(FP), R1
MOVD in_len+16(FP), R2 // length of message
MOVD out_base+32(FP), R5
SUBS $32, R2
BMI complete
// Load constants table pointer
MOVD $·constants(SB), R3
// and load constants into v30 & v31
WORD $0x4c40a07e // ld1 {v30.16b-v31.16b}, [x3]
WORD $0x4e010c1c // dup v28.16b, w0
loop:
// Main loop
WORD $0x4cdfa83a // ld1 {v26.4s-v27.4s}, [x1], #32
POLYNOMIAL_MULTIPLICATION
FIRST_REDUCTION
SECOND_REDUCTION
// combine results
WORD $0x4e1f2000 // tbl v0.16b,{v0.16b,v1.16b},v31.16b
WORD $0x4e1f2041 // tbl v1.16b,{v2.16b,v3.16b},v31.16b
// Store result
WORD $0x4c9faca0 // st1 {v0.2d-v1.2d}, [x5], #32
SUBS $32, R2
BPL loop
complete:
RET
// func galMulXorNEON(c uint64, in, out []byte)
TEXT ·galMulXorNEON(SB), 7, $0
MOVD c+0(FP), R0
MOVD in_base+8(FP), R1
MOVD in_len+16(FP), R2 // length of message
MOVD out_base+32(FP), R5
SUBS $32, R2
BMI completeXor
// Load constants table pointer
MOVD $·constants(SB), R3
// and load constants into v30 & v31
WORD $0x4c40a07e // ld1 {v30.16b-v31.16b}, [x3]
WORD $0x4e010c1c // dup v28.16b, w0
loopXor:
// Main loop
WORD $0x4cdfa83a // ld1 {v26.4s-v27.4s}, [x1], #32
WORD $0x4c40a8b8 // ld1 {v24.4s-v25.4s}, [x5]
POLYNOMIAL_MULTIPLICATION
FIRST_REDUCTION
SECOND_REDUCTION
// combine results
WORD $0x4e1f2000 // tbl v0.16b,{v0.16b,v1.16b},v31.16b
WORD $0x4e1f2041 // tbl v1.16b,{v2.16b,v3.16b},v31.16b
// Xor result and store
WORD $0x6e381c00 // eor v0.16b,v0.16b,v24.16b
WORD $0x6e391c21 // eor v1.16b,v1.16b,v25.16b
WORD $0x4c9faca0 // st1 {v0.2d-v1.2d}, [x5], #32
SUBS $32, R2
BPL loopXor
completeXor:
RET
// Constants table
// generating polynomial is 29 (= 0x1d)
DATA ·constants+0x0(SB)/8, $0x1d1d1d1d1d1d1d1d
DATA ·constants+0x8(SB)/8, $0x1d1d1d1d1d1d1d1d
// constant for TBL instruction
DATA ·constants+0x10(SB)/8, $0x0e0c0a0806040200
DATA ·constants+0x18(SB)/8, $0x1e1c1a1816141210
GLOBL ·constants(SB), 8, $32

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//+build !amd64 noasm appengine
//+build !arm64 noasm appengine
// Copyright 2015, Klaus Post, see LICENSE for details.
package reedsolomon
func galMulSlice(c byte, in, out []byte, ssse3, avx2 bool) {
mt := mulTable[c]
for n, input := range in {
out[n] = mt[input]
}
}
func galMulSliceXor(c byte, in, out []byte, ssse3, avx2 bool) {
mt := mulTable[c]
for n, input := range in {
out[n] ^= mt[input]
}
}
// slice galois add
func sliceXor(in, out []byte, sse2 bool) {
for n, input := range in {
out[n] ^= input
}
}

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vendor/github.com/klauspost/reedsolomon/galois_test.go generated vendored Normal file
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/**
* Unit tests for Galois
*
* Copyright 2015, Klaus Post
* Copyright 2015, Backblaze, Inc.
