1 //
2 // Copyright (C) 2012 The Android Open Source Project
3 //
4 // Licensed under the Apache License, Version 2.0 (the "License");
5 // you may not use this file except in compliance with the License.
6 // You may obtain a copy of the License at
7 //
8 // http://www.apache.org/licenses/LICENSE-2.0
9 //
10 // Unless required by applicable law or agreed to in writing, software
11 // distributed under the License is distributed on an "AS IS" BASIS,
12 // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 // See the License for the specific language governing permissions and
14 // limitations under the License.
15 //
16
17 #include "update_engine/payload_consumer/filesystem_verifier_action.h"
18
19 #include <errno.h>
20 #include <fcntl.h>
21 #include <sys/stat.h>
22 #include <sys/types.h>
23 #include <unistd.h>
24
25 #include <algorithm>
26 #include <cstdlib>
27 #include <memory>
28 #include <string>
29 #include <utility>
30
31 #include <base/bind.h>
32 #include <base/strings/string_util.h>
33 #include <brillo/data_encoding.h>
34 #include <brillo/message_loops/message_loop.h>
35 #include <brillo/secure_blob.h>
36 #include <brillo/streams/file_stream.h>
37
38 #include "common/error_code.h"
39 #include "payload_generator/delta_diff_generator.h"
40 #include "update_engine/common/utils.h"
41 #include "update_engine/payload_consumer/file_descriptor.h"
42
43 using brillo::data_encoding::Base64Encode;
44 using std::string;
45
46 // On a partition with verity enabled, we expect to see the following format:
47 // ===================================================
48 // Normal Filesystem Data
49 // (this should take most of the space, like over 90%)
50 // ===================================================
51 // Hash tree
52 // ~0.8% (e.g. 16M for 2GB image)
53 // ===================================================
54 // FEC data
55 // ~0.8%
56 // ===================================================
57 // Footer
58 // 4K
59 // ===================================================
60
61 // For OTA that doesn't do on device verity computation, hash tree and fec data
62 // are written during DownloadAction as a regular InstallOp, so no special
63 // handling needed, we can just read the entire partition in 1 go.
64
65 // Verity enabled case: Only Normal FS data is written during download action.
66 // When hasing the entire partition, we will need to build the hash tree, write
67 // it to disk, then build FEC, and write it to disk. Therefore, it is important
68 // that we finish writing hash tree before we attempt to read & hash it. The
69 // same principal applies to FEC data.
70
71 // |verity_writer_| handles building and
72 // writing of FEC/HashTree, we just need to be careful when reading.
73 // Specifically, we must stop at beginning of Hash tree, let |verity_writer_|
74 // write both hash tree and FEC, then continue reading the remaining part of
75 // partition.
76
77 namespace chromeos_update_engine {
78
79 namespace {
80 const off_t kReadFileBufferSize = 128 * 1024;
81 constexpr float kVerityProgressPercent = 0.6;
82 } // namespace
83
PerformAction()84 void FilesystemVerifierAction::PerformAction() {
85 // Will tell the ActionProcessor we've failed if we return.
86 ScopedActionCompleter abort_action_completer(processor_, this);
87
88 if (!HasInputObject()) {
89 LOG(ERROR) << "FilesystemVerifierAction missing input object.";
90 return;
91 }
92 install_plan_ = GetInputObject();
93
94 if (install_plan_.partitions.empty()) {
95 LOG(INFO) << "No partitions to verify.";
96 if (HasOutputPipe())
97 SetOutputObject(install_plan_);
98 abort_action_completer.set_code(ErrorCode::kSuccess);
99 return;
100 }
101 install_plan_.Dump();
102 StartPartitionHashing();
103 abort_action_completer.set_should_complete(false);
104 }
105
TerminateProcessing()106 void FilesystemVerifierAction::TerminateProcessing() {
107 cancelled_ = true;
108 Cleanup(ErrorCode::kSuccess); // error code is ignored if canceled_ is true.
109 }
110
Cleanup(ErrorCode code)111 void FilesystemVerifierAction::Cleanup(ErrorCode code) {
112 partition_fd_.reset();
113 // This memory is not used anymore.
114 buffer_.clear();
115
116 // If we didn't write verity, partitions were maped. Releaase resource now.
