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Side by Side Diff: net/disk_cache/v3/backend_worker.cc

Issue 14991008: Disk cache: Add base files for implementation of file format version 3. (Closed) Base URL: svn://svn.chromium.org/chrome/trunk/src/
Patch Set: Rebase attempt 2 Created 7 years, 7 months ago
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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 "net/disk_cache/backend_impl.h" 5 #include "net/disk_cache/backend_impl.h"
6 6
7 #include "base/bind.h" 7 #include "base/bind.h"
8 #include "base/bind_helpers.h" 8 #include "base/bind_helpers.h"
9 #include "base/file_util.h" 9 #include "base/file_util.h"
10 #include "base/files/file_path.h" 10 #include "base/files/file_path.h"
(...skipping 79 matching lines...) Expand 10 before | Expand all | Expand 10 after
90 return true; 90 return true;
91 } else if (header->experiment != disk_cache::EXPERIMENT_SIMPLE_CONTROL) { 91 } else if (header->experiment != disk_cache::EXPERIMENT_SIMPLE_CONTROL) {
92 return false; 92 return false;
93 } 93 }
94 } 94 }
95 95
96 header->experiment = disk_cache::NO_EXPERIMENT; 96 header->experiment = disk_cache::NO_EXPERIMENT;
97 return true; 97 return true;
98 } 98 }
99 99
100 // A callback to perform final cleanup on the background thread.
101 void FinalCleanupCallback(disk_cache::BackendImpl* backend) {
102 backend->CleanupCache();
103 }
104
105 } // namespace 100 } // namespace
106 101
107 // ------------------------------------------------------------------------ 102 // ------------------------------------------------------------------------
108 103
109 namespace disk_cache { 104 namespace disk_cache {
110 105
111 // Returns the preferred maximum number of bytes for the cache given the
112 // number of available bytes.
113 int PreferedCacheSize(int64 available) {
114 // Return 80% of the available space if there is not enough space to use
115 // kDefaultCacheSize.
116 if (available < kDefaultCacheSize * 10 / 8)
117 return static_cast<int32>(available * 8 / 10);
118
119 // Return kDefaultCacheSize if it uses 80% to 10% of the available space.
120 if (available < kDefaultCacheSize * 10)
121 return kDefaultCacheSize;
122
123 // Return 10% of the available space if the target size
124 // (2.5 * kDefaultCacheSize) is more than 10%.
125 if (available < static_cast<int64>(kDefaultCacheSize) * 25)
126 return static_cast<int32>(available / 10);
127
128 // Return the target size (2.5 * kDefaultCacheSize) if it uses 10% to 1%
129 // of the available space.
130 if (available < static_cast<int64>(kDefaultCacheSize) * 250)
131 return kDefaultCacheSize * 5 / 2;
132
133 // Return 1% of the available space if it does not exceed kint32max.
134 if (available < static_cast<int64>(kint32max) * 100)
135 return static_cast<int32>(available / 100);
136
137 return kint32max;
138 }
139
140 // ------------------------------------------------------------------------
141
142 BackendImpl::BackendImpl(const base::FilePath& path, 106 BackendImpl::BackendImpl(const base::FilePath& path,
143 base::MessageLoopProxy* cache_thread, 107 base::MessageLoopProxy* cache_thread,
144 net::NetLog* net_log) 108 net::NetLog* net_log)
145 : background_queue_(this, cache_thread), 109 : background_queue_(this, cache_thread),
146 path_(path), 110 path_(path),
147 block_files_(path), 111 block_files_(path),
148 mask_(0), 112 mask_(0),
149 max_size_(0), 113 max_size_(0),
150 up_ticks_(0), 114 up_ticks_(0),
151 cache_type_(net::DISK_CACHE), 115 cache_type_(net::DISK_CACHE),
152 uma_report_(0), 116 uma_report_(0),
153 user_flags_(0), 117 user_flags_(0),
154 init_(false), 118 init_(false),
155 restarted_(false), 119 restarted_(false),
156 unit_test_(false), 120 unit_test_(false),
157 read_only_(false), 121 read_only_(false),
158 disabled_(false), 122 disabled_(false),
159 new_eviction_(false), 123 new_eviction_(false),
160 first_timer_(true), 124 first_timer_(true),
161 user_load_(false), 125 user_load_(false),
162 net_log_(net_log), 126 net_log_(net_log),
163 done_(true, false), 127 done_(true, false),
164 ptr_factory_(this) { 128 ptr_factory_(this) {
165 } 129 }
166 130
167 BackendImpl::BackendImpl(const base::FilePath& path,
168 uint32 mask,
169 base::MessageLoopProxy* cache_thread,
170 net::NetLog* net_log)
171 : background_queue_(this, cache_thread),
172 path_(path),
173 block_files_(path),
174 mask_(mask),
175 max_size_(0),
176 up_ticks_(0),
177 cache_type_(net::DISK_CACHE),
178 uma_report_(0),
179 user_flags_(kMask),
180 init_(false),
181 restarted_(false),
182 unit_test_(false),
183 read_only_(false),
184 disabled_(false),
185 new_eviction_(false),
186 first_timer_(true),
187 user_load_(false),
188 net_log_(net_log),
189 done_(true, false),
190 ptr_factory_(this) {
191 }
192
193 BackendImpl::~BackendImpl() {
194 if (user_flags_ & kNoRandom) {
195 // This is a unit test, so we want to be strict about not leaking entries
196 // and completing all the work.
197 background_queue_.WaitForPendingIO();
198 } else {
199 // This is most likely not a test, so we want to do as little work as
200 // possible at this time, at the price of leaving dirty entries behind.
201 background_queue_.DropPendingIO();
202 }
203
204 if (background_queue_.BackgroundIsCurrentThread()) {
205 // Unit tests may use the same thread for everything.
206 CleanupCache();
207 } else {
208 background_queue_.background_thread()->PostTask(
209 FROM_HERE, base::Bind(&FinalCleanupCallback, base::Unretained(this)));
210 // http://crbug.com/74623
211 base::ThreadRestrictions::ScopedAllowWait allow_wait;
212 done_.Wait();
213 }
214 }
215
216 int BackendImpl::Init(const CompletionCallback& callback) {
217 background_queue_.Init(callback);
218 return net::ERR_IO_PENDING;
219 }
220
221 int BackendImpl::SyncInit() { 131 int BackendImpl::SyncInit() {
222 #if defined(NET_BUILD_STRESS_CACHE) 132 #if defined(NET_BUILD_STRESS_CACHE)
223 // Start evictions right away. 133 // Start evictions right away.
224 up_ticks_ = kTrimDelay * 2; 134 up_ticks_ = kTrimDelay * 2;
225 #endif 135 #endif
226 DCHECK(!init_); 136 DCHECK(!init_);
227 if (init_) 137 if (init_)
228 return net::ERR_FAILED; 138 return net::ERR_FAILED;
229 139
230 bool create_files = false; 140 bool create_files = false;
(...skipping 85 matching lines...) Expand 10 before | Expand all | Expand 10 after
316 ReportError(ERR_PREVIOUS_CRASH); 226 ReportError(ERR_PREVIOUS_CRASH);
317 } else if (!restarted_) { 227 } else if (!restarted_) {
318 ReportError(ERR_NO_ERROR); 228 ReportError(ERR_NO_ERROR);
319 } 229 }
320 230
321 FlushIndex(); 231 FlushIndex();
322 232
323 return disabled_ ? net::ERR_FAILED : net::OK; 233 return disabled_ ? net::ERR_FAILED : net::OK;
324 } 234 }
325 235
236 void BackendImpl::PrepareForRestart() {
237 // Reset the mask_ if it was not given by the user.
238 if (!(user_flags_ & kMask))
239 mask_ = 0;
240
241 if (!(user_flags_ & kNewEviction))
242 new_eviction_ = false;
243
244 disabled_ = true;
245 data_->header.crash = 0;
246 index_->Flush();
247 index_ = NULL;
248 data_ = NULL;
249 block_files_.CloseFiles();
250 rankings_.Reset();
251 init_ = false;
252 restarted_ = true;
253 }
254
255 BackendImpl::~BackendImpl() {
256 if (user_flags_ & kNoRandom) {
257 // This is a unit test, so we want to be strict about not leaking entries
258 // and completing all the work.
259 background_queue_.WaitForPendingIO();
260 } else {
261 // This is most likely not a test, so we want to do as little work as
262 // possible at this time, at the price of leaving dirty entries behind.
263 background_queue_.DropPendingIO();
264 }
265
266 if (background_queue_.BackgroundIsCurrentThread()) {
267 // Unit tests may use the same thread for everything.
268 CleanupCache();
269 } else {
270 background_queue_.background_thread()->PostTask(
271 FROM_HERE, base::Bind(&FinalCleanupCallback, base::Unretained(this)));
272 // http://crbug.com/74623
273 base::ThreadRestrictions::ScopedAllowWait allow_wait;
274 done_.Wait();
275 }
276 }
277
326 void BackendImpl::CleanupCache() { 278 void BackendImpl::CleanupCache() {
327 Trace("Backend Cleanup"); 279 Trace("Backend Cleanup");
328 eviction_.Stop(); 280 eviction_.Stop();
329 timer_.reset(); 281 timer_.reset();
330 282
331 if (init_) { 283 if (init_) {
332 StoreStats(); 284 StoreStats();
333 if (data_) 285 if (data_)
334 data_->header.crash = 0; 286 data_->header.crash = 0;
335 287
336 if (user_flags_ & kNoRandom) { 288 if (user_flags_ & kNoRandom) {
337 // This is a net_unittest, verify that we are not 'leaking' entries. 289 // This is a net_unittest, verify that we are not 'leaking' entries.
