WIP RSA support
This commit is contained in:
30
crypto/rsa/key.go
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30
crypto/rsa/key.go
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@@ -0,0 +1,30 @@
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package rsa
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import (
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"crypto/rand"
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"crypto/rsa"
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"fmt"
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)
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const (
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MultibaseCode = uint64(0x1205)
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MinRsaKeyBits = 2048
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MaxRsaKeyBits = 8192
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)
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func GenerateKeyPair(bits int) (*PublicKey, *PrivateKey, error) {
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if bits < MinRsaKeyBits || bits > MaxRsaKeyBits {
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return nil, nil, fmt.Errorf("invalid key size: %d", bits)
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}
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priv, err := rsa.GenerateKey(rand.Reader, bits)
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if err != nil {
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return nil, nil, err
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}
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return &PublicKey{k: &priv.PublicKey}, &PrivateKey{k: priv}, nil
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}
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const (
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pemPubBlockType = "PUBLIC KEY"
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pemPrivBlockType = "PRIVATE KEY"
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)
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89
crypto/rsa/key_test.go
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89
crypto/rsa/key_test.go
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@@ -0,0 +1,89 @@
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package rsa
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import (
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"testing"
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"github.com/stretchr/testify/require"
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"github.com/INFURA/go-did/crypto/_testsuite"
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)
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var harness = testsuite.TestHarness[*PublicKey, *PrivateKey]{
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Name: "rsa-2048",
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GenerateKeyPair: func() (*PublicKey, *PrivateKey, error) { return GenerateKeyPair(2048) },
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PublicKeyFromPublicKeyMultibase: PublicKeyFromPublicKeyMultibase,
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PublicKeyFromX509DER: PublicKeyFromX509DER,
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PublicKeyFromX509PEM: PublicKeyFromX509PEM,
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PrivateKeyFromPKCS8DER: PrivateKeyFromPKCS8DER,
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PrivateKeyFromPKCS8PEM: PrivateKeyFromPKCS8PEM,
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MultibaseCode: MultibaseCode,
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SignatureBytesSize: 123456,
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}
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func TestSuite(t *testing.T) {
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testsuite.TestSuite(t, harness)
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}
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func BenchmarkSuite(b *testing.B) {
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testsuite.BenchSuite(b, harness)
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}
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func TestPublicKeyX509(t *testing.T) {
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// openssl genpkey -algorithm RSA -out private_key.pem -pkeyopt rsa_keygen_bits:2048
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// openssl pkey -in private_key.pem -pubout -out public_key.pem
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pem := `-----BEGIN PUBLIC KEY-----
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MIIBIjANBgkqhkiG9w0BAQEFAAOCAQ8AMIIBCgKCAQEAyLFQUbVVo/rctJaCzR5z
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g622eUNBwZmA1vnDEXnHWBl3y5RJF5zyTdlouujjmEuu6qsXk1NCNQ3dLH2iquI8
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iFFAhS4kTX6JS+wR3vHLhga1oFkPceGFEUG/3vxn52ozFs8hikhq/P09HmLub7Vc
|
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VklwrGvTbEa5Fn/2Kz6olw5ExYI14Unsl+A3iw8AXPL9/acD+ehoyx3/zKFrVTKx
|
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e9jdoWX8L7IpqM2HOSu23/3E2IwH2GdY0C8575AiD/O555hie7JHkzF3I4E85gPd
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ZgXYFShIfgOzDV0q4oP0pzqYkErhdjOpigCMjDuIC4OueZYqYJrP2rdpzuqoqk07
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NwIDAQAB
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-----END PUBLIC KEY-----
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`
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pub, err := PublicKeyFromX509PEM(pem)
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require.NoError(t, err)
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rt := pub.ToX509PEM()
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require.Equal(t, pem, rt)
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}
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func TestPrivateKeyPKCS8(t *testing.T) {
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// openssl genpkey -algorithm RSA -out private_key.pem -pkeyopt rsa_keygen_bits:2048
