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6278690abe
sed -i '' -E -e 's/Copyright (.+) The Crashpad Authors\. All rights reserved\.$/Copyright \1 The Crashpad Authors/' $(git grep -El 'Copyright (.+) The Crashpad Authors\. All rights reserved\.$') Bug: chromium:1098010 Change-Id: I8d6138469ddbe3d281a5d83f64cf918ec2491611 Reviewed-on: https://chromium-review.googlesource.com/c/crashpad/crashpad/+/3878262 Reviewed-by: Joshua Peraza <jperaza@chromium.org> Commit-Queue: Mark Mentovai <mark@chromium.org>
503 lines
16 KiB
C++
503 lines
16 KiB
C++
// Copyright 2017 The Crashpad Authors
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#include "snapshot/linux/exception_snapshot_linux.h"
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#include <linux/posix_types.h>
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#include <signal.h>
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#include <string.h>
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#include <time.h>
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#include <ucontext.h>
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#include <unistd.h>
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#include <iterator>
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#include "base/bit_cast.h"
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#include "base/strings/stringprintf.h"
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#include "gtest/gtest.h"
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#include "snapshot/cpu_architecture.h"
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#include "snapshot/linux/process_reader_linux.h"
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#include "snapshot/linux/signal_context.h"
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#include "sys/syscall.h"
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#include "test/errors.h"
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#include "test/linux/fake_ptrace_connection.h"
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#include "util/linux/address_types.h"
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#include "util/misc/clock.h"
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#include "util/misc/from_pointer_cast.h"
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#include "util/posix/signals.h"
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#include "util/synchronization/semaphore.h"
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namespace crashpad {
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namespace test {
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namespace {
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pid_t gettid() {
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return syscall(SYS_gettid);
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}
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#if defined(ARCH_CPU_X86)
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struct FxsaveUContext {
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ucontext_t ucontext;
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CPUContextX86::Fxsave fxsave;
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};
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using NativeCPUContext = FxsaveUContext;
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void InitializeContext(NativeCPUContext* context) {
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context->ucontext.uc_mcontext.gregs[REG_EAX] = 0xabcd1234;
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context->ucontext.uc_mcontext.fpregs = &context->ucontext.__fpregs_mem;
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// glibc and bionic use an unsigned long for status, but the kernel treats
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// status as two uint16_t, with the upper 16 bits called "magic" which, if set
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// to X86_FXSR_MAGIC, indicate that an fxsave follows.
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reinterpret_cast<uint16_t*>(&context->ucontext.__fpregs_mem.status)[1] =
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X86_FXSR_MAGIC;
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memset(&context->fxsave, 43, sizeof(context->fxsave));
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}
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void ExpectContext(const CPUContext& actual, const NativeCPUContext& expected) {
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EXPECT_EQ(actual.architecture, kCPUArchitectureX86);
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EXPECT_EQ(actual.x86->eax,
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bit_cast<uint32_t>(expected.ucontext.uc_mcontext.gregs[REG_EAX]));
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for (unsigned int byte_offset = 0; byte_offset < sizeof(actual.x86->fxsave);
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++byte_offset) {
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SCOPED_TRACE(base::StringPrintf("byte offset = %u\n", byte_offset));
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EXPECT_EQ(reinterpret_cast<const char*>(&actual.x86->fxsave)[byte_offset],
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reinterpret_cast<const char*>(&expected.fxsave)[byte_offset]);
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}
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}
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#elif defined(ARCH_CPU_X86_64)
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using NativeCPUContext = ucontext_t;
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void InitializeContext(NativeCPUContext* context) {
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context->uc_mcontext.gregs[REG_RAX] = 0xabcd1234abcd1234;
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context->uc_mcontext.fpregs = &context->__fpregs_mem;
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memset(&context->__fpregs_mem, 44, sizeof(context->__fpregs_mem));
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}
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void ExpectContext(const CPUContext& actual, const NativeCPUContext& expected) {
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EXPECT_EQ(actual.architecture, kCPUArchitectureX86_64);
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EXPECT_EQ(actual.x86_64->rax,
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bit_cast<uint64_t>(expected.uc_mcontext.gregs[REG_RAX]));
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for (unsigned int byte_offset = 0;
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byte_offset < sizeof(actual.x86_64->fxsave);
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++byte_offset) {
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SCOPED_TRACE(base::StringPrintf("byte offset = %u\n", byte_offset));
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EXPECT_EQ(
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reinterpret_cast<const char*>(&actual.x86_64->fxsave)[byte_offset],
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reinterpret_cast<const char*>(&expected.__fpregs_mem)[byte_offset]);
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}
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}
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#elif defined(ARCH_CPU_ARMEL)
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// A native ucontext_t on ARM doesn't have enough regspace (yet) to hold all of
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// the different possible coprocessor contexts at once. However, the ABI allows
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// it and the native regspace may be expanded in the future. Append some extra
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// space so this is testable now.
