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1 // Copyright (c) 2012 The Chromium Authors. All rights reserved. | 1 // Copyright (c) 2012 The Chromium Authors. All rights reserved. |
2 // Use of this source code is governed by a BSD-style license that can be | 2 // Use of this source code is governed by a BSD-style license that can be |
3 // found in the LICENSE file. | 3 // found in the LICENSE file. |
4 | 4 |
5 #include "media/crypto/aes_decryptor.h" | 5 #include "media/crypto/aes_decryptor.h" |
6 | 6 |
7 #include "base/logging.h" | 7 #include "base/logging.h" |
8 #include "base/stl_util.h" | 8 #include "base/stl_util.h" |
9 #include "base/string_number_conversions.h" | 9 #include "base/string_number_conversions.h" |
10 #include "crypto/encryptor.h" | 10 #include "crypto/encryptor.h" |
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52 key_size); | 52 key_size); |
53 } | 53 } |
54 | 54 |
55 // Checks data in |input| matches the HMAC in |input|. The check is using the | 55 // Checks data in |input| matches the HMAC in |input|. The check is using the |
56 // SHA1 algorithm. |hmac_key| is the key of the HMAC algorithm. Returns true if | 56 // SHA1 algorithm. |hmac_key| is the key of the HMAC algorithm. Returns true if |
57 // the integrity check passes. | 57 // the integrity check passes. |
58 static bool CheckData(const DecoderBuffer& input, | 58 static bool CheckData(const DecoderBuffer& input, |
59 const base::StringPiece& hmac_key) { | 59 const base::StringPiece& hmac_key) { |
60 CHECK(input.GetDataSize()); | 60 CHECK(input.GetDataSize()); |
61 CHECK(input.GetDecryptConfig()); | 61 CHECK(input.GetDecryptConfig()); |
62 CHECK_GT(input.GetDecryptConfig()->checksum_size(), 0); | 62 CHECK_GT(input.GetDecryptConfig()->checksum().size(), 0u); |
63 CHECK(!hmac_key.empty()); | 63 CHECK(!hmac_key.empty()); |
64 | 64 |
65 crypto::HMAC hmac(crypto::HMAC::SHA1); | 65 crypto::HMAC hmac(crypto::HMAC::SHA1); |
66 if (!hmac.Init(hmac_key)) | 66 if (!hmac.Init(hmac_key)) |
67 return false; | 67 return false; |
68 | 68 |
69 // The HMAC covers the IV and the frame data. | 69 // The HMAC covers the IV and the frame data. |
70 base::StringPiece data_to_check( | 70 base::StringPiece data_to_check( |
71 reinterpret_cast<const char*>(input.GetData()), input.GetDataSize()); | 71 reinterpret_cast<const char*>(input.GetData()), input.GetDataSize()); |
72 | 72 |
73 scoped_array<uint8> calculated_hmac(new uint8[hmac.DigestLength()]); | 73 scoped_array<uint8> calculated_hmac(new uint8[hmac.DigestLength()]); |
74 if (!hmac.Sign(data_to_check, calculated_hmac.get(), hmac.DigestLength())) | 74 if (!hmac.Sign(data_to_check, calculated_hmac.get(), hmac.DigestLength())) |
75 return false; | 75 return false; |
76 | 76 |
77 DCHECK(input.GetDecryptConfig()->checksum_size() <= | 77 DCHECK(input.GetDecryptConfig()->checksum().size() <= hmac.DigestLength()); |
78 static_cast<int>(hmac.DigestLength())); | 78 // TODO(fgalligan): Use hmac.Verify(). |
ddorwin
2012/07/25 07:13:47
Thanks. I think this is now landed. I didn't reali
| |
79 if (memcmp(input.GetDecryptConfig()->checksum(), | 79 if (memcmp(input.GetDecryptConfig()->checksum().data(), |
80 calculated_hmac.get(), | 80 calculated_hmac.get(), |
81 input.GetDecryptConfig()->checksum_size()) != 0) | 81 input.GetDecryptConfig()->checksum().size()) != 0) |
82 return false; | 82 return false; |
83 return true; | 83 return true; |
84 } | 84 } |
85 | 85 |
86 // Decrypts |input| using |key|. |encrypted_data_offset| is the number of bytes | 86 enum ClearBytesBufferSel { |
87 // into |input| that the encrypted data starts. | 87 kSrcContainsClearBytes, |
