key_agreement.go 10 KB

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  1. // Copyright 2010 The Go Authors. All rights reserved.
  2. // Use of this source code is governed by a BSD-style
  3. // license that can be found in the LICENSE file.
  4. package tls
  5. import (
  6. "crypto"
  7. "crypto/md5"
  8. "crypto/rsa"
  9. "crypto/sha1"
  10. "crypto/x509"
  11. "errors"
  12. "io"
  13. )
  14. var errClientKeyExchange = errors.New("tls: invalid ClientKeyExchange message")
  15. var errServerKeyExchange = errors.New("tls: invalid ServerKeyExchange message")
  16. // rsaKeyAgreement implements the standard TLS key agreement where the client
  17. // encrypts the pre-master secret to the server's public key.
  18. type rsaKeyAgreement struct{}
  19. func (ka rsaKeyAgreement) generateServerKeyExchange(config *Config, cert *Certificate, clientHello *clientHelloMsg, hello *serverHelloMsg) (*serverKeyExchangeMsg, error) {
  20. return nil, nil
  21. }
  22. func (ka rsaKeyAgreement) processClientKeyExchange(config *Config, cert *Certificate, ckx *clientKeyExchangeMsg, version uint16) ([]byte, error) {
  23. if len(ckx.ciphertext) < 2 {
  24. return nil, errClientKeyExchange
  25. }
  26. ciphertext := ckx.ciphertext
  27. if version != VersionSSL30 {
  28. ciphertextLen := int(ckx.ciphertext[0])<<8 | int(ckx.ciphertext[1])
  29. if ciphertextLen != len(ckx.ciphertext)-2 {
  30. return nil, errClientKeyExchange
  31. }
  32. ciphertext = ckx.ciphertext[2:]
  33. }
  34. priv, ok := cert.PrivateKey.(crypto.Decrypter)
  35. if !ok {
  36. return nil, errors.New("tls: certificate private key does not implement crypto.Decrypter")
  37. }
  38. // Perform constant time RSA PKCS#1 v1.5 decryption
  39. preMasterSecret, err := priv.Decrypt(config.rand(), ciphertext, &rsa.PKCS1v15DecryptOptions{SessionKeyLen: 48})
  40. if err != nil {
  41. return nil, err
  42. }
  43. // We don't check the version number in the premaster secret. For one,
  44. // by checking it, we would leak information about the validity of the
  45. // encrypted pre-master secret. Secondly, it provides only a small
  46. // benefit against a downgrade attack and some implementations send the
  47. // wrong version anyway. See the discussion at the end of section
  48. // 7.4.7.1 of RFC 4346.
  49. return preMasterSecret, nil
  50. }
  51. func (ka rsaKeyAgreement) processServerKeyExchange(config *Config, clientHello *clientHelloMsg, serverHello *serverHelloMsg, cert *x509.Certificate, skx *serverKeyExchangeMsg) error {
  52. return errors.New("tls: unexpected ServerKeyExchange")
  53. }
  54. func (ka rsaKeyAgreement) generateClientKeyExchange(config *Config, clientHello *clientHelloMsg, cert *x509.Certificate) ([]byte, *clientKeyExchangeMsg, error) {
  55. preMasterSecret := make([]byte, 48)
  56. preMasterSecret[0] = byte(clientHello.vers >> 8)
  57. preMasterSecret[1] = byte(clientHello.vers)
  58. _, err := io.ReadFull(config.rand(), preMasterSecret[2:])
  59. if err != nil {
  60. return nil, nil, err
  61. }
  62. rsaKey, ok := cert.PublicKey.(*rsa.PublicKey)
  63. if !ok {
  64. return nil, nil, errors.New("tls: server certificate contains incorrect key type for selected ciphersuite")
  65. }
  66. encrypted, err := rsa.EncryptPKCS1v15(config.rand(), rsaKey, preMasterSecret)
  67. if err != nil {
  68. return nil, nil, err
  69. }
  70. ckx := new(clientKeyExchangeMsg)
  71. ckx.ciphertext = make([]byte, len(encrypted)+2)
  72. ckx.ciphertext[0] = byte(len(encrypted) >> 8)
  73. ckx.ciphertext[1] = byte(len(encrypted))
  74. copy(ckx.ciphertext[2:], encrypted)
  75. return preMasterSecret, ckx, nil
  76. }
  77. // sha1Hash calculates a SHA1 hash over the given byte slices.
  78. func sha1Hash(slices [][]byte) []byte {
  79. hsha1 := sha1.New()
  80. for _, slice := range slices {
  81. hsha1.Write(slice)
  82. }
  83. return hsha1.Sum(nil)
  84. }
  85. // md5SHA1Hash implements TLS 1.0's hybrid hash function which consists of the
  86. // concatenation of an MD5 and SHA1 hash.