338 File::WaitForPendingIO(&num_pending_io_); 290 File::WaitForPendingIO(&num_pending_io_);
339 DCHECK(!num_refs_); 291 DCHECK(!num_refs_);
340 } else { 292 } else {
341 File::DropPendingIO(); 293 File::DropPendingIO();
342 } 294 }
343 } 295 }
344 block_files_.CloseFiles(); 296 block_files_.CloseFiles();
345 FlushIndex(); 297 FlushIndex();
346 index_ = NULL; 298 index_ = NULL;
347 ptr_factory_.InvalidateWeakPtrs(); 299 ptr_factory_.InvalidateWeakPtrs();
348 done_.Signal(); 300 done_.Signal();
349 } 301 }
350 302
351 // ------------------------------------------------------------------------
352
353 int BackendImpl::OpenPrevEntry(void** iter, Entry** prev_entry,
354 const CompletionCallback& callback) {
355 DCHECK(!callback.is_null());
356 background_queue_.OpenPrevEntry(iter, prev_entry, callback);
357 return net::ERR_IO_PENDING;
358 }
359
360 int BackendImpl::SyncOpenEntry(const std::string& key, Entry** entry) {
361 DCHECK(entry);
362 *entry = OpenEntryImpl(key);
363 return (*entry) ? net::OK : net::ERR_FAILED;
364 }
365
366 int BackendImpl::SyncCreateEntry(const std::string& key, Entry** entry) {
367 DCHECK(entry);
368 *entry = CreateEntryImpl(key);
369 return (*entry) ? net::OK : net::ERR_FAILED;
370 }
371
372 int BackendImpl::SyncDoomEntry(const std::string& key) {
373 if (disabled_)
374 return net::ERR_FAILED;
375
376 EntryImpl* entry = OpenEntryImpl(key);
377 if (!entry)
378 return net::ERR_FAILED;
379
380 entry->DoomImpl();
381 entry->Release();
382 return net::OK;
383 }
384
385 int BackendImpl::SyncDoomAllEntries() {
386 // This is not really an error, but it is an interesting condition.
387 ReportError(ERR_CACHE_DOOMED);
388 stats_.OnEvent(Stats::DOOM_CACHE);
389 if (!num_refs_) {
390 RestartCache(false);
391 return disabled_ ? net::ERR_FAILED : net::OK;
392 } else {
393 if (disabled_)
394 return net::ERR_FAILED;
395
396 eviction_.TrimCache(true);
397 return net::OK;
398 }
399 }
400
401 int BackendImpl::SyncDoomEntriesBetween(const base::Time initial_time,
402 const base::Time end_time) {
403 DCHECK_NE(net::APP_CACHE, cache_type_);
404 if (end_time.is_null())
405 return SyncDoomEntriesSince(initial_time);
406
407 DCHECK(end_time >= initial_time);
408
409 if (disabled_)
410 return net::ERR_FAILED;
411
412 EntryImpl* node;
413 void* iter = NULL;
414 EntryImpl* next = OpenNextEntryImpl(&iter);
415 if (!next)
416 return net::OK;
417
418 while (next) {
419 node = next;
420 next = OpenNextEntryImpl(&iter);
421
422 if (node->GetLastUsed() >= initial_time &&
423 node->GetLastUsed() < end_time) {
424 node->DoomImpl();
425 } else if (node->GetLastUsed() < initial_time) {
426 if (next)
427 next->Release();
428 next = NULL;
429 SyncEndEnumeration(iter);
430 }
431
432 node->Release();
433 }
434
435 return net::OK;
436 }
437
438 // We use OpenNextEntryImpl to retrieve elements from the cache, until we get
439 // entries that are too old.
440 int BackendImpl::SyncDoomEntriesSince(const base::Time initial_time) {
441 DCHECK_NE(net::APP_CACHE, cache_type_);
442 if (disabled_)
443 return net::ERR_FAILED;
444
445 stats_.OnEvent(Stats::DOOM_RECENT);
446 for (;;) {
447 void* iter = NULL;
448 EntryImpl* entry = OpenNextEntryImpl(&iter);
449 if (!entry)
450 return net::OK;
451
452 if (initial_time > entry->GetLastUsed()) {
453 entry->Release();
454 SyncEndEnumeration(iter);
455 return net::OK;
456 }
457
458 entry->DoomImpl();
459 entry->Release();
460 SyncEndEnumeration(iter); // Dooming the entry invalidates the iterator.
461 }
462 }
463
464 int BackendImpl::SyncOpenNextEntry(void** iter, Entry** next_entry) {
465 *next_entry = OpenNextEntryImpl(iter);
466 return (*next_entry) ? net::OK : net::ERR_FAILED;
467 }
468
469 int BackendImpl::SyncOpenPrevEntry(void** iter, Entry** prev_entry) {
470 *prev_entry = OpenPrevEntryImpl(iter);
471 return (*prev_entry) ? net::OK : net::ERR_FAILED;
472 }
473
474 void BackendImpl::SyncEndEnumeration(void* iter) {
475 scoped_ptr<Rankings::Iterator> iterator(
476 reinterpret_cast<Rankings::Iterator*>(iter));
477 }
478
479 void BackendImpl::SyncOnExternalCacheHit(const std::string& key) {
480 if (disabled_)
481 return;
482
483 uint32 hash = base::Hash(key);
484 bool error;
485 EntryImpl* cache_entry = MatchEntry(key, hash, false, Addr(), &error);
486 if (cache_entry) {
487 if (ENTRY_NORMAL == cache_entry->entry()->Data()->state) {
488 UpdateRank(cache_entry, cache_type() == net::SHADER_CACHE);
489 }
490 cache_entry->Release();
491 }
492 }
493
494 EntryImpl* BackendImpl::OpenEntryImpl(const std::string& key) {
495 if (disabled_)
496 return NULL;
497
498 TimeTicks start = TimeTicks::Now();
499 uint32 hash = base::Hash(key);
500 Trace("Open hash 0x%x", hash);
501
502 bool error;
503 EntryImpl* cache_entry = MatchEntry(key, hash, false, Addr(), &error);
504 if (cache_entry && ENTRY_NORMAL != cache_entry->entry()->Data()->state) {
505 // The entry was already evicted.
506 cache_entry->Release();
507 cache_entry = NULL;
508 }
509
510 int current_size = data_->header.num_bytes / (1024 * 1024);
511 int64 total_hours = stats_.GetCounter(Stats::TIMER) / 120;
512 int64 no_use_hours = stats_.GetCounter(Stats::LAST_REPORT_TIMER) / 120;
513 int64 use_hours = total_hours - no_use_hours;
514
515 if (!cache_entry) {
516 CACHE_UMA(AGE_MS, "OpenTime.Miss", 0, start);
517 CACHE_UMA(COUNTS_10000, "AllOpenBySize.Miss", 0, current_size);
518 CACHE_UMA(HOURS, "AllOpenByTotalHours.Miss", 0, total_hours);
519 CACHE_UMA(HOURS, "AllOpenByUseHours.Miss", 0, use_hours);
520 stats_.OnEvent(Stats::OPEN_MISS);
521 return NULL;
522 }
523
524 eviction_.OnOpenEntry(cache_entry);
525 entry_count_++;
526
527 Trace("Open hash 0x%x end: 0x%x", hash,
528 cache_entry->entry()->address().value());
529 CACHE_UMA(AGE_MS, "OpenTime", 0, start);
530 CACHE_UMA(COUNTS_10000, "AllOpenBySize.Hit", 0, current_size);
531 CACHE_UMA(HOURS, "AllOpenByTotalHours.Hit", 0, total_hours);
532 CACHE_UMA(HOURS, "AllOpenByUseHours.Hit", 0, use_hours);
533 stats_.OnEvent(Stats::OPEN_HIT);
534 SIMPLE_STATS_COUNTER("disk_cache.hit");
535 return cache_entry;
536 }
537
538 EntryImpl* BackendImpl::CreateEntryImpl(const std::string& key) {
539 if (disabled_ || key.empty())
540 return NULL;
541
542 TimeTicks start = TimeTicks::Now();
543 uint32 hash = base::Hash(key);
544 Trace("Create hash 0x%x", hash);
545
546 scoped_refptr<EntryImpl> parent;
547 Addr entry_address(data_->table[hash & mask_]);
548 if (entry_address.is_initialized()) {
549 // We have an entry already. It could be the one we are looking for, or just
550 // a hash conflict.
551 bool error;
552 EntryImpl* old_entry = MatchEntry(key, hash, false, Addr(), &error);
553 if (old_entry)
554 return ResurrectEntry(old_entry);
555
556 EntryImpl* parent_entry = MatchEntry(key, hash, true, Addr(), &error);
557 DCHECK(!error);
558 if (parent_entry) {
559 parent.swap(&parent_entry);
560 } else if (data_->table[hash & mask_]) {
561 // We should have corrected the problem.
562 NOTREACHED();
563 return NULL;
564 }
565 }
566
567 // The general flow is to allocate disk space and initialize the entry data,
568 // followed by saving that to disk, then linking the entry though the index
569 // and finally through the lists. If there is a crash in this process, we may
570 // end up with:
571 // a. Used, unreferenced empty blocks on disk (basically just garbage).
572 // b. Used, unreferenced but meaningful data on disk (more garbage).
573 // c. A fully formed entry, reachable only through the index.
574 // d. A fully formed entry, also reachable through the lists, but still dirty.
575 //
576 // Anything after (b) can be automatically cleaned up. We may consider saving
577 // the current operation (as we do while manipulating the lists) so that we
578 // can detect and cleanup (a) and (b).