117 if (!install_plan_.write_verity &&
118 dynamic_control_->UpdateUsesSnapshotCompression()) {
119 LOG(INFO) << "Not writing verity and VABC is enabled, unmapping all "
120 "partitions";
121 dynamic_control_->UnmapAllPartitions();
122 }
123
124 if (cancelled_)
125 return;
126 if (code == ErrorCode::kSuccess && HasOutputPipe())
127 SetOutputObject(install_plan_);
128 UpdateProgress(1.0);
129 processor_->ActionComplete(this, code);
130 }
131
UpdateProgress(double progress)132 void FilesystemVerifierAction::UpdateProgress(double progress) {
133 if (delegate_ != nullptr) {
134 delegate_->OnVerifyProgressUpdate(progress);
135 }
136 }
137
UpdatePartitionProgress(double progress)138 void FilesystemVerifierAction::UpdatePartitionProgress(double progress) {
139 // We don't consider sizes of each partition. Every partition
140 // has the same length on progress bar.
141 // TODO(b/186087589): Take sizes of each partition into account.
142 UpdateProgress((progress + partition_index_) /
143 install_plan_.partitions.size());
144 }
145
InitializeFdVABC(bool should_write_verity)146 bool FilesystemVerifierAction::InitializeFdVABC(bool should_write_verity) {
147 const InstallPlan::Partition& partition =
148 install_plan_.partitions[partition_index_];
149
150 if (!should_write_verity) {
151 // In VABC, we cannot map/unmap partitions w/o first closing ALL fds first.
152 // Since this function might be called inside a ScheduledTask, the closure
153 // might have a copy of partition_fd_ when executing this function. Which
154 // means even if we do |partition_fd_.reset()| here, there's a chance that
155 // underlying fd isn't closed until we return. This is unacceptable, we need
156 // to close |partition_fd| right away.
157 if (partition_fd_) {
158 partition_fd_->Close();
159 partition_fd_.reset();
160 }
161 // In VABC, if we are not writing verity, just map all partitions,
162 // and read using regular fd on |postinstall_mount_device| .
163 // All read will go through snapuserd, which provides a consistent
164 // view: device will use snapuserd to read partition during boot.
165 // b/186196758
166 // Call UnmapAllPartitions() first, because if we wrote verity before, these
167 // writes won't be visible to previously opened snapuserd daemon. To ensure
168 // that we will see the most up to date data from partitions, call Unmap()
169 // then Map() to re-spin daemon.
170 dynamic_control_->UnmapAllPartitions();
171 dynamic_control_->MapAllPartitions();
172 return InitializeFd(partition.readonly_target_path);
173 }
174 partition_fd_ =
175 dynamic_control_->OpenCowFd(partition.name, partition.source_path, true);
176 if (!partition_fd_) {
177 LOG(ERROR) << "OpenCowReader(" << partition.name << ", "
178 << partition.source_path << ") failed.";
179 return false;
180 }
181 partition_size_ = partition.target_size;
182 return true;
183 }
184
InitializeFd(const std::string & part_path)185 bool FilesystemVerifierAction::InitializeFd(const std::string& part_path) {
186 partition_fd_ = FileDescriptorPtr(new EintrSafeFileDescriptor());
187 const bool write_verity = ShouldWriteVerity();
188 int flags = write_verity ? O_RDWR : O_RDONLY;
189 if (!utils::SetBlockDeviceReadOnly(part_path, !write_verity)) {
190 LOG(WARNING) << "Failed to set block device " << part_path << " as "
191 << (write_verity ? "writable" : "readonly");
192 }
193 if (!partition_fd_->Open(part_path.c_str(), flags)) {
194 LOG(ERROR) << "Unable to open " << part_path << " for reading.";
195 return false;
196 }
197 return true;
198 }
199
WriteVerityAndHashPartition(FileDescriptorPtr fd,const off64_t start_offset,const off64_t end_offset,void * buffer,const size_t buffer_size)200 void FilesystemVerifierAction::WriteVerityAndHashPartition(
201 FileDescriptorPtr fd,
202 const off64_t start_offset,
203 const off64_t end_offset,
204 void* buffer,
205 const size_t buffer_size) {
206 if (start_offset >= end_offset) {
207 LOG_IF(WARNING, start_offset > end_offset)
208 << "start_offset is greater than end_offset : " << start_offset << " > "
209 << end_offset;
210 if (!verity_writer_->Finalize(fd, fd)) {
211 LOG(ERROR) << "Failed to write verity data";
212 Cleanup(ErrorCode::kVerityCalculationError);
213 return;
214 }
215 if (dynamic_control_->UpdateUsesSnapshotCompression()) {
216 // Spin up snapuserd to read fs.
