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
  198. 198
  199. 199
  200. 200
  201. 201
  202. 202
  203. 203
  204. 204
  205. 205
  206. 206
  207. 207
  208. 208
  209. 209
  210. 210
  211. 211
  212. 212
  213. 213
  214. 214
  215. 215
  216. 216
  217. 217
  218. 218
  219. 219
  220. 220
  221. 221
  222. 222
  223. 223
  224. 224
  225. 225
  226. 226
  227. 227
  228. 228
  229. 229
  230. 230
  231. 231
  232. 232
  233. 233
  234. 234
  235. 235
  236. 236
  237. 237
  238. 238
  239. 239
  240. 240
  241. 241
  242. 242
  243. 243
  244. 244
  245. 245
  246. 246
  247. 247
  248. 248
  249. 249
  250. 250
  251. 251
  252. 252
  253. 253
  254. 254
  255. 255
  256. 256
  257. 257
  258. 258
  259. 259
  260. 260
  261. 261
  262. 262
  263. 263
  264. 264
  265. 265
  266. 266
  267. 267
  268. 268
  269. 269
  270. 270
  271. 271
  272. 272
  273. 273
  274. 274
  275. 275
  276. 276
  277. 277
  278. 278
  279. 279
  280. 280
  281. 281
  282. 282
  283. 283
  284. 284
  285. 285
  286. 286
  287. 287
  288. 288
  289. 289
  290. 290
  291. 291
  292. 292
  293. 293
  294. 294
  295. 295
  296. 296
  297. 297
  298. 298
  299. 299
  300. 300
  301. 301
  302. 302
  303. 303
  304. 304
  305. 305
  306. 306
  307. 307
  308. 308
  309. 309
  310. 310
  311. 311
  312. 312
  313. 313
  314. 314
  315. 315
  316. 316
  317. 317
  318. 318
  319. 319
  320. 320
  321. 321
  322. 322
  323. 323
  324. 324
  325. 325
  326. 326
  327. 327
  328. 328
  329. 329
  330. 330
  331. 331
  332. 332
  333. 333
  334. 334
  335. 335
  336. 336
  337. 337
  338. 338
  339. 339
  340. 340
  341. 341
  342. 342
  343. 343
  344. 344
  345. 345
  346. 346
  347. 347
  348. 348
  349. 349
  350. 350
  351. 351
  352. 352
  353. 353
  354. 354
  355. 355
  356. 356
  357. 357
  358. 358
  359. 359
  360. 360
  361. 361
  362. 362
  363. 363
  364. 364
  365. 365
  366. 366
  367. 367
  368. 368
  369. 369
  370. 370
  371. 371
  372. 372
  373. 373
  374. 374
  375. 375
  376. 376
  377. 377
  378. 378
  379. 379
  380. 380
  381. 381
  382. 382
  383. 383
  384. 384
  385. 385
  386. 386
  387. 387
  388. 388
  389. 389
  390. 390
  391. 391
  392. 392
  393. 393
  394. 394
  395. 395
  396. 396
  397. 397
  398. 398
  399. 399
  400. 400
  401. 401
  402. 402
  403. 403
  404. 404
  405. 405
  406. 406
  407. 407
  408. 408
  409. 409
  410. 410
  411. 411
  412. 412
  413. 413
  414. 414
  415. 415
  416. 416
  417. 417
  418. 418
  419. 419
  420. 420
  421. 421
  422. 422
  423. 423
  424. 424
  425. 425
  426. 426
  427. 427
  428. 428
  429. 429
  430. 430
  431. 431
  432. 432
  433. 433
  434. 434
  435. 435
  436. 436
  437. 437
  438. 438
  439. 439
  440. 440
  441. 441
  442. 442
  443. 443
  444. 444
  445. 445
  446. 446
  447. 447
  448. 448
  449. 449
  450. 450
  451. 451
  452. 452
  453. 453
  454. 454
  455. 455
  456. 456
  457. 457
  458. 458
  459. 459
  460. 460
  461. 461
  462. 462
  463. 463
  464. 464
  465. 465
  466. 466
  467. 467
  468. 468
  469. 469
  470. 470
  471. 471
  472. 472
  473. 473
  474. 474
  475. 475
  476. 476
  477. 477
  478. 478
  479. 479
  480. 480
  481. 481
  482. 482
  483. 483
  484. 484
  485. 485
  486. 486
  487. 487
  488. 488
  489. 489
  490. 490
  491. 491
  492. 492
  493. 493
  494. 494
  495. 495
  496. 496
  497. 497
  498. 498
  499. 499
  500. 500
  501. 501
  502. 502
  503. 503
  504. 504
  505. 505
  506. 506
  507. 507
// Copyright 2011 The Go Authors. All rights reserved.
// Use of this source code is governed by a BSD-style
// license that can be found in the LICENSE file.

