Properly redeliver (or don't) signals to the previous handlers.
If none of the installed ExceptionHandlers handle a signal (their FilterCallbacks or HandlerCallbacks all return false), then the signal should be delivered to the signal handlers that were previously installed. This requires that old_handlers_ become a static vector so that we can restore the handlers in the static HandleSignal. Currently it is also restoring signals in ~ExceptionHandler (if there are no others). This should not be required since our documentation states that a process can only have one ExceptionHandler for which install_handlers is true (and so we get the correct behavior if we simply leave our handlers installed forever), but even the tests themselves violate that. Patch by Chris Hopman <cjhopman@chromium.org> Review URL: https://breakpad.appspot.com/440002/ git-svn-id: http://google-breakpad.googlecode.com/svn/trunk@1025 4c0a9323-5329-0410-9bdc-e9ce6186880e
This commit is contained in:
parent
7e3c538af1
commit
343ce73b73
3 changed files with 304 additions and 72 deletions
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@ -108,17 +108,86 @@ static int tgkill(pid_t tgid, pid_t tid, int sig) {
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namespace google_breakpad {
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namespace {
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// The list of signals which we consider to be crashes. The default action for
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// all these signals must be Core (see man 7 signal) because we rethrow the
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// signal after handling it and expect that it'll be fatal.
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static const int kExceptionSignals[] = {
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SIGSEGV, SIGABRT, SIGFPE, SIGILL, SIGBUS, -1
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const int kExceptionSignals[] = {
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SIGSEGV, SIGABRT, SIGFPE, SIGILL, SIGBUS
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};
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const int kNumHandledSignals =
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sizeof(kExceptionSignals) / sizeof(kExceptionSignals[0]);
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struct sigaction old_handlers[kNumHandledSignals] = {0};
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bool handlers_installed = false;
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// InstallAlternateStackLocked will store the newly installed stack in new_stack
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// and (if it exists) the previously installed stack in old_stack.
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stack_t old_stack;
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stack_t new_stack;
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bool stack_installed = false;
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// Create an alternative stack to run the signal handlers on. This is done since
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// the signal might have been caused by a stack overflow.
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// Runs before crashing: normal context.
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void InstallAlternateStackLocked() {
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if (stack_installed)
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return;
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memset(&old_stack, 0, sizeof(old_stack));
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memset(&new_stack, 0, sizeof(new_stack));
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// SIGSTKSZ may be too small to prevent the signal handlers from overrunning
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// the alternative stack. Ensure that the size of the alternative stack is
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// large enough.
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static const unsigned kSigStackSize = std::max(8192, SIGSTKSZ);
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// Only set an alternative stack if there isn't already one, or if the current
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// one is too small.
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if (sys_sigaltstack(NULL, &old_stack) == -1 || !old_stack.ss_sp ||
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old_stack.ss_size < kSigStackSize) {
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new_stack.ss_sp = malloc(kSigStackSize);
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new_stack.ss_size = kSigStackSize;
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if (sys_sigaltstack(&new_stack, NULL) == -1) {
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free(new_stack.ss_sp);
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return;
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}
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stack_installed = true;
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}
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}
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// Runs before crashing: normal context.
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void RestoreAlternateStackLocked() {
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if (!stack_installed)
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return;
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stack_t current_stack;
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if (sys_sigaltstack(NULL, ¤t_stack) == -1)
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return;
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// Only restore the old_stack if the current alternative stack is the one
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// installed by the call to InstallAlternateStackLocked.
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if (current_stack.ss_sp == new_stack.ss_sp) {
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if (old_stack.ss_sp) {
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if (sys_sigaltstack(&old_stack, NULL) == -1)
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return;
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} else {
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stack_t disable_stack;
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disable_stack.ss_flags = SS_DISABLE;
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if (sys_sigaltstack(&disable_stack, NULL) == -1)
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return;
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}
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}
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free(new_stack.ss_sp);
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stack_installed = false;
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}
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} // namespace
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// We can stack multiple exception handlers. In that case, this is the global
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// which holds the stack.