  87. func md5SHA1Hash(slices [][]byte) []byte {
  88. md5sha1 := make([]byte, md5.Size+sha1.Size)
  89. hmd5 := md5.New()
  90. for _, slice := range slices {
  91. hmd5.Write(slice)
  92. }
  93. copy(md5sha1, hmd5.Sum(nil))
  94. copy(md5sha1[md5.Size:], sha1Hash(slices))
  95. return md5sha1
  96. }
  97. // hashForServerKeyExchange hashes the given slices and returns their digest
  98. // using the given hash function (for >= TLS 1.2) or using a default based on
  99. // the sigType (for earlier TLS versions).
  100. func hashForServerKeyExchange(sigType uint8, hashFunc crypto.Hash, version uint16, slices ...[]byte) []byte {
  101. if version >= VersionTLS12 {
  102. h := hashFunc.New()
  103. for _, slice := range slices {
  104. h.Write(slice)
  105. }
  106. digest := h.Sum(nil)
  107. return digest
  108. }
  109. if sigType == signatureECDSA {
  110. return sha1Hash(slices)
  111. }
  112. return md5SHA1Hash(slices)
  113. }
  114. // ecdheKeyAgreement implements a TLS key agreement where the server
  115. // generates an ephemeral EC public/private key pair and signs it. The
  116. // pre-master secret is then calculated using ECDH. The signature may
  117. // either be ECDSA or RSA.
  118. type ecdheKeyAgreement struct {
  119. version uint16
  120. isRSA bool
  121. params ecdheParameters
  122. // ckx and preMasterSecret are generated in processServerKeyExchange
  123. // and returned in generateClientKeyExchange.
  124. ckx *clientKeyExchangeMsg
  125. preMasterSecret []byte
  126. }
  127. func (ka *ecdheKeyAgreement) generateServerKeyExchange(config *Config, cert *Certificate, clientHello *clientHelloMsg, hello *serverHelloMsg) (*serverKeyExchangeMsg, error) {
  128. preferredCurves := config.curvePreferences()
  129. var curveID CurveID
  130. NextCandidate:
  131. for _, candidate := range preferredCurves {
  132. for _, c := range clientHello.supportedCurves {
  133. if candidate == c {
  134. curveID = c
  135. break NextCandidate
  136. }
  137. }
  138. }
  139. if curveID == 0 {
  140. return nil, errors.New("tls: no supported elliptic curves offered")
  141. }
  142. if _, ok := curveForCurveID(curveID); curveID != X25519 && !ok {
  143. return nil, errors.New("tls: CurvePreferences includes unsupported curve")
  144. }
  145. params, err := generateECDHEParameters(config.rand(), curveID)
  146. if err != nil {
  147. return nil, err
  148. }
  149. ka.params = params
  150. // See RFC 4492, Section 5.4.
  151. ecdhePublic := params.PublicKey()
  152. serverECDHParams := make([]byte, 1+2+1+len(ecdhePublic))
  153. serverECDHParams[0] = 3 // named curve
  154. serverECDHParams[1] = byte(curveID >> 8)
  155. serverECDHParams[2] = byte(curveID)
  156. serverECDHParams[3] = byte(len(ecdhePublic))
  157. copy(serverECDHParams[4:], ecdhePublic)
  158. priv, ok := cert.PrivateKey.(crypto.Signer)
  159. if !ok {
  160. return nil, errors.New("tls: certificate private key does not implement crypto.Signer")
  161. }
  162. signatureAlgorithm, sigType, hashFunc, err := pickSignatureAlgorithm(priv.Public(), clientHello.supportedSignatureAlgorithms, supportedSignatureAlgorithms, ka.version)
  163. if err != nil {
  164. return nil, err
  165. }
  166. if (sigType == signaturePKCS1v15 || sigType == signatureRSAPSS) != ka.isRSA {
  167. return nil, errors.New("tls: certificate cannot be used with the selected cipher suite")
  168. }
  169. digest := hashForServerKeyExchange(sigType, hashFunc, ka.version, clientHello.random, hello.random, serverECDHParams)
  170. signOpts := crypto.SignerOpts(hashFunc)
  171. if sigType == signatureRSAPSS {
  172. signOpts = &rsa.PSSOptions{SaltLength: rsa.PSSSaltLengthEqualsHash, Hash: hashFunc}
  173. }
  174. sig, err := priv.Sign(config.rand(), digest, signOpts)
  175. if err != nil {
  176. return nil, errors.New("tls: failed to sign ECDHE parameters: " + err.Error())
