forked from OSchip/llvm-project
238 lines
8.0 KiB
C++
238 lines
8.0 KiB
C++
//===-- combined_test.cc ----------------------------------------*- 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 "allocator_config.h"
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#include "combined.h"
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#include "gtest/gtest.h"
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#include <condition_variable>
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#include <mutex>
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#include <thread>
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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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static constexpr scudo::Chunk::Origin Origin = scudo::Chunk::Origin::Malloc;
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// This allows us to turn on the Quarantine for specific tests. The Quarantine
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// parameters are on the low end, to avoid having to loop excessively in some
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// tests.
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static bool UseQuarantine = false;
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extern "C" const char *__scudo_default_options() {
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if (!UseQuarantine)
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return "";
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return "quarantine_size_kb=256:thread_local_quarantine_size_kb=128:"
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"quarantine_max_chunk_size=1024";
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}
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template <class Config> static void testAllocator() {
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using AllocatorT = scudo::Allocator<Config>;
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auto Deleter = [](AllocatorT *A) {
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A->unmapTestOnly();
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delete A;
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};
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std::unique_ptr<AllocatorT, decltype(Deleter)> Allocator(new AllocatorT,
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Deleter);
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Allocator->reset();
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constexpr scudo::uptr MinAlignLog = FIRST_32_SECOND_64(3U, 4U);
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// This allocates and deallocates a bunch of chunks, with a wide range of
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// sizes and alignments, with a focus on sizes that could trigger weird
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// behaviors (plus or minus a small delta of a power of two for example).
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for (scudo::uptr SizeLog = 0U; SizeLog <= 20U; SizeLog++) {
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for (scudo::uptr AlignLog = MinAlignLog; AlignLog <= 16U; AlignLog++) {
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const scudo::uptr Align = 1U << AlignLog;
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for (scudo::sptr Delta = -32; Delta <= 32; Delta++) {
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if (static_cast<scudo::sptr>(1U << SizeLog) + Delta <= 0)
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continue;
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const scudo::uptr Size = (1U << SizeLog) + Delta;
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void *P = Allocator->allocate(Size, Origin, Align);
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EXPECT_NE(P, nullptr);
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EXPECT_TRUE(scudo::isAligned(reinterpret_cast<scudo::uptr>(P), Align));
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EXPECT_LE(Size, Allocator->getUsableSize(P));
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memset(P, 0xaa, Size);
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Allocator->deallocate(P, Origin, Size);
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}
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}
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}
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Allocator->releaseToOS();
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// Verify that a chunk will end up being reused, at some point.
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const scudo::uptr NeedleSize = 1024U;
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void *NeedleP = Allocator->allocate(NeedleSize, Origin);
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Allocator->deallocate(NeedleP, Origin);
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bool Found = false;
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for (scudo::uptr I = 0; I < 1024U && !Found; I++) {
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void *P = Allocator->allocate(NeedleSize, Origin);
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if (P == NeedleP)
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Found = true;
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Allocator->deallocate(P, Origin);
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}
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EXPECT_TRUE(Found);
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constexpr scudo::uptr MaxSize = Config::Primary::SizeClassMap::MaxSize;
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// Reallocate a large chunk all the way down to a byte, verifying that we
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// preserve the data in the process.
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scudo::uptr Size = MaxSize * 2;
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const scudo::uptr DataSize = 2048U;
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void *P = Allocator->allocate(Size, Origin);
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const char Marker = 0xab;
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memset(P, Marker, scudo::Min(Size, DataSize));
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while (Size > 1U) {
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Size /= 2U;
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void *NewP = Allocator->reallocate(P, Size);
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EXPECT_NE(NewP, nullptr);
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for (scudo::uptr J = 0; J < scudo::Min(Size, DataSize); J++)
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EXPECT_EQ((reinterpret_cast<char *>(NewP))[J], Marker);
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P = NewP;
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}
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Allocator->deallocate(P, Origin);
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// Allocates a bunch of chunks, then iterate over all the chunks, ensuring
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// they are the ones we allocated. This requires the allocator to not have any
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// other allocated chunk at this point (eg: won't work with the Quarantine).
