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256 lines
7.5 KiB
256 lines
7.5 KiB
//===-- quarantine_test.cpp -------------------------------------*- C++ -*-===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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#include "tests/scudo_unit_test.h"
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#include "quarantine.h"
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#include <pthread.h>
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#include <stdlib.h>
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static void *FakePtr = reinterpret_cast<void *>(0xFA83FA83);
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static const scudo::uptr BlockSize = 8UL;
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static const scudo::uptr LargeBlockSize = 16384UL;
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struct QuarantineCallback {
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void recycle(void *P) { EXPECT_EQ(P, FakePtr); }
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void *allocate(scudo::uptr Size) { return malloc(Size); }
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void deallocate(void *P) { free(P); }
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};
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typedef scudo::GlobalQuarantine<QuarantineCallback, void> QuarantineT;
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typedef typename QuarantineT::CacheT CacheT;
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static QuarantineCallback Cb;
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static void deallocateCache(CacheT *Cache) {
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while (scudo::QuarantineBatch *Batch = Cache->dequeueBatch())
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Cb.deallocate(Batch);
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}
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TEST(ScudoQuarantineTest, QuarantineBatchMerge) {
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// Verify the trivial case.
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scudo::QuarantineBatch Into;
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Into.init(FakePtr, 4UL);
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scudo::QuarantineBatch From;
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From.init(FakePtr, 8UL);
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Into.merge(&From);
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EXPECT_EQ(Into.Count, 2UL);
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EXPECT_EQ(Into.Batch[0], FakePtr);
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EXPECT_EQ(Into.Batch[1], FakePtr);
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EXPECT_EQ(Into.Size, 12UL + sizeof(scudo::QuarantineBatch));
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EXPECT_EQ(Into.getQuarantinedSize(), 12UL);
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EXPECT_EQ(From.Count, 0UL);
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EXPECT_EQ(From.Size, sizeof(scudo::QuarantineBatch));
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EXPECT_EQ(From.getQuarantinedSize(), 0UL);
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// Merge the batch to the limit.
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for (scudo::uptr I = 2; I < scudo::QuarantineBatch::MaxCount; ++I)
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From.push_back(FakePtr, 8UL);
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EXPECT_TRUE(Into.Count + From.Count == scudo::QuarantineBatch::MaxCount);
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EXPECT_TRUE(Into.canMerge(&From));
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Into.merge(&From);
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EXPECT_TRUE(Into.Count == scudo::QuarantineBatch::MaxCount);
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// No more space, not even for one element.
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From.init(FakePtr, 8UL);
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EXPECT_FALSE(Into.canMerge(&From));
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}
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TEST(ScudoQuarantineTest, QuarantineCacheMergeBatchesEmpty) {
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CacheT Cache;
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CacheT ToDeallocate;
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Cache.init();
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ToDeallocate.init();
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Cache.mergeBatches(&ToDeallocate);
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EXPECT_EQ(ToDeallocate.getSize(), 0UL);
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EXPECT_EQ(ToDeallocate.dequeueBatch(), nullptr);
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}
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TEST(SanitizerCommon, QuarantineCacheMergeBatchesOneBatch) {
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CacheT Cache;
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Cache.init();
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Cache.enqueue(Cb, FakePtr, BlockSize);
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EXPECT_EQ(BlockSize + sizeof(scudo::QuarantineBatch), Cache.getSize());
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CacheT ToDeallocate;
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ToDeallocate.init();
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Cache.mergeBatches(&ToDeallocate);
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// Nothing to merge, nothing to deallocate.
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EXPECT_EQ(BlockSize + sizeof(scudo::QuarantineBatch), Cache.getSize());
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EXPECT_EQ(ToDeallocate.getSize(), 0UL);
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EXPECT_EQ(ToDeallocate.dequeueBatch(), nullptr);
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deallocateCache(&Cache);
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}
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TEST(ScudoQuarantineTest, QuarantineCacheMergeBatchesSmallBatches) {
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// Make a Cache with two batches small enough to merge.
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CacheT From;
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From.init();
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From.enqueue(Cb, FakePtr, BlockSize);
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CacheT Cache;
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Cache.init();
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Cache.enqueue(Cb, FakePtr, BlockSize);
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Cache.transfer(&From);
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EXPECT_EQ(BlockSize * 2 + sizeof(scudo::QuarantineBatch) * 2,
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Cache.getSize());
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CacheT ToDeallocate;
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ToDeallocate.init();
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Cache.mergeBatches(&ToDeallocate);
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// Batches merged, one batch to deallocate.
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EXPECT_EQ(BlockSize * 2 + sizeof(scudo::QuarantineBatch), Cache.getSize());
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EXPECT_EQ(ToDeallocate.getSize(), sizeof(scudo::QuarantineBatch));
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deallocateCache(&Cache);
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deallocateCache(&ToDeallocate);
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}
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TEST(ScudoQuarantineTest, QuarantineCacheMergeBatchesTooBigToMerge) {
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const scudo::uptr NumBlocks = scudo::QuarantineBatch::MaxCount - 1;
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// Make a Cache with two batches small enough to merge.
