gitea

Development moved to Codeberg

  1. 1
  2. 2
  3. 3
  4. 4
  5. 5
  6. 6
  7. 7
  8. 8
  9. 9
  10. 10
  11. 11
  12. 12
  13. 13
  14. 14
  15. 15
  16. 16
  17. 17
  18. 18
  19. 19
  20. 20
  21. 21
  22. 22
  23. 23
  24. 24
  25. 25
  26. 26
  27. 27
  28. 28
  29. 29
  30. 30
  31. 31
  32. 32
  33. 33
  34. 34
  35. 35
  36. 36
  37. 37
  38. 38
  39. 39
  40. 40
  41. 41
  42. 42
  43. 43
  44. 44
  45. 45
  46. 46
  47. 47
  48. 48
  49. 49
  50. 50
  51. 51
  52. 52
  53. 53
  54. 54
  55. 55
  56. 56
  57. 57
  58. 58
  59. 59
  60. 60
  61. 61
  62. 62
  63. 63
  64. 64
  65. 65
  66. 66
  67. 67
  68. 68
  69. 69
  70. 70
  71. 71
  72. 72
  73. 73
  74. 74
  75. 75
  76. 76
  77. 77
  78. 78
  79. 79
  80. 80
  81. 81
  82. 82
  83. 83
  84. 84
  85. 85
  86. 86
  87. 87
  88. 88
  89. 89
  90. 90
  91. 91
  92. 92
  93. 93
  94. 94
  95. 95
  96. 96
  97. 97
  98. 98
  99. 99
  100. 100
  101. 101
  102. 102
  103. 103
  104. 104
  105. 105
  106. 106
  107. 107
  108. 108
  109. 109
  110. 110
  111. 111
  112. 112
  113. 113
  114. 114
  115. 115
  116. 116
  117. 117
  118. 118
  119. 119
  120. 120
  121. 121
  122. 122
  123. 123
  124. 124
  125. 125
  126. 126
  127. 127
  128. 128
  129. 129
  130. 130
  131. 131
  132. 132
  133. 133
  134. 134
  135. 135
  136. 136
  137. 137
  138. 138
  139. 139
  140. 140
  141. 141
  142. 142
  143. 143
  144. 144
  145. 145
  146. 146
  147. 147
  148. 148
  149. 149
  150. 150
  151. 151
  152. 152
  153. 153
  154. 154
  155. 155
  156. 156
  157. 157
  158. 158
  159. 159
  160. 160
  161. 161
  162. 162
  163. 163
  164. 164
  165. 165
  166. 166
  167. 167
  168. 168
  169. 169
  170. 170
  171. 171
  172. 172
  173. 173
  174. 174
  175. 175
  176. 176
  177. 177
  178. 178
  179. 179
  180. 180
  181. 181
  182. 182
  183. 183
  184. 184
  185. 185
  186. 186
  187. 187
  188. 188
  189. 189
  190. 190
  191. 191
  192. 192
  193. 193
  194. 194
  195. 195
  196. 196
  197. 197
package dns

import (
	"crypto"
	"crypto/ecdsa"
	"crypto/rsa"
	"encoding/binary"
	"math/big"
	"strings"
	"time"
)

// Sign signs a dns.Msg. It fills the signature with the appropriate data.
// The SIG record should have the SignerName, KeyTag, Algorithm, Inception
// and Expiration set.
func (rr *SIG) Sign(k crypto.Signer, m *Msg) ([]byte, error) {
	if k == nil {
		return nil, ErrPrivKey
	}
	if rr.KeyTag == 0 || rr.SignerName == "" || rr.Algorithm == 0 {
		return nil, ErrKey
	}

	rr.Hdr = RR_Header{Name: ".", Rrtype: TypeSIG, Class: ClassANY, Ttl: 0}
	rr.OrigTtl, rr.TypeCovered, rr.Labels = 0, 0, 0

	buf := make([]byte, m.Len()+Len(rr))
	mbuf, err := m.PackBuffer(buf)
	if err != nil {
		return nil, err
	}
	if &buf[0] != &mbuf[0] {
		return nil, ErrBuf
	}
	off, err := PackRR(rr, buf, len(mbuf), nil, false)
	if err != nil {
		return nil, err
	}
	buf = buf[:off:cap(buf)]

	hash, ok := AlgorithmToHash[rr.Algorithm]
	if !ok {
		return nil, ErrAlg
	}

	hasher := hash.New()
	// Write SIG rdata
	hasher.Write(buf[len(mbuf)+1+2+2+4+2:])
	// Write message
	hasher.Write(buf[:len(mbuf)])

	signature, err := sign(k, hasher.Sum(nil), hash, rr.Algorithm)
	if err != nil {
		return nil, err
	}

	rr.Signature = toBase64(signature)

	buf = append(buf, signature...)
	if len(buf) > int(^uint16(0)) {
		return nil, ErrBuf
	}
	// Adjust sig data length
	rdoff := len(mbuf) + 1 + 2 + 2 + 4
	rdlen := binary.BigEndian.Uint16(buf[rdoff:])
	rdlen += uint16(len(signature))
	binary.BigEndian.PutUint16(buf[rdoff:], rdlen)
	// Adjust additional count
	adc := binary.BigEndian.Uint16(buf[10:])
	adc++
	binary.BigEndian.PutUint16(buf[10:], adc)
	return buf, nil
}

