signal_set_service.ipp 18 KB

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  1. //
  2. // detail/impl/signal_set_service.ipp
  3. // ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
  4. //
  5. // Copyright (c) 2003-2015 Christopher M. Kohlhoff (chris at kohlhoff dot com)
  6. //
  7. // Distributed under the Boost Software License, Version 1.0. (See accompanying
  8. // file LICENSE_1_0.txt or copy at http://www.boost.org/LICENSE_1_0.txt)
  9. //
  10. #ifndef ASIO_DETAIL_IMPL_SIGNAL_SET_SERVICE_IPP
  11. #define ASIO_DETAIL_IMPL_SIGNAL_SET_SERVICE_IPP
  12. #if defined(_MSC_VER) && (_MSC_VER >= 1200)
  13. # pragma once
  14. #endif // defined(_MSC_VER) && (_MSC_VER >= 1200)
  15. #include "asio/detail/config.hpp"
  16. #include <cstring>
  17. #include "asio/detail/reactor.hpp"
  18. #include "asio/detail/signal_blocker.hpp"
  19. #include "asio/detail/signal_set_service.hpp"
  20. #include "asio/detail/static_mutex.hpp"
  21. #include "asio/detail/push_options.hpp"
  22. namespace asio {
  23. namespace detail {
  24. struct signal_state
  25. {
  26. // Mutex used for protecting global state.
  27. static_mutex mutex_;
  28. // The read end of the pipe used for signal notifications.
  29. int read_descriptor_;
  30. // The write end of the pipe used for signal notifications.
  31. int write_descriptor_;
  32. // Whether the signal state has been prepared for a fork.
  33. bool fork_prepared_;
  34. // The head of a linked list of all signal_set_service instances.
  35. class signal_set_service* service_list_;
  36. // A count of the number of objects that are registered for each signal.
  37. std::size_t registration_count_[max_signal_number];
  38. };
  39. signal_state* get_signal_state()
  40. {
  41. static signal_state state = {
  42. ASIO_STATIC_MUTEX_INIT, -1, -1, false, 0, { 0 } };
  43. return &state;
  44. }
  45. void asio_signal_handler(int signal_number)
  46. {
  47. #if defined(ASIO_WINDOWS) \
  48. || defined(ASIO_WINDOWS_RUNTIME) \
  49. || defined(__CYGWIN__)
  50. signal_set_service::deliver_signal(signal_number);
  51. #else // defined(ASIO_WINDOWS)
  52. // || defined(ASIO_WINDOWS_RUNTIME)
  53. // || defined(__CYGWIN__)
  54. int saved_errno = errno;
  55. signal_state* state = get_signal_state();
  56. signed_size_type result = ::write(state->write_descriptor_,
  57. &signal_number, sizeof(signal_number));
  58. (void)result;
  59. errno = saved_errno;
  60. #endif // defined(ASIO_WINDOWS)
  61. // || defined(ASIO_WINDOWS_RUNTIME)
  62. // || defined(__CYGWIN__)
  63. #if defined(ASIO_HAS_SIGNAL) && !defined(ASIO_HAS_SIGACTION)
  64. ::signal(signal_number, asio_signal_handler);
  65. #endif // defined(ASIO_HAS_SIGNAL) && !defined(ASIO_HAS_SIGACTION)
  66. }
  67. #if !defined(ASIO_WINDOWS) \
  68. && !defined(ASIO_WINDOWS_RUNTIME) \
  69. && !defined(__CYGWIN__)
  70. class signal_set_service::pipe_read_op : public reactor_op
  71. {
  72. public:
  73. pipe_read_op()
  74. : reactor_op(&pipe_read_op::do_perform, pipe_read_op::do_complete)
  75. {
  76. }
  77. static bool do_perform(reactor_op*)
  78. {
  79. signal_state* state = get_signal_state();
  80. int fd = state->read_descriptor_;
  81. int signal_number = 0;
  82. while (::read(fd, &signal_number, sizeof(int)) == sizeof(int))
  83. if (signal_number >= 0 && signal_number < max_signal_number)
  84. signal_set_service::deliver_signal(signal_number);
  85. return false;
  86. }
  87. static void do_complete(io_service_impl* /*owner*/, operation* base,
  88. const asio::error_code& /*ec*/,
  89. std::size_t /*bytes_transferred*/)
  90. {
  91. pipe_read_op* o(static_cast<pipe_read_op*>(base));
  92. delete o;
  93. }
  94. };
  95. #endif // !defined(ASIO_WINDOWS)
