forked from OSchip/llvm-project
236 lines
7.6 KiB
C++
236 lines
7.6 KiB
C++
//===-- primary_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 "primary32.h"
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#include "primary64.h"
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#include "size_class_map.h"
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#include <condition_variable>
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#include <mutex>
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#include <thread>
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#include <vector>
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// Note that with small enough regions, the SizeClassAllocator64 also works on
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// 32-bit architectures. It's not something we want to encourage, but we still
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// should ensure the tests pass.
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template <typename Primary> static void testPrimary() {
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const scudo::uptr NumberOfAllocations = 32U;
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auto Deleter = [](Primary *P) {
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P->unmapTestOnly();
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delete P;
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};
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std::unique_ptr<Primary, decltype(Deleter)> Allocator(new Primary, Deleter);
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Allocator->init(/*ReleaseToOsInterval=*/-1);
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typename Primary::CacheT Cache;
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Cache.init(nullptr, Allocator.get());
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for (scudo::uptr I = 0; I <= 16U; I++) {
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const scudo::uptr Size = 1UL << I;
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if (!Primary::canAllocate(Size))
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continue;
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const scudo::uptr ClassId = Primary::SizeClassMap::getClassIdBySize(Size);
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void *Pointers[NumberOfAllocations];
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for (scudo::uptr J = 0; J < NumberOfAllocations; J++) {
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void *P = Cache.allocate(ClassId);
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memset(P, 'B', Size);
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Pointers[J] = P;
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}
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for (scudo::uptr J = 0; J < NumberOfAllocations; J++)
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Cache.deallocate(ClassId, Pointers[J]);
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}
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Cache.destroy(nullptr);
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Allocator->releaseToOS();
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scudo::ScopedString Str(1024);
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Allocator->getStats(&Str);
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Str.output();
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}
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TEST(ScudoPrimaryTest, BasicPrimary) {
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using SizeClassMap = scudo::DefaultSizeClassMap;
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#if !SCUDO_FUCHSIA
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testPrimary<scudo::SizeClassAllocator32<SizeClassMap, 18U>>();
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#endif
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testPrimary<scudo::SizeClassAllocator64<SizeClassMap, 24U>>();
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}
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// The 64-bit SizeClassAllocator can be easily OOM'd with small region sizes.
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// For the 32-bit one, it requires actually exhausting memory, so we skip it.
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TEST(ScudoPrimaryTest, Primary64OOM) {
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using Primary = scudo::SizeClassAllocator64<scudo::DefaultSizeClassMap, 20U>;
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using TransferBatch = Primary::CacheT::TransferBatch;
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Primary Allocator;
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Allocator.init(/*ReleaseToOsInterval=*/-1);
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typename Primary::CacheT Cache;
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scudo::GlobalStats Stats;
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Stats.init();
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Cache.init(&Stats, &Allocator);
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bool AllocationFailed = false;
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std::vector<TransferBatch *> Batches;
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const scudo::uptr ClassId = Primary::SizeClassMap::LargestClassId;
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const scudo::uptr Size = Primary::getSizeByClassId(ClassId);
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for (scudo::uptr I = 0; I < 10000U; I++) {
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TransferBatch *B = Allocator.popBatch(&Cache, ClassId);
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if (!B) {
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AllocationFailed = true;
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break;
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}
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for (scudo::u32 J = 0; J < B->getCount(); J++)
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memset(B->get(J), 'B', Size);
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Batches.push_back(B);
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}
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while (!Batches.empty()) {
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Allocator.pushBatch(ClassId, Batches.back());
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Batches.pop_back();
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}
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Cache.destroy(nullptr);
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Allocator.releaseToOS();
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scudo::ScopedString Str(1024);
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Allocator.getStats(&Str);
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Str.output();
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EXPECT_EQ(AllocationFailed, true);
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Allocator.unmapTestOnly();
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}
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template <typename Primary> static void testIteratePrimary() {
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auto Deleter = [](Primary *P) {
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P->unmapTestOnly();
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delete P;
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};
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std::unique_ptr<Primary, decltype(Deleter)> Allocator(new Primary, Deleter);
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Allocator->init(/*ReleaseToOsInterval=*/-1);
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typename Primary::CacheT Cache;
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Cache.init(nullptr, Allocator.get());
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std::vector<std::pair<scudo::uptr, void *>> V;
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for (scudo::uptr I = 0; I < 64U; I++) {
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const scudo::uptr Size = std::rand() % Primary::SizeClassMap::MaxSize;
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const scudo::uptr ClassId = Primary::SizeClassMap::getClassIdBySize(Size);
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void *P = Cache.allocate(ClassId);
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V.push_back(std::make_pair(ClassId, P));
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}
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scudo::uptr Found = 0;
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auto Lambda = [V, &Found](scudo::uptr Block) {
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for (const auto &Pair : V) {
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if (Pair.second == reinterpret_cast<void *>(Block))