*/
package reedsolomon
import (
"bytes"
"testing"
)
func TestAssociativity(t *testing.T) {
for i := 0; i < 256; i++ {
a := byte(i)
for j := 0; j < 256; j++ {
b := byte(j)
for k := 0; k < 256; k++ {
c := byte(k)
x := galAdd(a, galAdd(b, c))
y := galAdd(galAdd(a, b), c)
if x != y {
t.Fatal("add does not match:", x, "!=", y)
}
x = galMultiply(a, galMultiply(b, c))
y = galMultiply(galMultiply(a, b), c)
if x != y {
t.Fatal("multiply does not match:", x, "!=", y)
}
}
}
}
}
func TestIdentity(t *testing.T) {
for i := 0; i < 256; i++ {
a := byte(i)
b := galAdd(a, 0)
if a != b {
t.Fatal("Add zero should yield same result", a, "!=", b)
}
b = galMultiply(a, 1)
if a != b {
t.Fatal("Mul by one should yield same result", a, "!=", b)
}
}
}
func TestInverse(t *testing.T) {
for i := 0; i < 256; i++ {
a := byte(i)
b := galSub(0, a)
c := galAdd(a, b)
if c != 0 {
t.Fatal("inverse sub/add", c, "!=", 0)
}
if a != 0 {
b = galDivide(1, a)
c = galMultiply(a, b)
if c != 1 {
t.Fatal("inverse div/mul", c, "!=", 1)
}
}
}
}
func TestCommutativity(t *testing.T) {
for i := 0; i < 256; i++ {
a := byte(i)
for j := 0; j < 256; j++ {
b := byte(j)
x := galAdd(a, b)
y := galAdd(b, a)
if x != y {
t.Fatal(x, "!= ", y)
}
x = galMultiply(a, b)
y = galMultiply(b, a)
if x != y {
t.Fatal(x, "!= ", y)
}
}
}
}
func TestDistributivity(t *testing.T) {
for i := 0; i < 256; i++ {
a := byte(i)
for j := 0; j < 256; j++ {
b := byte(j)
for k := 0; k < 256; k++ {
c := byte(k)
x := galMultiply(a, galAdd(b, c))
y := galAdd(galMultiply(a, b), galMultiply(a, c))
if x != y {
t.Fatal(x, "!= ", y)
}
}
}
}
}
func TestExp(t *testing.T) {
for i := 0; i < 256; i++ {
a := byte(i)
power := byte(1)
for j := 0; j < 256; j++ {
x := galExp(a, j)
if x != power {
t.Fatal(x, "!=", power)
}
power = galMultiply(power, a)
}
}
}
func TestGalois(t *testing.T) {
// These values were copied output of the Python code.
if galMultiply(3, 4) != 12 {
t.Fatal("galMultiply(3, 4) != 12")
}
if galMultiply(7, 7) != 21 {
t.Fatal("galMultiply(7, 7) != 21")
}
if galMultiply(23, 45) != 41 {
t.Fatal("galMultiply(23, 45) != 41")
}
// Test slices (>32 entries to test assembler -- AVX2 & NEON)
in := []byte{0, 1, 2, 3, 4, 5, 6, 10, 50, 100, 150, 174, 201, 255, 99, 32, 67, 85, 200, 199, 198, 197, 196, 195, 194, 193, 192, 191, 190, 189, 188, 187, 186, 185}
out := make([]byte, len(in))
galMulSlice(25, in, out, false, false)
expect := []byte{0x0, 0x19, 0x32, 0x2b, 0x64, 0x7d, 0x56, 0xfa, 0xb8, 0x6d, 0xc7, 0x85, 0xc3, 0x1f, 0x22, 0x7, 0x25, 0xfe, 0xda, 0x5d, 0x44, 0x6f, 0x76, 0x39, 0x20, 0xb, 0x12, 0x11, 0x8, 0x23, 0x3a, 0x75, 0x6c, 0x47}
if 0 != bytes.Compare(out, expect) {
t.Errorf("got %#v, expected %#v", out, expect)
}
expectXor := []byte{0x0, 0x2d, 0x5a, 0x77, 0xb4, 0x99, 0xee, 0x2f, 0x79, 0xf2, 0x7, 0x51, 0xd4, 0x19, 0x31, 0xc9, 0xf8, 0xfc, 0xf9, 0x4f, 0x62, 0x15, 0x38, 0xfb, 0xd6, 0xa1, 0x8c, 0x96, 0xbb, 0xcc, 0xe1, 0x22, 0xf, 0x78}
galMulSliceXor(52, in, out, false, false)
if 0 != bytes.Compare(out, expectXor) {
t.Errorf("got %#v, expected %#v", out, expectXor)
}
galMulSlice(177, in, out, false, false)