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std::vector<ExceptionHandler*>* ExceptionHandler::handler_stack_ = NULL;
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unsigned ExceptionHandler::handler_stack_index_ = 0;
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pthread_mutex_t ExceptionHandler::handler_stack_mutex_ =
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PTHREAD_MUTEX_INITIALIZER;
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@ -137,43 +206,42 @@ ExceptionHandler::ExceptionHandler(const MinidumpDescriptor& descriptor,
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if (server_fd >= 0)
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crash_generation_client_.reset(CrashGenerationClient::TryCreate(server_fd));
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if (install_handler)
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InstallHandlers();
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if (!IsOutOfProcess() && !minidump_descriptor_.IsFD())
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minidump_descriptor_.UpdatePath();
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pthread_mutex_lock(&handler_stack_mutex_);
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if (!handler_stack_)
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handler_stack_ = new std::vector<ExceptionHandler*>;
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if (install_handler) {
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InstallAlternateStackLocked();
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InstallHandlersLocked();
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}
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handler_stack_->push_back(this);
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pthread_mutex_unlock(&handler_stack_mutex_);
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}
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// Runs before crashing: normal context.
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ExceptionHandler::~ExceptionHandler() {
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UninstallHandlers();
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pthread_mutex_lock(&handler_stack_mutex_);
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std::vector<ExceptionHandler*>::iterator handler =
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std::find(handler_stack_->begin(), handler_stack_->end(), this);
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handler_stack_->erase(handler);
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if (handler_stack_->empty()) {
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RestoreAlternateStackLocked();
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RestoreHandlersLocked();
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}
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pthread_mutex_unlock(&handler_stack_mutex_);
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}
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// Runs before crashing: normal context.
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bool ExceptionHandler::InstallHandlers() {
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// We run the signal handlers on an alternative stack because we might have
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// crashed because of a stack overflow.
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// static
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bool ExceptionHandler::InstallHandlersLocked() {
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if (handlers_installed)
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return false;
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// We use this value rather than SIGSTKSZ because we would end up overrunning
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// such a small stack.
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static const unsigned kSigStackSize = 8192;
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stack_t stack;
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// Only set an alternative stack if there isn't already one, or if the current
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// one is too small.
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if (sys_sigaltstack(NULL, &stack) == -1 || !stack.ss_sp ||
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stack.ss_size < kSigStackSize) {
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memset(&stack, 0, sizeof(stack));
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stack.ss_sp = malloc(kSigStackSize);
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stack.ss_size = kSigStackSize;
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if (sys_sigaltstack(&stack, NULL) == -1)
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// Fail if unable to store all the old handlers.
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for (unsigned i = 0; i < kNumHandledSignals; ++i) {
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if (sigaction(kExceptionSignals[i], NULL, &old_handlers[i]) == -1)
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return false;
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}
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@ -181,36 +249,36 @@ bool ExceptionHandler::InstallHandlers() {
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memset(&sa, 0, sizeof(sa));
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sigemptyset(&sa.sa_mask);
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// mask all exception signals when we're handling one of them.
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for (unsigned i = 0; kExceptionSignals[i] != -1; ++i)
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// Mask all exception signals when we're handling one of them.
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for (unsigned i = 0; i < kNumHandledSignals; ++i)
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sigaddset(&sa.sa_mask, kExceptionSignals[i]);
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sa.sa_sigaction = SignalHandler;
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sa.sa_flags = SA_ONSTACK | SA_SIGINFO;
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for (unsigned i = 0; kExceptionSignals[i] != -1; ++i) {
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struct sigaction* old = new struct sigaction;
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if (sigaction(kExceptionSignals[i], &sa, old) == -1)
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return false;
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old_handlers_.push_back(std::make_pair(kExceptionSignals[i], old));
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for (unsigned i = 0; i < kNumHandledSignals; ++i) {
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if (sigaction(kExceptionSignals[i], &sa, NULL) == -1) {
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// At this point it is impractical to back out changes, and so failure to
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// install a signal is intentionally ignored.