88 // Returns a DecoderBuffer with the decrypted data if decryption succeeded or | 88 kDstContainsClearBytes, |
89 // NULL if decryption failed. | 89 }; |
90 | |
91 static void CopySubsamples(const std::vector<SubsampleEntry>& subsamples, | |
92 const ClearBytesBufferSel sel, | |
93 const uint8* src, | |
94 uint8* dst) { | |
95 for (size_t i = 0; i < subsamples.size(); i++) { | |
96 const SubsampleEntry& subsample = subsamples[i]; | |
97 if (sel == kSrcContainsClearBytes) { | |
98 src += subsample.clear_bytes; | |
99 } else { | |
100 dst += subsample.clear_bytes; | |
101 } | |
102 memcpy(dst, src, subsample.cypher_bytes); | |
103 src += subsample.cypher_bytes; | |
104 dst += subsample.cypher_bytes; | |
105 } | |
106 } | |
107 | |
108 // Decrypts |input| using |key|. Returns a DecoderBuffer with the decrypted | |
109 // data if decryption succeeded or NULL if decryption failed. | |
90 static scoped_refptr<DecoderBuffer> DecryptData(const DecoderBuffer& input, | 110 static scoped_refptr<DecoderBuffer> DecryptData(const DecoderBuffer& input, |
91 crypto::SymmetricKey* key, | 111 crypto::SymmetricKey* key) { |
92 int encrypted_data_offset) { | |
93 CHECK(input.GetDataSize()); | 112 CHECK(input.GetDataSize()); |
94 CHECK(input.GetDecryptConfig()); | 113 CHECK(input.GetDecryptConfig()); |
95 CHECK(key); | 114 CHECK(key); |
96 | 115 |
97 // Initialize decryptor. | |
98 crypto::Encryptor encryptor; | 116 crypto::Encryptor encryptor; |
99 if (!encryptor.Init(key, crypto::Encryptor::CTR, "")) { | 117 if (!encryptor.Init(key, crypto::Encryptor::CTR, "")) { |
100 DVLOG(1) << "Could not initialize decryptor."; | 118 DVLOG(1) << "Could not initialize decryptor."; |
101 return NULL; | 119 return NULL; |
102 } | 120 } |
103 | 121 |
104 DCHECK_EQ(input.GetDecryptConfig()->iv_size(), | 122 DCHECK_EQ(input.GetDecryptConfig()->iv().size(), |
105 DecryptConfig::kDecryptionKeySize); | 123 static_cast<size_t>(DecryptConfig::kDecryptionKeySize)); |
106 // Set the counter block. | 124 if (!encryptor.SetCounter(input.GetDecryptConfig()->iv())) { |
107 base::StringPiece counter_block( | |
108 reinterpret_cast<const char*>(input.GetDecryptConfig()->iv()), | |
109 input.GetDecryptConfig()->iv_size()); | |
110 if (counter_block.empty()) { | |
111 DVLOG(1) << "Could not generate counter block."; | |
112 return NULL; | |
113 } | |
114 if (!encryptor.SetCounter(counter_block)) { | |
115 DVLOG(1) << "Could not set counter block."; | 125 DVLOG(1) << "Could not set counter block."; |
116 return NULL; | 126 return NULL; |
117 } | 127 } |
118 | 128 |
129 const int data_offset = input.GetDecryptConfig()->data_offset(); | |
130 const char* sample = | |
131 reinterpret_cast<const char*>(input.GetData() + data_offset); | |
132 int sample_size = input.GetDataSize() - data_offset; | |
133 | |
134 if (input.GetDecryptConfig()->subsamples().empty()) { | |
135 std::string decrypted_text; | |
136 base::StringPiece encrypted_text(sample, sample_size); | |
137 if (!encryptor.Decrypt(encrypted_text, &decrypted_text)) { | |
138 DVLOG(1) << "Could not decrypt data."; | |
139 return NULL; | |
140 } | |
141 | |
142 // TODO(xhwang): Find a way to avoid this data copy. | |
143 return DecoderBuffer::CopyFrom( | |
144 reinterpret_cast<const uint8*>(decrypted_text.data()), | |
145 decrypted_text.size()); | |
146 } | |
147 | |
148 const std::vector<SubsampleEntry>& subsamples = | |
149 input.GetDecryptConfig()->subsamples(); | |
150 | |
151 int total_clear_size = 0; | |
152 int total_encrypted_size = 0; | |
153 for (size_t i = 0; i < subsamples.size(); i++) { | |
154 total_clear_size += subsamples[i].clear_bytes; | |
155 total_encrypted_size += subsamples[i].cypher_bytes; | |