579
580 int num_blocks = EntryImpl::NumBlocksForEntry(key.size());
581 if (!block_files_.CreateBlock(BLOCK_256, num_blocks, &entry_address)) {
582 LOG(ERROR) << "Create entry failed " << key.c_str();
583 stats_.OnEvent(Stats::CREATE_ERROR);
584 return NULL;
585 }
586
587 Addr node_address(0);
588 if (!block_files_.CreateBlock(RANKINGS, 1, &node_address)) {
589 block_files_.DeleteBlock(entry_address, false);
590 LOG(ERROR) << "Create entry failed " << key.c_str();
591 stats_.OnEvent(Stats::CREATE_ERROR);
592 return NULL;
593 }
594
595 scoped_refptr<EntryImpl> cache_entry(
596 new EntryImpl(this, entry_address, false));
597 IncreaseNumRefs();
598
599 if (!cache_entry->CreateEntry(node_address, key, hash)) {
600 block_files_.DeleteBlock(entry_address, false);
601 block_files_.DeleteBlock(node_address, false);
602 LOG(ERROR) << "Create entry failed " << key.c_str();
603 stats_.OnEvent(Stats::CREATE_ERROR);
604 return NULL;
605 }
606
607 cache_entry->BeginLogging(net_log_, true);
608
609 // We are not failing the operation; let's add this to the map.
610 open_entries_[entry_address.value()] = cache_entry;
611
612 // Save the entry.
613 cache_entry->entry()->Store();
614 cache_entry->rankings()->Store();
615 IncreaseNumEntries();
616 entry_count_++;
617
618 // Link this entry through the index.
619 if (parent.get()) {
620 parent->SetNextAddress(entry_address);
621 } else {
622 data_->table[hash & mask_] = entry_address.value();
623 }
624
625 // Link this entry through the lists.
626 eviction_.OnCreateEntry(cache_entry);
627
628 CACHE_UMA(AGE_MS, "CreateTime", 0, start);
629 stats_.OnEvent(Stats::CREATE_HIT);
630 SIMPLE_STATS_COUNTER("disk_cache.miss");
631 Trace("create entry hit ");
632 FlushIndex();
633 cache_entry->AddRef();
634 return cache_entry.get();
635 }
636
637 EntryImpl* BackendImpl::OpenNextEntryImpl(void** iter) {
638 return OpenFollowingEntry(true, iter);
639 }
640
641 EntryImpl* BackendImpl::OpenPrevEntryImpl(void** iter) {
642 return OpenFollowingEntry(false, iter);
643 }
644
645 bool BackendImpl::SetMaxSize(int max_bytes) {
646 COMPILE_ASSERT(sizeof(max_bytes) == sizeof(max_size_), unsupported_int_model);
647 if (max_bytes < 0)
648 return false;
649
650 // Zero size means use the default.
651 if (!max_bytes)
652 return true;
653
654 // Avoid a DCHECK later on.
655 if (max_bytes >= kint32max - kint32max / 10)
656 max_bytes = kint32max - kint32max / 10 - 1;
657
658 user_flags_ |= kMaxSize;
659 max_size_ = max_bytes;
660 return true;
661 }
662
663 void BackendImpl::SetType(net::CacheType type) {
664 DCHECK_NE(net::MEMORY_CACHE, type);
665 cache_type_ = type;
666 }
667
668 base::FilePath BackendImpl::GetFileName(Addr address) const { 303 base::FilePath BackendImpl::GetFileName(Addr address) const {
669 if (!address.is_separate_file() || !address.is_initialized()) { 304 if (!address.is_separate_file() || !address.is_initialized()) {
670 NOTREACHED(); 305 NOTREACHED();
671 return base::FilePath(); 306 return base::FilePath();
672 } 307 }
673 308
674 std::string tmp = base::StringPrintf("f_%06x", address.FileNumber()); 309 std::string tmp = base::StringPrintf("f_%06x", address.FileNumber());
675 return path_.AppendASCII(tmp); 310 return path_.AppendASCII(tmp);
676 } 311 }
677 312
678 MappedFile* BackendImpl::File(Addr address) {
679 if (disabled_)
680 return NULL;
681 return block_files_.GetFile(address);
682 }
683
684 base::WeakPtr<InFlightBackendIO> BackendImpl::GetBackgroundQueue() {
685 return background_queue_.GetWeakPtr();
686 }
687
688 bool BackendImpl::CreateExternalFile(Addr* address) {
689 int file_number = data_->header.last_file + 1;
690 Addr file_address(0);
691 bool success = false;
692 for (int i = 0; i < 0x0fffffff; i++, file_number++) {
693 if (!file_address.SetFileNumber(file_number)) {
694 file_number = 1;
695 continue;
696 }
697 base::FilePath name = GetFileName(file_address);
698 int flags = base::PLATFORM_FILE_READ |
699 base::PLATFORM_FILE_WRITE |
700 base::PLATFORM_FILE_CREATE |
701 base::PLATFORM_FILE_EXCLUSIVE_WRITE;
702 base::PlatformFileError error;
703 scoped_refptr<disk_cache::File> file(new disk_cache::File(
704 base::CreatePlatformFile(name, flags, NULL, &error)));
705 if (!file->IsValid()) {
706 if (error != base::PLATFORM_FILE_ERROR_EXISTS) {
707 LOG(ERROR) << "Unable to create file: " << error;
708 return false;
709 }
710 continue;
711 }
712
713 success = true;
714 break;
715 }
716
717 DCHECK(success);
718 if (!success)
719 return false;
720
721 data_->header.last_file = file_number;
722 address->set_value(file_address.value());
723 return true;
724 }
725
726 bool BackendImpl::CreateBlock(FileType block_type, int block_count,
727 Addr* block_address) {
728 return block_files_.CreateBlock(block_type, block_count, block_address);
729 }
730
731 void BackendImpl::DeleteBlock(Addr block_address, bool deep) {
732 block_files_.DeleteBlock(block_address, deep);
733 }
734
735 LruData* BackendImpl::GetLruData() {
736 return &data_->header.lru;
737 }
738
739 void BackendImpl::UpdateRank(EntryImpl* entry, bool modified) {
740 if (read_only_ || (!modified && cache_type() == net::SHADER_CACHE))
741 return;
742 eviction_.UpdateRank(entry, modified);
743 }
744
745 void BackendImpl::RecoveredEntry(CacheRankingsBlock* rankings) {
746 Addr address(rankings->Data()->contents);
747 EntryImpl* cache_entry = NULL;
748 if (NewEntry(address, &cache_entry)) {
749 STRESS_NOTREACHED();
750 return;
751 }
752
753 uint32 hash = cache_entry->GetHash();
754 cache_entry->Release();
755
756 // Anything on the table means that this entry is there.
757 if (data_->table[hash & mask_])
758 return;
759
760 data_->table[hash & mask_] = address.value();
761 FlushIndex();
762 }
763
764 void BackendImpl::InternalDoomEntry(EntryImpl* entry) {
765 uint32 hash = entry->GetHash();
766 std::string key = entry->GetKey();
767 Addr entry_addr = entry->entry()->address();
768 bool error;
769 EntryImpl* parent_entry = MatchEntry(key, hash, true, entry_addr, &error);
770 CacheAddr child(entry->GetNextAddress());
771
772 Trace("Doom entry 0x%p", entry);
773
774 if (!entry->doomed()) {
775 // We may have doomed this entry from within MatchEntry.
776 eviction_.OnDoomEntry(entry);
777 entry->InternalDoom();
778 if (!new_eviction_) {
779 DecreaseNumEntries();
780 }
781 stats_.OnEvent(Stats::DOOM_ENTRY);
782 }
783
784 if (parent_entry) {
785 parent_entry->SetNextAddress(Addr(child));
786 parent_entry->Release();
787 } else if (!error) {
788 data_->table[hash & mask_] = child;
789 }
790
791 FlushIndex();
792 }
793
794 #if defined(NET_BUILD_STRESS_CACHE)
795
796 CacheAddr BackendImpl::GetNextAddr(Addr address) {
797 EntriesMap::iterator it = open_entries_.find(address.value());
798 if (it != open_entries_.end()) {
799 EntryImpl* this_entry = it->second;
800 return this_entry->GetNextAddress();
801 }
802 DCHECK(block_files_.IsValid(address));
803 DCHECK(!address.is_separate_file() && address.file_type() == BLOCK_256);
804
805 CacheEntryBlock entry(File(address), address);
806 CHECK(entry.Load());
807 return entry.Data()->next;
808 }
809
810 void BackendImpl::NotLinked(EntryImpl* entry) {
811 Addr entry_addr = entry->entry()->address();
812 uint32 i = entry->GetHash() & mask_;
813 Addr address(data_->table[i]);
814 if (!address.is_initialized())
815 return;
816
817 for (;;) {
818 DCHECK(entry_addr.value() != address.value());
819 address.set_value(GetNextAddr(address));
820 if (!address.is_initialized())
821 break;
822 }
823 }
824 #endif // NET_BUILD_STRESS_CACHE
825
826 // An entry may be linked on the DELETED list for a while after being doomed.
827 // This function is called when we want to remove it.
828 void BackendImpl::RemoveEntry(EntryImpl* entry) {
829 #if defined(NET_BUILD_STRESS_CACHE)
830 NotLinked(entry);
831 #endif
832 if (!new_eviction_)
833 return;
834
835 DCHECK_NE(ENTRY_NORMAL, entry->entry()->Data()->state);
836
837 Trace("Remove entry 0x%p", entry);
838 eviction_.OnDestroyEntry(entry);
839 DecreaseNumEntries();
840 }
841
842 void BackendImpl::OnEntryDestroyBegin(Addr address) {
843 EntriesMap::iterator it = open_entries_.find(address.value());
844 if (it != open_entries_.end())
845 open_entries_.erase(it);
846 }
847
848 void BackendImpl::OnEntryDestroyEnd() {
849 DecreaseNumRefs();
850 if (data_->header.num_bytes > max_size_ && !read_only_ &&
851 (up_ticks_ > kTrimDelay || user_flags_ & kNoRandom))
852 eviction_.TrimCache(false);
853 }
854
855 EntryImpl* BackendImpl::GetOpenEntry(CacheRankingsBlock* rankings) const {
856 DCHECK(rankings->HasData());
857 EntriesMap::const_iterator it =
858 open_entries_.find(rankings->Data()->contents);
859 if (it != open_entries_.end()) {
860 // We have this entry in memory.
