2023-01-28 04:54:20 +00:00
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// Copyright 2018 The Crashpad Authors
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2022-04-02 01:21:55 +00:00
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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/sanitized/process_snapshot_sanitized.h"
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#include <stdint.h>
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#include "snapshot/cpu_context.h"
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#include "util/numeric/safe_assignment.h"
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namespace crashpad {
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namespace {
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class StackReferencesAddressRange : public MemorySnapshot::Delegate {
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public:
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// Returns true if stack contains a pointer aligned word in the range [low,
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// high). The search starts at the first pointer aligned address greater than
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// stack_pointer.
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bool CheckStack(const MemorySnapshot* stack,
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VMAddress stack_pointer,
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VMAddress low,
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VMAddress high,
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bool is_64_bit) {
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stack_ = stack;
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stack_pointer_ = stack_pointer;
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low_ = low;
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high_ = high;
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is_64_bit_ = is_64_bit;
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return stack_->Read(this);
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}
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// MemorySnapshot::Delegate
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bool MemorySnapshotDelegateRead(void* data, size_t size) {
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return is_64_bit_ ? ScanStackForPointers<uint64_t>(data, size)
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: ScanStackForPointers<uint32_t>(data, size);
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}
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private:
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template <typename Pointer>
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bool ScanStackForPointers(void* data, size_t size) {
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size_t sp_offset;
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if (!AssignIfInRange(&sp_offset, stack_pointer_ - stack_->Address())) {
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return false;
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}
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const size_t aligned_sp_offset =
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(sp_offset + sizeof(Pointer) - 1) & ~(sizeof(Pointer) - 1);
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auto words = reinterpret_cast<Pointer*>(static_cast<char*>(data) +
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aligned_sp_offset);
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size_t word_count = (size - aligned_sp_offset) / sizeof(Pointer);
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for (size_t index = 0; index < word_count; ++index) {
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if (words[index] >= low_ && words[index] < high_) {
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return true;
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}
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}
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return false;
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}
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VMAddress stack_pointer_;
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VMAddress low_;
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VMAddress high_;
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const MemorySnapshot* stack_;
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bool is_64_bit_;
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};
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} // namespace
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ProcessSnapshotSanitized::ProcessSnapshotSanitized() = default;
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ProcessSnapshotSanitized::~ProcessSnapshotSanitized() = default;
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bool ProcessSnapshotSanitized::Initialize(
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const ProcessSnapshot* snapshot,
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std::unique_ptr<const std::vector<std::string>> allowed_annotations,
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std::unique_ptr<const std::vector<std::pair<VMAddress, VMAddress>>>
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allowed_memory_ranges,
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VMAddress target_module_address,
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bool sanitize_stacks) {
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INITIALIZATION_STATE_SET_INITIALIZING(initialized_);
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snapshot_ = snapshot;
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allowed_annotations_ = std::move(allowed_annotations);
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sanitize_stacks_ = sanitize_stacks;
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if (target_module_address) {
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const ExceptionSnapshot* exception = snapshot_->Exception();
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if (!exception) {
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return false;
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}
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const ThreadSnapshot* exc_thread = nullptr;
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for (const auto thread : snapshot_->Threads()) {
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if (thread->ThreadID() == exception->ThreadID()) {
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exc_thread = thread;
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break;
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}
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}
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if (!exc_thread) {
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return false;
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}
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const ModuleSnapshot* target_module = nullptr;
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for (const auto module : snapshot_->Modules()) {
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if (target_module_address >= module->Address() &&
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target_module_address < module->Address() + module->Size()) {
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target_module = module;
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break;
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}
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}
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if (!target_module) {
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return false;
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}
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// Only allow the snapshot if the program counter or some address on the
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// stack points into the target module.