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struct NativeCPUContext {
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ucontext_t ucontext;
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char extra[1024];
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};
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struct CrunchContext {
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uint32_t mvdx[16][2];
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uint32_t mvax[4][3];
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uint32_t dspsc[2];
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};
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struct IWMMXTContext {
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uint32_t save[38];
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};
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struct TestCoprocessorContext {
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struct {
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internal::CoprocessorContextHead head;
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CrunchContext context;
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} crunch;
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struct {
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internal::CoprocessorContextHead head;
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IWMMXTContext context;
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} iwmmxt;
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struct {
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internal::CoprocessorContextHead head;
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IWMMXTContext context;
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} dummy;
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struct {
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internal::CoprocessorContextHead head;
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internal::SignalVFPContext context;
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} vfp;
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internal::CoprocessorContextHead terminator;
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};
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void InitializeContext(NativeCPUContext* context) {
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memset(context, 'x', sizeof(*context));
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for (int index = 0; index < (&context->ucontext.uc_mcontext.fault_address -
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&context->ucontext.uc_mcontext.arm_r0);
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++index) {
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(&context->ucontext.uc_mcontext.arm_r0)[index] = index;
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}
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static_assert(
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sizeof(TestCoprocessorContext) <=
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sizeof(context->ucontext.uc_regspace) + sizeof(context->extra),
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"Insufficient context space");
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auto test_context =
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reinterpret_cast<TestCoprocessorContext*>(context->ucontext.uc_regspace);
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test_context->crunch.head.magic = CRUNCH_MAGIC;
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test_context->crunch.head.size = sizeof(test_context->crunch);
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memset(
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&test_context->crunch.context, 'c', sizeof(test_context->crunch.context));
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test_context->iwmmxt.head.magic = IWMMXT_MAGIC;
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test_context->iwmmxt.head.size = sizeof(test_context->iwmmxt);
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memset(
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&test_context->iwmmxt.context, 'i', sizeof(test_context->iwmmxt.context));
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test_context->dummy.head.magic = DUMMY_MAGIC;
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test_context->dummy.head.size = sizeof(test_context->dummy);
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memset(
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&test_context->dummy.context, 'd', sizeof(test_context->dummy.context));
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test_context->vfp.head.magic = VFP_MAGIC;
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test_context->vfp.head.size = sizeof(test_context->vfp);
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memset(&test_context->vfp.context, 'v', sizeof(test_context->vfp.context));
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for (size_t reg = 0; reg < std::size(test_context->vfp.context.vfp.fpregs);
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++reg) {
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test_context->vfp.context.vfp.fpregs[reg] = reg;
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}
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test_context->vfp.context.vfp.fpscr = 42;
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test_context->terminator.magic = 0;
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test_context->terminator.size = 0;
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}
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void ExpectContext(const CPUContext& actual, const NativeCPUContext& expected) {
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EXPECT_EQ(actual.architecture, kCPUArchitectureARM);
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EXPECT_EQ(memcmp(actual.arm->regs,
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&expected.ucontext.uc_mcontext.arm_r0,
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sizeof(actual.arm->regs)),
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0);
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EXPECT_EQ(actual.arm->fp, expected.ucontext.uc_mcontext.arm_fp);
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EXPECT_EQ(actual.arm->ip, expected.ucontext.uc_mcontext.arm_ip);
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EXPECT_EQ(actual.arm->sp, expected.ucontext.uc_mcontext.arm_sp);
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EXPECT_EQ(actual.arm->lr, expected.ucontext.uc_mcontext.arm_lr);
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EXPECT_EQ(actual.arm->pc, expected.ucontext.uc_mcontext.arm_pc);
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EXPECT_EQ(actual.arm->cpsr, expected.ucontext.uc_mcontext.arm_cpsr);
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EXPECT_FALSE(actual.arm->have_fpa_regs);
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EXPECT_TRUE(actual.arm->have_vfp_regs);
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auto test_context = reinterpret_cast<const TestCoprocessorContext*>(
