42941ccea6
- Packages - Isolate code used by the CLI into the package `cmd` - (experimental) Add e2e tests for HTTP01, TLS-ALPN-01 and DNS-01, use [Pebble](https://github.com/letsencrypt/pebble) and [challtestsrv](https://github.com/letsencrypt/boulder/tree/master/test/challtestsrv) - Support non-ascii domain name (punnycode) - Check all challenges in a predictable order - No more global exported variables - Archive revoked certificates - Fixes revocation for subdomains and non-ascii domains - Disable pending authorizations - use pointer for RemoteError/ProblemDetails - Poll authz URL instead of challenge URL - The ability for a DNS provider to solve the challenge sequentially - Check all nameservers in a predictable order - Option to disable the complete propagation Requirement - CLI, support for renew with CSR - CLI, add SAN on renew - Add command to list certificates. - Logs every iteration of waiting for the propagation - update DNSimple client - update github.com/miekg/dns
198 lines
5.3 KiB
Go
198 lines
5.3 KiB
Go
//+build ignore
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// compression_generate.go is meant to run with go generate. It will use
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// go/{importer,types} to track down all the RR struct types. Then for each type
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// it will look to see if there are (compressible) names, if so it will add that
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// type to compressionLenHelperType and comressionLenSearchType which "fake" the
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// compression so that Len() is fast.
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package main
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import (
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"bytes"
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"fmt"
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"go/format"
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"go/importer"
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"go/types"
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"log"
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"os"
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)
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var packageHdr = `
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// Code generated by "go run compress_generate.go"; DO NOT EDIT.
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package dns
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`
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// getTypeStruct will take a type and the package scope, and return the
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// (innermost) struct if the type is considered a RR type (currently defined as
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// those structs beginning with a RR_Header, could be redefined as implementing
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// the RR interface). The bool return value indicates if embedded structs were
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// resolved.
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func getTypeStruct(t types.Type, scope *types.Scope) (*types.Struct, bool) {
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st, ok := t.Underlying().(*types.Struct)
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if !ok {
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return nil, false
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}
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if st.Field(0).Type() == scope.Lookup("RR_Header").Type() {
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return st, false
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}
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if st.Field(0).Anonymous() {
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st, _ := getTypeStruct(st.Field(0).Type(), scope)
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return st, true
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}
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return nil, false
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}
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func main() {
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// Import and type-check the package
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pkg, err := importer.Default().Import("github.com/miekg/dns")
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fatalIfErr(err)
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scope := pkg.Scope()
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var domainTypes []string // Types that have a domain name in them (either compressible or not).
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var cdomainTypes []string // Types that have a compressible domain name in them (subset of domainType)
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Names:
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for _, name := range scope.Names() {
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o := scope.Lookup(name)
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if o == nil || !o.Exported() {
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continue
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}
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st, _ := getTypeStruct(o.Type(), scope)
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if st == nil {
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continue
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}
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if name == "PrivateRR" {
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continue
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}
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if scope.Lookup("Type"+o.Name()) == nil && o.Name() != "RFC3597" {
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log.Fatalf("Constant Type%s does not exist.", o.Name())
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}
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for i := 1; i < st.NumFields(); i++ {
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if _, ok := st.Field(i).Type().(*types.Slice); ok {
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if st.Tag(i) == `dns:"domain-name"` {
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domainTypes = append(domainTypes, o.Name())
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continue Names
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}
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if st.Tag(i) == `dns:"cdomain-name"` {
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cdomainTypes = append(cdomainTypes, o.Name())
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domainTypes = append(domainTypes, o.Name())
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continue Names
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}
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continue
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}
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switch {
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case st.Tag(i) == `dns:"domain-name"`:
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domainTypes = append(domainTypes, o.Name())
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continue Names
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case st.Tag(i) == `dns:"cdomain-name"`:
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cdomainTypes = append(cdomainTypes, o.Name())
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domainTypes = append(domainTypes, o.Name())
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continue Names
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}
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}
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}
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b := &bytes.Buffer{}
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b.WriteString(packageHdr)
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// compressionLenHelperType - all types that have domain-name/cdomain-name can be used for compressing names
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fmt.Fprint(b, "func compressionLenHelperType(c map[string]struct{}, r RR, initLen int) int {\n")
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fmt.Fprint(b, "currentLen := initLen\n")
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fmt.Fprint(b, "switch x := r.(type) {\n")
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for _, name := range domainTypes {
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o := scope.Lookup(name)
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st, _ := getTypeStruct(o.Type(), scope)
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fmt.Fprintf(b, "case *%s:\n", name)
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for i := 1; i < st.NumFields(); i++ {
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out := func(s string) {
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fmt.Fprintf(b, "currentLen -= len(x.%s) + 1\n", st.Field(i).Name())
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fmt.Fprintf(b, "currentLen += compressionLenHelper(c, x.%s, currentLen)\n", st.Field(i).Name())
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}
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if _, ok := st.Field(i).Type().(*types.Slice); ok {
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switch st.Tag(i) {
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case `dns:"domain-name"`:
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fallthrough
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case `dns:"cdomain-name"`:
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// For HIP we need to slice over the elements in this slice.
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fmt.Fprintf(b, `for i := range x.%s {
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currentLen -= len(x.%s[i]) + 1
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}
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`, st.Field(i).Name(), st.Field(i).Name())
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fmt.Fprintf(b, `for i := range x.%s {
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currentLen += compressionLenHelper(c, x.%s[i], currentLen)
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}
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`, st.Field(i).Name(), st.Field(i).Name())
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}
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continue
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}
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switch {
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case st.Tag(i) == `dns:"cdomain-name"`:
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fallthrough
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case st.Tag(i) == `dns:"domain-name"`:
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out(st.Field(i).Name())
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}
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}
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}
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fmt.Fprintln(b, "}\nreturn currentLen - initLen\n}\n\n")
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// compressionLenSearchType - search cdomain-tags types for compressible names.
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fmt.Fprint(b, "func compressionLenSearchType(c map[string]struct{}, r RR) (int, bool, int) {\n")
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fmt.Fprint(b, "switch x := r.(type) {\n")
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for _, name := range cdomainTypes {
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o := scope.Lookup(name)
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st, _ := getTypeStruct(o.Type(), scope)
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fmt.Fprintf(b, "case *%s:\n", name)
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j := 1
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for i := 1; i < st.NumFields(); i++ {
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out := func(s string, j int) {
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fmt.Fprintf(b, "k%d, ok%d, sz%d := compressionLenSearch(c, x.%s)\n", j, j, j, st.Field(i).Name())
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}
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// There are no slice types with names that can be compressed.
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switch {
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case st.Tag(i) == `dns:"cdomain-name"`:
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out(st.Field(i).Name(), j)
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j++
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}
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}
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k := "k1"
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ok := "ok1"
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sz := "sz1"
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for i := 2; i < j; i++ {
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k += fmt.Sprintf(" + k%d", i)
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ok += fmt.Sprintf(" && ok%d", i)
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sz += fmt.Sprintf(" + sz%d", i)
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}
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fmt.Fprintf(b, "return %s, %s, %s\n", k, ok, sz)
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}
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fmt.Fprintln(b, "}\nreturn 0, false, 0\n}\n\n")
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// gofmt
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res, err := format.Source(b.Bytes())
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if err != nil {
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b.WriteTo(os.Stderr)
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log.Fatal(err)
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}
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f, err := os.Create("zcompress.go")
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fatalIfErr(err)
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defer f.Close()
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f.Write(res)
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}
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func fatalIfErr(err error) {
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if err != nil {
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log.Fatal(err)
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}
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}
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