crypto.go 6.0 KB

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  1. // Copyright 2014 The go-ethereum Authors
  2. // This file is part of the go-ethereum library.
  3. //
  4. // The go-ethereum library is free software: you can redistribute it and/or modify
  5. // it under the terms of the GNU Lesser General Public License as published by
  6. // the Free Software Foundation, either version 3 of the License, or
  7. // (at your option) any later version.
  8. //
  9. // The go-ethereum library is distributed in the hope that it will be useful,
  10. // but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. // GNU Lesser General Public License for more details.
  13. //
  14. // You should have received a copy of the GNU Lesser General Public License
  15. // along with the go-ethereum library. If not, see <http://www.gnu.org/licenses/>.
  16. package crypto
  17. import (
  18. "crypto/ecdsa"
  19. "crypto/elliptic"
  20. "crypto/rand"
  21. "encoding/hex"
  22. "errors"
  23. "fmt"
  24. "io"
  25. "io/ioutil"
  26. "math/big"
  27. "os"
  28. "github.com/ethereum/go-ethereum/common"
  29. "github.com/ethereum/go-ethereum/common/math"
  30. "github.com/ethereum/go-ethereum/crypto/sha3"
  31. "github.com/ethereum/go-ethereum/rlp"
  32. )
  33. var (
  34. secp256k1N, _ = new(big.Int).SetString("fffffffffffffffffffffffffffffffebaaedce6af48a03bbfd25e8cd0364141", 16)
  35. secp256k1halfN = new(big.Int).Div(secp256k1N, big.NewInt(2))
  36. )
  37. var errInvalidPubkey = errors.New("invalid secp256k1 public key")
  38. // Keccak256 calculates and returns the Keccak256 hash of the input data.
  39. func Keccak256(data ...[]byte) []byte {
  40. d := sha3.NewKeccak256()
  41. for _, b := range data {
  42. d.Write(b)
  43. }
  44. return d.Sum(nil)
  45. }
  46. // Keccak256Hash calculates and returns the Keccak256 hash of the input data,
  47. // converting it to an internal Hash data structure.
  48. func Keccak256Hash(data ...[]byte) (h common.Hash) {
  49. d := sha3.NewKeccak256()
  50. for _, b := range data {
  51. d.Write(b)
  52. }
  53. d.Sum(h[:0])
  54. return h
  55. }
  56. // Keccak512 calculates and returns the Keccak512 hash of the input data.
  57. func Keccak512(data ...[]byte) []byte {
  58. d := sha3.NewKeccak512()
  59. for _, b := range data {
  60. d.Write(b)
  61. }
  62. return d.Sum(nil)
  63. }
  64. // CreateAddress creates an ethereum address given the bytes and the nonce
  65. func CreateAddress(b common.Address, nonce uint64) common.Address {
  66. data, _ := rlp.EncodeToBytes([]interface{}{b, nonce})
  67. return common.BytesToAddress(Keccak256(data)[12:])
  68. }
  69. // ToECDSA creates a private key with the given D value.
  70. func ToECDSA(d []byte) (*ecdsa.PrivateKey, error) {
  71. return toECDSA(d, true)
  72. }
  73. // ToECDSAUnsafe blindly converts a binary blob to a private key. It should almost
  74. // never be used unless you are sure the input is valid and want to avoid hitting
  75. // errors due to bad origin encoding (0 prefixes cut off).
  76. func ToECDSAUnsafe(d []byte) *ecdsa.PrivateKey {
  77. priv, _ := toECDSA(d, false)
  78. return priv
  79. }
  80. // toECDSA creates a private key with the given D value. The strict parameter
  81. // controls whether the key's length should be enforced at the curve size or
  82. // it can also accept legacy encodings (0 prefixes).
  83. func toECDSA(d []byte, strict bool) (*ecdsa.PrivateKey, error) {
  84. priv := new(ecdsa.PrivateKey)
  85. priv.PublicKey.Curve = S256()
  86. if strict && 8*len(d) != priv.Params().BitSize {
  87. return nil, fmt.Errorf("invalid length, need %d bits", priv.Params().BitSize)
  88. }
  89. priv.D = new(big.Int).SetBytes(d)
  90. // The priv.D must < N
  91. if priv.D.Cmp(secp256k1N) >= 0 {
  92. return nil, fmt.Errorf("invalid private key, >=N")
  93. }
  94. // The priv.D must not be zero or negative.