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expected.ucontext.uc_regspace);
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EXPECT_EQ(memcmp(actual.arm->vfp_regs.vfp,
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&test_context->vfp.context.vfp,
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sizeof(actual.arm->vfp_regs.vfp)),
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0);
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}
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#elif defined(ARCH_CPU_ARM64)
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using NativeCPUContext = ucontext_t;
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struct TestCoprocessorContext {
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esr_context esr;
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fpsimd_context fpsimd;
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_aarch64_ctx terminator;
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};
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void InitializeContext(NativeCPUContext* context) {
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memset(context, 'x', sizeof(*context));
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for (size_t index = 0; index < std::size(context->uc_mcontext.regs);
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++index) {
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context->uc_mcontext.regs[index] = index;
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}
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context->uc_mcontext.sp = 1;
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context->uc_mcontext.pc = 2;
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context->uc_mcontext.pstate = 3;
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auto test_context = reinterpret_cast<TestCoprocessorContext*>(
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context->uc_mcontext.__reserved);
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test_context->esr.head.magic = ESR_MAGIC;
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test_context->esr.head.size = sizeof(test_context->esr);
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memset(&test_context->esr.esr, 'e', sizeof(test_context->esr.esr));
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test_context->fpsimd.head.magic = FPSIMD_MAGIC;
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test_context->fpsimd.head.size = sizeof(test_context->fpsimd);
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test_context->fpsimd.fpsr = 1;
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test_context->fpsimd.fpcr = 2;
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for (size_t reg = 0; reg < std::size(test_context->fpsimd.vregs); ++reg) {
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test_context->fpsimd.vregs[reg] = reg;
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}
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test_context->terminator.magic = 0;
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test_context->terminator.size = 0;
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}
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void ExpectContext(const CPUContext& actual, const NativeCPUContext& expected) {
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EXPECT_EQ(actual.architecture, kCPUArchitectureARM64);
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EXPECT_EQ(memcmp(actual.arm64->regs,
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expected.uc_mcontext.regs,
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sizeof(actual.arm64->regs)),
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0);
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EXPECT_EQ(actual.arm64->sp, expected.uc_mcontext.sp);
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EXPECT_EQ(actual.arm64->pc, expected.uc_mcontext.pc);
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EXPECT_EQ(actual.arm64->spsr, expected.uc_mcontext.pstate);
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auto test_context = reinterpret_cast<const TestCoprocessorContext*>(
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expected.uc_mcontext.__reserved);
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EXPECT_EQ(actual.arm64->fpsr, test_context->fpsimd.fpsr);
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EXPECT_EQ(actual.arm64->fpcr, test_context->fpsimd.fpcr);
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EXPECT_EQ(memcmp(actual.arm64->fpsimd,
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&test_context->fpsimd.vregs,
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sizeof(actual.arm64->fpsimd)),
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0);
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}
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#elif defined(ARCH_CPU_MIPS_FAMILY)
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using NativeCPUContext = ucontext_t;
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void InitializeContext(NativeCPUContext* context) {
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for (size_t reg = 0; reg < std::size(context->uc_mcontext.gregs); ++reg) {
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context->uc_mcontext.gregs[reg] = reg;
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}
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memset(&context->uc_mcontext.fpregs, 44, sizeof(context->uc_mcontext.fpregs));
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}
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void ExpectContext(const CPUContext& actual, const NativeCPUContext& expected) {
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#if defined(ARCH_CPU_MIPSEL)
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EXPECT_EQ(actual.architecture, kCPUArchitectureMIPSEL);
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#define CPU_ARCH_NAME mipsel
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#elif defined(ARCH_CPU_MIPS64EL)
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EXPECT_EQ(actual.architecture, kCPUArchitectureMIPS64EL);
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#define CPU_ARCH_NAME mips64
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#endif
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for (size_t reg = 0; reg < std::size(expected.uc_mcontext.gregs); ++reg) {
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EXPECT_EQ(actual.CPU_ARCH_NAME->regs[reg], expected.uc_mcontext.gregs[reg]);
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}
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EXPECT_EQ(memcmp(&actual.CPU_ARCH_NAME->fpregs,
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&expected.uc_mcontext.fpregs,
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sizeof(actual.CPU_ARCH_NAME->fpregs)),
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0);
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#undef CPU_ARCH_NAME
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}
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#else
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#error Port.