861 return it->second;
862 }
863
864 return NULL;
865 }
866
867 int32 BackendImpl::GetCurrentEntryId() const {
868 return data_->header.this_id;
869 }
870
871 int BackendImpl::MaxFileSize() const {
872 return max_size_ / 8;
873 }
874
875 void BackendImpl::ModifyStorageSize(int32 old_size, int32 new_size) {
876 if (disabled_ || old_size == new_size)
877 return;
878 if (old_size > new_size)
879 SubstractStorageSize(old_size - new_size);
880 else
881 AddStorageSize(new_size - old_size);
882
883 FlushIndex();
884
885 // Update the usage statistics.
886 stats_.ModifyStorageStats(old_size, new_size);
887 }
888
889 void BackendImpl::TooMuchStorageRequested(int32 size) {
890 stats_.ModifyStorageStats(0, size);
891 }
892
893 bool BackendImpl::IsAllocAllowed(int current_size, int new_size) {
894 DCHECK_GT(new_size, current_size);
895 if (user_flags_ & kNoBuffering)
896 return false;
897
898 int to_add = new_size - current_size;
899 if (buffer_bytes_ + to_add > MaxBuffersSize())
900 return false;
901
902 buffer_bytes_ += to_add;
903 CACHE_UMA(COUNTS_50000, "BufferBytes", 0, buffer_bytes_ / 1024);
904 return true;
905 }
906
907 void BackendImpl::BufferDeleted(int size) {
908 buffer_bytes_ -= size;
909 DCHECK_GE(size, 0);
910 }
911
912 bool BackendImpl::IsLoaded() const {
913 CACHE_UMA(COUNTS, "PendingIO", 0, num_pending_io_);
914 if (user_flags_ & kNoLoadProtection)
915 return false;
916
917 return (num_pending_io_ > 5 || user_load_);
918 }
919
920 std::string BackendImpl::HistogramName(const char* name, int experiment) const {
921 if (!experiment)
922 return base::StringPrintf("DiskCache.%d.%s", cache_type_, name);
923 return base::StringPrintf("DiskCache.%d.%s_%d", cache_type_,
924 name, experiment);
925 }
926
927 base::WeakPtr<BackendImpl> BackendImpl::GetWeakPtr() {
928 return ptr_factory_.GetWeakPtr();
929 }
930
931 // We want to remove biases from some histograms so we only send data once per
932 // week.
933 bool BackendImpl::ShouldReportAgain() {
934 if (uma_report_)
935 return uma_report_ == 2;
936
937 uma_report_++;
938 int64 last_report = stats_.GetCounter(Stats::LAST_REPORT);
939 Time last_time = Time::FromInternalValue(last_report);
940 if (!last_report || (Time::Now() - last_time).InDays() >= 7) {
941 stats_.SetCounter(Stats::LAST_REPORT, Time::Now().ToInternalValue());
942 uma_report_++;
943 return true;
944 }
945 return false;
946 }
947
948 void BackendImpl::FirstEviction() {
949 DCHECK(data_->header.create_time);
950 if (!GetEntryCount())
951 return; // This is just for unit tests.
952
953 Time create_time = Time::FromInternalValue(data_->header.create_time);
954 CACHE_UMA(AGE, "FillupAge", 0, create_time);
955
956 int64 use_time = stats_.GetCounter(Stats::TIMER);
957 CACHE_UMA(HOURS, "FillupTime", 0, static_cast<int>(use_time / 120));
958 CACHE_UMA(PERCENTAGE, "FirstHitRatio", 0, stats_.GetHitRatio());
959
960 if (!use_time)
961 use_time = 1;
962 CACHE_UMA(COUNTS_10000, "FirstEntryAccessRate", 0,
963 static_cast<int>(data_->header.num_entries / use_time));
964 CACHE_UMA(COUNTS, "FirstByteIORate", 0,
965 static_cast<int>((data_->header.num_bytes / 1024) / use_time));
966
967 int avg_size = data_->header.num_bytes / GetEntryCount();
968 CACHE_UMA(COUNTS, "FirstEntrySize", 0, avg_size);
969
970 int large_entries_bytes = stats_.GetLargeEntriesSize();
971 int large_ratio = large_entries_bytes * 100 / data_->header.num_bytes;
972 CACHE_UMA(PERCENTAGE, "FirstLargeEntriesRatio", 0, large_ratio);
973
974 if (new_eviction_) {
975 CACHE_UMA(PERCENTAGE, "FirstResurrectRatio", 0, stats_.GetResurrectRatio());
976 CACHE_UMA(PERCENTAGE, "FirstNoUseRatio", 0,
977 data_->header.lru.sizes[0] * 100 / data_->header.num_entries);
978 CACHE_UMA(PERCENTAGE, "FirstLowUseRatio", 0,
979 data_->header.lru.sizes[1] * 100 / data_->header.num_entries);
980 CACHE_UMA(PERCENTAGE, "FirstHighUseRatio", 0,
981 data_->header.lru.sizes[2] * 100 / data_->header.num_entries);
982 }
983
984 stats_.ResetRatios();
985 }
986
987 void BackendImpl::CriticalError(int error) {
988 STRESS_NOTREACHED();
989 LOG(ERROR) << "Critical error found " << error;
990 if (disabled_)
991 return;
992
993 stats_.OnEvent(Stats::FATAL_ERROR);
994 LogStats();
995 ReportError(error);
996
997 // Setting the index table length to an invalid value will force re-creation
998 // of the cache files.
999 data_->header.table_len = 1;
1000 disabled_ = true;
1001
1002 if (!num_refs_)
1003 base::MessageLoop::current()->PostTask(
1004 FROM_HERE, base::Bind(&BackendImpl::RestartCache, GetWeakPtr(), true));
1005 }
1006
1007 void BackendImpl::ReportError(int error) {
1008 STRESS_DCHECK(!error || error == ERR_PREVIOUS_CRASH ||
1009 error == ERR_CACHE_CREATED);
1010
1011 // We transmit positive numbers, instead of direct error codes.
1012 DCHECK_LE(error, 0);
1013 CACHE_UMA(CACHE_ERROR, "Error", 0, error * -1);
1014 }
1015
1016 void BackendImpl::OnEvent(Stats::Counters an_event) {
1017 stats_.OnEvent(an_event);
1018 }
1019
1020 void BackendImpl::OnRead(int32 bytes) {
1021 DCHECK_GE(bytes, 0);
1022 byte_count_ += bytes;
1023 if (byte_count_ < 0)
1024 byte_count_ = kint32max;
1025 }
1026
1027 void BackendImpl::OnWrite(int32 bytes) {
1028 // We use the same implementation as OnRead... just log the number of bytes.
1029 OnRead(bytes);
1030 }
1031
1032 void BackendImpl::OnStatsTimer() {
1033 stats_.OnEvent(Stats::TIMER);
1034 int64 time = stats_.GetCounter(Stats::TIMER);
1035 int64 current = stats_.GetCounter(Stats::OPEN_ENTRIES);
1036
1037 // OPEN_ENTRIES is a sampled average of the number of open entries, avoiding
1038 // the bias towards 0.
1039 if (num_refs_ && (current != num_refs_)) {
1040 int64 diff = (num_refs_ - current) / 50;
1041 if (!diff)
1042 diff = num_refs_ > current ? 1 : -1;
1043 current = current + diff;
1044 stats_.SetCounter(Stats::OPEN_ENTRIES, current);
1045 stats_.SetCounter(Stats::MAX_ENTRIES, max_refs_);
1046 }
1047
1048 CACHE_UMA(COUNTS, "NumberOfReferences", 0, num_refs_);
1049
1050 CACHE_UMA(COUNTS_10000, "EntryAccessRate", 0, entry_count_);
1051 CACHE_UMA(COUNTS, "ByteIORate", 0, byte_count_ / 1024);
1052
1053 // These values cover about 99.5% of the population (Oct 2011).
1054 user_load_ = (entry_count_ > 300 || byte_count_ > 7 * 1024 * 1024);
1055 entry_count_ = 0;
1056 byte_count_ = 0;
1057 up_ticks_++;
1058
1059 if (!data_)
1060 first_timer_ = false;
1061 if (first_timer_) {
1062 first_timer_ = false;
1063 if (ShouldReportAgain())
1064 ReportStats();
1065 }
1066
1067 // Save stats to disk at 5 min intervals.
