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1 #include <algorithm>
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2 #include <chrono>
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3 #include "threadpool.h"
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4
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5 using namespace std::chrono;
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6
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7 ThreadPool::ThreadPool(int num_threads)
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8 {
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9 quit = false;
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10 qsize = 0;
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11 nactive = 0;
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12
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13 if(num_threads == -1) {
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14 num_threads = std::thread::hardware_concurrency();
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15 }
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16
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17 printf("creating thread pool with %d threads\n", num_threads);
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18
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19 thread = new std::thread[num_threads];
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20 for(int i=0; i<num_threads; i++) {
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21 thread[i] = std::thread(&ThreadPool::thread_func, this);
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22 }
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23 this->num_threads = num_threads;
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24 }
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25
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26 ThreadPool::~ThreadPool()
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27 {
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28 quit = true;
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29 workq_condvar.notify_all();
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30
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31 printf("ThreadPool: waiting for %d worker threads to stop ", num_threads);
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32 fflush(stdout);
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33 for(int i=0; i<num_threads; i++) {
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34 thread[i].join();
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35 putchar('.');
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36 fflush(stdout);
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37 }
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38 putchar('\n');
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39 }
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40
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41 void ThreadPool::add_work(std::function<void ()> func)
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42 {
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43 add_work(func, std::function<void ()>{});
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44 }
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45
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46 void ThreadPool::add_work(std::function<void ()> work_func, std::function<void ()> done_func)
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47 {
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48 std::unique_lock<std::mutex> lock(workq_mutex);
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49 workq.push_back(WorkItem{work_func, done_func});
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50 ++qsize;
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51 workq_condvar.notify_all();
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52 }
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53
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54 int ThreadPool::queued() const
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55 {
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56 std::unique_lock<std::mutex> lock(workq_mutex);
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57 return qsize;
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58 }
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59
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60 int ThreadPool::active() const
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61 {
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62 std::unique_lock<std::mutex> lock(workq_mutex);
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63 return nactive;
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64 }
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65
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66 int ThreadPool::pending() const
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67 {
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68 std::unique_lock<std::mutex> lock(workq_mutex);
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69 return nactive + qsize;
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70 }
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71
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72 long ThreadPool::wait()
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73 {
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74 auto start_time = steady_clock::now();
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75
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76 std::unique_lock<std::mutex> lock(workq_mutex);
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77 done_condvar.wait(lock, [this](){ return nactive == 0 && workq.empty(); });
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78
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79 auto dur = steady_clock::now() - start_time;
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80 return duration_cast<milliseconds>(dur).count();
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81 }
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82
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83 long ThreadPool::wait(long timeout)
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84 {
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85 auto start_time = steady_clock::now();
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86 duration<long, std::milli> dur, timeout_dur(std::max(timeout, 5L));
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87
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88 std::unique_lock<std::mutex> lock(workq_mutex);
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89 while(timeout_dur.count() > 0 && (nactive > 0 || !workq.empty())) {
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90 if(done_condvar.wait_for(lock, timeout_dur) == std::cv_status::timeout) {
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91 break;
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92 }
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93 dur = duration_cast<milliseconds>(steady_clock::now() - start_time);
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94 timeout_dur = milliseconds(std::max(timeout, 5L)) - dur;
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95 }
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96
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97 /*printf("waited for: %ld ms (%ld req) (na %d,qs %d,em %s)\n", dur.count(), timeout,
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98 nactive, qsize, workq.empty() ? "true" : "false");*/
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99 return dur.count();
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100 }
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101
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102 void ThreadPool::thread_func()
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103 {
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104 std::unique_lock<std::mutex> lock(workq_mutex);
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105 for(;;) {
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106 if(quit) break;
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107
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108 workq_condvar.wait(lock);
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109
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110 while(!quit && !workq.empty()) {
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111 WorkItem witem = workq.front();
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112 workq.pop_front();
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113 ++nactive;
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114 --qsize;
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115 lock.unlock();
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116
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117 witem.work();
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118 if(witem.done) {
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119 witem.done();
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120 }
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121
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122 lock.lock();
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123 --nactive;
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124 done_condvar.notify_all();
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125 }
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126 }
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127 }
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128
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