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pem := `-----BEGIN PRIVATE KEY-----
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MIIEvwIBADANBgkqhkiG9w0BAQEFAASCBKkwggSlAgEAAoIBAQDIsVBRtVWj+ty0
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loLNHnODrbZ5Q0HBmYDW+cMRecdYGXfLlEkXnPJN2Wi66OOYS67qqxeTU0I1Dd0s
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faKq4jyIUUCFLiRNfolL7BHe8cuGBrWgWQ9x4YURQb/e/GfnajMWzyGKSGr8/T0e
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Yu5vtVxWSXCsa9NsRrkWf/YrPqiXDkTFgjXhSeyX4DeLDwBc8v39pwP56GjLHf/M
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oWtVMrF72N2hZfwvsimozYc5K7bf/cTYjAfYZ1jQLznvkCIP87nnmGJ7skeTMXcj
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gTzmA91mBdgVKEh+A7MNXSrig/SnOpiQSuF2M6mKAIyMO4gLg655lipgms/at2nO
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6qiqTTs3AgMBAAECggEAVFVqZoN4QumSYBKVUYOX0AAp2ygflC6gnPWkeo39bjB5
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jiM4WcNacMtIvq5JoYBANx2BUSfd/PRf+ierOPrLrA7UuYJLwALJyA0h71kVCLN+
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FC0Il/bIF5nU+mt/cBfI8y9ELVtEFh6GVeQFxQxlil7fCZ1f4TKQ6XsJI1/3sU2P
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hbOuyfKKiWym8n5BV6NP3gotjnT01I+seplx3oMOKIaGl0KMgkuU2r8o8WMjA7Gx
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1WWPJDpUdyYDYSUH8PubXowHkE+2RXddZ+tGvS8mF/A4Q0hdj2T9XvzyZ813O9Tv
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n522A9QQE8YlqwAYh4z3VoNhz+Fi1mQfYsIblNygSQKBgQDrk+kB/dz92RPhP/rh
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zAOvwRuI2TOaw98kdgpVlb6gMVmN2EWkzkdnwQDJhV+MFZob4wi+TpsDPv4fjubq
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gqbM/MYc0kNtIEA4GkIJLCK5Hh7c6kCQfya+/eq4Ju6C3+I4R46/+9E7ixA83Zjf
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ftqTlYOrlMby84Lvsf81LtiMiQKBgQDaFzXpDBPOIaup68k9NeZyXHKI8wNQXkui
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JyjM9A3U2D8O9Yty8G+Oq0B4oUGlyenMGJiQmf3bAffJBkLCMXCGXYD8CCKsiSJ6
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R6XBfbpPkzCwl67FFN/8Z0nxZ0lbxd2ZMTC4qxH4peD5TNZM89kTpSNXPrr55zzm
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qREmxisZvwKBgQCNK3jBScjpkfFY1UdZkjFPXDBM5KQJBYGtztLIkNDIHGqnFsg9
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R6QAp+b53GPyhWtxdK7jpCU+X7xXWwJD3AFq67sowFPJjD8Pn6Sc7IbuWf9ysSn5
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rUihwXWr3yCk6tcclL0VjSjIPsB/SOf4XoNLV5is9J34Lzbyvr7JtwXryQKBgQCM
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m3xRdUzrkD/J/M+w3ChoQPxDGVJgpXrj35Vplku4l3cIYPz4LNXvyK93VpgpmGVZ
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Bd6PFAlcAwfLHnM6Gn/u0SgQ1fns/TkyVzEh77qIBWDV6eVvAQdsBvfgYPQl7Arz
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8ofz969NfTzv3j8oO+sPxF9lp3cLGa/lEsmREyDEpwKBgQCvW+NK93oajo358gKh
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/xfSv7yMiSL26NcIgHmQouZVXJ3Dg0KSISx8tgY0/7TwC2mPa0Ryhpb/3HtAIXoY
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eqkQGHqnC4voxSoati667mMGdHL1+12WvQmhfTLCWmZ5ccNlR+aFD20TGbMxnejS
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XnARctVkIcUYORcYwvuu9meDkw==
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-----END PRIVATE KEY-----
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`
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priv, err := PrivateKeyFromPKCS8PEM(pem)
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require.NoError(t, err)
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rt := priv.ToPKCS8PEM()
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require.Equal(t, pem, rt)
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}
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181
crypto/rsa/private.go
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181
crypto/rsa/private.go
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@@ -0,0 +1,181 @@
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package rsa
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import (
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"crypto/rsa"
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"crypto/x509"
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"encoding/pem"
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"fmt"
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"math/big"
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"github.com/INFURA/go-did/crypto"
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)
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var _ crypto.PrivateKeySigning = &PrivateKey{}
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type PrivateKey struct {
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k *rsa.PrivateKey
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}
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func PrivateKeyFromNEDPQ(n, e, d, p, q []byte) (*PrivateKey, error) {
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pub, err := PublicKeyFromNE(n, e)
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if err != nil {
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return nil, err
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}
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dBInt := new(big.Int).SetBytes(d)
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pBInt := new(big.Int).SetBytes(p)
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qBInt := new(big.Int).SetBytes(q)
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priv := &rsa.PrivateKey{
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PublicKey: *pub.k,
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D: dBInt,
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Primes: []*big.Int{pBInt, qBInt},
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}
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// // while go doesn't care, we ensure to have the JWK canonical order of primes,
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// // so that the JWK code becomes simpler
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// if subtle.ConstantTimeCompare(p, q) > 0 {
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// priv.Primes[0], priv.Primes[1] = priv.Primes[1], priv.Primes[0]
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// }