  96. // && !defined(ASIO_WINDOWS_RUNTIME)
  97. // && !defined(__CYGWIN__)
  98. signal_set_service::signal_set_service(
  99. asio::io_service& io_service)
  100. : io_service_(asio::use_service<io_service_impl>(io_service)),
  101. #if !defined(ASIO_WINDOWS) \
  102. && !defined(ASIO_WINDOWS_RUNTIME) \
  103. && !defined(__CYGWIN__)
  104. reactor_(asio::use_service<reactor>(io_service)),
  105. #endif // !defined(ASIO_WINDOWS)
  106. // && !defined(ASIO_WINDOWS_RUNTIME)
  107. // && !defined(__CYGWIN__)
  108. next_(0),
  109. prev_(0)
  110. {
  111. get_signal_state()->mutex_.init();
  112. #if !defined(ASIO_WINDOWS) \
  113. && !defined(ASIO_WINDOWS_RUNTIME) \
  114. && !defined(__CYGWIN__)
  115. reactor_.init_task();
  116. #endif // !defined(ASIO_WINDOWS)
  117. // && !defined(ASIO_WINDOWS_RUNTIME)
  118. // && !defined(__CYGWIN__)
  119. for (int i = 0; i < max_signal_number; ++i)
  120. registrations_[i] = 0;
  121. add_service(this);
  122. }
  123. signal_set_service::~signal_set_service()
  124. {
  125. remove_service(this);
  126. }
  127. void signal_set_service::shutdown_service()
  128. {
  129. remove_service(this);
  130. op_queue<operation> ops;
  131. for (int i = 0; i < max_signal_number; ++i)
  132. {
  133. registration* reg = registrations_[i];
  134. while (reg)
  135. {
  136. ops.push(*reg->queue_);
  137. reg = reg->next_in_table_;
  138. }
  139. }
  140. io_service_.abandon_operations(ops);
  141. }
  142. void signal_set_service::fork_service(
  143. asio::io_service::fork_event fork_ev)
  144. {
  145. #if !defined(ASIO_WINDOWS) \
  146. && !defined(ASIO_WINDOWS_RUNTIME) \
  147. && !defined(__CYGWIN__)
  148. signal_state* state = get_signal_state();
  149. static_mutex::scoped_lock lock(state->mutex_);
  150. switch (fork_ev)
  151. {
  152. case asio::io_service::fork_prepare:
  153. {
  154. int read_descriptor = state->read_descriptor_;
  155. state->fork_prepared_ = true;
  156. lock.unlock();
  157. reactor_.deregister_internal_descriptor(read_descriptor, reactor_data_);
  158. }
  159. break;
  160. case asio::io_service::fork_parent:
  161. if (state->fork_prepared_)
  162. {
  163. int read_descriptor = state->read_descriptor_;
  164. state->fork_prepared_ = false;
  165. lock.unlock();
  166. reactor_.register_internal_descriptor(reactor::read_op,
  167. read_descriptor, reactor_data_, new pipe_read_op);
  168. }
  169. break;
  170. case asio::io_service::fork_child:
  171. if (state->fork_prepared_)
  172. {
  173. asio::detail::signal_blocker blocker;
  174. close_descriptors();
  175. open_descriptors();
  176. int read_descriptor = state->read_descriptor_;
  177. state->fork_prepared_ = false;
  178. lock.unlock();
  179. reactor_.register_internal_descriptor(reactor::read_op,
  180. read_descriptor, reactor_data_, new pipe_read_op);
  181. }
  182. break;
  183. default:
  184. break;
  185. }
  186. #else // !defined(ASIO_WINDOWS)
  187. // && !defined(ASIO_WINDOWS_RUNTIME)
  188. // && !defined(__CYGWIN__)
  189. (void)fork_ev;
  190. #endif // !defined(ASIO_WINDOWS)
  191. // && !defined(ASIO_WINDOWS_RUNTIME)
  192. // && !defined(__CYGWIN__)
  193. }
  194. void signal_set_service::construct(
  195. signal_set_service::implementation_type& impl)
  196. {
  197. impl.signals_ = 0;
  198. }
  199. void signal_set_service::destroy(
  200. signal_set_service::implementation_type& impl)
  201. {
  202. asio::error_code ignored_ec;
  203. clear(impl, ignored_ec);
  204. cancel(impl, ignored_ec);
  205. }
  206. asio::error_code signal_set_service::add(
  207. signal_set_service::implementation_type& impl,
  208. int signal_number, asio::error_code& ec)
  209. {
  210. // Check that the signal number is valid.