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}
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}
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handlers_installed = true;
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return true;
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}
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// Runs before crashing: normal context.
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void ExceptionHandler::UninstallHandlers() {
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for (unsigned i = 0; i < old_handlers_.size(); ++i) {
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struct sigaction *action =
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reinterpret_cast<struct sigaction*>(old_handlers_[i].second);
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sigaction(old_handlers_[i].first, action, NULL);
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delete action;
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// This function runs in a compromised context: see the top of the file.
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// Runs on the crashing thread.
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// static
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void ExceptionHandler::RestoreHandlersLocked() {
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if (!handlers_installed)
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return;
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for (unsigned i = 0; i < kNumHandledSignals; ++i) {
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if (sigaction(kExceptionSignals[i], &old_handlers[i], NULL) == -1) {
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signal(kExceptionSignals[i], SIG_DFL);
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}
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}
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pthread_mutex_lock(&handler_stack_mutex_);
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std::vector<ExceptionHandler*>::iterator handler =
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std::find(handler_stack_->begin(), handler_stack_->end(), this);
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handler_stack_->erase(handler);
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pthread_mutex_unlock(&handler_stack_mutex_);
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old_handlers_.clear();
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handlers_installed = false;
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}
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// void ExceptionHandler::set_crash_handler(HandlerCallback callback) {
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// All the exception signals are blocked at this point.
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pthread_mutex_lock(&handler_stack_mutex_);
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if (!handler_stack_->size()) {
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pthread_mutex_unlock(&handler_stack_mutex_);
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return;
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bool handled = false;
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for (int i = handler_stack_->size() - 1; !handled && i >= 0; --i) {
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handled = (*handler_stack_)[i]->HandleSignal(sig, info, uc);
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}
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for (int i = handler_stack_->size() - 1; i >= 0; --i) {
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if ((*handler_stack_)[i]->HandleSignal(sig, info, uc)) {
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// successfully handled: We are in an invalid state since an exception
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// signal has been delivered. We don't call the exit handlers because
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// they could end up corrupting on-disk state.
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break;
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}
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// Upon returning from this signal handler, sig will become unmasked and then
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// it will be retriggered. If one of the ExceptionHandlers handled it
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// successfully, restore the default handler. Otherwise, restore the
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// previously installed handler. Then, when the signal is retriggered, it will
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// be delivered to the appropriate handler.
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if (handled) {
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signal(sig, SIG_DFL);
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} else {
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RestoreHandlersLocked();
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}
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pthread_mutex_unlock(&handler_stack_mutex_);
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// No need to reissue the signal. It will automatically trigger again,
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// when we return from the signal handler.
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}
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// As soon as we return from the signal handler, our signal will become
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// unmasked. At that time, we will get terminated with the same signal that
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// was triggered originally. This allows our parent to know that we crashed.
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// The default action for all the signals which we catch is Core, so
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// this is the end of us.
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signal(sig, SIG_DFL);
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}
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struct ThreadArgument {
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#endif
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context.tid = syscall(__NR_gettid);
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if (crash_handler_ != NULL) {
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if (crash_handler_(&context, sizeof(context),
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callback_context_)) {
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if (crash_handler_(&context, sizeof(context), callback_context_)) {
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return true;
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}
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}
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@ -46,8 +46,6 @@
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#include "google_breakpad/common/minidump_format.h"
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#include "processor/scoped_ptr.h"
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struct sigaction;
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namespace google_breakpad {
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// ExceptionHandler
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@ -194,8 +192,11 @@ class ExceptionHandler {
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// Force signal handling for the specified signal.
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bool SimulateSignalDelivery(int sig);
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private:
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bool InstallHandlers();
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void UninstallHandlers();
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// Save the old signal handlers and install new ones.
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static bool InstallHandlersLocked();
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// Restore the old signal handlers.