156 } | |
157 if (total_clear_size + total_encrypted_size != sample_size) { | |
158 DVLOG(1) << "Subsample sizes do not equal input size"; | |
159 return NULL; | |
160 } | |
161 | |
162 // The encrypted portions of all subsamples must form a contiguous block, | |
163 // such that an encrypted subsample that ends away from a block boundary is | |
164 // immediately followed by the start of the next encrypted subsample. We | |
165 // copy all encrypted subsamples to a contiguous buffer, decrypt them, then | |
166 // copy the decrypted bytes over the encrypted bytes in the output. | |
167 // TODO(strobe): attempt to reduce number of memory copies | |
168 scoped_array<uint8> encrypted_bytes(new uint8[total_encrypted_size]); | |
169 CopySubsamples(subsamples, kSrcContainsClearBytes, | |
170 reinterpret_cast<const uint8*>(sample), encrypted_bytes.get()); | |
171 | |
172 base::StringPiece encrypted_text( | |
173 reinterpret_cast<const char*>(encrypted_bytes.get()), | |
174 total_encrypted_size); | |
119 std::string decrypted_text; | 175 std::string decrypted_text; |
120 const char* frame = | |
121 reinterpret_cast<const char*>(input.GetData() + encrypted_data_offset); | |
122 int frame_size = input.GetDataSize() - encrypted_data_offset; | |
123 base::StringPiece encrypted_text(frame, frame_size); | |
124 if (!encryptor.Decrypt(encrypted_text, &decrypted_text)) { | 176 if (!encryptor.Decrypt(encrypted_text, &decrypted_text)) { |
125 DVLOG(1) << "Could not decrypt data."; | 177 DVLOG(1) << "Could not decrypt data."; |
126 return NULL; | 178 return NULL; |
127 } | 179 } |
128 | 180 |
129 // TODO(xhwang): Find a way to avoid this data copy. | 181 scoped_refptr<DecoderBuffer> output = DecoderBuffer::CopyFrom( |
130 return DecoderBuffer::CopyFrom( | 182 reinterpret_cast<const uint8*>(sample), sample_size); |
131 reinterpret_cast<const uint8*>(decrypted_text.data()), | 183 CopySubsamples(subsamples, kDstContainsClearBytes, |
132 decrypted_text.size()); | 184 reinterpret_cast<const uint8*>(decrypted_text.data()), |
185 output->GetWritableData()); | |
186 return output; | |
133 } | 187 } |
134 | 188 |
135 AesDecryptor::AesDecryptor(DecryptorClient* client) | 189 AesDecryptor::AesDecryptor(DecryptorClient* client) |
136 : client_(client) { | 190 : client_(client) { |
137 } | 191 } |
138 | 192 |
139 AesDecryptor::~AesDecryptor() { | 193 AesDecryptor::~AesDecryptor() { |
140 STLDeleteValues(&key_map_); | 194 STLDeleteValues(&key_map_); |
141 } | 195 } |
142 | 196 |
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184 std::string key_id_string(reinterpret_cast<const char*>(init_data), | 238 std::string key_id_string(reinterpret_cast<const char*>(init_data), |
185 init_data_length); | 239 init_data_length); |
186 std::string key_string(reinterpret_cast<const char*>(key) , key_length); | 240 std::string key_string(reinterpret_cast<const char*>(key) , key_length); |
187 scoped_ptr<DecryptionKey> decryption_key(new DecryptionKey(key_string)); | 241 scoped_ptr<DecryptionKey> decryption_key(new DecryptionKey(key_string)); |
188 if (!decryption_key.get()) { | 242 if (!decryption_key.get()) { |
189 DVLOG(1) << "Could not create key."; | 243 DVLOG(1) << "Could not create key."; |
190 client_->KeyError(key_system, session_id, Decryptor::kUnknownError, 0); | 244 client_->KeyError(key_system, session_id, Decryptor::kUnknownError, 0); |
191 return; | 245 return; |
192 } | 246 } |
193 | 247 |
194 // TODO(fgalligan): When ISO is added we will need to figure out how to | 248 if (!decryption_key->Init()) { |
195 // detect if the encrypted data will contain an HMAC. | |
196 if (!decryption_key->Init(true)) { | |
