github.com/bigzoro/my_simplechain@v0.0.0-20240315012955-8ad0a2a29bb9/core/access_contoller/crypto/tls/prf.go (about)

     1  // Copyright 2009 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/hmac"
    10  	"crypto/md5"
    11  	"crypto/sha1"
    12  	"crypto/sha256"
    13  	"crypto/sha512"
    14  	"errors"
    15  	"fmt"
    16  	"hash"
    17  
    18  	bccrypto "chainmaker.org/chainmaker/common/v2/crypto"
    19  
    20  	"github.com/tjfoc/gmsm/sm3"
    21  )
    22  
    23  // Split a premaster secret in two as specified in RFC 4346, Section 5.
    24  func splitPreMasterSecret(secret []byte) (s1, s2 []byte) {
    25  	s1 = secret[0 : (len(secret)+1)/2]
    26  	s2 = secret[len(secret)/2:]
    27  	return
    28  }
    29  
    30  // pHash implements the P_hash function, as defined in RFC 4346, Section 5.
    31  func pHash(result, secret, seed []byte, hash func() hash.Hash) {
    32  	h := hmac.New(hash, secret)
    33  	h.Write(seed)
    34  	a := h.Sum(nil)
    35  
    36  	j := 0
    37  	for j < len(result) {
    38  		h.Reset()
    39  		h.Write(a)
    40  		h.Write(seed)
    41  		b := h.Sum(nil)
    42  		copy(result[j:], b)
    43  		j += len(b)
    44  
    45  		h.Reset()
    46  		h.Write(a)
    47  		a = h.Sum(nil)
    48  	}
    49  }
    50  
    51  // prf10 implements the TLS 1.0 pseudo-random function, as defined in RFC 2246, Section 5.
    52  func prf10(result, secret, label, seed []byte) {
    53  	hashSHA1 := sha1.New
    54  	hashMD5 := md5.New
    55  
    56  	labelAndSeed := make([]byte, len(label)+len(seed))
    57  	copy(labelAndSeed, label)
    58  	copy(labelAndSeed[len(label):], seed)
    59  
    60  	s1, s2 := splitPreMasterSecret(secret)
    61  	pHash(result, s1, labelAndSeed, hashMD5)
    62  	result2 := make([]byte, len(result))
    63  	pHash(result2, s2, labelAndSeed, hashSHA1)
    64  
    65  	for i, b := range result2 {
    66  		result[i] ^= b
    67  	}
    68  }
    69  
    70  // prf12 implements the TLS 1.2 pseudo-random function, as defined in RFC 5246, Section 5.
    71  func prf12(hashFunc func() hash.Hash) func(result, secret, label, seed []byte) {
    72  	return func(result, secret, label, seed []byte) {
    73  		labelAndSeed := make([]byte, len(label)+len(seed))
    74  		copy(labelAndSeed, label)
    75  		copy(labelAndSeed[len(label):], seed)
    76  
    77  		pHash(result, secret, labelAndSeed, hashFunc)
    78  	}
    79  }
    80  
    81  const (
    82  	masterSecretLength   = 48 // Length of a master secret in TLS 1.1.
    83  	finishedVerifyLength = 12 // Length of verify_data in a Finished message.
    84  )
    85  
    86  var masterSecretLabel = []byte("master secret")
    87  var keyExpansionLabel = []byte("key expansion")
    88  var clientFinishedLabel = []byte("client finished")
    89  var serverFinishedLabel = []byte("server finished")
    90  
    91  func prfAndHashForGM() func(result, secret, label, seed []byte) {
    92  	return prf12(sm3.New)
    93  }
    94  
    95  func prfAndHashForVersion(version uint16, suite *cipherSuite) (func(result, secret, label, seed []byte), crypto.Hash) {
    96  	switch version {
    97  	case VersionTLS10, VersionTLS11:
    98  		return prf10, crypto.Hash(0)
    99  	case VersionTLS12:
   100  		if suite.flags&suiteSHA384 != 0 {
   101  			return prf12(sha512.New384), crypto.SHA384
   102  		}
   103  		return prf12(sha256.New), crypto.SHA256
   104  	default:
   105  		panic("unknown version")
   106  	}
   107  }
   108  
   109  func prfForVersion(version uint16, suite *cipherSuite) func(result, secret, label, seed []byte) {
   110  	var prf func(result, secret, label, seed []byte)
   111  	if version == VersionGMSSL {
   112  		prf = prfAndHashForGM()
   113  	} else {
   114  		prf, _ = prfAndHashForVersion(version, suite)
   115  	}
   116  	return prf
   117  }
   118  
   119  // masterFromPreMasterSecret generates the master secret from the pre-master
   120  // secret. See RFC 5246, Section 8.1.