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static void RestoreHandlersLocked();
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void PreresolveSymbols();
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bool GenerateDump(CrashContext *context);
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void SendContinueSignalToChild();
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@ -221,13 +222,8 @@ class ExceptionHandler {
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// multiple ExceptionHandler instances in a process. Each will have itself
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// registered in this stack.
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static std::vector<ExceptionHandler*> *handler_stack_;
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// The index of the handler that should handle the next exception.
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static unsigned handler_stack_index_;
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static pthread_mutex_t handler_stack_mutex_;
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// A vector of the old signal handlers.
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std::vector<std::pair<int, struct sigaction *> > old_handlers_;
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// We need to explicitly enable ptrace of parent processes on some
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// kernels, but we need to know the PID of the cloned process before we
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// can do this. We create a pipe which we can use to block the
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@ -202,6 +202,180 @@ TEST(ExceptionHandlerTest, ChildCrashWithFD) {
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ASSERT_NO_FATAL_FAILURE(ChildCrash(true));
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}
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static bool DoneCallbackReturnFalse(const MinidumpDescriptor& descriptor,
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void* context,
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bool succeeded) {
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return false;
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}
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static bool DoneCallbackReturnTrue(const MinidumpDescriptor& descriptor,
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void* context,
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bool succeeded) {
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return true;
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}
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static bool DoneCallbackRaiseSIGKILL(const MinidumpDescriptor& descriptor,
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void* context,
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bool succeeded) {
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raise(SIGKILL);
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}
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static bool FilterCallbackReturnFalse(void* context) {
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return false;
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}
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static bool FilterCallbackReturnTrue(void* context) {
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return true;
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}
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// SIGKILL cannot be blocked and a handler cannot be installed for it. In the
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// following tests, if the child dies with signal SIGKILL, then the signal was
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// redelivered to this handler. If the child dies with SIGSEGV then it wasn't.
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static void RaiseSIGKILL(int sig) {
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raise(SIGKILL);
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}
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static bool InstallRaiseSIGKILL() {
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struct sigaction sa;
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memset(&sa, 0, sizeof(sa));
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sa.sa_handler = RaiseSIGKILL;
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return sigaction(SIGSEGV, &sa, NULL) != -1;
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}
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static void CrashWithCallbacks(ExceptionHandler::FilterCallback filter,
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ExceptionHandler::MinidumpCallback done,
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string path) {
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ExceptionHandler handler(
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MinidumpDescriptor(path), filter, done, NULL, true, -1);
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// Crash with the exception handler in scope.
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*reinterpret_cast<volatile int*>(NULL) = 0;
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}
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TEST(ExceptionHandlerTest, RedeliveryOnFilterCallbackFalse) {
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AutoTempDir temp_dir;
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const pid_t child = fork();
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if (child == 0) {
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ASSERT_TRUE(InstallRaiseSIGKILL());
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CrashWithCallbacks(FilterCallbackReturnFalse, NULL, temp_dir.path());
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}
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ASSERT_NO_FATAL_FAILURE(WaitForProcessToTerminate(child, SIGKILL));
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}
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TEST(ExceptionHandlerTest, RedeliveryOnDoneCallbackFalse) {
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AutoTempDir temp_dir;
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const pid_t child = fork();
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if (child == 0) {
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ASSERT_TRUE(InstallRaiseSIGKILL());
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CrashWithCallbacks(NULL, DoneCallbackReturnFalse, temp_dir.path());
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}
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ASSERT_NO_FATAL_FAILURE(WaitForProcessToTerminate(child, SIGKILL));
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}
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TEST(ExceptionHandlerTest, NoRedeliveryOnDoneCallbackTrue) {
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AutoTempDir temp_dir;
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const pid_t child = fork();
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if (child == 0) {
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ASSERT_TRUE(InstallRaiseSIGKILL());
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CrashWithCallbacks(NULL, DoneCallbackReturnTrue, temp_dir.path());
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}
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ASSERT_NO_FATAL_FAILURE(WaitForProcessToTerminate(child, SIGSEGV));
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}
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TEST(ExceptionHandlerTest, NoRedeliveryOnFilterCallbackTrue) {
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AutoTempDir temp_dir;
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const pid_t child = fork();
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if (child == 0) {
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ASSERT_TRUE(InstallRaiseSIGKILL());
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CrashWithCallbacks(FilterCallbackReturnTrue, NULL, temp_dir.path());
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}
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ASSERT_NO_FATAL_FAILURE(WaitForProcessToTerminate(child, SIGSEGV));
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}
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TEST(ExceptionHandlerTest, RedeliveryToDefaultHandler) {
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AutoTempDir temp_dir;
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const pid_t child = fork();
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if (child == 0) {
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CrashWithCallbacks(FilterCallbackReturnFalse, NULL, temp_dir.path());
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}
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// As RaiseSIGKILL wasn't installed, the redelivery should just kill the child
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// with SIGSEGV.