  211. if (signal_number < 0 || signal_number >= max_signal_number)
  212. {
  213. ec = asio::error::invalid_argument;
  214. return ec;
  215. }
  216. signal_state* state = get_signal_state();
  217. static_mutex::scoped_lock lock(state->mutex_);
  218. // Find the appropriate place to insert the registration.
  219. registration** insertion_point = &impl.signals_;
  220. registration* next = impl.signals_;
  221. while (next && next->signal_number_ < signal_number)
  222. {
  223. insertion_point = &next->next_in_set_;
  224. next = next->next_in_set_;
  225. }
  226. // Only do something if the signal is not already registered.
  227. if (next == 0 || next->signal_number_ != signal_number)
  228. {
  229. registration* new_registration = new registration;
  230. #if defined(ASIO_HAS_SIGNAL) || defined(ASIO_HAS_SIGACTION)
  231. // Register for the signal if we're the first.
  232. if (state->registration_count_[signal_number] == 0)
  233. {
  234. # if defined(ASIO_HAS_SIGACTION)
  235. using namespace std; // For memset.
  236. struct sigaction sa;
  237. memset(&sa, 0, sizeof(sa));
  238. sa.sa_handler = asio_signal_handler;
  239. sigfillset(&sa.sa_mask);
  240. if (::sigaction(signal_number, &sa, 0) == -1)
  241. # else // defined(ASIO_HAS_SIGACTION)
  242. if (::signal(signal_number, asio_signal_handler) == SIG_ERR)
  243. # endif // defined(ASIO_HAS_SIGACTION)
  244. {
  245. # if defined(ASIO_WINDOWS) || defined(__CYGWIN__)
  246. ec = asio::error::invalid_argument;
  247. # else // defined(ASIO_WINDOWS) || defined(__CYGWIN__)
  248. ec = asio::error_code(errno,
  249. asio::error::get_system_category());
  250. # endif // defined(ASIO_WINDOWS) || defined(__CYGWIN__)
  251. delete new_registration;
  252. return ec;
  253. }
  254. }
  255. #endif // defined(ASIO_HAS_SIGNAL) || defined(ASIO_HAS_SIGACTION)
  256. // Record the new registration in the set.
  257. new_registration->signal_number_ = signal_number;
  258. new_registration->queue_ = &impl.queue_;
  259. new_registration->next_in_set_ = next;
  260. *insertion_point = new_registration;
  261. // Insert registration into the registration table.
  262. new_registration->next_in_table_ = registrations_[signal_number];
  263. if (registrations_[signal_number])
  264. registrations_[signal_number]->prev_in_table_ = new_registration;
  265. registrations_[signal_number] = new_registration;
  266. ++state->registration_count_[signal_number];
  267. }
  268. ec = asio::error_code();
  269. return ec;
  270. }
  271. asio::error_code signal_set_service::remove(
  272. signal_set_service::implementation_type& impl,
  273. int signal_number, asio::error_code& ec)
  274. {
  275. // Check that the signal number is valid.
  276. if (signal_number < 0 || signal_number >= max_signal_number)
  277. {
  278. ec = asio::error::invalid_argument;
  279. return ec;
  280. }
  281. signal_state* state = get_signal_state();
  282. static_mutex::scoped_lock lock(state->mutex_);
  283. // Find the signal number in the list of registrations.