expect = []byte{0x0, 0xb1, 0x7f, 0xce, 0xfe, 0x4f, 0x81, 0x9e, 0x3, 0x6, 0xe8, 0x75, 0xbd, 0x40, 0x36, 0xa3, 0x95, 0xcb, 0xc, 0xdd, 0x6c, 0xa2, 0x13, 0x23, 0x92, 0x5c, 0xed, 0x1b, 0xaa, 0x64, 0xd5, 0xe5, 0x54, 0x9a}
if 0 != bytes.Compare(out, expect) {
t.Errorf("got %#v, expected %#v", out, expect)
}
expectXor = []byte{0x0, 0xc4, 0x95, 0x51, 0x37, 0xf3, 0xa2, 0xfb, 0xec, 0xc5, 0xd0, 0xc7, 0x53, 0x88, 0xa3, 0xa5, 0x6, 0x78, 0x97, 0x9f, 0x5b, 0xa, 0xce, 0xa8, 0x6c, 0x3d, 0xf9, 0xdf, 0x1b, 0x4a, 0x8e, 0xe8, 0x2c, 0x7d}
galMulSliceXor(117, in, out, false, false)
if 0 != bytes.Compare(out, expectXor) {
t.Errorf("got %#v, expected %#v", out, expectXor)
}
if galExp(2, 2) != 4 {
t.Fatal("galExp(2, 2) != 4")
}
if galExp(5, 20) != 235 {
t.Fatal("galExp(5, 20) != 235")
}
if galExp(13, 7) != 43 {
t.Fatal("galExp(13, 7) != 43")
}
}
func TestSliceGalADD(t *testing.T) {
lengthList := []int{16, 32, 34}
for _, length := range lengthList {
in := make([]byte, length)
fillRandom(in)
out := make([]byte, length)
fillRandom(out)
expect := make([]byte, length)
for i := range expect {
expect[i] = in[i] ^ out[i]
}
sliceXor(in, out, false)
if 0 != bytes.Compare(out, expect) {
t.Errorf("got %#v, expected %#v", out, expect)
}
fillRandom(out)
for i := range expect {
expect[i] = in[i] ^ out[i]
}
sliceXor(in, out, true)
if 0 != bytes.Compare(out, expect) {
t.Errorf("got %#v, expected %#v", out, expect)
}
}
for i := 0; i < 256; i++ {
a := byte(i)
for j := 0; j < 256; j++ {
b := byte(j)
for k := 0; k < 256; k++ {
c := byte(k)
x := galAdd(a, galAdd(b, c))
y := galAdd(galAdd(a, b), c)
if x != y {
t.Fatal("add does not match:", x, "!=", y)
}
x = galMultiply(a, galMultiply(b, c))
y = galMultiply(galMultiply(a, b), c)
if x != y {
t.Fatal("multiply does not match:", x, "!=", y)
}
}
}
}
}
func benchmarkGalois(b *testing.B, size int) {
in := make([]byte, size)
out := make([]byte, size)
b.SetBytes(int64(size))
b.ResetTimer()
for i := 0; i < b.N; i++ {
galMulSlice(25, in[:], out[:], true, false)
}
}
func BenchmarkGalois128K(b *testing.B) {
benchmarkGalois(b, 128*1024)
}
func BenchmarkGalois1M(b *testing.B) {
benchmarkGalois(b, 1024*1024)
}
func benchmarkGaloisXor(b *testing.B, size int) {
in := make([]byte, size)
out := make([]byte, size)
b.SetBytes(int64(size))
b.ResetTimer()
for i := 0; i < b.N; i++ {
galMulSliceXor(177, in[:], out[:], true, false)
}
}
func BenchmarkGaloisXor128K(b *testing.B) {
benchmarkGaloisXor(b, 128*1024)
}
func BenchmarkGaloisXor1M(b *testing.B) {
benchmarkGaloisXor(b, 1024*1024)
}

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vendor/github.com/klauspost/reedsolomon/gentables.go generated vendored Normal file
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//+build ignore
package main
import (
"fmt"
)
var logTable = [fieldSize]int16{
-1, 0, 1, 25, 2, 50, 26, 198,
3, 223, 51, 238, 27, 104, 199, 75,
4, 100, 224, 14, 52, 141, 239, 129,
28, 193, 105, 248, 200, 8, 76, 113,
5, 138, 101, 47, 225, 36, 15, 33,
53, 147, 142, 218, 240, 18, 130, 69,
29, 181, 194, 125, 106, 39, 249, 185,
201, 154, 9, 120, 77, 228, 114, 166,
6, 191, 139, 98, 102, 221, 48, 253,
226, 152, 37, 179, 16, 145, 34, 136,
54, 208, 148, 206, 143, 150, 219, 189,
241, 210, 19, 92, 131, 56, 70, 64,