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VMAddress pc = exception->Context()->InstructionPointer();
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VMAddress module_address_low = target_module->Address();
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VMAddress module_address_high = module_address_low + target_module->Size();
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if ((pc < module_address_low || pc >= module_address_high) &&
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!StackReferencesAddressRange().CheckStack(
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exc_thread->Stack(),
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exception->Context()->StackPointer(),
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module_address_low,
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module_address_high,
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exception->Context()->Is64Bit())) {
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return false;
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}
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}
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if (allowed_annotations_) {
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for (const auto module : snapshot_->Modules()) {
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modules_.emplace_back(std::make_unique<internal::ModuleSnapshotSanitized>(
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module, allowed_annotations_.get()));
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}
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}
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if (sanitize_stacks_) {
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for (const auto module : snapshot_->Modules()) {
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address_ranges_.Insert(module->Address(), module->Size());
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}
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for (const auto thread : snapshot_->Threads()) {
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address_ranges_.Insert(thread->Stack()->Address(),
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thread->Stack()->Size());
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threads_.emplace_back(std::make_unique<internal::ThreadSnapshotSanitized>(
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thread, &address_ranges_));
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}
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}
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process_memory_.Initialize(snapshot_->Memory(), allowed_memory_ranges.get());
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INITIALIZATION_STATE_SET_VALID(initialized_);
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return true;
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}
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crashpad::ProcessID ProcessSnapshotSanitized::ProcessID() const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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return snapshot_->ProcessID();
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}
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crashpad::ProcessID ProcessSnapshotSanitized::ParentProcessID() const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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return snapshot_->ParentProcessID();
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}
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void ProcessSnapshotSanitized::SnapshotTime(timeval* snapshot_time) const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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snapshot_->SnapshotTime(snapshot_time);
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}
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void ProcessSnapshotSanitized::ProcessStartTime(timeval* start_time) const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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snapshot_->ProcessStartTime(start_time);
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}
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void ProcessSnapshotSanitized::ProcessCPUTimes(timeval* user_time,
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timeval* system_time) const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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snapshot_->ProcessCPUTimes(user_time, system_time);
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}
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void ProcessSnapshotSanitized::ReportID(UUID* report_id) const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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snapshot_->ReportID(report_id);
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}
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void ProcessSnapshotSanitized::ClientID(UUID* client_id) const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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snapshot_->ClientID(client_id);
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}
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const std::map<std::string, std::string>&
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ProcessSnapshotSanitized::AnnotationsSimpleMap() const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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return snapshot_->AnnotationsSimpleMap();
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}
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const SystemSnapshot* ProcessSnapshotSanitized::System() const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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return snapshot_->System();
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}
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std::vector<const ThreadSnapshot*> ProcessSnapshotSanitized::Threads() const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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if (!sanitize_stacks_) {
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return snapshot_->Threads();
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}
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std::vector<const ThreadSnapshot*> threads;
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for (const auto& thread : threads_) {
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threads.push_back(thread.get());
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}
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return threads;
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}
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std::vector<const ModuleSnapshot*> ProcessSnapshotSanitized::Modules() const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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if (!allowed_annotations_) {
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return snapshot_->Modules();
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}
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std::vector<const ModuleSnapshot*> modules;
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for (const auto& module : modules_) {
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modules.push_back(module.get());
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}
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return modules;
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}
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std::vector<UnloadedModuleSnapshot> ProcessSnapshotSanitized::UnloadedModules()
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const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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return snapshot_->UnloadedModules();
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}
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const ExceptionSnapshot* ProcessSnapshotSanitized::Exception() const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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return snapshot_->Exception();
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}
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std::vector<const MemoryMapRegionSnapshot*>
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ProcessSnapshotSanitized::MemoryMap() const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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return snapshot_->MemoryMap();
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}
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std::vector<HandleSnapshot> ProcessSnapshotSanitized::Handles() const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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return snapshot_->Handles();
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}
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std::vector<const MemorySnapshot*> ProcessSnapshotSanitized::ExtraMemory()
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const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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return snapshot_->ExtraMemory();
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}
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const ProcessMemory* ProcessSnapshotSanitized::Memory() const {
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INITIALIZATION_STATE_DCHECK_VALID(initialized_);
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return &process_memory_;
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}
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} // namespace crashpad
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