217 if (!InitializeFdVABC(false)) {
218 LOG(ERROR) << "Failed to map all partitions";
219 Cleanup(ErrorCode::kFilesystemVerifierError);
220 return;
221 }
222 }
223 HashPartition(partition_fd_, 0, partition_size_, buffer, buffer_size);
224 return;
225 }
226 const auto cur_offset = fd->Seek(start_offset, SEEK_SET);
227 if (cur_offset != start_offset) {
228 PLOG(ERROR) << "Failed to seek to offset: " << start_offset;
229 Cleanup(ErrorCode::kVerityCalculationError);
230 return;
231 }
232 const auto read_size =
233 std::min<size_t>(buffer_size, end_offset - start_offset);
234 const auto bytes_read = fd->Read(buffer, read_size);
235 if (bytes_read < 0 || static_cast<size_t>(bytes_read) != read_size) {
236 PLOG(ERROR) << "Failed to read offset " << start_offset << " expected "
237 << read_size << " bytes, actual: " << bytes_read;
238 Cleanup(ErrorCode::kVerityCalculationError);
239 return;
240 }
241 if (!verity_writer_->Update(
242 start_offset, static_cast<const uint8_t*>(buffer), read_size)) {
243 LOG(ERROR) << "VerityWriter::Update() failed";
244 Cleanup(ErrorCode::kVerityCalculationError);
245 return;
246 }
247 UpdatePartitionProgress((start_offset + bytes_read) * 1.0f / partition_size_ *
248 kVerityProgressPercent);
249 CHECK(pending_task_id_.PostTask(
250 FROM_HERE,
251 base::BindOnce(&FilesystemVerifierAction::WriteVerityAndHashPartition,
252 base::Unretained(this),
253 fd,
254 start_offset + bytes_read,
255 end_offset,
256 buffer,
257 buffer_size)));
258 }
259
HashPartition(FileDescriptorPtr fd,const off64_t start_offset,const off64_t end_offset,void * buffer,const size_t buffer_size)260 void FilesystemVerifierAction::HashPartition(FileDescriptorPtr fd,
261 const off64_t start_offset,
262 const off64_t end_offset,
263 void* buffer,
264 const size_t buffer_size) {
265 if (start_offset >= end_offset) {
266 LOG_IF(WARNING, start_offset > end_offset)
267 << "start_offset is greater than end_offset : " << start_offset << " > "
268 << end_offset;
269 FinishPartitionHashing();
270 return;
271 }
272 const auto cur_offset = fd->Seek(start_offset, SEEK_SET);
273 if (cur_offset != start_offset) {
274 PLOG(ERROR) << "Failed to seek to offset: " << start_offset;
275 Cleanup(ErrorCode::kFilesystemVerifierError);
276 return;
277 }
278 const auto read_size =
279 std::min<size_t>(buffer_size, end_offset - start_offset);
280 const auto bytes_read = fd->Read(buffer, read_size);
281 if (bytes_read < 0 || static_cast<size_t>(bytes_read) != read_size) {
282 PLOG(ERROR) << "Failed to read offset " << start_offset << " expected "
283 << read_size << " bytes, actual: " << bytes_read;
284 Cleanup(ErrorCode::kFilesystemVerifierError);
285 return;
286 }
287 if (!hasher_->Update(buffer, read_size)) {
288 LOG(ERROR) << "Hasher updated failed on offset" << start_offset;
289 Cleanup(ErrorCode::kFilesystemVerifierError);
290 return;
291 }
292 const auto progress = (start_offset + bytes_read) * 1.0f / partition_size_;
293 UpdatePartitionProgress(progress * (1 - kVerityProgressPercent) +
294 kVerityProgressPercent);
295 CHECK(pending_task_id_.PostTask(
296 FROM_HERE,
297 base::BindOnce(&FilesystemVerifierAction::HashPartition,
298 base::Unretained(this),
299 fd,
300 start_offset + bytes_read,
301 end_offset,
302 buffer,
303 buffer_size)));
304 }
305
StartPartitionHashing()306 void FilesystemVerifierAction::StartPartitionHashing() {
307 if (partition_index_ == install_plan_.partitions.size()) {
308 if (!install_plan_.untouched_dynamic_partitions.empty()) {
309 LOG(INFO) << "Verifying extents of untouched dynamic partitions ["
310 << base::JoinString(install_plan_.untouched_dynamic_partitions,
311 ", ")