197 DVLOG(1) << "Could not initialize decryption key."; | 249 DVLOG(1) << "Could not initialize decryption key."; |
198 client_->KeyError(key_system, session_id, Decryptor::kUnknownError, 0); | 250 client_->KeyError(key_system, session_id, Decryptor::kUnknownError, 0); |
199 return; | 251 return; |
200 } | 252 } |
201 | 253 |
202 { | 254 { |
203 base::AutoLock auto_lock(key_map_lock_); | 255 base::AutoLock auto_lock(key_map_lock_); |
204 KeyMap::iterator found = key_map_.find(key_id_string); | 256 KeyMap::iterator found = key_map_.find(key_id_string); |
205 if (found != key_map_.end()) { | 257 if (found != key_map_.end()) { |
206 delete found->second; | 258 delete found->second; |
207 key_map_.erase(found); | 259 key_map_.erase(found); |
208 } | 260 } |
209 key_map_[key_id_string] = decryption_key.release(); | 261 key_map_[key_id_string] = decryption_key.release(); |
210 } | 262 } |
211 | 263 |
212 client_->KeyAdded(key_system, session_id); | 264 client_->KeyAdded(key_system, session_id); |
213 } | 265 } |
214 | 266 |
215 void AesDecryptor::CancelKeyRequest(const std::string& key_system, | 267 void AesDecryptor::CancelKeyRequest(const std::string& key_system, |
216 const std::string& session_id) { | 268 const std::string& session_id) { |
217 } | 269 } |
218 | 270 |
219 void AesDecryptor::Decrypt(const scoped_refptr<DecoderBuffer>& encrypted, | 271 void AesDecryptor::Decrypt(const scoped_refptr<DecoderBuffer>& encrypted, |
220 const DecryptCB& decrypt_cb) { | 272 const DecryptCB& decrypt_cb) { |
221 CHECK(encrypted->GetDecryptConfig()); | 273 CHECK(encrypted->GetDecryptConfig()); |
222 const uint8* key_id = encrypted->GetDecryptConfig()->key_id(); | 274 const std::string& key_id = encrypted->GetDecryptConfig()->key_id(); |
223 const int key_id_size = encrypted->GetDecryptConfig()->key_id_size(); | |
224 | |
225 // TODO(xhwang): Avoid always constructing a string with StringPiece? | |
226 std::string key_id_string(reinterpret_cast<const char*>(key_id), key_id_size); | |
227 | 275 |
228 DecryptionKey* key = NULL; | 276 DecryptionKey* key = NULL; |
229 { | 277 { |
230 base::AutoLock auto_lock(key_map_lock_); | 278 base::AutoLock auto_lock(key_map_lock_); |
231 KeyMap::const_iterator found = key_map_.find(key_id_string); | 279 KeyMap::const_iterator found = key_map_.find(key_id); |
232 if (found != key_map_.end()) | 280 if (found != key_map_.end()) |
233 key = found->second; | 281 key = found->second; |
234 } | 282 } |
235 | 283 |
236 if (!key) { | 284 if (!key) { |
237 // TODO(fgalligan): Fire a need_key event here and add a test. | 285 // TODO(fgalligan): Fire a need_key event here and add a test. |
238 DVLOG(1) << "Could not find a matching key for given key ID."; | 286 DVLOG(1) << "Could not find a matching key for given key ID."; |
239 decrypt_cb.Run(kError, NULL); | 287 decrypt_cb.Run(kError, NULL); |
240 return; | 288 return; |
241 } | 289 } |
242 | 290 |
243 int checksum_size = encrypted->GetDecryptConfig()->checksum_size(); | 291 int checksum_size = encrypted->GetDecryptConfig()->checksum().size(); |
244 // According to the WebM encrypted specification, it is an open question | 292 // According to the WebM encrypted specification, it is an open question |
245 // what should happen when a frame fails the integrity check. | 293 // what should happen when a frame fails the integrity check. |
246 // http://wiki.webmproject.org/encryption/webm-encryption-rfc | 294 // http://wiki.webmproject.org/encryption/webm-encryption-rfc |
247 if (checksum_size > 0 && | 295 if (checksum_size > 0 && |
248 !key->hmac_key().empty() && | 296 !key->hmac_key().empty() && |