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err = priv.Validate()
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if err != nil {
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return nil, err
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}
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priv.Precompute()
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return &PrivateKey{k: priv}, nil
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}
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// PrivateKeyFromPKCS8DER decodes a PKCS#8 DER (binary) encoded private key.
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func PrivateKeyFromPKCS8DER(bytes []byte) (*PrivateKey, error) {
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priv, err := x509.ParsePKCS8PrivateKey(bytes)
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if err != nil {
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return nil, err
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}
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rsaPriv := priv.(*rsa.PrivateKey)
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return &PrivateKey{k: rsaPriv}, nil
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}
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// PrivateKeyFromPKCS8PEM decodes an PKCS#8 PEM (string) encoded private key.
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func PrivateKeyFromPKCS8PEM(str string) (*PrivateKey, error) {
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block, _ := pem.Decode([]byte(str))
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if block == nil {
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return nil, fmt.Errorf("failed to decode PEM block")
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}
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if block.Type != pemPrivBlockType {
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return nil, fmt.Errorf("incorrect PEM block type")
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}
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return PrivateKeyFromPKCS8DER(block.Bytes)
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}
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func (p *PrivateKey) BitLen() int {
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return p.k.N.BitLen()
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}
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func (p *PrivateKey) DBytes() []byte {
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byteLength := (p.k.D.BitLen() + 7) / 8 // Round up to the nearest byte
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buf := make([]byte, byteLength)
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p.k.D.FillBytes(buf)
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return buf
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}
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func (p *PrivateKey) PBytes() []byte {
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byteLength := (p.k.Primes[0].BitLen() + 7) / 8 // Round up to the nearest byte
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buf := make([]byte, byteLength)
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p.k.Primes[0].FillBytes(buf)
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return buf
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}
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func (p *PrivateKey) QBytes() []byte {
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byteLength := (p.k.Primes[1].BitLen() + 7) / 8 // Round up to the nearest byte
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buf := make([]byte, byteLength)
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p.k.Primes[1].FillBytes(buf)
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return buf
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}
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func (p *PrivateKey) DpBytes() []byte {
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if p.k.Precomputed.Dp == nil {
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p.k.Precompute()
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}
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byteLength := (p.k.Precomputed.Dp.BitLen() + 7) / 8 // Round up to the nearest byte
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buf := make([]byte, byteLength)
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p.k.Precomputed.Dp.FillBytes(buf)
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return buf
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}
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func (p *PrivateKey) DqBytes() []byte {
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if p.k.Precomputed.Dq == nil {
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p.k.Precompute()
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}
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byteLength := (p.k.Precomputed.Dq.BitLen() + 7) / 8 // Round up to the nearest byte
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buf := make([]byte, byteLength)
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p.k.Precomputed.Dq.FillBytes(buf)
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return buf
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}
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func (p *PrivateKey) QiBytes() []byte {
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if p.k.Precomputed.Qinv == nil {
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p.k.Precompute()
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}
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byteLength := (p.k.Precomputed.Qinv.BitLen() + 7) / 8 // Round up to the nearest byte
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buf := make([]byte, byteLength)
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p.k.Precomputed.Qinv.FillBytes(buf)
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return buf
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}
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func (p *PrivateKey) Equal(other crypto.PrivateKey) bool {