1068 if (time % 10 == 0)
1069 StoreStats();
1070 }
1071
1072 void BackendImpl::IncrementIoCount() {
1073 num_pending_io_++;
1074 }
1075
1076 void BackendImpl::DecrementIoCount() {
1077 num_pending_io_--;
1078 }
1079
1080 void BackendImpl::SetUnitTestMode() {
1081 user_flags_ |= kUnitTestMode;
1082 unit_test_ = true;
1083 }
1084
1085 void BackendImpl::SetUpgradeMode() {
1086 user_flags_ |= kUpgradeMode;
1087 read_only_ = true;
1088 }
1089
1090 void BackendImpl::SetNewEviction() {
1091 user_flags_ |= kNewEviction;
1092 new_eviction_ = true;
1093 }
1094
1095 void BackendImpl::SetFlags(uint32 flags) {
1096 user_flags_ |= flags;
1097 }
1098
1099 void BackendImpl::ClearRefCountForTest() {
1100 num_refs_ = 0;
1101 }
1102
1103 int BackendImpl::FlushQueueForTest(const CompletionCallback& callback) {
1104 background_queue_.FlushQueue(callback);
1105 return net::ERR_IO_PENDING;
1106 }
1107
1108 int BackendImpl::RunTaskForTest(const base::Closure& task,
1109 const CompletionCallback& callback) {
1110 background_queue_.RunTask(task, callback);
1111 return net::ERR_IO_PENDING;
1112 }
1113
1114 void BackendImpl::TrimForTest(bool empty) {
1115 eviction_.SetTestMode();
1116 eviction_.TrimCache(empty);
1117 }
1118
1119 void BackendImpl::TrimDeletedListForTest(bool empty) {
1120 eviction_.SetTestMode();
1121 eviction_.TrimDeletedList(empty);
1122 }
1123
1124 int BackendImpl::SelfCheck() {
1125 if (!init_) {
1126 LOG(ERROR) << "Init failed";
1127 return ERR_INIT_FAILED;
1128 }
1129
1130 int num_entries = rankings_.SelfCheck();
1131 if (num_entries < 0) {
1132 LOG(ERROR) << "Invalid rankings list, error " << num_entries;
1133 #if !defined(NET_BUILD_STRESS_CACHE)
1134 return num_entries;
1135 #endif
1136 }
1137
1138 if (num_entries != data_->header.num_entries) {
1139 LOG(ERROR) << "Number of entries mismatch";
1140 #if !defined(NET_BUILD_STRESS_CACHE)
1141 return ERR_NUM_ENTRIES_MISMATCH;
1142 #endif
1143 }
1144
1145 return CheckAllEntries();
1146 }
1147
1148 void BackendImpl::FlushIndex() {
1149 if (index_ && !disabled_)
1150 index_->Flush();
1151 }
1152
1153 // ------------------------------------------------------------------------
1154
1155 net::CacheType BackendImpl::GetCacheType() const {
1156 return cache_type_;
1157 }
1158
1159 int32 BackendImpl::GetEntryCount() const {
1160 if (!index_ || disabled_)
1161 return 0;
1162 // num_entries includes entries already evicted.
1163 int32 not_deleted = data_->header.num_entries -
1164 data_->header.lru.sizes[Rankings::DELETED];
1165
1166 if (not_deleted < 0) {
1167 NOTREACHED();
1168 not_deleted = 0;
1169 }
1170
1171 return not_deleted;
1172 }
1173
1174 int BackendImpl::OpenEntry(const std::string& key, Entry** entry,
1175 const CompletionCallback& callback) {
1176 DCHECK(!callback.is_null());
1177 background_queue_.OpenEntry(key, entry, callback);
1178 return net::ERR_IO_PENDING;
1179 }
1180
1181 int BackendImpl::CreateEntry(const std::string& key, Entry** entry,
1182 const CompletionCallback& callback) {
1183 DCHECK(!callback.is_null());
1184 background_queue_.CreateEntry(key, entry, callback);
1185 return net::ERR_IO_PENDING;
1186 }
1187
1188 int BackendImpl::DoomEntry(const std::string& key,
1189 const CompletionCallback& callback) {
1190 DCHECK(!callback.is_null());
1191 background_queue_.DoomEntry(key, callback);
1192 return net::ERR_IO_PENDING;
1193 }
1194
1195 int BackendImpl::DoomAllEntries(const CompletionCallback& callback) {
1196 DCHECK(!callback.is_null());
1197 background_queue_.DoomAllEntries(callback);
1198 return net::ERR_IO_PENDING;
1199 }
1200
1201 int BackendImpl::DoomEntriesBetween(const base::Time initial_time,
1202 const base::Time end_time,
1203 const CompletionCallback& callback) {
1204 DCHECK(!callback.is_null());
1205 background_queue_.DoomEntriesBetween(initial_time, end_time, callback);
1206 return net::ERR_IO_PENDING;
1207 }
1208
1209 int BackendImpl::DoomEntriesSince(const base::Time initial_time,
1210 const CompletionCallback& callback) {
1211 DCHECK(!callback.is_null());
1212 background_queue_.DoomEntriesSince(initial_time, callback);
1213 return net::ERR_IO_PENDING;
1214 }
1215
1216 int BackendImpl::OpenNextEntry(void** iter, Entry** next_entry,
1217 const CompletionCallback& callback) {
1218 DCHECK(!callback.is_null());
1219 background_queue_.OpenNextEntry(iter, next_entry, callback);
1220 return net::ERR_IO_PENDING;
1221 }
1222
1223 void BackendImpl::EndEnumeration(void** iter) {
1224 background_queue_.EndEnumeration(*iter);
1225 *iter = NULL;
1226 }
1227
1228 void BackendImpl::GetStats(StatsItems* stats) {
1229 if (disabled_)
1230 return;
1231
1232 std::pair<std::string, std::string> item;
1233
1234 item.first = "Entries";
1235 item.second = base::StringPrintf("%d", data_->header.num_entries);
1236 stats->push_back(item);
1237
1238 item.first = "Pending IO";
1239 item.second = base::StringPrintf("%d", num_pending_io_);
1240 stats->push_back(item);
1241
1242 item.first = "Max size";
1243 item.second = base::StringPrintf("%d", max_size_);
1244 stats->push_back(item);
1245
1246 item.first = "Current size";
1247 item.second = base::StringPrintf("%d", data_->header.num_bytes);
1248 stats->push_back(item);
1249
1250 stats_.GetItems(stats);
1251 }
1252
1253 void BackendImpl::OnExternalCacheHit(const std::string& key) {
1254 background_queue_.OnExternalCacheHit(key);
1255 }
1256
1257 // ------------------------------------------------------------------------
1258
1259 // We just created a new file so we're going to write the header and set the 313 // We just created a new file so we're going to write the header and set the
1260 // file length to include the hash table (zero filled). 314 // file length to include the hash table (zero filled).
1261 bool BackendImpl::CreateBackingStore(disk_cache::File* file) { 315 bool BackendImpl::CreateBackingStore(disk_cache::File* file) {
1262 AdjustMaxCacheSize(0); 316 AdjustMaxCacheSize(0);
1263 317
1264 IndexHeader header; 318 IndexHeader header;
1265 header.table_len = DesiredIndexTableLen(max_size_); 319 header.table_len = DesiredIndexTableLen(max_size_);
1266 320
1267 // We need file version 2.1 for the new eviction algorithm. 321 // We need file version 2.1 for the new eviction algorithm.
1268 if (new_eviction_) 322 if (new_eviction_)
(...skipping 41 matching lines...) Expand 10 before | Expand all | Expand 10 after
1310 if (index_->GetLength() < sizeof(Index)) { 364 if (index_->GetLength() < sizeof(Index)) {
1311 // We verify this again on CheckIndex() but it's easier to make sure now 365 // We verify this again on CheckIndex() but it's easier to make sure now
1312 // that the header is there. 366 // that the header is there.
1313 LOG(ERROR) << "Corrupt Index file"; 367 LOG(ERROR) << "Corrupt Index file";
1314 return false; 368 return false;
1315 } 369 }
1316 370
1317 return true; 371 return true;
1318 } 372 }
1319 373
1320 // The maximum cache size will be either set explicitly by the caller, or 374 void BackendImpl::ReportError(int error) {
1321 // calculated by this code. 375 STRESS_DCHECK(!error || error == ERR_PREVIOUS_CRASH ||
1322 void BackendImpl::AdjustMaxCacheSize(int table_len) { 376 error == ERR_CACHE_CREATED);
1323 if (max_size_)
1324 return;
1325 377
1326 // If table_len is provided, the index file exists. 378 // We transmit positive numbers, instead of direct error codes.
1327 DCHECK(!table_len || data_->header.magic); 379 DCHECK_LE(error, 0);
1328 380 CACHE_UMA(CACHE_ERROR, "Error", 0, error * -1);
1329 // The user is not setting the size, let's figure it out.
1330 int64 available = base::SysInfo::AmountOfFreeDiskSpace(path_);
1331 if (available < 0) {
1332 max_size_ = kDefaultCacheSize;
1333 return;
1334 }
1335
1336 if (table_len)
1337 available += data_->header.num_bytes;
1338
1339 max_size_ = PreferedCacheSize(available);
1340
1341 // Let's not use more than the default size while we tune-up the performance
1342 // of bigger caches. TODO(rvargas): remove this limit.
1343 if (max_size_ > kDefaultCacheSize * 4)
1344 max_size_ = kDefaultCacheSize * 4;
1345
1346 if (!table_len)
1347 return;
1348
1349 // If we already have a table, adjust the size to it.
1350 int current_max_size = MaxStorageSizeForTable(table_len);
1351 if (max_size_ > current_max_size)
1352 max_size_= current_max_size;
1353 } 381 }
1354 382
1355 bool BackendImpl::InitStats() {
1356 Addr address(data_->header.stats);
1357 int size = stats_.StorageSize();
1358
1359 if (!address.is_initialized()) {
1360 FileType file_type = Addr::RequiredFileType(size);
1361 DCHECK_NE(file_type, EXTERNAL);
1362 int num_blocks = Addr::RequiredBlocks(size, file_type);
1363
1364 if (!CreateBlock(file_type, num_blocks, &address))
1365 return false;
1366 return stats_.Init(NULL, 0, address);
1367 }
1368
1369 if (!address.is_block_file()) {
1370 NOTREACHED();
1371 return false;
1372 }
1373
1374 // Load the required data.
1375 size = address.num_blocks() * address.BlockSize();
1376 MappedFile* file = File(address);
1377 if (!file)
1378 return false;
1379
1380 scoped_ptr<char[]> data(new char[size]);
1381 size_t offset = address.start_block() * address.BlockSize() +
1382 kBlockHeaderSize;
1383 if (!file->Read(data.get(), size, offset))
1384 return false;
1385
1386 if (!stats_.Init(data.get(), size, address))
1387 return false;
1388 if (cache_type_ == net::DISK_CACHE && ShouldReportAgain())
1389 stats_.InitSizeHistogram();
1390 return true;
1391 }
1392
1393 void BackendImpl::StoreStats() {
1394 int size = stats_.StorageSize();
1395 scoped_ptr<char[]> data(new char[size]);
1396 Addr address;
1397 size = stats_.SerializeStats(data.get(), size, &address);
1398 DCHECK(size);
1399 if (!address.is_initialized())
1400 return;
1401
1402 MappedFile* file = File(address);
1403 if (!file)
1404 return;
1405
1406 size_t offset = address.start_block() * address.BlockSize() +
1407 kBlockHeaderSize;
1408 file->Write(data.get(), size, offset); // ignore result.