// Verify validates the message buf using the key k.
// It's assumed that buf is a valid message from which rr was unpacked.
func (rr *SIG) Verify(k *KEY, buf []byte) error {
	if k == nil {
		return ErrKey
	}
	if rr.KeyTag == 0 || rr.SignerName == "" || rr.Algorithm == 0 {
		return ErrKey
	}

	var hash crypto.Hash
	switch rr.Algorithm {
	case RSASHA1:
		hash = crypto.SHA1
	case RSASHA256, ECDSAP256SHA256:
		hash = crypto.SHA256
	case ECDSAP384SHA384:
		hash = crypto.SHA384
	case RSASHA512:
		hash = crypto.SHA512
	default:
		return ErrAlg
	}
	hasher := hash.New()

	buflen := len(buf)
	qdc := binary.BigEndian.Uint16(buf[4:])
	anc := binary.BigEndian.Uint16(buf[6:])
	auc := binary.BigEndian.Uint16(buf[8:])
	adc := binary.BigEndian.Uint16(buf[10:])
	offset := headerSize
	var err error
	for i := uint16(0); i < qdc && offset < buflen; i++ {
		_, offset, err = UnpackDomainName(buf, offset)
		if err != nil {
			return err
		}
		// Skip past Type and Class
		offset += 2 + 2
	}
	for i := uint16(1); i < anc+auc+adc && offset < buflen; i++ {
		_, offset, err = UnpackDomainName(buf, offset)
		if err != nil {
			return err
		}
		// Skip past Type, Class and TTL
		offset += 2 + 2 + 4
		if offset+1 >= buflen {
			continue
		}
		rdlen := binary.BigEndian.Uint16(buf[offset:])
		offset += 2
		offset += int(rdlen)
	}
	if offset >= buflen {
		return &Error{err: "overflowing unpacking signed message"}
	}

	// offset should be just prior to SIG
	bodyend := offset
	// owner name SHOULD be root
	_, offset, err = UnpackDomainName(buf, offset)
	if err != nil {
		return err
	}
	// Skip Type, Class, TTL, RDLen
	offset += 2 + 2 + 4 + 2
	sigstart := offset
	// Skip Type Covered, Algorithm, Labels, Original TTL
	offset += 2 + 1 + 1 + 4
	if offset+4+4 >= buflen {
		return &Error{err: "overflow unpacking signed message"}
	}
	expire := binary.BigEndian.Uint32(buf[offset:])
	offset += 4
	incept := binary.BigEndian.Uint32(buf[offset:])
	offset += 4
	now := uint32(time.Now().Unix())
	if now < incept || now > expire {
		return ErrTime
	}
	// Skip key tag
	offset += 2
	var signername string
	signername, offset, err = UnpackDomainName(buf, offset)
	if err != nil {
		return err
	}
	// If key has come from the DNS name compression might
	// have mangled the case of the name
	if !strings.EqualFold(signername, k.Header().Name) {
		return &Error{err: "signer name doesn't match key name"}
	}
	sigend := offset
	hasher.Write(buf[sigstart:sigend])
	hasher.Write(buf[:10])
	hasher.Write([]byte{
		byte((adc - 1) << 8),
		byte(adc - 1),
	})
	hasher.Write(buf[12:bodyend])

	hashed := hasher.Sum(nil)
	sig := buf[sigend:]
	switch k.Algorithm {
	case RSASHA1, RSASHA256, RSASHA512:
		pk := k.publicKeyRSA()
		if pk != nil {
			return rsa.VerifyPKCS1v15(pk, hash, hashed, sig)
		}
	case ECDSAP256SHA256, ECDSAP384SHA384:
		pk := k.publicKeyECDSA()
		r := new(big.Int).SetBytes(sig[:len(sig)/2])
		s := new(big.Int).SetBytes(sig[len(sig)/2:])
		if pk != nil {
			if ecdsa.Verify(pk, hashed, r, s) {
				return nil
			}
			return ErrSig
		}
	}
	return ErrKeyAlg
}