  284. registration** deletion_point = &impl.signals_;
  285. registration* reg = impl.signals_;
  286. while (reg && reg->signal_number_ < signal_number)
  287. {
  288. deletion_point = &reg->next_in_set_;
  289. reg = reg->next_in_set_;
  290. }
  291. if (reg != 0 && reg->signal_number_ == signal_number)
  292. {
  293. #if defined(ASIO_HAS_SIGNAL) || defined(ASIO_HAS_SIGACTION)
  294. // Set signal handler back to the default if we're the last.
  295. if (state->registration_count_[signal_number] == 1)
  296. {
  297. # if defined(ASIO_HAS_SIGACTION)
  298. using namespace std; // For memset.
  299. struct sigaction sa;
  300. memset(&sa, 0, sizeof(sa));
  301. sa.sa_handler = SIG_DFL;
  302. if (::sigaction(signal_number, &sa, 0) == -1)
  303. # else // defined(ASIO_HAS_SIGACTION)
  304. if (::signal(signal_number, SIG_DFL) == SIG_ERR)
  305. # endif // defined(ASIO_HAS_SIGACTION)
  306. {
  307. # if defined(ASIO_WINDOWS) || defined(__CYGWIN__)
  308. ec = asio::error::invalid_argument;
  309. # else // defined(ASIO_WINDOWS) || defined(__CYGWIN__)
  310. ec = asio::error_code(errno,
  311. asio::error::get_system_category());
  312. # endif // defined(ASIO_WINDOWS) || defined(__CYGWIN__)
  313. return ec;
  314. }
  315. }
  316. #endif // defined(ASIO_HAS_SIGNAL) || defined(ASIO_HAS_SIGACTION)
  317. // Remove the registration from the set.
  318. *deletion_point = reg->next_in_set_;
  319. // Remove the registration from the registration table.
  320. if (registrations_[signal_number] == reg)
  321. registrations_[signal_number] = reg->next_in_table_;
  322. if (reg->prev_in_table_)
  323. reg->prev_in_table_->next_in_table_ = reg->next_in_table_;
  324. if (reg->next_in_table_)
  325. reg->next_in_table_->prev_in_table_ = reg->prev_in_table_;
  326. --state->registration_count_[signal_number];
  327. delete reg;
  328. }
  329. ec = asio::error_code();
  330. return ec;
  331. }
  332. asio::error_code signal_set_service::clear(
  333. signal_set_service::implementation_type& impl,
  334. asio::error_code& ec)
  335. {
  336. signal_state* state = get_signal_state();
  337. static_mutex::scoped_lock lock(state->mutex_);
  338. while (registration* reg = impl.signals_)
  339. {
  340. #if defined(ASIO_HAS_SIGNAL) || defined(ASIO_HAS_SIGACTION)
  341. // Set signal handler back to the default if we're the last.
  342. if (state->registration_count_[reg->signal_number_] == 1)
  343. {
  344. # if defined(ASIO_HAS_SIGACTION)
  345. using namespace std; // For memset.
  346. struct sigaction sa;
  347. memset(&sa, 0, sizeof(sa));
  348. sa.sa_handler = SIG_DFL;
  349. if (::sigaction(reg->signal_number_, &sa, 0) == -1)
  350. # else // defined(ASIO_HAS_SIGACTION)
  351. if (::signal(reg->signal_number_, SIG_DFL) == SIG_ERR)
  352. # endif // defined(ASIO_HAS_SIGACTION)
  353. {
  354. # if defined(ASIO_WINDOWS) || defined(__CYGWIN__)
  355. ec = asio::error::invalid_argument;
  356. # else // defined(ASIO_WINDOWS) || defined(__CYGWIN__)
  357. ec = asio::error_code(errno,
  358. asio::error::get_system_category());
  359. # endif // defined(ASIO_WINDOWS) || defined(__CYGWIN__)
  360. return ec;
  361. }
  362. }
  363. #endif // defined(ASIO_HAS_SIGNAL) || defined(ASIO_HAS_SIGACTION)
  364. // Remove the registration from the registration table.