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Found++;
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}
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};
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Allocator->disable();
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Allocator->iterateOverBlocks(Lambda);
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Allocator->enable();
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EXPECT_EQ(Found, V.size());
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while (!V.empty()) {
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auto Pair = V.back();
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Cache.deallocate(Pair.first, Pair.second);
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V.pop_back();
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}
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Cache.destroy(nullptr);
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Allocator->releaseToOS();
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scudo::ScopedString Str(1024);
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Allocator->getStats(&Str);
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Str.output();
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}
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TEST(ScudoPrimaryTest, PrimaryIterate) {
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using SizeClassMap = scudo::DefaultSizeClassMap;
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#if !SCUDO_FUCHSIA
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testIteratePrimary<scudo::SizeClassAllocator32<SizeClassMap, 18U>>();
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#endif
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testIteratePrimary<scudo::SizeClassAllocator64<SizeClassMap, 24U>>();
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}
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static std::mutex Mutex;
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static std::condition_variable Cv;
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static bool Ready = false;
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template <typename Primary> static void performAllocations(Primary *Allocator) {
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static THREADLOCAL typename Primary::CacheT Cache;
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Cache.init(nullptr, Allocator);
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std::vector<std::pair<scudo::uptr, void *>> V;
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{
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std::unique_lock<std::mutex> Lock(Mutex);
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while (!Ready)
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Cv.wait(Lock);
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}
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for (scudo::uptr I = 0; I < 256U; I++) {
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const scudo::uptr Size = std::rand() % Primary::SizeClassMap::MaxSize / 4;
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const scudo::uptr ClassId = Primary::SizeClassMap::getClassIdBySize(Size);
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void *P = Cache.allocate(ClassId);
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if (P)
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V.push_back(std::make_pair(ClassId, P));
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}
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while (!V.empty()) {
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auto Pair = V.back();
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Cache.deallocate(Pair.first, Pair.second);
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V.pop_back();
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}
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Cache.destroy(nullptr);
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}
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template <typename Primary> static void testPrimaryThreaded() {
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auto Deleter = [](Primary *P) {
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P->unmapTestOnly();
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delete P;
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};
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std::unique_ptr<Primary, decltype(Deleter)> Allocator(new Primary, Deleter);
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Allocator->init(/*ReleaseToOsInterval=*/-1);
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std::thread Threads[32];
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for (scudo::uptr I = 0; I < ARRAY_SIZE(Threads); I++)
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Threads[I] = std::thread(performAllocations<Primary>, Allocator.get());
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{
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std::unique_lock<std::mutex> Lock(Mutex);
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Ready = true;
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Cv.notify_all();
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}
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for (auto &T : Threads)
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T.join();
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Allocator->releaseToOS();
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scudo::ScopedString Str(1024);
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Allocator->getStats(&Str);
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Str.output();
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}
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TEST(ScudoPrimaryTest, PrimaryThreaded) {
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using SizeClassMap = scudo::SvelteSizeClassMap;
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#if !SCUDO_FUCHSIA
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testPrimaryThreaded<scudo::SizeClassAllocator32<SizeClassMap, 18U>>();
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#endif
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testPrimaryThreaded<scudo::SizeClassAllocator64<SizeClassMap, 24U>>();
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}
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// Through a simple allocation that spans two pages, verify that releaseToOS
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// actually releases some bytes (at least one page worth). This is a regression
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// test for an error in how the release criteria were computed.
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template <typename Primary> static void testReleaseToOS() {
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auto Deleter = [](Primary *P) {
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P->unmapTestOnly();
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delete P;
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};
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std::unique_ptr<Primary, decltype(Deleter)> Allocator(new Primary, Deleter);
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Allocator->init(/*ReleaseToOsInterval=*/-1);
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typename Primary::CacheT Cache;
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Cache.init(nullptr, Allocator.get());
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const scudo::uptr Size = scudo::getPageSizeCached() * 2;
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EXPECT_TRUE(Primary::canAllocate(Size));
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const scudo::uptr ClassId = Primary::SizeClassMap::getClassIdBySize(Size);
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void *P = Cache.allocate(ClassId);
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EXPECT_NE(P, nullptr);
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Cache.deallocate(ClassId, P);
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Cache.destroy(nullptr);
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EXPECT_GT(Allocator->releaseToOS(), 0U);
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}
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TEST(ScudoPrimaryTest, ReleaseToOS) {
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using SizeClassMap = scudo::DefaultSizeClassMap;
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#if !SCUDO_FUCHSIA
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testReleaseToOS<scudo::SizeClassAllocator32<SizeClassMap, 18U>>();
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#endif
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testReleaseToOS<scudo::SizeClassAllocator64<SizeClassMap, 24U>>();
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}
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