基于C++ Coroutines提案 ‘Stackless Resumable Functions’编写的协程库
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test_async_multi_thread.cpp 2.5KB

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  1. #include <chrono>
  2. #include <iostream>
  3. #include <string>
  4. #include <conio.h>
  5. #include <thread>
  6. #include "librf.h"
  7. using namespace resumef;
  8. static std::mutex cout_mutex;
  9. //这是一个重度计算任务,只能单开线程来避免主线程被阻塞
  10. auto async_heavy_computing_tasks(int64_t val)
  11. {
  12. using namespace std::chrono;
  13. awaitable_t<int64_t> awaitable;
  14. std::thread([val, st = awaitable._state]
  15. {
  16. std::this_thread::sleep_for(500ms);
  17. st->set_value(val * val);
  18. }).detach();
  19. return awaitable.get_future();
  20. }
  21. future_t<> heavy_computing_sequential(int64_t val)
  22. {
  23. for(size_t i = 0; i < 3; ++i)
  24. {
  25. {
  26. scoped_lock<std::mutex> __lock(cout_mutex);
  27. std::cout << val << " @" << std::this_thread::get_id() << std::endl;
  28. }
  29. val = co_await async_heavy_computing_tasks(val);
  30. }
  31. {
  32. scoped_lock<std::mutex> __lock(cout_mutex);
  33. std::cout << val << " @" << std::this_thread::get_id() << std::endl;
  34. }
  35. }
  36. void test_use_single_thread(int64_t val)
  37. {
  38. //使用local_scheduler来申明一个绑定到本线程的调度器 my_scheduler
  39. //后续在本线程运行的协程,通过this_scheduler()获得my_scheduler的地址
  40. //从而将这些协程的所有操作都绑定到my_scheduler里面去调度
  41. //实现一个协程始终绑定到一个线程的目的
  42. //在同一个线程里,申明多个local_scheduler会怎么样?
  43. //----我也不知道
  44. //如果不申明my_scheduler,则this_scheduler()获得默认主调度器的地址
  45. local_scheduler my_scheduler;
  46. {
  47. scoped_lock<std::mutex> __lock(cout_mutex);
  48. std::cout << "running in thread @" << std::this_thread::get_id() << std::endl;
  49. }
  50. go heavy_computing_sequential(val);
  51. this_scheduler()->run_until_notask();
  52. }
  53. const size_t N = 2;
  54. void test_use_multi_thread()
  55. {
  56. std::thread th_array[N];
  57. for (size_t i = 0; i < N; ++i)
  58. th_array[i] = std::thread(&test_use_single_thread, 4 + i);
  59. test_use_single_thread(3);
  60. for (auto & th : th_array)
  61. th.join();
  62. }
  63. void resumable_main_multi_thread()
  64. {
  65. std::cout << "test_use_single_thread @" << std::this_thread::get_id() << std::endl << std::endl;
  66. test_use_single_thread(2);
  67. std::cout << std::endl;
  68. std::cout << "test_use_multi_thread @" << std::this_thread::get_id() << std::endl << std::endl;
  69. test_use_multi_thread();
  70. //运行主调度器里面的协程
  71. //但本范例不应该有协程存在,仅演示不要忽略了主调度器
  72. scheduler_t::g_scheduler.run_until_notask();
  73. }