github.com/hikaru7719/go@v0.0.0-20181025140707-c8b2ac68906a/src/crypto/tls/key_agreement.go (about) 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 5 package tls 6 7 import ( 8 "crypto" 9 "crypto/elliptic" 10 "crypto/md5" 11 "crypto/rsa" 12 "crypto/sha1" 13 "crypto/x509" 14 "errors" 15 "golang_org/x/crypto/curve25519" 16 "io" 17 "math/big" 18 ) 19 20 var errClientKeyExchange = errors.New("tls: invalid ClientKeyExchange message") 21 var errServerKeyExchange = errors.New("tls: invalid ServerKeyExchange message") 22 23 // rsaKeyAgreement implements the standard TLS key agreement where the client 24 // encrypts the pre-master secret to the server's public key. 25 type rsaKeyAgreement struct{} 26 27 func (ka rsaKeyAgreement) generateServerKeyExchange(config *Config, cert *Certificate, clientHello *clientHelloMsg, hello *serverHelloMsg) (*serverKeyExchangeMsg, error) { 28 return nil, nil 29 } 30 31 func (ka rsaKeyAgreement) processClientKeyExchange(config *Config, cert *Certificate, ckx *clientKeyExchangeMsg, version uint16) ([]byte, error) { 32 if len(ckx.ciphertext) < 2 { 33 return nil, errClientKeyExchange 34 } 35 36 ciphertext := ckx.ciphertext 37 if version != VersionSSL30 { 38 ciphertextLen := int(ckx.ciphertext[0])<<8 | int(ckx.ciphertext[1]) 39 if ciphertextLen != len(ckx.ciphertext)-2 { 40 return nil, errClientKeyExchange 41 } 42 ciphertext = ckx.ciphertext[2:] 43 } 44 priv, ok := cert.PrivateKey.(crypto.Decrypter) 45 if !ok { 46 return nil, errors.New("tls: certificate private key does not implement crypto.Decrypter") 47 } 48 // Perform constant time RSA PKCS#1 v1.5 decryption 49 preMasterSecret, err := priv.Decrypt(config.rand(), ciphertext, &rsa.PKCS1v15DecryptOptions{SessionKeyLen: 48}) 50 if err != nil { 51 return nil, err 52 } 53 // We don't check the version number in the premaster secret. For one, 54 // by checking it, we would leak information about the validity of the 55 // encrypted pre-master secret. Secondly, it provides only a small 56 // benefit against a downgrade attack and some implementations send the 57 // wrong version anyway. See the discussion at the end of section 58 // 7.4.7.1 of RFC 4346. 59 return preMasterSecret, nil 60 } 61 62 func (ka rsaKeyAgreement) processServerKeyExchange(config *Config, clientHello *clientHelloMsg, serverHello *serverHelloMsg, cert *x509.Certificate, skx *serverKeyExchangeMsg) error { 63 return errors.New("tls: unexpected ServerKeyExchange") 64 } 65 66 func (ka rsaKeyAgreement) generateClientKeyExchange(config *Config, clientHello *clientHelloMsg, cert *x509.Certificate) ([]byte, *clientKeyExchangeMsg, error) { 67 preMasterSecret := make([]byte, 48) 68 preMasterSecret[0] = byte(clientHello.vers >> 8) 69 preMasterSecret[1] = byte(clientHello.vers) 70 _, err := io.ReadFull(config.rand(), preMasterSecret[2:]) 71 if err != nil { 72 return nil, nil, err 73 } 74 75 encrypted, err := rsa.EncryptPKCS1v15(config.rand(), cert.PublicKey.(*rsa.PublicKey), preMasterSecret) 76 if err != nil { 77 return nil, nil, err 78 } 79 ckx := new(clientKeyExchangeMsg) 80 ckx.ciphertext = make([]byte, len(encrypted)+2) 81 ckx.ciphertext[0] = byte(len(encrypted) >> 8) 82 ckx.ciphertext[1] = byte(len(encrypted)) 83 copy(ckx.ciphertext[2:], encrypted) 84 return preMasterSecret, ckx, nil 85 } 86 87 // sha1Hash calculates a SHA1 hash over the given byte slices. 