// Package openpgp implements high level operations on OpenPGP messages.
package openpgp // import "github.com/keybase/go-crypto/openpgp"

import (
	"crypto"
	"crypto/hmac"
	_ "crypto/sha256"
	"hash"
	"io"
	"strconv"

	"github.com/keybase/go-crypto/openpgp/armor"
	"github.com/keybase/go-crypto/openpgp/errors"
	"github.com/keybase/go-crypto/openpgp/packet"
)

// SignatureType is the armor type for a PGP signature.
var SignatureType = "PGP SIGNATURE"

// readArmored reads an armored block with the given type.
func readArmored(r io.Reader, expectedType string) (body io.Reader, err error) {
	block, err := armor.Decode(r)
	if err != nil {
		return
	}

	if block.Type != expectedType {
		return nil, errors.InvalidArgumentError("expected '" + expectedType + "', got: " + block.Type)
	}

	return block.Body, nil
}

// MessageDetails contains the result of parsing an OpenPGP encrypted and/or
// signed message.
type MessageDetails struct {
	IsEncrypted              bool                // true if the message was encrypted.
	EncryptedToKeyIds        []uint64            // the list of recipient key ids.
	IsSymmetricallyEncrypted bool                // true if a passphrase could have decrypted the message.
	DecryptedWith            Key                 // the private key used to decrypt the message, if any.
	IsSigned                 bool                // true if the message is signed.
	SignedByKeyId            uint64              // the key id of the signer, if any.
	SignedBy                 *Key                // the key of the signer, if available.
	LiteralData              *packet.LiteralData // the metadata of the contents
	UnverifiedBody           io.Reader           // the contents of the message.

	// If IsSigned is true and SignedBy is non-zero then the signature will
	// be verified as UnverifiedBody is read. The signature cannot be
	// checked until the whole of UnverifiedBody is read so UnverifiedBody
	// must be consumed until EOF before the data can trusted. Even if a
	// message isn't signed (or the signer is unknown) the data may contain
	// an authentication code that is only checked once UnverifiedBody has
	// been consumed. Once EOF has been seen, the following fields are
	// valid. (An authentication code failure is reported as a
	// SignatureError error when reading from UnverifiedBody.)
	SignatureError error               // nil if the signature is good.
	Signature      *packet.Signature   // the signature packet itself, if v4 (default)
	SignatureV3    *packet.SignatureV3 // the signature packet if it is a v2 or v3 signature

	// Does the Message include multiple signatures? Also called "nested signatures".
	MultiSig bool

	decrypted io.ReadCloser
}

// A PromptFunction is used as a callback by functions that may need to decrypt
// a private key, or prompt for a passphrase. It is called with a list of
// acceptable, encrypted private keys and a boolean that indicates whether a
// passphrase is usable. It should either decrypt a private key or return a
// passphrase to try. If the decrypted private key or given passphrase isn't
// correct, the function will be called again, forever. Any error returned will
// be passed up.
type PromptFunction func(keys []Key, symmetric bool) ([]byte, error)

// A keyEnvelopePair is used to store a private key with the envelope that
// contains a symmetric key, encrypted with that key.
type keyEnvelopePair struct {
	key          Key
	encryptedKey *packet.EncryptedKey
}

// ReadMessage parses an OpenPGP message that may be signed and/or encrypted.
// The given KeyRing should contain both public keys (for signature
// verification) and, possibly encrypted, private keys for decrypting.
// If config is nil, sensible defaults will be used.
func ReadMessage(r io.Reader, keyring KeyRing, prompt PromptFunction, config *packet.Config) (md *MessageDetails, err error) {
	var p packet.Packet

	var symKeys []*packet.SymmetricKeyEncrypted
	var pubKeys []keyEnvelopePair
	var se *packet.SymmetricallyEncrypted