  365. if (registrations_[reg->signal_number_] == reg)
  366. registrations_[reg->signal_number_] = reg->next_in_table_;
  367. if (reg->prev_in_table_)
  368. reg->prev_in_table_->next_in_table_ = reg->next_in_table_;
  369. if (reg->next_in_table_)
  370. reg->next_in_table_->prev_in_table_ = reg->prev_in_table_;
  371. --state->registration_count_[reg->signal_number_];
  372. impl.signals_ = reg->next_in_set_;
  373. delete reg;
  374. }
  375. ec = asio::error_code();
  376. return ec;
  377. }
  378. asio::error_code signal_set_service::cancel(
  379. signal_set_service::implementation_type& impl,
  380. asio::error_code& ec)
  381. {
  382. ASIO_HANDLER_OPERATION(("signal_set", &impl, "cancel"));
  383. op_queue<operation> ops;
  384. {
  385. signal_state* state = get_signal_state();
  386. static_mutex::scoped_lock lock(state->mutex_);
  387. while (signal_op* op = impl.queue_.front())
  388. {
  389. op->ec_ = asio::error::operation_aborted;
  390. impl.queue_.pop();
  391. ops.push(op);
  392. }
  393. }
  394. io_service_.post_deferred_completions(ops);
  395. ec = asio::error_code();
  396. return ec;
  397. }
  398. void signal_set_service::deliver_signal(int signal_number)
  399. {
  400. signal_state* state = get_signal_state();
  401. static_mutex::scoped_lock lock(state->mutex_);
  402. signal_set_service* service = state->service_list_;
  403. while (service)
  404. {
  405. op_queue<operation> ops;
  406. registration* reg = service->registrations_[signal_number];
  407. while (reg)
  408. {
  409. if (reg->queue_->empty())
  410. {
  411. ++reg->undelivered_;
  412. }
  413. else
  414. {
  415. while (signal_op* op = reg->queue_->front())
  416. {
  417. op->signal_number_ = signal_number;
  418. reg->queue_->pop();
  419. ops.push(op);
  420. }
  421. }
  422. reg = reg->next_in_table_;
  423. }
  424. service->io_service_.post_deferred_completions(ops);
  425. service = service->next_;
  426. }
  427. }
  428. void signal_set_service::add_service(signal_set_service* service)
  429. {
  430. signal_state* state = get_signal_state();
  431. static_mutex::scoped_lock lock(state->mutex_);
  432. #if !defined(ASIO_WINDOWS) && !defined(__CYGWIN__)
  433. // If this is the first service to be created, open a new pipe.
  434. if (state->service_list_ == 0)
  435. open_descriptors();
  436. #endif // !defined(ASIO_WINDOWS) && !defined(__CYGWIN__)
  437. // Insert service into linked list of all services.
  438. service->next_ = state->service_list_;
  439. service->prev_ = 0;
  440. if (state->service_list_)
  441. state->service_list_->prev_ = service;
  442. state->service_list_ = service;
  443. #if !defined(ASIO_WINDOWS) \
  444. && !defined(ASIO_WINDOWS_RUNTIME) \
  445. && !defined(__CYGWIN__)
  446. // Register for pipe readiness notifications.
  447. int read_descriptor = state->read_descriptor_;
  448. lock.unlock();
  449. service->reactor_.register_internal_descriptor(reactor::read_op,
  450. read_descriptor, service->reactor_data_, new pipe_read_op);
  451. #endif // !defined(ASIO_WINDOWS)
  452. // && !defined(ASIO_WINDOWS_RUNTIME)
  453. // && !defined(__CYGWIN__)
  454. }
  455. void signal_set_service::remove_service(signal_set_service* service)
  456. {
  457. signal_state* state = get_signal_state();
  458. static_mutex::scoped_lock lock(state->mutex_);
  459. if (service->next_ || service->prev_ || state->service_list_ == service)
  460. {
  461. #if !defined(ASIO_WINDOWS) \
  462. && !defined(ASIO_WINDOWS_RUNTIME) \
  463. && !defined(__CYGWIN__)
  464. // Disable the pipe readiness notifications.