88 func sha1Hash(slices [][]byte) []byte { 89 hsha1 := sha1.New() 90 for _, slice := range slices { 91 hsha1.Write(slice) 92 } 93 return hsha1.Sum(nil) 94 } 95 96 // md5SHA1Hash implements TLS 1.0's hybrid hash function which consists of the 97 // concatenation of an MD5 and SHA1 hash. 98 func md5SHA1Hash(slices [][]byte) []byte { 99 md5sha1 := make([]byte, md5.Size+sha1.Size) 100 hmd5 := md5.New() 101 for _, slice := range slices { 102 hmd5.Write(slice) 103 } 104 copy(md5sha1, hmd5.Sum(nil)) 105 copy(md5sha1[md5.Size:], sha1Hash(slices)) 106 return md5sha1 107 } 108 109 // hashForServerKeyExchange hashes the given slices and returns their digest 110 // using the given hash function (for >= TLS 1.2) or using a default based on 111 // the sigType (for earlier TLS versions). 112 func hashForServerKeyExchange(sigType uint8, hashFunc crypto.Hash, version uint16, slices ...[]byte) ([]byte, error) { 113 if version >= VersionTLS12 { 114 h := hashFunc.New() 115 for _, slice := range slices { 116 h.Write(slice) 117 } 118 digest := h.Sum(nil) 119 return digest, nil 120 } 121 if sigType == signatureECDSA { 122 return sha1Hash(slices), nil 123 } 124 return md5SHA1Hash(slices), nil 125 } 126 127 func curveForCurveID(id CurveID) (elliptic.Curve, bool) { 128 switch id { 129 case CurveP256: 130 return elliptic.P256(), true 131 case CurveP384: 132 return elliptic.P384(), true 133 case CurveP521: 134 return elliptic.P521(), true 135 default: 136 return nil, false 137 } 138 139 } 140 141 // ecdheKeyAgreement implements a TLS key agreement where the server 142 // generates an ephemeral EC public/private key pair and signs it. The 143 // pre-master secret is then calculated using ECDH. The signature may 144 // either be ECDSA or RSA. 145 type ecdheKeyAgreement struct { 146 version uint16 147 isRSA bool 148 privateKey []byte 149 curveid CurveID 150 151 // publicKey is used to store the peer's public value when X25519 is 152 // being used. 153 publicKey []byte 154 // x and y are used to store the peer's public value when one of the 155 // NIST curves is being used. 156 x, y *big.Int 157 } 158 159 func (ka *ecdheKeyAgreement) generateServerKeyExchange(config *Config, cert *Certificate, clientHello *clientHelloMsg, hello *serverHelloMsg) (*serverKeyExchangeMsg, error) { 160 preferredCurves := config.curvePreferences() 161 162 NextCandidate: 163 for _, candidate := range preferredCurves { 164 for _, c := range clientHello.supportedCurves { 165 if candidate == c { 166 ka.curveid = c 167 break NextCandidate 168 } 169 } 170 } 171 172 if ka.curveid == 0 { 173 return nil, errors.New("tls: no supported elliptic curves offered") 174 } 175 176 var ecdhePublic []byte 177 178 if ka.curveid == X25519 { 179 var scalar, public [32]byte 180 if _, err := io.ReadFull(config.rand(), scalar[:]); err != nil { 181 return nil, err 182 } 183 184 curve25519.ScalarBaseMult(&public, &scalar) 185 ka.privateKey = scalar[:] 186 ecdhePublic = public[:] 187 } else { 188 curve, ok := curveForCurveID(ka.curveid) 189 if !ok { 190 return nil, errors.New("tls: preferredCurves includes unsupported curve") 191 } 192 193 var x, y *big.Int 194 var err error 195 ka.privateKey, x, y, err = elliptic.GenerateKey(curve, config.rand()) 196 if err != nil { 197 return nil, err 198 } 199 ecdhePublic = elliptic.Marshal(curve, x, y) 200 } 201 202 // See RFC 4492, Section 5.4. 