	packets := packet.NewReader(r)
	md = new(MessageDetails)
	md.IsEncrypted = true

	// The message, if encrypted, starts with a number of packets
	// containing an encrypted decryption key. The decryption key is either
	// encrypted to a public key, or with a passphrase. This loop
	// collects these packets.
ParsePackets:
	for {
		p, err = packets.Next()
		if err != nil {
			return nil, err
		}
		switch p := p.(type) {
		case *packet.SymmetricKeyEncrypted:
			// This packet contains the decryption key encrypted with a passphrase.
			md.IsSymmetricallyEncrypted = true
			symKeys = append(symKeys, p)
		case *packet.EncryptedKey:
			// This packet contains the decryption key encrypted to a public key.
			md.EncryptedToKeyIds = append(md.EncryptedToKeyIds, p.KeyId)
			switch p.Algo {
			case packet.PubKeyAlgoRSA, packet.PubKeyAlgoRSAEncryptOnly, packet.PubKeyAlgoElGamal, packet.PubKeyAlgoECDH:
				break
			default:
				continue
			}
			var keys []Key
			if p.KeyId == 0 {
				keys = keyring.DecryptionKeys()
			} else {
				keys = keyring.KeysById(p.KeyId, nil)
			}
			for _, k := range keys {
				pubKeys = append(pubKeys, keyEnvelopePair{k, p})
			}
		case *packet.SymmetricallyEncrypted:
			se = p
			break ParsePackets
		case *packet.Compressed, *packet.LiteralData, *packet.OnePassSignature:
			// This message isn't encrypted.
			if len(symKeys) != 0 || len(pubKeys) != 0 {
				return nil, errors.StructuralError("key material not followed by encrypted message")
			}
			packets.Unread(p)
			return readSignedMessage(packets, nil, keyring)
		}
	}

	var candidates []Key
	var decrypted io.ReadCloser

	// Now that we have the list of encrypted keys we need to decrypt at
	// least one of them or, if we cannot, we need to call the prompt
	// function so that it can decrypt a key or give us a passphrase.
FindKey:
	for {
		// See if any of the keys already have a private key available
		candidates = candidates[:0]
		candidateFingerprints := make(map[string]bool)

		for _, pk := range pubKeys {
			if pk.key.PrivateKey == nil {
				continue
			}
			if !pk.key.PrivateKey.Encrypted {
				if pk.key.PrivateKey.PrivateKey == nil {
					// Key is stubbed
					continue
				}
				if len(pk.encryptedKey.Key) == 0 {
					err := pk.encryptedKey.Decrypt(pk.key.PrivateKey, config)
					if err != nil {
						continue
					}
				}
				if len(pk.encryptedKey.Key) == 0 {
					continue
				}
				decrypted, err = se.Decrypt(pk.encryptedKey.CipherFunc, pk.encryptedKey.Key)
				if err != nil && err != errors.ErrKeyIncorrect {
					return nil, err
				}
				if decrypted != nil {
					md.DecryptedWith = pk.key
					break FindKey
				}
			} else {
				fpr := string(pk.key.PublicKey.Fingerprint[:])
				if v := candidateFingerprints[fpr]; v {
					continue
				}
				candidates = append(candidates, pk.key)
				candidateFingerprints[fpr] = true
			}
		}

		if len(candidates) == 0 && len(symKeys) == 0 {
			return nil, errors.ErrKeyIncorrect
		}

		if prompt == nil {
			return nil, errors.ErrKeyIncorrect
		}

		passphrase, err := prompt(candidates, len(symKeys) != 0)
		if err != nil {
			return nil, err
		}

		// Try the symmetric passphrase first
		if len(symKeys) != 0 && passphrase != nil {
			for _, s := range symKeys {
				key, cipherFunc, err := s.Decrypt(passphrase)
				if err == nil {
					decrypted, err = se.Decrypt(cipherFunc, key)
					if err != nil && err != errors.ErrKeyIncorrect {
						return nil, err
					}
					if decrypted != nil {
						break FindKey
					}
				}

			}
		}
	}

	md.decrypted = decrypted
	if err := packets.Push(decrypted); err != nil {
		return nil, err
	}
	return readSignedMessage(packets, md, keyring)
}