1409 }
1410
1411 void BackendImpl::RestartCache(bool failure) {
1412 int64 errors = stats_.GetCounter(Stats::FATAL_ERROR);
1413 int64 full_dooms = stats_.GetCounter(Stats::DOOM_CACHE);
1414 int64 partial_dooms = stats_.GetCounter(Stats::DOOM_RECENT);
1415 int64 last_report = stats_.GetCounter(Stats::LAST_REPORT);
1416
1417 PrepareForRestart();
1418 if (failure) {
1419 DCHECK(!num_refs_);
1420 DCHECK(!open_entries_.size());
1421 DelayedCacheCleanup(path_);
1422 } else {
1423 DeleteCache(path_, false);
1424 }
1425
1426 // Don't call Init() if directed by the unit test: we are simulating a failure
1427 // trying to re-enable the cache.
1428 if (unit_test_)
1429 init_ = true; // Let the destructor do proper cleanup.
1430 else if (SyncInit() == net::OK) {
1431 stats_.SetCounter(Stats::FATAL_ERROR, errors);
1432 stats_.SetCounter(Stats::DOOM_CACHE, full_dooms);
1433 stats_.SetCounter(Stats::DOOM_RECENT, partial_dooms);
1434 stats_.SetCounter(Stats::LAST_REPORT, last_report);
1435 }
1436 }
1437
1438 void BackendImpl::PrepareForRestart() {
1439 // Reset the mask_ if it was not given by the user.
1440 if (!(user_flags_ & kMask))
1441 mask_ = 0;
1442
1443 if (!(user_flags_ & kNewEviction))
1444 new_eviction_ = false;
1445
1446 disabled_ = true;
1447 data_->header.crash = 0;
1448 index_->Flush();
1449 index_ = NULL;
1450 data_ = NULL;
1451 block_files_.CloseFiles();
1452 rankings_.Reset();
1453 init_ = false;
1454 restarted_ = true;
1455 }
1456
1457 int BackendImpl::NewEntry(Addr address, EntryImpl** entry) {
1458 EntriesMap::iterator it = open_entries_.find(address.value());
1459 if (it != open_entries_.end()) {
1460 // Easy job. This entry is already in memory.
1461 EntryImpl* this_entry = it->second;
1462 this_entry->AddRef();
1463 *entry = this_entry;
1464 return 0;
1465 }
1466
1467 STRESS_DCHECK(block_files_.IsValid(address));
1468
1469 if (!address.SanityCheckForEntry()) {
1470 LOG(WARNING) << "Wrong entry address.";
1471 STRESS_NOTREACHED();
1472 return ERR_INVALID_ADDRESS;
1473 }
1474
1475 scoped_refptr<EntryImpl> cache_entry(
1476 new EntryImpl(this, address, read_only_));
1477 IncreaseNumRefs();
1478 *entry = NULL;
1479
1480 TimeTicks start = TimeTicks::Now();
1481 if (!cache_entry->entry()->Load())
1482 return ERR_READ_FAILURE;
1483
1484 if (IsLoaded()) {
1485 CACHE_UMA(AGE_MS, "LoadTime", 0, start);
1486 }
1487
1488 if (!cache_entry->SanityCheck()) {
1489 LOG(WARNING) << "Messed up entry found.";
1490 STRESS_NOTREACHED();
1491 return ERR_INVALID_ENTRY;
1492 }
1493
1494 STRESS_DCHECK(block_files_.IsValid(
1495 Addr(cache_entry->entry()->Data()->rankings_node)));
1496
1497 if (!cache_entry->LoadNodeAddress())
1498 return ERR_READ_FAILURE;
1499
1500 if (!rankings_.SanityCheck(cache_entry->rankings(), false)) {
1501 STRESS_NOTREACHED();
1502 cache_entry->SetDirtyFlag(0);
1503 // Don't remove this from the list (it is not linked properly). Instead,
1504 // break the link back to the entry because it is going away, and leave the
1505 // rankings node to be deleted if we find it through a list.
1506 rankings_.SetContents(cache_entry->rankings(), 0);
1507 } else if (!rankings_.DataSanityCheck(cache_entry->rankings(), false)) {
1508 STRESS_NOTREACHED();
1509 cache_entry->SetDirtyFlag(0);
1510 rankings_.SetContents(cache_entry->rankings(), address.value());
1511 }
1512
1513 if (!cache_entry->DataSanityCheck()) {
1514 LOG(WARNING) << "Messed up entry found.";
1515 cache_entry->SetDirtyFlag(0);
1516 cache_entry->FixForDelete();
1517 }
1518
1519 // Prevent overwriting the dirty flag on the destructor.
1520 cache_entry->SetDirtyFlag(GetCurrentEntryId());
1521
1522 if (cache_entry->dirty()) {
1523 Trace("Dirty entry 0x%p 0x%x", reinterpret_cast<void*>(cache_entry.get()),
1524 address.value());
1525 }
1526
1527 open_entries_[address.value()] = cache_entry;
1528
1529 cache_entry->BeginLogging(net_log_, false);
1530 cache_entry.swap(entry);
1531 return 0;
1532 }
1533
1534 EntryImpl* BackendImpl::MatchEntry(const std::string& key, uint32 hash,
1535 bool find_parent, Addr entry_addr,
1536 bool* match_error) {
1537 Addr address(data_->table[hash & mask_]);
1538 scoped_refptr<EntryImpl> cache_entry, parent_entry;
1539 EntryImpl* tmp = NULL;
1540 bool found = false;
1541 std::set<CacheAddr> visited;
1542 *match_error = false;
1543
1544 for (;;) {
1545 if (disabled_)
1546 break;
1547
1548 if (visited.find(address.value()) != visited.end()) {
1549 // It's possible for a buggy version of the code to write a loop. Just
1550 // break it.
1551 Trace("Hash collision loop 0x%x", address.value());
1552 address.set_value(0);
1553 parent_entry->SetNextAddress(address);
1554 }
1555 visited.insert(address.value());
1556
1557 if (!address.is_initialized()) {
1558 if (find_parent)
1559 found = true;
1560 break;
1561 }
1562
1563 int error = NewEntry(address, &tmp);
1564 cache_entry.swap(&tmp);
1565
1566 if (error || cache_entry->dirty()) {
1567 // This entry is dirty on disk (it was not properly closed): we cannot
1568 // trust it.
1569 Addr child(0);
1570 if (!error)
1571 child.set_value(cache_entry->GetNextAddress());
1572
1573 if (parent_entry) {
1574 parent_entry->SetNextAddress(child);
1575 parent_entry = NULL;
1576 } else {
1577 data_->table[hash & mask_] = child.value();
1578 }
1579
1580 Trace("MatchEntry dirty %d 0x%x 0x%x", find_parent, entry_addr.value(),
1581 address.value());
1582
1583 if (!error) {
1584 // It is important to call DestroyInvalidEntry after removing this
1585 // entry from the table.
1586 DestroyInvalidEntry(cache_entry);
1587 cache_entry = NULL;
1588 } else {
1589 Trace("NewEntry failed on MatchEntry 0x%x", address.value());
1590 }
1591
1592 // Restart the search.
1593 address.set_value(data_->table[hash & mask_]);
1594 visited.clear();
1595 continue;
1596 }
1597
1598 DCHECK_EQ(hash & mask_, cache_entry->entry()->Data()->hash & mask_);
1599 if (cache_entry->IsSameEntry(key, hash)) {
1600 if (!cache_entry->Update())
1601 cache_entry = NULL;
1602 found = true;
1603 if (find_parent && entry_addr.value() != address.value()) {
1604 Trace("Entry not on the index 0x%x", address.value());
1605 *match_error = true;
1606 parent_entry = NULL;
1607 }
1608 break;
1609 }
1610 if (!cache_entry->Update())
1611 cache_entry = NULL;
1612 parent_entry = cache_entry;
1613 cache_entry = NULL;
1614 if (!parent_entry)
1615 break;
1616
1617 address.set_value(parent_entry->GetNextAddress());
1618 }
1619
1620 if (parent_entry && (!find_parent || !found))
1621 parent_entry = NULL;
1622
1623 if (find_parent && entry_addr.is_initialized() && !cache_entry) {
1624 *match_error = true;
1625 parent_entry = NULL;
1626 }
1627
1628 if (cache_entry && (find_parent || !found))
1629 cache_entry = NULL;
1630
1631 find_parent ? parent_entry.swap(&tmp) : cache_entry.swap(&tmp);
1632 FlushIndex();
1633 return tmp;
1634 }
1635
1636 // This is the actual implementation for OpenNextEntry and OpenPrevEntry.
1637 EntryImpl* BackendImpl::OpenFollowingEntry(bool forward, void** iter) {
1638 if (disabled_)
1639 return NULL;
1640
1641 DCHECK(iter);
1642
1643 const int kListsToSearch = 3;
1644 scoped_refptr<EntryImpl> entries[kListsToSearch];
1645 scoped_ptr<Rankings::Iterator> iterator(
1646 reinterpret_cast<Rankings::Iterator*>(*iter));
1647 *iter = NULL;
1648
1649 if (!iterator.get()) {
1650 iterator.reset(new Rankings::Iterator(&rankings_));
1651 bool ret = false;
1652
1653 // Get an entry from each list.