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#endif
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TEST(ExceptionSnapshotLinux, SelfBasic) {
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FakePtraceConnection connection;
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ASSERT_TRUE(connection.Initialize(getpid()));
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ProcessReaderLinux process_reader;
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ASSERT_TRUE(process_reader.Initialize(&connection));
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siginfo_t siginfo;
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siginfo.si_signo = SIGSEGV;
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siginfo.si_errno = 42;
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siginfo.si_code = SEGV_MAPERR;
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siginfo.si_addr = reinterpret_cast<void*>(0xdeadbeef);
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NativeCPUContext context;
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InitializeContext(&context);
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internal::ExceptionSnapshotLinux exception;
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ASSERT_TRUE(exception.Initialize(&process_reader,
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FromPointerCast<LinuxVMAddress>(&siginfo),
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FromPointerCast<LinuxVMAddress>(&context),
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gettid(),
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nullptr));
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EXPECT_EQ(exception.Exception(), static_cast<uint32_t>(siginfo.si_signo));
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EXPECT_EQ(exception.ExceptionInfo(), static_cast<uint32_t>(siginfo.si_code));
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EXPECT_EQ(exception.ExceptionAddress(),
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FromPointerCast<uint64_t>(siginfo.si_addr));
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ExpectContext(*exception.Context(), context);
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}
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class ScopedSigactionRestore {
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public:
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ScopedSigactionRestore() : old_action_(), signo_(-1), valid_(false) {}
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ScopedSigactionRestore(const ScopedSigactionRestore&) = delete;
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ScopedSigactionRestore& operator=(const ScopedSigactionRestore&) = delete;
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~ScopedSigactionRestore() { Reset(); }
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bool Reset() {
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if (valid_) {
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int res = sigaction(signo_, &old_action_, nullptr);
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EXPECT_EQ(res, 0) << ErrnoMessage("sigaction");
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if (res != 0) {
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return false;
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}
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}
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valid_ = false;
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signo_ = -1;
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return true;
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}
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bool ResetInstallHandler(int signo, Signals::Handler handler) {
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if (Reset() && Signals::InstallHandler(signo, handler, 0, &old_action_)) {
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signo_ = signo;
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valid_ = true;
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return true;
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}
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return false;
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}
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private:
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struct sigaction old_action_;
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int signo_;
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bool valid_;
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};
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class RaiseTest {
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public:
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RaiseTest() = delete;
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RaiseTest(const RaiseTest&) = delete;
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RaiseTest& operator=(const RaiseTest&) = delete;
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static void Run() {
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test_complete_ = false;
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ScopedSigactionRestore sigrestore;
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ASSERT_TRUE(sigrestore.ResetInstallHandler(kSigno, HandleRaisedSignal));
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EXPECT_EQ(raise(kSigno), 0) << ErrnoMessage("raise");
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EXPECT_TRUE(test_complete_);
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}
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private:
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static void HandleRaisedSignal(int signo, siginfo_t* siginfo, void* context) {
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FakePtraceConnection connection;
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ASSERT_TRUE(connection.Initialize(getpid()));
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ProcessReaderLinux process_reader;
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ASSERT_TRUE(process_reader.Initialize(&connection));
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internal::ExceptionSnapshotLinux exception;
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ASSERT_TRUE(exception.Initialize(&process_reader,
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FromPointerCast<LinuxVMAddress>(siginfo),
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FromPointerCast<LinuxVMAddress>(context),
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gettid(),
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nullptr));
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EXPECT_EQ(exception.Exception(), static_cast<uint32_t>(kSigno));
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EXPECT_EQ(exception.Codes().size(), 3u);
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EXPECT_EQ(exception.Codes()[0], static_cast<uint64_t>(getpid()));
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EXPECT_EQ(exception.Codes()[1], getuid());
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// Codes()[2] is not set by kill, but we still expect to get it because some
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// interfaces may set it and we don't necessarily know where this signal
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// came
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// from.