   121  func masterFromPreMasterSecret(version uint16, suite *cipherSuite, preMasterSecret, clientRandom, serverRandom []byte) []byte {
   122  	seed := make([]byte, 0, len(clientRandom)+len(serverRandom))
   123  	seed = append(seed, clientRandom...)
   124  	seed = append(seed, serverRandom...)
   125  
   126  	masterSecret := make([]byte, masterSecretLength)
   127  	prfForVersion(version, suite)(masterSecret, preMasterSecret, masterSecretLabel, seed)
   128  	return masterSecret
   129  }
   130  
   131  // keysFromMasterSecret generates the connection keys from the master
   132  // secret, given the lengths of the MAC key, cipher key and IV, as defined in
   133  // RFC 2246, Section 6.3.
   134  func keysFromMasterSecret(version uint16, suite *cipherSuite, masterSecret, clientRandom, serverRandom []byte, macLen, keyLen, ivLen int) (clientMAC, serverMAC, clientKey, serverKey, clientIV, serverIV []byte) {
   135  	seed := make([]byte, 0, len(serverRandom)+len(clientRandom))
   136  	seed = append(seed, serverRandom...)
   137  	seed = append(seed, clientRandom...)
   138  
   139  	n := 2*macLen + 2*keyLen + 2*ivLen
   140  	keyMaterial := make([]byte, n)
   141  	prfForVersion(version, suite)(keyMaterial, masterSecret, keyExpansionLabel, seed)
   142  	clientMAC = keyMaterial[:macLen]
   143  	keyMaterial = keyMaterial[macLen:]
   144  	serverMAC = keyMaterial[:macLen]
   145  	keyMaterial = keyMaterial[macLen:]
   146  	clientKey = keyMaterial[:keyLen]
   147  	keyMaterial = keyMaterial[keyLen:]
   148  	serverKey = keyMaterial[:keyLen]
   149  	keyMaterial = keyMaterial[keyLen:]
   150  	clientIV = keyMaterial[:ivLen]
   151  	keyMaterial = keyMaterial[ivLen:]
   152  	serverIV = keyMaterial[:ivLen]
   153  	return
   154  }
   155  
   156  func newFinishedHash(version uint16, cipherSuite *cipherSuite) finishedHash {
   157  	var buffer []byte
   158  	if version >= VersionTLS12 {
   159  		buffer = []byte{}
   160  	}
   161  
   162  	var prf func(result, secret, label, seed []byte)
   163  
   164  	if version == VersionGMSSL {
   165  		prf = prfAndHashForGM()
   166  		return finishedHash{sm3.New(), sm3.New(), nil, nil, buffer, version, prf}
   167  	} else {
   168  		prf, hash := prfAndHashForVersion(version, cipherSuite)
   169  		if hash != 0 {
   170  			return finishedHash{hash.New(), hash.New(), nil, nil, buffer, version, prf}
   171  		}
   172  	}
   173  
   174  	return finishedHash{sha1.New(), sha1.New(), md5.New(), md5.New(), buffer, version, prf}
   175  }
   176  
   177  // A finishedHash calculates the hash of a set of handshake messages suitable
   178  // for including in a Finished message.
   179  type finishedHash struct {
   180  	client hash.Hash
   181  	server hash.Hash
   182  
   183  	// Prior to TLS 1.2, an additional MD5 hash is required.
   184  	clientMD5 hash.Hash
   185  	serverMD5 hash.Hash
   186  
   187  	// In TLS 1.2, a full buffer is sadly required.
   188  	buffer []byte
   189  
   190  	version uint16
   191  	prf     func(result, secret, label, seed []byte)
   192  }
   193  
   194  func (h *finishedHash) Write(msg []byte) (n int, err error) {
   195  	h.client.Write(msg)
   196  	h.server.Write(msg)
   197  
   198  	if h.version < VersionTLS12 {
   199  		h.clientMD5.Write(msg)
   200  		h.serverMD5.Write(msg)
   201  	}
   202  
   203  	if h.buffer != nil {
   204  		h.buffer = append(h.buffer, msg...)