  465. int read_descriptor = state->read_descriptor_;
  466. lock.unlock();
  467. service->reactor_.deregister_descriptor(
  468. read_descriptor, service->reactor_data_, false);
  469. lock.lock();
  470. #endif // !defined(ASIO_WINDOWS)
  471. // && !defined(ASIO_WINDOWS_RUNTIME)
  472. // && !defined(__CYGWIN__)
  473. // Remove service from linked list of all services.
  474. if (state->service_list_ == service)
  475. state->service_list_ = service->next_;
  476. if (service->prev_)
  477. service->prev_->next_ = service->next_;
  478. if (service->next_)
  479. service->next_->prev_= service->prev_;
  480. service->next_ = 0;
  481. service->prev_ = 0;
  482. #if !defined(ASIO_WINDOWS) && !defined(__CYGWIN__)
  483. // If this is the last service to be removed, close the pipe.
  484. if (state->service_list_ == 0)
  485. close_descriptors();
  486. #endif // !defined(ASIO_WINDOWS) && !defined(__CYGWIN__)
  487. }
  488. }
  489. void signal_set_service::open_descriptors()
  490. {
  491. #if !defined(ASIO_WINDOWS) \
  492. && !defined(ASIO_WINDOWS_RUNTIME) \
  493. && !defined(__CYGWIN__)
  494. signal_state* state = get_signal_state();
  495. int pipe_fds[2];
  496. if (::pipe(pipe_fds) == 0)
  497. {
  498. state->read_descriptor_ = pipe_fds[0];
  499. ::fcntl(state->read_descriptor_, F_SETFL, O_NONBLOCK);
  500. state->write_descriptor_ = pipe_fds[1];
  501. ::fcntl(state->write_descriptor_, F_SETFL, O_NONBLOCK);
  502. #if defined(FD_CLOEXEC)
  503. ::fcntl(state->read_descriptor_, F_SETFD, FD_CLOEXEC);
  504. ::fcntl(state->write_descriptor_, F_SETFD, FD_CLOEXEC);
  505. #endif // defined(FD_CLOEXEC)
  506. }
  507. else
  508. {
  509. asio::error_code ec(errno,
  510. asio::error::get_system_category());
  511. asio::detail::throw_error(ec, "signal_set_service pipe");
  512. }
  513. #endif // !defined(ASIO_WINDOWS)
  514. // && !defined(ASIO_WINDOWS_RUNTIME)
  515. // && !defined(__CYGWIN__)
  516. }
  517. void signal_set_service::close_descriptors()
  518. {
  519. #if !defined(ASIO_WINDOWS) \
  520. && !defined(ASIO_WINDOWS_RUNTIME) \
  521. && !defined(__CYGWIN__)
  522. signal_state* state = get_signal_state();
  523. if (state->read_descriptor_ != -1)
  524. ::close(state->read_descriptor_);
  525. state->read_descriptor_ = -1;
  526. if (state->write_descriptor_ != -1)
  527. ::close(state->write_descriptor_);
  528. state->write_descriptor_ = -1;
  529. #endif // !defined(ASIO_WINDOWS)
  530. // && !defined(ASIO_WINDOWS_RUNTIME)
  531. // && !defined(__CYGWIN__)
  532. }
  533. void signal_set_service::start_wait_op(
  534. signal_set_service::implementation_type& impl, signal_op* op)
  535. {
  536. io_service_.work_started();
  537. signal_state* state = get_signal_state();
  538. static_mutex::scoped_lock lock(state->mutex_);
  539. registration* reg = impl.signals_;
  540. while (reg)
  541. {
  542. if (reg->undelivered_ > 0)
  543. {
  544. --reg->undelivered_;
  545. op->signal_number_ = reg->signal_number_;
  546. io_service_.post_deferred_completion(op);
  547. return;
  548. }
  549. reg = reg->next_in_set_;
  550. }
  551. impl.queue_.push(op);
  552. }
  553. } // namespace detail
  554. } // namespace asio
  555. #include "asio/detail/pop_options.hpp"
  556. #endif // ASIO_DETAIL_IMPL_SIGNAL_SET_SERVICE_IPP