1654 for (int i = 0; i < kListsToSearch; i++) {
1655 EntryImpl* temp = NULL;
1656 ret |= OpenFollowingEntryFromList(forward, static_cast<Rankings::List>(i),
1657 &iterator->nodes[i], &temp);
1658 entries[i].swap(&temp); // The entry was already addref'd.
1659 }
1660 if (!ret)
1661 return NULL;
1662 } else {
1663 // Get the next entry from the last list, and the actual entries for the
1664 // elements on the other lists.
1665 for (int i = 0; i < kListsToSearch; i++) {
1666 EntryImpl* temp = NULL;
1667 if (iterator->list == i) {
1668 OpenFollowingEntryFromList(forward, iterator->list,
1669 &iterator->nodes[i], &temp);
1670 } else {
1671 temp = GetEnumeratedEntry(iterator->nodes[i],
1672 static_cast<Rankings::List>(i));
1673 }
1674
1675 entries[i].swap(&temp); // The entry was already addref'd.
1676 }
1677 }
1678
1679 int newest = -1;
1680 int oldest = -1;
1681 Time access_times[kListsToSearch];
1682 for (int i = 0; i < kListsToSearch; i++) {
1683 if (entries[i].get()) {
1684 access_times[i] = entries[i]->GetLastUsed();
1685 if (newest < 0) {
1686 DCHECK_LT(oldest, 0);
1687 newest = oldest = i;
1688 continue;
1689 }
1690 if (access_times[i] > access_times[newest])
1691 newest = i;
1692 if (access_times[i] < access_times[oldest])
1693 oldest = i;
1694 }
1695 }
1696
1697 if (newest < 0 || oldest < 0)
1698 return NULL;
1699
1700 EntryImpl* next_entry;
1701 if (forward) {
1702 next_entry = entries[newest].get();
1703 iterator->list = static_cast<Rankings::List>(newest);
1704 } else {
1705 next_entry = entries[oldest].get();
1706 iterator->list = static_cast<Rankings::List>(oldest);
1707 }
1708
1709 *iter = iterator.release();
1710 next_entry->AddRef();
1711 return next_entry;
1712 }
1713
1714 bool BackendImpl::OpenFollowingEntryFromList(bool forward, Rankings::List list,
1715 CacheRankingsBlock** from_entry,
1716 EntryImpl** next_entry) {
1717 if (disabled_)
1718 return false;
1719
1720 if (!new_eviction_ && Rankings::NO_USE != list)
1721 return false;
1722
1723 Rankings::ScopedRankingsBlock rankings(&rankings_, *from_entry);
1724 CacheRankingsBlock* next_block = forward ?
1725 rankings_.GetNext(rankings.get(), list) :
1726 rankings_.GetPrev(rankings.get(), list);
1727 Rankings::ScopedRankingsBlock next(&rankings_, next_block);
1728 *from_entry = NULL;
1729
1730 *next_entry = GetEnumeratedEntry(next.get(), list);
1731 if (!*next_entry)
1732 return false;
1733
1734 *from_entry = next.release();
1735 return true;
1736 }
1737
1738 EntryImpl* BackendImpl::GetEnumeratedEntry(CacheRankingsBlock* next,
1739 Rankings::List list) {
1740 if (!next || disabled_)
1741 return NULL;
1742
1743 EntryImpl* entry;
1744 int rv = NewEntry(Addr(next->Data()->contents), &entry);
1745 if (rv) {
1746 STRESS_NOTREACHED();
1747 rankings_.Remove(next, list, false);
1748 if (rv == ERR_INVALID_ADDRESS) {
1749 // There is nothing linked from the index. Delete the rankings node.
1750 DeleteBlock(next->address(), true);
1751 }
1752 return NULL;
1753 }
1754
1755 if (entry->dirty()) {
1756 // We cannot trust this entry.
1757 InternalDoomEntry(entry);
1758 entry->Release();
1759 return NULL;
1760 }
1761
1762 if (!entry->Update()) {
1763 STRESS_NOTREACHED();
1764 entry->Release();
1765 return NULL;
1766 }
1767
1768 // Note that it is unfortunate (but possible) for this entry to be clean, but
1769 // not actually the real entry. In other words, we could have lost this entry
1770 // from the index, and it could have been replaced with a newer one. It's not
1771 // worth checking that this entry is "the real one", so we just return it and
1772 // let the enumeration continue; this entry will be evicted at some point, and
1773 // the regular path will work with the real entry. With time, this problem
1774 // will disasappear because this scenario is just a bug.
1775
1776 // Make sure that we save the key for later.
1777 entry->GetKey();
1778
1779 return entry;
1780 }
1781
1782 EntryImpl* BackendImpl::ResurrectEntry(EntryImpl* deleted_entry) {
1783 if (ENTRY_NORMAL == deleted_entry->entry()->Data()->state) {
1784 deleted_entry->Release();
1785 stats_.OnEvent(Stats::CREATE_MISS);
1786 Trace("create entry miss ");
1787 return NULL;
1788 }
1789
1790 // We are attempting to create an entry and found out that the entry was
1791 // previously deleted.
1792
1793 eviction_.OnCreateEntry(deleted_entry);
1794 entry_count_++;
1795
1796 stats_.OnEvent(Stats::RESURRECT_HIT);
1797 Trace("Resurrect entry hit ");
1798 return deleted_entry;
1799 }
1800
1801 void BackendImpl::DestroyInvalidEntry(EntryImpl* entry) {
1802 LOG(WARNING) << "Destroying invalid entry.";
1803 Trace("Destroying invalid entry 0x%p", entry);
1804
1805 entry->SetPointerForInvalidEntry(GetCurrentEntryId());
1806
1807 eviction_.OnDoomEntry(entry);
1808 entry->InternalDoom();
1809
1810 if (!new_eviction_)
1811 DecreaseNumEntries();
1812 stats_.OnEvent(Stats::INVALID_ENTRY);
1813 }
1814
1815 void BackendImpl::AddStorageSize(int32 bytes) {
1816 data_->header.num_bytes += bytes;
1817 DCHECK_GE(data_->header.num_bytes, 0);
1818 }
1819
1820 void BackendImpl::SubstractStorageSize(int32 bytes) {
1821 data_->header.num_bytes -= bytes;
1822 DCHECK_GE(data_->header.num_bytes, 0);
1823 }
1824
1825 void BackendImpl::IncreaseNumRefs() {
1826 num_refs_++;
1827 if (max_refs_ < num_refs_)
1828 max_refs_ = num_refs_;
1829 }
1830
1831 void BackendImpl::DecreaseNumRefs() {
1832 DCHECK(num_refs_);
1833 num_refs_--;
1834
1835 if (!num_refs_ && disabled_)
1836 base::MessageLoop::current()->PostTask(
1837 FROM_HERE, base::Bind(&BackendImpl::RestartCache, GetWeakPtr(), true));
1838 }
1839
1840 void BackendImpl::IncreaseNumEntries() {
1841 data_->header.num_entries++;
1842 DCHECK_GT(data_->header.num_entries, 0);
1843 }
1844
1845 void BackendImpl::DecreaseNumEntries() {
1846 data_->header.num_entries--;
1847 if (data_->header.num_entries < 0) {
1848 NOTREACHED();
1849 data_->header.num_entries = 0;
1850 }
1851 }
1852
1853 void BackendImpl::LogStats() {
1854 StatsItems stats;
1855 GetStats(&stats);
1856
1857 for (size_t index = 0; index < stats.size(); index++)
1858 VLOG(1) << stats[index].first << ": " << stats[index].second;
1859 }
1860
1861 void BackendImpl::ReportStats() {
1862 CACHE_UMA(COUNTS, "Entries", 0, data_->header.num_entries);
1863
1864 int current_size = data_->header.num_bytes / (1024 * 1024);
1865 int max_size = max_size_ / (1024 * 1024);
1866 int hit_ratio_as_percentage = stats_.GetHitRatio();
1867
1868 CACHE_UMA(COUNTS_10000, "Size2", 0, current_size);
1869 // For any bin in HitRatioBySize2, the hit ratio of caches of that size is the
1870 // ratio of that bin's total count to the count in the same bin in the Size2
1871 // histogram.
1872 if (base::RandInt(0, 99) < hit_ratio_as_percentage)
1873 CACHE_UMA(COUNTS_10000, "HitRatioBySize2", 0, current_size);
1874 CACHE_UMA(COUNTS_10000, "MaxSize2", 0, max_size);
1875 if (!max_size)
1876 max_size++;
1877 CACHE_UMA(PERCENTAGE, "UsedSpace", 0, current_size * 100 / max_size);
1878
1879 CACHE_UMA(COUNTS_10000, "AverageOpenEntries2", 0,
1880 static_cast<int>(stats_.GetCounter(Stats::OPEN_ENTRIES)));
1881 CACHE_UMA(COUNTS_10000, "MaxOpenEntries2", 0,
1882 static_cast<int>(stats_.GetCounter(Stats::MAX_ENTRIES)));
1883 stats_.SetCounter(Stats::MAX_ENTRIES, 0);
1884
1885 CACHE_UMA(COUNTS_10000, "TotalFatalErrors", 0,
1886 static_cast<int>(stats_.GetCounter(Stats::FATAL_ERROR)));
1887 CACHE_UMA(COUNTS_10000, "TotalDoomCache", 0,
1888 static_cast<int>(stats_.GetCounter(Stats::DOOM_CACHE)));
1889 CACHE_UMA(COUNTS_10000, "TotalDoomRecentEntries", 0,
1890 static_cast<int>(stats_.GetCounter(Stats::DOOM_RECENT)));
1891 stats_.SetCounter(Stats::FATAL_ERROR, 0);
1892 stats_.SetCounter(Stats::DOOM_CACHE, 0);
1893 stats_.SetCounter(Stats::DOOM_RECENT, 0);
1894
1895 int64 total_hours = stats_.GetCounter(Stats::TIMER) / 120;
1896 if (!data_->header.create_time || !data_->header.lru.filled) {
1897 int cause = data_->header.create_time ? 0 : 1;
1898 if (!data_->header.lru.filled)
1899 cause |= 2;
1900 CACHE_UMA(CACHE_ERROR, "ShortReport", 0, cause);
1901 CACHE_UMA(HOURS, "TotalTimeNotFull", 0, static_cast<int>(total_hours));
1902 return;
1903 }
1904
1905 // This is an up to date client that will report FirstEviction() data. After
1906 // that event, start reporting this:
1907
1908 CACHE_UMA(HOURS, "TotalTime", 0, static_cast<int>(total_hours));
1909 // For any bin in HitRatioByTotalTime, the hit ratio of caches of that total
1910 // time is the ratio of that bin's total count to the count in the same bin in
1911 // the TotalTime histogram.