203 serverECDHParams := make([]byte, 1+2+1+len(ecdhePublic)) 204 serverECDHParams[0] = 3 // named curve 205 serverECDHParams[1] = byte(ka.curveid >> 8) 206 serverECDHParams[2] = byte(ka.curveid) 207 serverECDHParams[3] = byte(len(ecdhePublic)) 208 copy(serverECDHParams[4:], ecdhePublic) 209 210 priv, ok := cert.PrivateKey.(crypto.Signer) 211 if !ok { 212 return nil, errors.New("tls: certificate private key does not implement crypto.Signer") 213 } 214 215 signatureAlgorithm, sigType, hashFunc, err := pickSignatureAlgorithm(priv.Public(), clientHello.supportedSignatureAlgorithms, supportedSignatureAlgorithms, ka.version) 216 if err != nil { 217 return nil, err 218 } 219 if (sigType == signaturePKCS1v15 || sigType == signatureRSAPSS) != ka.isRSA { 220 return nil, errors.New("tls: certificate cannot be used with the selected cipher suite") 221 } 222 223 digest, err := hashForServerKeyExchange(sigType, hashFunc, ka.version, clientHello.random, hello.random, serverECDHParams) 224 if err != nil { 225 return nil, err 226 } 227 228 signOpts := crypto.SignerOpts(hashFunc) 229 if sigType == signatureRSAPSS { 230 signOpts = &rsa.PSSOptions{SaltLength: rsa.PSSSaltLengthEqualsHash, Hash: hashFunc} 231 } 232 sig, err := priv.Sign(config.rand(), digest, signOpts) 233 if err != nil { 234 return nil, errors.New("tls: failed to sign ECDHE parameters: " + err.Error()) 235 } 236 237 skx := new(serverKeyExchangeMsg) 238 sigAndHashLen := 0 239 if ka.version >= VersionTLS12 { 240 sigAndHashLen = 2 241 } 242 skx.key = make([]byte, len(serverECDHParams)+sigAndHashLen+2+len(sig)) 243 copy(skx.key, serverECDHParams) 244 k := skx.key[len(serverECDHParams):] 245 if ka.version >= VersionTLS12 { 246 k[0] = byte(signatureAlgorithm >> 8) 247 k[1] = byte(signatureAlgorithm) 248 k = k[2:] 249 } 250 k[0] = byte(len(sig) >> 8) 251 k[1] = byte(len(sig)) 252 copy(k[2:], sig) 253 254 return skx, nil 255 } 256 257 func (ka *ecdheKeyAgreement) processClientKeyExchange(config *Config, cert *Certificate, ckx *clientKeyExchangeMsg, version uint16) ([]byte, error) { 258 if len(ckx.ciphertext) == 0 || int(ckx.ciphertext[0]) != len(ckx.ciphertext)-1 { 259 return nil, errClientKeyExchange 260 } 261 262 if ka.curveid == X25519 { 263 if len(ckx.ciphertext) != 1+32 { 264 return nil, errClientKeyExchange 265 } 266 267 var theirPublic, sharedKey, scalar [32]byte 268 copy(theirPublic[:], ckx.ciphertext[1:]) 269 copy(scalar[:], ka.privateKey) 270 curve25519.ScalarMult(&sharedKey, &scalar, &theirPublic) 271 return sharedKey[:], nil 272 } 273 274 curve, ok := curveForCurveID(ka.curveid) 275 if !ok { 276 panic("internal error") 277 } 278 x, y := elliptic.Unmarshal(curve, ckx.ciphertext[1:]) // Unmarshal also checks whether the given point is on the curve 279 if x == nil { 280 return nil, errClientKeyExchange 281 } 282 x, _ = curve.ScalarMult(x, y, ka.privateKey) 283 preMasterSecret := make([]byte, (curve.Params().BitSize+7)>>3) 284 xBytes := x.Bytes() 285 copy(preMasterSecret[len(preMasterSecret)-len(xBytes):], xBytes) 286 287 return preMasterSecret, nil 288 } 289 290 func (ka *ecdheKeyAgreement) processServerKeyExchange(config *Config, clientHello *clientHelloMsg, serverHello *serverHelloMsg, cert *x509.Certificate, skx *serverKeyExchangeMsg) error { 291 if len(skx.key) < 4 { 292 return errServerKeyExchange 293 } 294 if skx.key[0] != 3 { // named curve 295 return