  95. if priv.D.Sign() <= 0 {
  96. return nil, fmt.Errorf("invalid private key, zero or negative")
  97. }
  98. priv.PublicKey.X, priv.PublicKey.Y = priv.PublicKey.Curve.ScalarBaseMult(d)
  99. if priv.PublicKey.X == nil {
  100. return nil, errors.New("invalid private key")
  101. }
  102. return priv, nil
  103. }
  104. // FromECDSA exports a private key into a binary dump.
  105. func FromECDSA(priv *ecdsa.PrivateKey) []byte {
  106. if priv == nil {
  107. return nil
  108. }
  109. return math.PaddedBigBytes(priv.D, priv.Params().BitSize/8)
  110. }
  111. // UnmarshalPubkey converts bytes to a secp256k1 public key.
  112. func UnmarshalPubkey(pub []byte) (*ecdsa.PublicKey, error) {
  113. x, y := elliptic.Unmarshal(S256(), pub)
  114. if x == nil {
  115. return nil, errInvalidPubkey
  116. }
  117. return &ecdsa.PublicKey{Curve: S256(), X: x, Y: y}, nil
  118. }
  119. func FromECDSAPub(pub *ecdsa.PublicKey) []byte {
  120. if pub == nil || pub.X == nil || pub.Y == nil {
  121. return nil
  122. }
  123. return elliptic.Marshal(S256(), pub.X, pub.Y)
  124. }
  125. // HexToECDSA parses a secp256k1 private key.
  126. func HexToECDSA(hexkey string) (*ecdsa.PrivateKey, error) {
  127. b, err := hex.DecodeString(hexkey)
  128. if err != nil {
  129. return nil, errors.New("invalid hex string")
  130. }
  131. return ToECDSA(b)
  132. }
  133. // LoadECDSA loads a secp256k1 private key from the given file.
  134. func LoadECDSA(file string) (*ecdsa.PrivateKey, error) {
  135. buf := make([]byte, 64)
  136. fd, err := os.Open(file)
  137. if err != nil {
  138. return nil, err
  139. }
  140. defer fd.Close()
  141. if _, err := io.ReadFull(fd, buf); err != nil {
  142. return nil, err
  143. }
  144. key, err := hex.DecodeString(string(buf))
  145. if err != nil {
  146. return nil, err
  147. }
  148. return ToECDSA(key)
  149. }
  150. // SaveECDSA saves a secp256k1 private key to the given file with
  151. // restrictive permissions. The key data is saved hex-encoded.
  152. func SaveECDSA(file string, key *ecdsa.PrivateKey) error {
  153. k := hex.EncodeToString(FromECDSA(key))
  154. return ioutil.WriteFile(file, []byte(k), 0600)
  155. }
  156. func GenerateKey() (*ecdsa.PrivateKey, error) {
  157. return ecdsa.GenerateKey(S256(), rand.Reader)
  158. }
  159. // ValidateSignatureValues verifies whether the signature values are valid with
  160. // the given chain rules. The v value is assumed to be either 0 or 1.
  161. func ValidateSignatureValues(v byte, r, s *big.Int, homestead bool) bool {
  162. if r.Cmp(common.Big1) < 0 || s.Cmp(common.Big1) < 0 {
  163. return false
  164. }
  165. // reject upper range of s values (ECDSA malleability)
  166. // see discussion in secp256k1/libsecp256k1/include/secp256k1.h
  167. if homestead && s.Cmp(secp256k1halfN) > 0 {
  168. return false
  169. }
  170. // Frontier: allow s to be in full N range
  171. return r.Cmp(secp256k1N) < 0 && s.Cmp(secp256k1N) < 0 && (v == 0 || v == 1)
  172. }
  173. func PubkeyToAddress(p ecdsa.PublicKey) common.Address {
  174. pubBytes := FromECDSAPub(&p)
  175. return common.BytesToAddress(Keccak256(pubBytes[1:])[12:])
  176. }
  177. func zeroBytes(bytes []byte) {
  178. for i := range bytes {
  179. bytes[i] = 0
  180. }
  181. }