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  }