312 << "]";
313 if (!dynamic_control_->VerifyExtentsForUntouchedPartitions(
314 install_plan_.source_slot,
315 install_plan_.target_slot,
316 install_plan_.untouched_dynamic_partitions)) {
317 Cleanup(ErrorCode::kFilesystemVerifierError);
318 return;
319 }
320 }
321
322 Cleanup(ErrorCode::kSuccess);
323 return;
324 }
325 const InstallPlan::Partition& partition =
326 install_plan_.partitions[partition_index_];
327 const auto& part_path = GetPartitionPath();
328 partition_size_ = GetPartitionSize();
329
330 LOG(INFO) << "Hashing partition " << partition_index_ << " ("
331 << partition.name << ") on device " << part_path;
332 auto success = false;
333 if (IsVABC(partition)) {
334 success = InitializeFdVABC(ShouldWriteVerity());
335 } else {
336 if (part_path.empty()) {
337 if (partition_size_ == 0) {
338 LOG(INFO) << "Skip hashing partition " << partition_index_ << " ("
339 << partition.name << ") because size is 0.";
340 partition_index_++;
341 StartPartitionHashing();
342 return;
343 }
344 LOG(ERROR) << "Cannot hash partition " << partition_index_ << " ("
345 << partition.name
346 << ") because its device path cannot be determined.";
347 Cleanup(ErrorCode::kFilesystemVerifierError);
348 return;
349 }
350 success = InitializeFd(part_path);
351 }
352 if (!success) {
353 Cleanup(ErrorCode::kFilesystemVerifierError);
354 return;
355 }
356 buffer_.resize(kReadFileBufferSize);
357 hasher_ = std::make_unique<HashCalculator>();
358
359 offset_ = 0;
360 filesystem_data_end_ = partition_size_;
361 if (partition.fec_offset > 0) {
362 CHECK_LE(partition.hash_tree_offset, partition.fec_offset)
363 << " Hash tree is expected to come before FEC data";
364 }
365 if (partition.hash_tree_offset != 0) {
366 filesystem_data_end_ = partition.hash_tree_offset;
367 } else if (partition.fec_offset != 0) {
368 filesystem_data_end_ = partition.fec_offset;
369 }
370 if (ShouldWriteVerity()) {
371 LOG(INFO) << "Verity writes enabled on partition " << partition.name;
372 if (!verity_writer_->Init(partition)) {
373 LOG(INFO) << "Verity writes enabled on partition " << partition.name;
374 Cleanup(ErrorCode::kVerityCalculationError);
375 return;
376 }
377 WriteVerityAndHashPartition(
378 partition_fd_, 0, filesystem_data_end_, buffer_.data(), buffer_.size());
379 } else {
380 LOG(INFO) << "Verity writes disabled on partition " << partition.name;
381 HashPartition(
382 partition_fd_, 0, partition_size_, buffer_.data(), buffer_.size());
383 }
384 }
385
IsVABC(const InstallPlan::Partition & partition) const386 bool FilesystemVerifierAction::IsVABC(
387 const InstallPlan::Partition& partition) const {
388 return dynamic_control_->UpdateUsesSnapshotCompression() &&
389 verifier_step_ == VerifierStep::kVerifyTargetHash &&
390 dynamic_control_->IsDynamicPartition(partition.name,
391 install_plan_.target_slot);
392 }
393
GetPartitionPath() const394 const std::string& FilesystemVerifierAction::GetPartitionPath() const {
395 const InstallPlan::Partition& partition =
396 install_plan_.partitions[partition_index_];
397 switch (verifier_step_) {
398 case VerifierStep::kVerifySourceHash:
399 return partition.source_path;
400 case VerifierStep::kVerifyTargetHash:
401 if (IsVABC(partition)) {
402 return partition.readonly_target_path;
403 } else {
404 return partition.target_path;
405 }
406 }
407 }
408
GetPartitionSize() const409 size_t FilesystemVerifierAction::GetPartitionSize() const {
410 const InstallPlan::Partition& partition =
411 install_plan_.partitions[partition_index_];
412 switch (verifier_step_) {
413 case VerifierStep::kVerifySourceHash:
414 return partition.source_size;
415 case VerifierStep::kVerifyTargetHash:
416 return partition.target_size;
417 }
418 }
419
ShouldWriteVerity()420 bool FilesystemVerifierAction::ShouldWriteVerity() {
421 const InstallPlan::Partition& partition =
422 install_plan_.partitions[partition_index_];
423 return verifier_step_ == VerifierStep::kVerifyTargetHash &&
424 install_plan_.write_verity &&
425 (partition.hash_tree_size > 0 || partition.fec_size > 0);
426 }
427
FinishPartitionHashing()428 void FilesystemVerifierAction::FinishPartitionHashing() {
429 if (!hasher_->Finalize()) {
430 LOG(ERROR) << "Unable to finalize the hash.";
431 Cleanup(ErrorCode::kError);
432 return;
433 }
434 InstallPlan::Partition& partition =
435 install_plan_.partitions[partition_index_];
436 LOG(INFO) << "Hash of " << partition.name << ": "
437 << Base64Encode(hasher_->raw_hash());
438
439 switch (verifier_step_) {
440 case VerifierStep::kVerifyTargetHash:
441 if (partition.target_hash != hasher_->raw_hash()) {
442 LOG(ERROR) << "New '" << partition.name
443 << "' partition verification failed.";
444 if (partition.source_hash.empty()) {
445 // No need to verify source if it is a full payload.
446 Cleanup(ErrorCode::kNewRootfsVerificationError);
447 return;
448 }
449 // If we have not verified source partition yet, now that the target
450 // partition does not match, and it's not a full payload, we need to
451 // switch to kVerifySourceHash step to check if it's because the
452 // source partition does not match either.
453 verifier_step_ = VerifierStep::kVerifySourceHash;
454 } else {
455 partition_index_++;
456 }
457 break;
458 case VerifierStep::kVerifySourceHash:
459 if (partition.source_hash != hasher_->raw_hash()) {
460 LOG(ERROR) << "Old '" << partition.name
461 << "' partition verification failed.";
462 LOG(ERROR) << "This is a server-side error due to mismatched delta"
463 << " update image!";
464 LOG(ERROR) << "The delta I've been given contains a " << partition.name
465 << " delta update that must be applied over a "
466 << partition.name << " with a specific checksum, but the "
467 << partition.name
468 << " we're starting with doesn't have that checksum! This"
469 " means that the delta I've been given doesn't match my"
470 " existing system. The "
471 << partition.name << " partition I have has hash: "
472 << Base64Encode(hasher_->raw_hash())
473 << " but the update expected me to have "
474 << Base64Encode(partition.source_hash) << " .";
475 LOG(INFO) << "To get the checksum of the " << partition.name
476 << " partition run this command: dd if="
477 << partition.source_path
478 << " bs=1M count=" << partition.source_size
479 << " iflag=count_bytes 2>/dev/null | openssl dgst -sha256 "
480 "-binary | openssl base64";
481 LOG(INFO) << "To get the checksum of partitions in a bin file, "
482 << "run: .../src/scripts/sha256_partitions.sh .../file.bin";
483 Cleanup(ErrorCode::kDownloadStateInitializationError);
484 return;
485 }
486 // The action will skip kVerifySourceHash step if target partition hash
487 // matches, if we are in this step, it means target hash does not match,
488 // and now that the source partition hash matches, we should set the
489 // error code to reflect the error in target partition. We only need to
490 // verify the source partition which the target hash does not match, the
491 // rest of the partitions don't matter.
492 Cleanup(ErrorCode::kNewRootfsVerificationError);
493 return;
494 }
495 // Start hashing the next partition, if any.
496 hasher_.reset();
497 buffer_.clear();
498 if (partition_fd_) {
499 partition_fd_->Close();
500 partition_fd_.reset();
501 }
502 StartPartitionHashing();
503 }
504
505 } // namespace chromeos_update_engine
506