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CacheT From;
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CacheT Cache;
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From.init();
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Cache.init();
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for (scudo::uptr I = 0; I < NumBlocks; ++I) {
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From.enqueue(Cb, FakePtr, BlockSize);
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Cache.enqueue(Cb, FakePtr, BlockSize);
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}
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Cache.transfer(&From);
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EXPECT_EQ(BlockSize * NumBlocks * 2 + sizeof(scudo::QuarantineBatch) * 2,
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Cache.getSize());
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CacheT ToDeallocate;
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ToDeallocate.init();
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Cache.mergeBatches(&ToDeallocate);
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// Batches cannot be merged.
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EXPECT_EQ(BlockSize * NumBlocks * 2 + sizeof(scudo::QuarantineBatch) * 2,
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Cache.getSize());
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EXPECT_EQ(ToDeallocate.getSize(), 0UL);
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deallocateCache(&Cache);
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}
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TEST(ScudoQuarantineTest, QuarantineCacheMergeBatchesALotOfBatches) {
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const scudo::uptr NumBatchesAfterMerge = 3;
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const scudo::uptr NumBlocks =
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scudo::QuarantineBatch::MaxCount * NumBatchesAfterMerge;
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const scudo::uptr NumBatchesBeforeMerge = NumBlocks;
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// Make a Cache with many small batches.
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CacheT Cache;
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Cache.init();
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for (scudo::uptr I = 0; I < NumBlocks; ++I) {
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CacheT From;
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From.init();
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From.enqueue(Cb, FakePtr, BlockSize);
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Cache.transfer(&From);
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}
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EXPECT_EQ(BlockSize * NumBlocks +
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sizeof(scudo::QuarantineBatch) * NumBatchesBeforeMerge,
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Cache.getSize());
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CacheT ToDeallocate;
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ToDeallocate.init();
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Cache.mergeBatches(&ToDeallocate);
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// All blocks should fit Into 3 batches.
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EXPECT_EQ(BlockSize * NumBlocks +
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sizeof(scudo::QuarantineBatch) * NumBatchesAfterMerge,
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Cache.getSize());
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EXPECT_EQ(ToDeallocate.getSize(),
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sizeof(scudo::QuarantineBatch) *
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(NumBatchesBeforeMerge - NumBatchesAfterMerge));
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deallocateCache(&Cache);
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deallocateCache(&ToDeallocate);
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}
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static const scudo::uptr MaxQuarantineSize = 1024UL << 10; // 1MB
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static const scudo::uptr MaxCacheSize = 256UL << 10; // 256KB
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TEST(ScudoQuarantineTest, GlobalQuarantine) {
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QuarantineT Quarantine;
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CacheT Cache;
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Cache.init();
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Quarantine.init(MaxQuarantineSize, MaxCacheSize);
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EXPECT_EQ(Quarantine.getMaxSize(), MaxQuarantineSize);
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EXPECT_EQ(Quarantine.getCacheSize(), MaxCacheSize);
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bool DrainOccurred = false;
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scudo::uptr CacheSize = Cache.getSize();
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EXPECT_EQ(Cache.getSize(), 0UL);
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// We quarantine enough blocks that a drain has to occur. Verify this by
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// looking for a decrease of the size of the cache.
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for (scudo::uptr I = 0; I < 128UL; I++) {
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Quarantine.put(&Cache, Cb, FakePtr, LargeBlockSize);
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if (!DrainOccurred && Cache.getSize() < CacheSize)
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DrainOccurred = true;
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CacheSize = Cache.getSize();
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}
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EXPECT_TRUE(DrainOccurred);
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Quarantine.drainAndRecycle(&Cache, Cb);
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EXPECT_EQ(Cache.getSize(), 0UL);
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scudo::ScopedString Str(1024);
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Quarantine.getStats(&Str);
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Str.output();
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}
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struct PopulateQuarantineThread {
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pthread_t Thread;
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QuarantineT *Quarantine;
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CacheT Cache;
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};
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void *populateQuarantine(void *Param) {
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PopulateQuarantineThread *P = static_cast<PopulateQuarantineThread *>(Param);
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P->Cache.init();
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for (scudo::uptr I = 0; I < 128UL; I++)
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P->Quarantine->put(&P->Cache, Cb, FakePtr, LargeBlockSize);
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return 0;
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}
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TEST(ScudoQuarantineTest, ThreadedGlobalQuarantine) {
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QuarantineT Quarantine;
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Quarantine.init(MaxQuarantineSize, MaxCacheSize);
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const scudo::uptr NumberOfThreads = 32U;
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PopulateQuarantineThread T[NumberOfThreads];
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for (scudo::uptr I = 0; I < NumberOfThreads; I++) {
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T[I].Quarantine = &Quarantine;
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pthread_create(&T[I].Thread, 0, populateQuarantine, &T[I]);
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}
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for (scudo::uptr I = 0; I < NumberOfThreads; I++)
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pthread_join(T[I].Thread, 0);
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scudo::ScopedString Str(1024);
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Quarantine.getStats(&Str);
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Str.output();
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for (scudo::uptr I = 0; I < NumberOfThreads; I++)
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Quarantine.drainAndRecycle(&T[I].Cache, Cb);
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}
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