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if (!UseQuarantine) {
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std::vector<void *> V;
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for (scudo::uptr I = 0; I < 64U; I++)
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V.push_back(Allocator->allocate(rand() % (MaxSize / 2U), Origin));
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Allocator->disable();
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Allocator->iterateOverChunks(
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0U, static_cast<scudo::uptr>(SCUDO_MMAP_RANGE_SIZE - 1),
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[](uintptr_t Base, size_t Size, void *Arg) {
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std::vector<void *> *V = reinterpret_cast<std::vector<void *> *>(Arg);
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void *P = reinterpret_cast<void *>(Base);
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EXPECT_NE(std::find(V->begin(), V->end(), P), V->end());
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},
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reinterpret_cast<void *>(&V));
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Allocator->enable();
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while (!V.empty()) {
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Allocator->deallocate(V.back(), Origin);
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V.pop_back();
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}
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}
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Allocator->releaseToOS();
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Allocator->printStats();
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}
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TEST(ScudoCombinedTest, BasicCombined) {
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testAllocator<scudo::DefaultConfig>();
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#if SCUDO_WORDSIZE == 64U
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testAllocator<scudo::FuchsiaConfig>();
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#endif
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// The following configs should work on all platforms.
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UseQuarantine = true;
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testAllocator<scudo::AndroidConfig>();
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UseQuarantine = false;
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testAllocator<scudo::AndroidSvelteConfig>();
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}
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template <typename AllocatorT> static void stressAllocator(AllocatorT *A) {
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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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std::vector<std::pair<void *, scudo::uptr>> V;
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for (scudo::uptr I = 0; I < 256U; I++) {
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const scudo::uptr Size = std::rand() % 4096U;
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void *P = A->allocate(Size, Origin);
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// A region could have ran out of memory, resulting in a null P.
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if (P)
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V.push_back(std::make_pair(P, Size));
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}
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while (!V.empty()) {
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auto Pair = V.back();
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A->deallocate(Pair.first, Origin, Pair.second);
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V.pop_back();
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}
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}
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template <class Config> static void testAllocatorThreaded() {
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using AllocatorT = scudo::Allocator<Config>;
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auto Deleter = [](AllocatorT *A) {
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A->unmapTestOnly();
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delete A;
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};
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std::unique_ptr<AllocatorT, decltype(Deleter)> Allocator(new AllocatorT,
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Deleter);
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Allocator->reset();
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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(stressAllocator<AllocatorT>, 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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}
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TEST(ScudoCombinedTest, ThreadedCombined) {
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testAllocatorThreaded<scudo::DefaultConfig>();
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#if SCUDO_WORDSIZE == 64U
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testAllocatorThreaded<scudo::FuchsiaConfig>();
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#endif
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UseQuarantine = true;
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testAllocatorThreaded<scudo::AndroidConfig>();
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UseQuarantine = false;
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testAllocatorThreaded<scudo::AndroidSvelteConfig>();
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}
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struct DeathConfig {
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// Tiny allocator, its Primary only serves chunks of 1024 bytes.
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using DeathSizeClassMap = scudo::SizeClassMap<1U, 10U, 10U, 10U, 1U, 10U>;
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typedef scudo::SizeClassAllocator32<DeathSizeClassMap, 18U> Primary;
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template <class A> using TSDRegistryT = scudo::TSDRegistrySharedT<A, 1U>;
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};
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TEST(ScudoCombinedTest, DeathCombined) {
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using AllocatorT = scudo::Allocator<DeathConfig>;
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auto Deleter = [](AllocatorT *A) {
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A->unmapTestOnly();
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delete A;
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};
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std::unique_ptr<AllocatorT, decltype(Deleter)> Allocator(new AllocatorT,
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Deleter);
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Allocator->reset();
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const scudo::uptr Size = 1000U;
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void *P = Allocator->allocate(Size, Origin);
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EXPECT_NE(P, nullptr);
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// Invalid sized deallocation.
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EXPECT_DEATH(Allocator->deallocate(P, Origin, Size + 8U), "");
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// Misaligned pointer.
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void *MisalignedP =
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reinterpret_cast<void *>(reinterpret_cast<scudo::uptr>(P) | 1U);
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EXPECT_DEATH(Allocator->deallocate(MisalignedP, Origin, Size), "");
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EXPECT_DEATH(Allocator->reallocate(MisalignedP, Size * 2U), "");
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// Header corruption.
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scudo::u64 *H =
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reinterpret_cast<scudo::u64 *>(scudo::Chunk::getAtomicHeader(P));
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*H ^= 0x42U;
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EXPECT_DEATH(Allocator->deallocate(P, Origin, Size), "");
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*H ^= 0x420042U;
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EXPECT_DEATH(Allocator->deallocate(P, Origin, Size), "");
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*H ^= 0x420000U;
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// Invalid chunk state.
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Allocator->deallocate(P, Origin, Size);
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EXPECT_DEATH(Allocator->deallocate(P, Origin, Size), "");
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EXPECT_DEATH(Allocator->reallocate(P, Size * 2U), "");
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EXPECT_DEATH(Allocator->getUsableSize(P), "");
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}
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