30, 66, 182, 163, 195, 72, 126, 110,
107, 58, 40, 84, 250, 133, 186, 61,
202, 94, 155, 159, 10, 21, 121, 43,
78, 212, 229, 172, 115, 243, 167, 87,
7, 112, 192, 247, 140, 128, 99, 13,
103, 74, 222, 237, 49, 197, 254, 24,
227, 165, 153, 119, 38, 184, 180, 124,
17, 68, 146, 217, 35, 32, 137, 46,
55, 63, 209, 91, 149, 188, 207, 205,
144, 135, 151, 178, 220, 252, 190, 97,
242, 86, 211, 171, 20, 42, 93, 158,
132, 60, 57, 83, 71, 109, 65, 162,
31, 45, 67, 216, 183, 123, 164, 118,
196, 23, 73, 236, 127, 12, 111, 246,
108, 161, 59, 82, 41, 157, 85, 170,
251, 96, 134, 177, 187, 204, 62, 90,
203, 89, 95, 176, 156, 169, 160, 81,
11, 245, 22, 235, 122, 117, 44, 215,
79, 174, 213, 233, 230, 231, 173, 232,
116, 214, 244, 234, 168, 80, 88, 175,
}
const (
// The number of elements in the field.
fieldSize = 256
// The polynomial used to generate the logarithm table.
//
// There are a number of polynomials that work to generate
// a Galois field of 256 elements. The choice is arbitrary,
// and we just use the first one.
//
// The possibilities are: 29, 43, 45, 77, 95, 99, 101, 105,
//* 113, 135, 141, 169, 195, 207, 231, and 245.
generatingPolynomial = 29
)
func main() {
t := generateExpTable()
fmt.Printf("var expTable = %#v\n", t)
//t2 := generateMulTableSplit(t)
//fmt.Printf("var mulTable = %#v\n", t2)
low, high := generateMulTableHalf(t)
fmt.Printf("var mulTableLow = %#v\n", low)
fmt.Printf("var mulTableHigh = %#v\n", high)
}
/**
* Generates the inverse log table.
*/
func generateExpTable() []byte {
result := make([]byte, fieldSize*2-2)
for i := 1; i < fieldSize; i++ {
log := logTable[i]
result[log] = byte(i)
result[log+fieldSize-1] = byte(i)
}
return result
}
func generateMulTable(expTable []byte) []byte {
result := make([]byte, 256*256)
for v := range result {
a := byte(v & 0xff)
b := byte(v >> 8)
if a == 0 || b == 0 {
result[v] = 0
continue
}
logA := int(logTable[a])
logB := int(logTable[b])
result[v] = expTable[logA+logB]
}
return result
}
func generateMulTableSplit(expTable []byte) [256][256]byte {
var result [256][256]byte
for a := range result {
for b := range result[a] {
if a == 0 || b == 0 {
result[a][b] = 0
continue
}
logA := int(logTable[a])
logB := int(logTable[b])
result[a][b] = expTable[logA+logB]
}
}
return result
}
func generateMulTableHalf(expTable []byte) (low [256][16]byte, high [256][16]byte) {
for a := range low {
for b := range low {
result := 0
if !(a == 0 || b == 0) {
logA := int(logTable[a])
logB := int(logTable[b])
result = int(expTable[logA+logB])
}
if (b & 0xf) == b {
low[a][b] = byte(result)
}
if (b & 0xf0) == b {
high[a][b>>4] = byte(result)
}
}
}
return
}

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/**
* A thread-safe tree which caches inverted matrices.
*
* Copyright 2016, Peter Collins
*/
package reedsolomon
import (
"errors"
"sync"
)
// The tree uses a Reader-Writer mutex to make it thread-safe
// when accessing cached matrices and inserting new ones.
type inversionTree struct {
mutex *sync.RWMutex
root inversionNode
}
type inversionNode struct {
matrix matrix
children []*inversionNode
}
// newInversionTree initializes a tree for storing inverted matrices.