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ASSERT_NO_FATAL_FAILURE(WaitForProcessToTerminate(child, SIGSEGV));
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}
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TEST(ExceptionHandlerTest, StackedHandlersDeliveredToTop) {
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AutoTempDir temp_dir;
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const pid_t child = fork();
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if (child == 0) {
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ExceptionHandler bottom(MinidumpDescriptor(temp_dir.path()),
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NULL,
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NULL,
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NULL,
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true,
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-1);
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CrashWithCallbacks(NULL, DoneCallbackRaiseSIGKILL, temp_dir.path());
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}
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ASSERT_NO_FATAL_FAILURE(WaitForProcessToTerminate(child, SIGKILL));
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}
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TEST(ExceptionHandlerTest, StackedHandlersNotDeliveredToBottom) {
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AutoTempDir temp_dir;
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const pid_t child = fork();
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if (child == 0) {
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ExceptionHandler bottom(MinidumpDescriptor(temp_dir.path()),
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NULL,
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DoneCallbackRaiseSIGKILL,
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NULL,
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true,
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-1);
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CrashWithCallbacks(NULL, NULL, temp_dir.path());
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}
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ASSERT_NO_FATAL_FAILURE(WaitForProcessToTerminate(child, SIGSEGV));
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}
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TEST(ExceptionHandlerTest, StackedHandlersFilteredToBottom) {
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AutoTempDir temp_dir;
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||||
const pid_t child = fork();
|
||||
if (child == 0) {
|
||||
ExceptionHandler bottom(MinidumpDescriptor(temp_dir.path()),
|
||||
NULL,
|
||||
DoneCallbackRaiseSIGKILL,
|
||||
NULL,
|
||||
true,
|
||||
-1);
|
||||
CrashWithCallbacks(FilterCallbackReturnFalse, NULL, temp_dir.path());
|
||||
}
|
||||
ASSERT_NO_FATAL_FAILURE(WaitForProcessToTerminate(child, SIGKILL));
|
||||
}
|
||||
|
||||
TEST(ExceptionHandlerTest, StackedHandlersUnhandledToBottom) {
|
||||
AutoTempDir temp_dir;
|
||||
|
||||
const pid_t child = fork();
|
||||
if (child == 0) {
|
||||
ExceptionHandler bottom(MinidumpDescriptor(temp_dir.path()),
|
||||
NULL,
|
||||
DoneCallbackRaiseSIGKILL,
|
||||
NULL,
|
||||
true,
|
||||
-1);
|
||||
CrashWithCallbacks(NULL, DoneCallbackReturnFalse, temp_dir.path());
|
||||
}
|
||||
ASSERT_NO_FATAL_FAILURE(WaitForProcessToTerminate(child, SIGKILL));
|
||||
}
|
||||
|
||||
// Test that memory around the instruction pointer is written
|
||||
// to the dump as a MinidumpMemoryRegion.
|
||||
TEST(ExceptionHandlerTest, InstructionPointerMemory) {
|
||||
|
|
Loading…
Reference in a new issue