249 !CheckData(*encrypted, key->hmac_key())) { | 297 !CheckData(*encrypted, key->hmac_key())) { |
250 DVLOG(1) << "Integrity check failed."; | 298 DVLOG(1) << "Integrity check failed."; |
251 decrypt_cb.Run(kError, NULL); | 299 decrypt_cb.Run(kError, NULL); |
252 return; | 300 return; |
253 } | 301 } |
254 | 302 |
303 // TODO(strobe): Currently, presence of checksum is used to indicate the use | |
304 // of normal or WebM decryption keys. Consider a more explicit signaling | |
305 // mechanism and the removal of the webm_decryption_key member. | |
306 crypto::SymmetricKey* decryption_key = (checksum_size > 0) ? | |
307 key->webm_decryption_key() : key->decryption_key(); | |
255 scoped_refptr<DecoderBuffer> decrypted = | 308 scoped_refptr<DecoderBuffer> decrypted = |
256 DecryptData(*encrypted, | 309 DecryptData(*encrypted, decryption_key); |
257 key->decryption_key(), | |
258 encrypted->GetDecryptConfig()->encrypted_frame_offset()); | |
259 if (!decrypted) { | 310 if (!decrypted) { |
260 DVLOG(1) << "Decryption failed."; | 311 DVLOG(1) << "Decryption failed."; |
261 decrypt_cb.Run(kError, NULL); | 312 decrypt_cb.Run(kError, NULL); |
262 return; | 313 return; |
263 } | 314 } |
264 | 315 |
265 decrypted->SetTimestamp(encrypted->GetTimestamp()); | 316 decrypted->SetTimestamp(encrypted->GetTimestamp()); |
266 decrypted->SetDuration(encrypted->GetDuration()); | 317 decrypted->SetDuration(encrypted->GetDuration()); |
267 decrypt_cb.Run(kSuccess, decrypted); | 318 decrypt_cb.Run(kSuccess, decrypted); |
268 } | 319 } |
269 | 320 |
270 AesDecryptor::DecryptionKey::DecryptionKey( | 321 AesDecryptor::DecryptionKey::DecryptionKey( |
271 const std::string& secret) | 322 const std::string& secret) |
272 : secret_(secret) { | 323 : secret_(secret) { |
273 } | 324 } |
274 | 325 |
275 AesDecryptor::DecryptionKey::~DecryptionKey() {} | 326 AesDecryptor::DecryptionKey::~DecryptionKey() {} |
276 | 327 |
277 bool AesDecryptor::DecryptionKey::Init(bool derive_webm_keys) { | 328 bool AesDecryptor::DecryptionKey::Init() { |
278 CHECK(!secret_.empty()); | 329 CHECK(!secret_.empty()); |
279 | |
280 if (derive_webm_keys) { | |
281 std::string raw_key = DeriveKey(secret_, | |
282 kWebmEncryptionSeed, | |
283 secret_.length()); | |
284 if (raw_key.empty()) { | |
285 return false; | |
286 } | |
287 decryption_key_.reset( | |
288 crypto::SymmetricKey::Import(crypto::SymmetricKey::AES, raw_key)); | |
289 if (!decryption_key_.get()) { | |
290 return false; | |
291 } | |
292 | |
293 hmac_key_ = DeriveKey(secret_, kWebmHmacSeed, kWebmSha1DigestSize); | |
294 if (hmac_key_.empty()) { | |
295 return false; | |
296 } | |
297 return true; | |
298 } | |
299 | |
300 decryption_key_.reset( | 330 decryption_key_.reset( |
301 crypto::SymmetricKey::Import(crypto::SymmetricKey::AES, secret_)); | 331 crypto::SymmetricKey::Import(crypto::SymmetricKey::AES, secret_)); |
302 if (!decryption_key_.get()) { | 332 if (!decryption_key_.get()) { |
303 return false; | 333 return false; |
304 } | 334 } |
335 | |
336 std::string raw_key = DeriveKey(secret_, | |
337 kWebmEncryptionSeed, | |
338 secret_.length()); | |
339 if (raw_key.empty()) { | |
340 return false; | |
341 } | |
342 webm_decryption_key_.reset( | |
343 crypto::SymmetricKey::Import(crypto::SymmetricKey::AES, raw_key)); | |
344 if (!webm_decryption_key_.get()) { | |
345 return false; | |
346 } | |
347 | |
348 hmac_key_ = DeriveKey(secret_, kWebmHmacSeed, kWebmSha1DigestSize); | |
349 if (hmac_key_.empty()) { | |
350 return false; | |
351 } | |
352 | |
305 return true; | 353 return true; |
306 } | 354 } |
307 | 355 |
308 } // namespace media | 356 } // namespace media |
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