// Note that the root node is the identity matrix as it implies
// there were no errors with the original data.
func newInversionTree(dataShards, parityShards int) inversionTree {
identity, _ := identityMatrix(dataShards)
root := inversionNode{
matrix: identity,
children: make([]*inversionNode, dataShards+parityShards),
}
return inversionTree{
mutex: &sync.RWMutex{},
root: root,
}
}
// GetInvertedMatrix returns the cached inverted matrix or nil if it
// is not found in the tree keyed on the indices of invalid rows.
func (t inversionTree) GetInvertedMatrix(invalidIndices []int) matrix {
// Lock the tree for reading before accessing the tree.
t.mutex.RLock()
defer t.mutex.RUnlock()
// If no invalid indices were give we should return the root
// identity matrix.
if len(invalidIndices) == 0 {
return t.root.matrix
}
// Recursively search for the inverted matrix in the tree, passing in
// 0 as the parent index as we start at the root of the tree.
return t.root.getInvertedMatrix(invalidIndices, 0)
}
// errAlreadySet is returned if the root node matrix is overwritten
var errAlreadySet = errors.New("the root node identity matrix is already set")
// InsertInvertedMatrix inserts a new inverted matrix into the tree
// keyed by the indices of invalid rows. The total number of shards
// is required for creating the proper length lists of child nodes for
// each node.
func (t inversionTree) InsertInvertedMatrix(invalidIndices []int, matrix matrix, shards int) error {
// If no invalid indices were given then we are done because the
// root node is already set with the identity matrix.
if len(invalidIndices) == 0 {
return errAlreadySet
}
if !matrix.IsSquare() {
return errNotSquare
}
// Lock the tree for writing and reading before accessing the tree.
t.mutex.Lock()
defer t.mutex.Unlock()
// Recursively create nodes for the inverted matrix in the tree until
// we reach the node to insert the matrix to. We start by passing in
// 0 as the parent index as we start at the root of the tree.
t.root.insertInvertedMatrix(invalidIndices, matrix, shards, 0)
return nil
}
func (n inversionNode) getInvertedMatrix(invalidIndices []int, parent int) matrix {
// Get the child node to search next from the list of children. The
// list of children starts relative to the parent index passed in
// because the indices of invalid rows is sorted (by default). As we
// search recursively, the first invalid index gets popped off the list,
// so when searching through the list of children, use that first invalid
// index to find the child node.
firstIndex := invalidIndices[0]
node := n.children[firstIndex-parent]
// If the child node doesn't exist in the list yet, fail fast by
// returning, so we can construct and insert the proper inverted matrix.
if node == nil {
return nil
}
// If there's more than one invalid index left in the list we should
// keep searching recursively.
if len(invalidIndices) > 1 {
// Search recursively on the child node by passing in the invalid indices
// with the first index popped off the front. Also the parent index to
// pass down is the first index plus one.
return node.getInvertedMatrix(invalidIndices[1:], firstIndex+1)
}
// If there aren't any more invalid indices to search, we've found our
// node. Return it, however keep in mind that the matrix could still be
// nil because intermediary nodes in the tree are created sometimes with
// their inversion matrices uninitialized.
return node.matrix
}
func (n inversionNode) insertInvertedMatrix(invalidIndices []int, matrix matrix, shards, parent int) {
// As above, get the child node to search next from the list of children.
// The list of children starts relative to the parent index passed in
// because the indices of invalid rows is sorted (by default). As we
// search recursively, the first invalid index gets popped off the list,
// so when searching through the list of children, use that first invalid
// index to find the child node.
firstIndex := invalidIndices[0]
node := n.children[firstIndex-parent]
// If the child node doesn't exist in the list yet, create a new
// node because we have the writer lock and add it to the list
// of children.
if node == nil {
// Make the length of the list of children equal to the number
// of shards minus the first invalid index because the list of
// invalid indices is sorted, so only this length of errors
// are possible in the tree.
node = &inversionNode{
children: make([]*inversionNode, shards-firstIndex),
}
// Insert the new node into the tree at the first index relative
// to the parent index that was given in this recursive call.
n.children[firstIndex-parent] = node
}
// If there's more than one invalid index left in the list we should
// keep searching recursively in order to find the node to add our
// matrix.
if len(invalidIndices) > 1 {
// As above, search recursively on the child node by passing in
// the invalid indices with the first index popped off the front.