   205  	}
   206  
   207  	return len(msg), nil
   208  }
   209  
   210  func (h finishedHash) Sum() []byte {
   211  	if h.version >= VersionTLS12 || h.version == VersionGMSSL {
   212  		return h.client.Sum(nil)
   213  	}
   214  
   215  	out := make([]byte, 0, md5.Size+sha1.Size)
   216  	out = h.clientMD5.Sum(out)
   217  	return h.client.Sum(out)
   218  }
   219  
   220  // clientSum returns the contents of the verify_data member of a client's
   221  // Finished message.
   222  func (h finishedHash) clientSum(masterSecret []byte) []byte {
   223  	out := make([]byte, finishedVerifyLength)
   224  	h.prf(out, masterSecret, clientFinishedLabel, h.Sum())
   225  	return out
   226  }
   227  
   228  // serverSum returns the contents of the verify_data member of a server's
   229  // Finished message.
   230  func (h finishedHash) serverSum(masterSecret []byte) []byte {
   231  	out := make([]byte, finishedVerifyLength)
   232  	h.prf(out, masterSecret, serverFinishedLabel, h.Sum())
   233  	return out
   234  }
   235  
   236  // hashForClientCertificate returns the handshake messages so far, pre-hashed if
   237  // necessary, suitable for signing by a TLS client certificate.
   238  func (h finishedHash) hashForClientCertificate(sigType uint8, hashAlg crypto.Hash, masterSecret []byte) []byte {
   239  	if (h.version >= VersionTLS12 || sigType == signatureEd25519) && h.buffer == nil {
   240  		panic("tls: handshake hash for a client certificate requested after discarding the handshake buffer")
   241  	}
   242  
   243  	//if sigType == signatureSM2 {
   244  	//	return h.buffer
   245  	//}
   246  
   247  	if sigType == signatureEd25519 {
   248  		return h.buffer
   249  	}
   250  
   251  	if h.version >= VersionTLS12 {
   252  		var hash hash.Hash
   253  		if hashAlg == bccrypto.SM3 {
   254  			hash = sm3.New()
   255  		} else {
   256  			hash = hashAlg.New()
   257  		}
   258  		hash.Write(h.buffer)
   259  		return hash.Sum(nil)
   260  	}
   261  
   262  	if sigType == signatureECDSA {
   263  		return h.server.Sum(nil)
   264  	}
   265  
   266  	return h.Sum()
   267  }
   268  
   269  // discardHandshakeBuffer is called when there is no more need to
   270  // buffer the entirety of the handshake messages.
   271  func (h *finishedHash) discardHandshakeBuffer() {
   272  	h.buffer = nil
   273  }
   274  
   275  // noExportedKeyingMaterial is used as a value of
   276  // ConnectionState.ekm when renegotiation is enabled and thus
   277  // we wish to fail all key-material export requests.
   278  func noExportedKeyingMaterial(label string, context []byte, length int) ([]byte, error) {
   279  	return nil, errors.New("crypto/tls: ExportKeyingMaterial is unavailable when renegotiation is enabled")
   280  }
   281  
   282  // ekmFromMasterSecret generates exported keying material as defined in RFC 5705.
   283  func ekmFromMasterSecret(version uint16, suite *cipherSuite, masterSecret, clientRandom, serverRandom []byte) func(string, []byte, int) ([]byte, error) {
   284  	return func(label string, context []byte, length int) ([]byte, error) {
   285  		switch label {
   286  		case "client finished", "server finished", "master secret", "key expansion":
   287  			// These values are reserved and may not be used.
   288  			return nil, fmt.Errorf("crypto/tls: reserved ExportKeyingMaterial label: %s", label)
   289  		}
   290  
   291  		seedLen := len(serverRandom) + len(clientRandom)
   292  		if context != nil {
   293  			seedLen += 2 + len(context)
   294  		}
   295  		seed := make([]byte, 0, seedLen)
   296  
   297  		seed = append(seed, clientRandom...)
   298  		seed = append(seed, serverRandom...)
   299  
   300  		if context != nil {
   301  			if len(context) >= 1<<16 {
   302  				return nil, fmt.Errorf("crypto/tls: ExportKeyingMaterial context too long")
   303  			}
   304  			seed = append(seed, byte(len(context)>>8), byte(len(context)))
   305  			seed = append(seed, context...)
   306  		}
   307  
   308  		keyMaterial := make([]byte, length)
   309  		prfForVersion(version, suite)(keyMaterial, masterSecret, []byte(label), seed)
   310  		return keyMaterial, nil
   311  	}
   312  }