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if other, ok := other.(*PrivateKey); ok {
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return p.k.Equal(other.k)
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}
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return false
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}
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func (p *PrivateKey) Public() crypto.PublicKey {
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rsaPub := p.k.Public().(*rsa.PublicKey)
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return &PublicKey{k: rsaPub}
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}
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func (p *PrivateKey) ToPKCS8DER() []byte {
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res, _ := x509.MarshalPKCS8PrivateKey(p.k)
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return res
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}
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func (p *PrivateKey) ToPKCS8PEM() string {
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der := p.ToPKCS8DER()
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return string(pem.EncodeToMemory(&pem.Block{
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Type: pemPrivBlockType,
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Bytes: der,
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}))
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}
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func (p *PrivateKey) SignToBytes(message []byte, opts ...crypto.SigningOption) ([]byte, error) {
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return nil, fmt.Errorf("not implemented")
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}
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func (p *PrivateKey) SignToASN1(message []byte, opts ...crypto.SigningOption) ([]byte, error) {
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return nil, fmt.Errorf("not implemented")
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}
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// func (p *PrivateKey) PublicKeyIsCompatible(remote crypto.PublicKey) bool {
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// if _, ok := remote.(*PublicKey); ok {
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// return true
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// }
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// return false
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// }
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//
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// func (p *PrivateKey) KeyExchange(remote crypto.PublicKey) ([]byte, error) {
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// if remote, ok := remote.(*PublicKey); ok {
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// // First, we need to convert the ECDSA (signing only) to the equivalent ECDH keys
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// ecdhPriv, err := p.k.ECDH()
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// if err != nil {
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// return nil, err
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// }
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// ecdhPub, err := remote.k.ECDH()
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// if err != nil {
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// return nil, err
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// }
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//
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// return ecdhPriv.ECDH(ecdhPub)
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// }
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// return nil, fmt.Errorf("incompatible public key")
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// }
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134
crypto/rsa/public.go
Normal file
134
crypto/rsa/public.go
Normal file
@@ -0,0 +1,134 @@
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package rsa
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import (
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"crypto/rsa"
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"crypto/x509"
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"encoding/pem"
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"fmt"
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"math/big"
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"github.com/INFURA/go-did/crypto"
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helpers "github.com/INFURA/go-did/crypto/internal"
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)
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var _ crypto.PublicKeySigning = &PublicKey{}
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type PublicKey struct {
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k *rsa.PublicKey
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}
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func PublicKeyFromPKCS1DER(bytes []byte) (*PublicKey, error) {
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pub, err := x509.ParsePKCS1PublicKey(bytes)
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if err != nil {
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return nil, err
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}
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return &PublicKey{k: pub}, nil
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}
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func PublicKeyFromNE(n, e []byte) (*PublicKey, error) {
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nBInt := new(big.Int).SetBytes(n)
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// some basic checks
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if nBInt.Sign() <= 0 {
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return nil, fmt.Errorf("invalid modulus")
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}
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if nBInt.BitLen() < MinRsaKeyBits {