errors.New("tls: server selected unsupported curve") 296 } 297 ka.curveid = CurveID(skx.key[1])<<8 | CurveID(skx.key[2]) 298 299 publicLen := int(skx.key[3]) 300 if publicLen+4 > len(skx.key) { 301 return errServerKeyExchange 302 } 303 serverECDHParams := skx.key[:4+publicLen] 304 publicKey := serverECDHParams[4:] 305 306 sig := skx.key[4+publicLen:] 307 if len(sig) < 2 { 308 return errServerKeyExchange 309 } 310 311 if ka.curveid == X25519 { 312 if len(publicKey) != 32 { 313 return errors.New("tls: bad X25519 public value") 314 } 315 ka.publicKey = publicKey 316 } else { 317 curve, ok := curveForCurveID(ka.curveid) 318 if !ok { 319 return errors.New("tls: server selected unsupported curve") 320 } 321 ka.x, ka.y = elliptic.Unmarshal(curve, publicKey) // Unmarshal also checks whether the given point is on the curve 322 if ka.x == nil { 323 return errServerKeyExchange 324 } 325 } 326 327 var signatureAlgorithm SignatureScheme 328 if ka.version >= VersionTLS12 { 329 // handle SignatureAndHashAlgorithm 330 signatureAlgorithm = SignatureScheme(sig[0])<<8 | SignatureScheme(sig[1]) 331 sig = sig[2:] 332 if len(sig) < 2 { 333 return errServerKeyExchange 334 } 335 } 336 _, sigType, hashFunc, err := pickSignatureAlgorithm(cert.PublicKey, []SignatureScheme{signatureAlgorithm}, clientHello.supportedSignatureAlgorithms, ka.version) 337 if err != nil { 338 return err 339 } 340 if (sigType == signaturePKCS1v15 || sigType == signatureRSAPSS) != ka.isRSA { 341 return errServerKeyExchange 342 } 343 344 sigLen := int(sig[0])<<8 | int(sig[1]) 345 if sigLen+2 != len(sig) { 346 return errServerKeyExchange 347 } 348 sig = sig[2:] 349 350 digest, err := hashForServerKeyExchange(sigType, hashFunc, ka.version, clientHello.random, serverHello.random, serverECDHParams) 351 if err != nil { 352 return err 353 } 354 return verifyHandshakeSignature(sigType, cert.PublicKey, hashFunc, digest, sig) 355 } 356 357 func (ka *ecdheKeyAgreement) generateClientKeyExchange(config *Config, clientHello *clientHelloMsg, cert *x509.Certificate) ([]byte, *clientKeyExchangeMsg, error) { 358 if ka.curveid == 0 { 359 return nil, nil, errors.New("tls: missing ServerKeyExchange message") 360 } 361 362 var serialized, preMasterSecret []byte 363 364 if ka.curveid == X25519 { 365 var ourPublic, theirPublic, sharedKey, scalar [32]byte 366 367 if _, err := io.ReadFull(config.rand(), scalar[:]); err != nil { 368 return nil, nil, err 369 } 370 371 copy(theirPublic[:], ka.publicKey) 372 curve25519.ScalarBaseMult(&ourPublic, &scalar) 373 curve25519.ScalarMult(&sharedKey, &scalar, &theirPublic) 374 serialized = ourPublic[:] 375 preMasterSecret = sharedKey[:] 376 } else { 377 curve, ok := curveForCurveID(ka.curveid) 378 if !ok { 379 panic("internal error") 380 } 381 priv, mx, my, err := elliptic.GenerateKey(curve, config.rand()) 382 if err != nil { 383 return nil, nil, err 384 } 385 x, _ := curve.ScalarMult(ka.x, ka.y, priv) 386 preMasterSecret = make([]byte, (curve.Params().BitSize+7)>>3) 387 xBytes := x.Bytes() 388 copy(preMasterSecret[len(preMasterSecret)-len(xBytes):], xBytes) 389 390 serialized = elliptic.Marshal(curve, mx, my) 391 } 392 393 ckx := new(clientKeyExchangeMsg) 394 ckx.ciphertext = make([]byte, 1+len(serialized)) 395 ckx.ciphertext[0] = byte(len(serialized)) 396 copy(ckx.ciphertext[1:], serialized) 397 398 return preMasterSecret, ckx, nil 399 }