1912 if (base::RandInt(0, 99) < hit_ratio_as_percentage)
1913 CACHE_UMA(HOURS, "HitRatioByTotalTime", 0, implicit_cast<int>(total_hours));
1914
1915 int64 use_hours = stats_.GetCounter(Stats::LAST_REPORT_TIMER) / 120;
1916 stats_.SetCounter(Stats::LAST_REPORT_TIMER, stats_.GetCounter(Stats::TIMER));
1917
1918 // We may see users with no use_hours at this point if this is the first time
1919 // we are running this code.
1920 if (use_hours)
1921 use_hours = total_hours - use_hours;
1922
1923 if (!use_hours || !GetEntryCount() || !data_->header.num_bytes)
1924 return;
1925
1926 CACHE_UMA(HOURS, "UseTime", 0, static_cast<int>(use_hours));
1927 // For any bin in HitRatioByUseTime, the hit ratio of caches of that use time
1928 // is the ratio of that bin's total count to the count in the same bin in the
1929 // UseTime histogram.
1930 if (base::RandInt(0, 99) < hit_ratio_as_percentage)
1931 CACHE_UMA(HOURS, "HitRatioByUseTime", 0, implicit_cast<int>(use_hours));
1932 CACHE_UMA(PERCENTAGE, "HitRatio", 0, hit_ratio_as_percentage);
1933
1934 int64 trim_rate = stats_.GetCounter(Stats::TRIM_ENTRY) / use_hours;
1935 CACHE_UMA(COUNTS, "TrimRate", 0, static_cast<int>(trim_rate));
1936
1937 int avg_size = data_->header.num_bytes / GetEntryCount();
1938 CACHE_UMA(COUNTS, "EntrySize", 0, avg_size);
1939 CACHE_UMA(COUNTS, "EntriesFull", 0, data_->header.num_entries);
1940
1941 CACHE_UMA(PERCENTAGE, "IndexLoad", 0,
1942 data_->header.num_entries * 100 / (mask_ + 1));
1943
1944 int large_entries_bytes = stats_.GetLargeEntriesSize();
1945 int large_ratio = large_entries_bytes * 100 / data_->header.num_bytes;
1946 CACHE_UMA(PERCENTAGE, "LargeEntriesRatio", 0, large_ratio);
1947
1948 if (new_eviction_) {
1949 CACHE_UMA(PERCENTAGE, "ResurrectRatio", 0, stats_.GetResurrectRatio());
1950 CACHE_UMA(PERCENTAGE, "NoUseRatio", 0,
1951 data_->header.lru.sizes[0] * 100 / data_->header.num_entries);
1952 CACHE_UMA(PERCENTAGE, "LowUseRatio", 0,
1953 data_->header.lru.sizes[1] * 100 / data_->header.num_entries);
1954 CACHE_UMA(PERCENTAGE, "HighUseRatio", 0,
1955 data_->header.lru.sizes[2] * 100 / data_->header.num_entries);
1956 CACHE_UMA(PERCENTAGE, "DeletedRatio", 0,
1957 data_->header.lru.sizes[4] * 100 / data_->header.num_entries);
1958 }
1959
1960 stats_.ResetRatios();
1961 stats_.SetCounter(Stats::TRIM_ENTRY, 0);
1962
1963 if (cache_type_ == net::DISK_CACHE)
1964 block_files_.ReportStats();
1965 }
1966
1967 void BackendImpl::UpgradeTo2_1() {
1968 // 2.1 is basically the same as 2.0, except that new fields are actually
1969 // updated by the new eviction algorithm.
1970 DCHECK(0x20000 == data_->header.version);
1971 data_->header.version = 0x20001;
1972 data_->header.lru.sizes[Rankings::NO_USE] = data_->header.num_entries;
1973 }
1974 383
1975 bool BackendImpl::CheckIndex() { 384 bool BackendImpl::CheckIndex() {
1976 DCHECK(data_); 385 DCHECK(data_);
1977 386
1978 size_t current_size = index_->GetLength(); 387 size_t current_size = index_->GetLength();
1979 if (current_size < sizeof(Index)) { 388 if (current_size < sizeof(Index)) {
1980 LOG(ERROR) << "Corrupt Index file"; 389 LOG(ERROR) << "Corrupt Index file";
1981 return false; 390 return false;
1982 } 391 }
1983 392
(...skipping 44 matching lines...) Expand 10 before | Expand all | Expand 10 after
2028 } 437 }
2029 438
2030 if (!mask_) 439 if (!mask_)
2031 mask_ = data_->header.table_len - 1; 440 mask_ = data_->header.table_len - 1;
2032 441
2033 // Load the table into memory with a single read. 442 // Load the table into memory with a single read.
2034 scoped_ptr<char[]> buf(new char[current_size]); 443 scoped_ptr<char[]> buf(new char[current_size]);
2035 return index_->Read(buf.get(), current_size, 0); 444 return index_->Read(buf.get(), current_size, 0);
2036 } 445 }
2037 446
2038 int BackendImpl::CheckAllEntries() { 447 bool BackendImpl::InitStats() {
2039 int num_dirty = 0; 448 Addr address(data_->header.stats);
2040 int num_entries = 0; 449 int size = stats_.StorageSize();
2041 DCHECK(mask_ < kuint32max);
2042 for (unsigned int i = 0; i <= mask_; i++) {
2043 Addr address(data_->table[i]);
2044 if (!address.is_initialized())
2045 continue;
2046 for (;;) {
2047 EntryImpl* tmp;
2048 int ret = NewEntry(address, &tmp);
2049 if (ret) {
2050 STRESS_NOTREACHED();
2051 return ret;
2052 }
2053 scoped_refptr<EntryImpl> cache_entry;
2054 cache_entry.swap(&tmp);
2055 450
2056 if (cache_entry->dirty()) 451 if (!address.is_initialized()) {
2057 num_dirty++; 452 FileType file_type = Addr::RequiredFileType(size);
2058 else if (CheckEntry(cache_entry.get())) 453 DCHECK_NE(file_type, EXTERNAL);
2059 num_entries++; 454 int num_blocks = Addr::RequiredBlocks(size, file_type);
2060 else
2061 return ERR_INVALID_ENTRY;
2062 455
2063 DCHECK_EQ(i, cache_entry->entry()->Data()->hash & mask_); 456 if (!CreateBlock(file_type, num_blocks, &address))
2064 address.set_value(cache_entry->GetNextAddress()); 457 return false;
2065 if (!address.is_initialized()) 458 return stats_.Init(NULL, 0, address);
2066 break;
2067 }
2068 } 459 }
2069 460
2070 Trace("CheckAllEntries End"); 461 if (!address.is_block_file()) {
2071 if (num_entries + num_dirty != data_->header.num_entries) { 462 NOTREACHED();
2072 LOG(ERROR) << "Number of entries " << num_entries << " " << num_dirty << 463 return false;
2073 " " << data_->header.num_entries;
2074 DCHECK_LT(num_entries, data_->header.num_entries);
2075 return ERR_NUM_ENTRIES_MISMATCH;
2076 } 464 }
2077 465
2078 return num_dirty; 466 // Load the required data.
2079 } 467 size = address.num_blocks() * address.BlockSize();
468 MappedFile* file = File(address);
469 if (!file)
470 return false;
2080 471
2081 bool BackendImpl::CheckEntry(EntryImpl* cache_entry) { 472 scoped_ptr<char[]> data(new char[size]);
2082 bool ok = block_files_.IsValid(cache_entry->entry()->address()); 473 size_t offset = address.start_block() * address.BlockSize() +
2083 ok = ok && block_files_.IsValid(cache_entry->rankings()->address()); 474 kBlockHeaderSize;
2084 EntryStore* data = cache_entry->entry()->Data(); 475 if (!file->Read(data.get(), size, offset))
2085 for (size_t i = 0; i < arraysize(data->data_addr); i++) { 476 return false;
2086 if (data->data_addr[i]) {
2087 Addr address(data->data_addr[i]);
2088 if (address.is_block_file())
2089 ok = ok && block_files_.IsValid(address);
2090 }
2091 }
2092 477
2093 return ok && cache_entry->rankings()->VerifyHash(); 478 if (!stats_.Init(data.get(), size, address))
2094 } 479 return false;
2095 480 if (cache_type_ == net::DISK_CACHE && ShouldReportAgain())
2096 int BackendImpl::MaxBuffersSize() { 481 stats_.InitSizeHistogram();
2097 static int64 total_memory = base::SysInfo::AmountOfPhysicalMemory(); 482 return true;
2098 static bool done = false;
2099
2100 if (!done) {
2101 const int kMaxBuffersSize = 30 * 1024 * 1024;
2102
2103 // We want to use up to 2% of the computer's memory.
2104 total_memory = total_memory * 2 / 100;
2105 if (total_memory > kMaxBuffersSize || total_memory <= 0)
2106 total_memory = kMaxBuffersSize;
2107
2108 done = true;
2109 }
2110
2111 return static_cast<int>(total_memory);
2112 } 483 }
2113 484
2114 } // namespace disk_cache 485 } // namespace disk_cache
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