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return nil, fmt.Errorf("key length too small")
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}
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if nBInt.BitLen() > MaxRsaKeyBits {
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return nil, fmt.Errorf("key length too large")
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}
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if nBInt.Bit(0) == 0 {
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return nil, fmt.Errorf("modulus must be odd")
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}
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eBInt := new(big.Int).SetBytes(e)
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// some basic checks
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if !eBInt.IsInt64() {
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return nil, fmt.Errorf("invalid exponent")
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}
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if eBInt.Sign() <= 0 {
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return nil, fmt.Errorf("exponent must be positive")
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}
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if eBInt.Bit(0) == 0 {
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return nil, fmt.Errorf("exponent must be odd")
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}
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return &PublicKey{k: &rsa.PublicKey{N: nBInt, E: int(eBInt.Int64())}}, nil
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}
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// PublicKeyFromPublicKeyMultibase decodes the public key from its Multibase form
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func PublicKeyFromPublicKeyMultibase(multibase string) (*PublicKey, error) {
|
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code, bytes, err := helpers.PublicKeyMultibaseDecode(multibase)
|
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if err != nil {
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return nil, err
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}
|
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if code != MultibaseCode {
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return nil, fmt.Errorf("invalid code")
|
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}
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return PublicKeyFromX509DER(bytes)
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}
|
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|
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// PublicKeyFromX509DER decodes an X.509 DER (binary) encoded public key.
|
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func PublicKeyFromX509DER(bytes []byte) (*PublicKey, error) {
|
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pub, err := x509.ParsePKIXPublicKey(bytes)
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if err != nil {
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return nil, err
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}
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return &PublicKey{k: pub.(*rsa.PublicKey)}, nil
|
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}
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|
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// PublicKeyFromX509PEM decodes an X.509 PEM (string) encoded public key.
|
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func PublicKeyFromX509PEM(str string) (*PublicKey, error) {
|
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block, _ := pem.Decode([]byte(str))
|
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if block == nil {
|
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return nil, fmt.Errorf("failed to decode PEM block")
|
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}
|
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if block.Type != pemPubBlockType {
|
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return nil, fmt.Errorf("incorrect PEM block type")
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}
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return PublicKeyFromX509DER(block.Bytes)
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}
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func (p *PublicKey) BitLen() int {
|
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return p.k.N.BitLen()
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}
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|
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func (p *PublicKey) NBytes() []byte {
|
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return p.k.N.Bytes()
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}
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func (p *PublicKey) EBytes() []byte {
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return new(big.Int).SetInt64(int64(p.k.E)).Bytes()
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}
|
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|
||||
func (p *PublicKey) Equal(other crypto.PublicKey) bool {
|
||||
if other, ok := other.(*PublicKey); ok {
|
||||
return p.k.Equal(other.k)
|
||||
}
|
||||
return false
|
||||
}
|
||||
|
||||
func (p *PublicKey) ToPublicKeyMultibase() string {
|
||||
bytes := p.ToX509DER()
|
||||
return helpers.PublicKeyMultibaseEncode(MultibaseCode, bytes)
|
||||
}
|
||||
|
||||
func (p *PublicKey) ToX509DER() []byte {
|
||||
res, _ := x509.MarshalPKIXPublicKey(p.k)
|
||||
return res
|
||||
}
|
||||
|
||||
func (p *PublicKey) ToX509PEM() string {
|
||||
der := p.ToX509DER()
|
||||
return string(pem.EncodeToMemory(&pem.Block{
|
||||
Type: pemPubBlockType,
|
||||
Bytes: der,
|
||||
}))
|
||||
}
|
||||
|
||||
func (p *PublicKey) VerifyBytes(message, signature []byte, opts ...crypto.SigningOption) bool {
|
||||
return false
|
||||
}
|
||||
|
||||
func (p *PublicKey) VerifyASN1(message, signature []byte, opts ...crypto.SigningOption) bool {
|
||||
return false
|
||||
}
|
||||
Reference in New Issue
Block a user