// readSignedMessage reads a possibly signed message if mdin is non-zero then
// that structure is updated and returned. Otherwise a fresh MessageDetails is
// used.
func readSignedMessage(packets *packet.Reader, mdin *MessageDetails, keyring KeyRing) (md *MessageDetails, err error) {
	if mdin == nil {
		mdin = new(MessageDetails)
	}
	md = mdin

	var p packet.Packet
	var h hash.Hash
	var wrappedHash hash.Hash
FindLiteralData:
	for {
		p, err = packets.Next()
		if err != nil {
			return nil, err
		}
		switch p := p.(type) {
		case *packet.Compressed:
			if err := packets.Push(p.Body); err != nil {
				return nil, err
			}
		case *packet.OnePassSignature:
			if md.IsSigned {
				// If IsSigned is set, it means we have multiple
				// OnePassSignature packets.
				md.MultiSig = true
				if md.SignedBy != nil {
					// We've already found the signature we were looking
					// for, made by key that we had in keyring and can
					// check signature against. Continue with that instead
					// of trying to find another.
					continue FindLiteralData
				}
			}

			h, wrappedHash, err = hashForSignature(p.Hash, p.SigType)
			if err != nil {
				md = nil
				return
			}

			md.IsSigned = true
			md.SignedByKeyId = p.KeyId
			keys := keyring.KeysByIdUsage(p.KeyId, nil, packet.KeyFlagSign)
			if len(keys) > 0 {
				md.SignedBy = &keys[0]
			}
		case *packet.LiteralData:
			md.LiteralData = p
			break FindLiteralData
		}
	}

	if md.SignedBy != nil {
		md.UnverifiedBody = &signatureCheckReader{packets, h, wrappedHash, md}
	} else if md.decrypted != nil {
		md.UnverifiedBody = checkReader{md}
	} else {
		md.UnverifiedBody = md.LiteralData.Body
	}

	return md, nil
}

// hashForSignature returns a pair of hashes that can be used to verify a
// signature. The signature may specify that the contents of the signed message
// should be preprocessed (i.e. to normalize line endings). Thus this function
// returns two hashes. The second should be used to hash the message itself and
// performs any needed preprocessing.
func hashForSignature(hashId crypto.Hash, sigType packet.SignatureType) (hash.Hash, hash.Hash, error) {
	if !hashId.Available() {
		return nil, nil, errors.UnsupportedError("hash not available: " + strconv.Itoa(int(hashId)))
	}
	h := hashId.New()

	switch sigType {
	case packet.SigTypeBinary:
		return h, h, nil
	case packet.SigTypeText:
		return h, NewCanonicalTextHash(h), nil
	}

	return nil, nil, errors.UnsupportedError("unsupported signature type: " + strconv.Itoa(int(sigType)))
}

// checkReader wraps an io.Reader from a LiteralData packet. When it sees EOF
// it closes the ReadCloser from any SymmetricallyEncrypted packet to trigger
// MDC checks.
type checkReader struct {
	md *MessageDetails
}

func (cr checkReader) Read(buf []byte) (n int, err error) {
	n, err = cr.md.LiteralData.Body.Read(buf)
	if err == io.EOF {
		mdcErr := cr.md.decrypted.Close()
		if mdcErr != nil {
			err = mdcErr
		}
	}
	return
}

// signatureCheckReader wraps an io.Reader from a LiteralData packet and hashes
// the data as it is read. When it sees an EOF from the underlying io.Reader
// it parses and checks a trailing Signature packet and triggers any MDC checks.
type signatureCheckReader struct {
	packets        *packet.Reader
	h, wrappedHash hash.Hash
	md             *MessageDetails
}

func (scr *signatureCheckReader) Read(buf []byte) (n int, err error) {
	n, err = scr.md.LiteralData.Body.Read(buf)
	scr.wrappedHash.Write(buf[:n])
	if err == io.EOF {
		for {
			var p packet.Packet
			p, scr.md.SignatureError = scr.packets.Next()
			if scr.md.SignatureError != nil {
				if scr.md.MultiSig {
					// If we are in MultiSig, we might have found other
					// signature that cannot be verified using our key.
					// Clear Signature field so it's clear for consumers
					// that this message failed to verify.
					scr.md.Signature = nil
				}
				return
			}