// Also the total number of shards and parent index are passed down
// which is equal to the first index plus one.
node.insertInvertedMatrix(invalidIndices[1:], matrix, shards, firstIndex+1)
} else {
// If there aren't any more invalid indices to search, we've found our
// node. Cache the inverted matrix in this node.
node.matrix = matrix
}
}

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/**
* Unit tests for inversion tree.
*
* Copyright 2016, Peter Collins
*/
package reedsolomon
import (
"testing"
)
func TestNewInversionTree(t *testing.T) {
tree := newInversionTree(3, 2)
children := len(tree.root.children)
if children != 5 {
t.Fatal("Root node children list length", children, "!=", 5)
}
str := tree.root.matrix.String()
expect := "[[1, 0, 0], [0, 1, 0], [0, 0, 1]]"
if str != expect {
t.Fatal(str, "!=", expect)
}
}
func TestGetInvertedMatrix(t *testing.T) {
tree := newInversionTree(3, 2)
matrix := tree.GetInvertedMatrix([]int{})
str := matrix.String()
expect := "[[1, 0, 0], [0, 1, 0], [0, 0, 1]]"
if str != expect {
t.Fatal(str, "!=", expect)
}
matrix = tree.GetInvertedMatrix([]int{1})
if matrix != nil {
t.Fatal(matrix, "!= nil")
}
matrix = tree.GetInvertedMatrix([]int{1, 2})
if matrix != nil {
t.Fatal(matrix, "!= nil")
}
matrix, err := newMatrix(3, 3)
if err != nil {
t.Fatalf("Failed initializing new Matrix : %s", err)
}
err = tree.InsertInvertedMatrix([]int{1}, matrix, 5)
if err != nil {
t.Fatalf("Failed inserting new Matrix : %s", err)
}
cachedMatrix := tree.GetInvertedMatrix([]int{1})
if cachedMatrix == nil {
t.Fatal(cachedMatrix, "== nil")
}
if matrix.String() != cachedMatrix.String() {
t.Fatal(matrix.String(), "!=", cachedMatrix.String())
}
}
func TestInsertInvertedMatrix(t *testing.T) {
tree := newInversionTree(3, 2)
matrix, err := newMatrix(3, 3)
if err != nil {
t.Fatalf("Failed initializing new Matrix : %s", err)
}
err = tree.InsertInvertedMatrix([]int{1}, matrix, 5)
if err != nil {
t.Fatalf("Failed inserting new Matrix : %s", err)
}
err = tree.InsertInvertedMatrix([]int{}, matrix, 5)
if err == nil {
t.Fatal("Should have failed inserting the root node matrix", matrix)
}
matrix, err = newMatrix(3, 2)
if err != nil {
t.Fatalf("Failed initializing new Matrix : %s", err)
}
err = tree.InsertInvertedMatrix([]int{2}, matrix, 5)
if err == nil {
t.Fatal("Should have failed inserting a non-square matrix", matrix)
}
matrix, err = newMatrix(3, 3)
if err != nil {
t.Fatalf("Failed initializing new Matrix : %s", err)
}
err = tree.InsertInvertedMatrix([]int{0, 1}, matrix, 5)
if err != nil {
t.Fatalf("Failed inserting new Matrix : %s", err)
}
}
func TestDoubleInsertInvertedMatrix(t *testing.T) {
tree := newInversionTree(3, 2)
matrix, err := newMatrix(3, 3)
if err != nil {
t.Fatalf("Failed initializing new Matrix : %s", err)
}
err = tree.InsertInvertedMatrix([]int{1}, matrix, 5)
if err != nil {
t.Fatalf("Failed inserting new Matrix : %s", err)
}
err = tree.InsertInvertedMatrix([]int{1}, matrix, 5)
if err != nil {
t.Fatalf("Failed inserting new Matrix : %s", err)
}
cachedMatrix := tree.GetInvertedMatrix([]int{1})
if cachedMatrix == nil {
t.Fatal(cachedMatrix, "== nil")
}
if matrix.String() != cachedMatrix.String() {
t.Fatal(matrix.String(), "!=", cachedMatrix.String())
}
}

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