  177. }
  178. skx := new(serverKeyExchangeMsg)
  179. sigAndHashLen := 0
  180. if ka.version >= VersionTLS12 {
  181. sigAndHashLen = 2
  182. }
  183. skx.key = make([]byte, len(serverECDHParams)+sigAndHashLen+2+len(sig))
  184. copy(skx.key, serverECDHParams)
  185. k := skx.key[len(serverECDHParams):]
  186. if ka.version >= VersionTLS12 {
  187. k[0] = byte(signatureAlgorithm >> 8)
  188. k[1] = byte(signatureAlgorithm)
  189. k = k[2:]
  190. }
  191. k[0] = byte(len(sig) >> 8)
  192. k[1] = byte(len(sig))
  193. copy(k[2:], sig)
  194. return skx, nil
  195. }
  196. func (ka *ecdheKeyAgreement) processClientKeyExchange(config *Config, cert *Certificate, ckx *clientKeyExchangeMsg, version uint16) ([]byte, error) {
  197. if len(ckx.ciphertext) == 0 || int(ckx.ciphertext[0]) != len(ckx.ciphertext)-1 {
  198. return nil, errClientKeyExchange
  199. }
  200. preMasterSecret := ka.params.SharedKey(ckx.ciphertext[1:])
  201. if preMasterSecret == nil {
  202. return nil, errClientKeyExchange
  203. }
  204. return preMasterSecret, nil
  205. }
  206. func (ka *ecdheKeyAgreement) processServerKeyExchange(config *Config, clientHello *clientHelloMsg, serverHello *serverHelloMsg, cert *x509.Certificate, skx *serverKeyExchangeMsg) error {
  207. if len(skx.key) < 4 {
  208. return errServerKeyExchange
  209. }
  210. if skx.key[0] != 3 { // named curve
  211. return errors.New("tls: server selected unsupported curve")
  212. }
  213. curveID := CurveID(skx.key[1])<<8 | CurveID(skx.key[2])
  214. publicLen := int(skx.key[3])
  215. if publicLen+4 > len(skx.key) {
  216. return errServerKeyExchange
  217. }
  218. serverECDHParams := skx.key[:4+publicLen]
  219. publicKey := serverECDHParams[4:]
  220. sig := skx.key[4+publicLen:]
  221. if len(sig) < 2 {
  222. return errServerKeyExchange
  223. }
  224. if _, ok := curveForCurveID(curveID); curveID != X25519 && !ok {
  225. return errors.New("tls: server selected unsupported curve")
  226. }
  227. params, err := generateECDHEParameters(config.rand(), curveID)
  228. if err != nil {
  229. return err
  230. }
  231. ka.params = params
  232. ka.preMasterSecret = params.SharedKey(publicKey)
  233. if ka.preMasterSecret == nil {
  234. return errServerKeyExchange
  235. }
  236. ourPublicKey := params.PublicKey()
  237. ka.ckx = new(clientKeyExchangeMsg)
  238. ka.ckx.ciphertext = make([]byte, 1+len(ourPublicKey))
  239. ka.ckx.ciphertext[0] = byte(len(ourPublicKey))
  240. copy(ka.ckx.ciphertext[1:], ourPublicKey)
  241. var signatureAlgorithm SignatureScheme
  242. if ka.version >= VersionTLS12 {
  243. // handle SignatureAndHashAlgorithm
  244. signatureAlgorithm = SignatureScheme(sig[0])<<8 | SignatureScheme(sig[1])
  245. sig = sig[2:]
  246. if len(sig) < 2 {
  247. return errServerKeyExchange
  248. }
  249. }
  250. _, sigType, hashFunc, err := pickSignatureAlgorithm(cert.PublicKey, []SignatureScheme{signatureAlgorithm}, clientHello.supportedSignatureAlgorithms, ka.version)
  251. if err != nil {
  252. return err
  253. }
  254. if (sigType == signaturePKCS1v15 || sigType == signatureRSAPSS) != ka.isRSA {
  255. return errServerKeyExchange
  256. }
  257. sigLen := int(sig[0])<<8 | int(sig[1])
  258. if sigLen+2 != len(sig) {
  259. return errServerKeyExchange
  260. }
  261. sig = sig[2:]
  262. digest := hashForServerKeyExchange(sigType, hashFunc, ka.version, clientHello.random, serverHello.random, serverECDHParams)
  263. return verifyHandshakeSignature(sigType, cert.PublicKey, hashFunc, digest, sig)
  264. }
  265. func (ka *ecdheKeyAgreement) generateClientKeyExchange(config *Config, clientHello *clientHelloMsg, cert *x509.Certificate) ([]byte, *clientKeyExchangeMsg, error) {
  266. if ka.ckx == nil {
  267. return nil, nil, errors.New("tls: missing ServerKeyExchange message")
  268. }
  269. return ka.preMasterSecret, ka.ckx, nil
  270. }