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test_complete_ = true;
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}
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static constexpr uint32_t kSigno = SIGUSR1;
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static bool test_complete_;
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};
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bool RaiseTest::test_complete_ = false;
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TEST(ExceptionSnapshotLinux, Raise) {
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RaiseTest::Run();
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}
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class TimerTest {
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public:
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TimerTest() : event_(), timer_(-1), test_complete_(false) { test_ = this; }
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TimerTest(const TimerTest&) = delete;
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TimerTest& operator=(const TimerTest&) = delete;
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~TimerTest() { test_ = nullptr; }
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void Run() {
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ScopedSigactionRestore sigrestore;
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ASSERT_TRUE(sigrestore.ResetInstallHandler(kSigno, HandleTimer));
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event_.sigev_notify = SIGEV_SIGNAL;
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event_.sigev_signo = kSigno;
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event_.sigev_value.sival_int = 42;
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ASSERT_EQ(syscall(SYS_timer_create, CLOCK_MONOTONIC, &event_, &timer_), 0);
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itimerspec spec;
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spec.it_interval.tv_sec = 0;
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spec.it_interval.tv_nsec = 0;
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spec.it_value.tv_sec = 0;
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spec.it_value.tv_nsec = 1;
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ASSERT_EQ(syscall(SYS_timer_settime, timer_, TIMER_ABSTIME, &spec, nullptr),
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0);
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for (size_t attempt = 0; attempt < 3; ++attempt) {
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SleepNanoseconds(1);
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if (test_complete_) {
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return;
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}
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}
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ADD_FAILURE() << "signal not received";
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}
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private:
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static void HandleTimer(int signo, siginfo_t* siginfo, void* context) {
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FakePtraceConnection connection;
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ASSERT_TRUE(connection.Initialize(getpid()));
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|
|
|
ProcessReaderLinux process_reader;
|
|
ASSERT_TRUE(process_reader.Initialize(&connection));
|
|
|
|
internal::ExceptionSnapshotLinux exception;
|
|
ASSERT_TRUE(exception.Initialize(&process_reader,
|
|
FromPointerCast<LinuxVMAddress>(siginfo),
|
|
FromPointerCast<LinuxVMAddress>(context),
|
|
gettid(),
|
|
nullptr));
|
|
|
|
EXPECT_EQ(exception.Exception(), static_cast<uint32_t>(kSigno));
|
|
|
|
EXPECT_EQ(exception.Codes().size(), 3u);
|
|
EXPECT_EQ(exception.Codes()[0], static_cast<uint64_t>(test_->timer_));
|
|
int overruns = syscall(SYS_timer_getoverrun, test_->timer_);
|
|
ASSERT_GE(overruns, 0);
|
|
EXPECT_EQ(exception.Codes()[1], static_cast<uint64_t>(overruns));
|
|
EXPECT_EQ(exception.Codes()[2],
|
|
static_cast<uint64_t>(test_->event_.sigev_value.sival_int));
|
|
|
|
test_->test_complete_ = true;
|
|
}
|
|
|
|
sigevent event_;
|
|
__kernel_timer_t timer_;
|
|
volatile bool test_complete_;
|
|
|
|
static constexpr uint32_t kSigno = SIGALRM;
|
|
static TimerTest* test_;
|
|
};
|
|
TimerTest* TimerTest::test_;
|
|
|
|
TEST(ExceptionSnapshotLinux, SelfTimer) {
|
|
TimerTest test;
|
|
test.Run();
|
|
}
|
|
|
|
} // namespace
|
|
} // namespace test
|
|
} // namespace crashpad
|