			var ok bool
			if scr.md.Signature, ok = p.(*packet.Signature); ok {
				var err error
				if keyID := scr.md.Signature.IssuerKeyId; keyID != nil {
					if *keyID != scr.md.SignedBy.PublicKey.KeyId {
						if scr.md.MultiSig {
							continue // try again to find a sig we can verify
						}
						err = errors.StructuralError("bad key id")
					}
				}
				if fingerprint := scr.md.Signature.IssuerFingerprint; fingerprint != nil {
					if !hmac.Equal(fingerprint, scr.md.SignedBy.PublicKey.Fingerprint[:]) {
						if scr.md.MultiSig {
							continue // try again to find a sig we can verify
						}
						err = errors.StructuralError("bad key fingerprint")
					}
				}
				if err == nil {
					err = scr.md.SignedBy.PublicKey.VerifySignature(scr.h, scr.md.Signature)
				}
				scr.md.SignatureError = err
			} else if scr.md.SignatureV3, ok = p.(*packet.SignatureV3); ok {
				scr.md.SignatureError = scr.md.SignedBy.PublicKey.VerifySignatureV3(scr.h, scr.md.SignatureV3)
			} else {
				scr.md.SignatureError = errors.StructuralError("LiteralData not followed by Signature")
				return
			}

			// Parse only one packet by default, unless message is MultiSig. Then
			// we ask for more packets after discovering non-matching signature,
			// until we find one that we can verify.
			break
		}

		// The SymmetricallyEncrypted packet, if any, might have an
		// unsigned hash of its own. In order to check this we need to
		// close that Reader.
		if scr.md.decrypted != nil {
			mdcErr := scr.md.decrypted.Close()
			if mdcErr != nil {
				err = mdcErr
			}
		}
	}
	return
}

// CheckDetachedSignature takes a signed file and a detached signature and
// returns the signer if the signature is valid. If the signer isn't known,
// ErrUnknownIssuer is returned.
func CheckDetachedSignature(keyring KeyRing, signed, signature io.Reader) (signer *Entity, err error) {
	signer, _, err = checkDetachedSignature(keyring, signed, signature)
	return signer, err
}

func checkDetachedSignature(keyring KeyRing, signed, signature io.Reader) (signer *Entity, issuer *uint64, err error) {
	var issuerKeyId uint64
	var issuerFingerprint []byte
	var hashFunc crypto.Hash
	var sigType packet.SignatureType
	var keys []Key
	var p packet.Packet

	packets := packet.NewReader(signature)
	for {
		p, err = packets.Next()
		if err == io.EOF {
			return nil, nil, errors.ErrUnknownIssuer
		}
		if err != nil {
			return nil, nil, err
		}

		switch sig := p.(type) {
		case *packet.Signature:
			if sig.IssuerKeyId == nil {
				return nil, nil, errors.StructuralError("signature doesn't have an issuer")
			}
			issuerKeyId = *sig.IssuerKeyId
			hashFunc = sig.Hash
			sigType = sig.SigType
			issuerFingerprint = sig.IssuerFingerprint
		case *packet.SignatureV3:
			issuerKeyId = sig.IssuerKeyId
			hashFunc = sig.Hash
			sigType = sig.SigType
		default:
			return nil, nil, errors.StructuralError("non signature packet found")
		}

		keys = keyring.KeysByIdUsage(issuerKeyId, issuerFingerprint, packet.KeyFlagSign)
		if len(keys) > 0 {
			break
		}
	}

	if len(keys) == 0 {
		panic("unreachable")
	}

	h, wrappedHash, err := hashForSignature(hashFunc, sigType)
	if err != nil {
		return nil, nil, err
	}

	if _, err := io.Copy(wrappedHash, signed); err != nil && err != io.EOF {
		return nil, nil, err
	}

	for _, key := range keys {
		switch sig := p.(type) {
		case *packet.Signature:
			err = key.PublicKey.VerifySignature(h, sig)
		case *packet.SignatureV3:
			err = key.PublicKey.VerifySignatureV3(h, sig)
		default:
			panic("unreachable")
		}

		if err == nil {
			return key.Entity, &issuerKeyId, nil
		}
	}

	return nil, nil, err
}

// CheckArmoredDetachedSignature performs the same actions as
// CheckDetachedSignature but expects the signature to be armored.
func CheckArmoredDetachedSignature(keyring KeyRing, signed, signature io.Reader) (signer *Entity, err error) {
	signer, _, err = checkArmoredDetachedSignature(keyring, signed, signature)
	return signer, err
}

func checkArmoredDetachedSignature(keyring KeyRing, signed, signature io.Reader) (signer *Entity, issuer *uint64, err error) {
	body, err := readArmored(signature, SignatureType)
	if err != nil {
		return
	}
	return checkDetachedSignature(keyring, signed, body)
}