File: crn_threading_pthreads.cpp

package info (click to toggle)
crunch-dxtc 0.55.5-2
  • links: PTS, VCS
  • area: main
  • in suites: sid
  • size: 3,624 kB
  • sloc: cpp: 64,979; ansic: 633; python: 321; makefile: 116
file content (400 lines) | stat: -rw-r--r-- 9,903 bytes parent folder | download | duplicates (2)
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
295
296
297
298
299
300
301
302
303
304
305
306
307
308
309
310
311
312
313
314
315
316
317
318
319
320
321
322
323
324
325
326
327
328
329
330
331
332
333
334
335
336
337
338
339
340
341
342
343
344
345
346
347
348
349
350
351
352
353
354
355
356
357
358
359
360
361
362
363
364
365
366
367
368
369
370
371
372
373
374
375
376
377
378
379
380
381
382
383
384
385
386
387
388
389
390
391
392
393
394
395
396
397
398
399
400
// File: crn_threading_pthreads.cpp
// See Copyright Notice and license at the end of include/crnlib.h
#include "crn_core.h"
#include "crn_threading_pthreads.h"
#include "crn_timer.h"

#if CRNLIB_USE_PTHREADS_API

#ifdef WIN32
#pragma comment(lib, "../ext/libpthread/lib/pthreadVC2.lib")
#include "crn_winhdr.h"
#endif

#if defined(__FreeBSD__) || defined(__APPLE__)
#include <sys/sysctl.h>
#elif defined(__GNUC__)
#include <sys/sysinfo.h>
#endif

#ifdef WIN32
#include <process.h>
#endif

namespace crnlib {
uint g_number_of_processors = 1;

void crn_threading_init() {
#ifdef WIN32
  SYSTEM_INFO g_system_info;
  GetSystemInfo(&g_system_info);
  g_number_of_processors = math::maximum<uint>(1U, g_system_info.dwNumberOfProcessors);
#elif defined(__FreeBSD__) || defined(__APPLE__)
  g_number_of_processors = math::maximum<int>(1, sysconf(_SC_NPROCESSORS_ONLN));
#elif defined(__GNUC__)
  g_number_of_processors = math::maximum<int>(1, get_nprocs());
#endif
  g_number_of_processors = math::minimum<int>(g_number_of_processors, task_pool::cMaxThreads);
}

crn_thread_id_t crn_get_current_thread_id() {
  // FIXME: Not portable
  return (crn_thread_id_t)(pthread_self());
}

void crn_sleep(unsigned int milliseconds) {
#ifdef WIN32
  struct timespec interval;
  interval.tv_sec = milliseconds / 1000;
  interval.tv_nsec = (milliseconds % 1000) * 1000000L;
  pthread_delay_np(&interval);
#else
  while (milliseconds) {
    int msecs_to_sleep = CRNLIB_MIN(milliseconds, 1000);
    usleep(msecs_to_sleep * 1000);
    milliseconds -= msecs_to_sleep;
  }
#endif
}

mutex::mutex(unsigned int /* spin_count */) {
  if (pthread_mutex_init(&m_mutex, NULL))
    crnlib_fail("mutex::mutex: pthread_mutex_init() failed", __FILE__, __LINE__);

#ifdef CRNLIB_BUILD_DEBUG
  m_lock_count = 0;
#endif
}

mutex::~mutex() {
#ifdef CRNLIB_BUILD_DEBUG
  if (m_lock_count)
    crnlib_assert("mutex::~mutex: mutex is still locked", __FILE__, __LINE__);
#endif
  if (pthread_mutex_destroy(&m_mutex))
    crnlib_assert("mutex::~mutex: pthread_mutex_destroy() failed", __FILE__, __LINE__);
}

void mutex::lock() {
  pthread_mutex_lock(&m_mutex);
#ifdef CRNLIB_BUILD_DEBUG
  m_lock_count++;
#endif
}

void mutex::unlock() {
#ifdef CRNLIB_BUILD_DEBUG
  if (!m_lock_count)
    crnlib_assert("mutex::unlock: mutex is not locked", __FILE__, __LINE__);
  m_lock_count--;
#endif
  pthread_mutex_unlock(&m_mutex);
}

void mutex::set_spin_count(unsigned int /* count */) {
}

semaphore::semaphore(long initialCount, long maximumCount, const char* pName) {
  CRNLIB_ASSERT(maximumCount >= initialCount);
#if !defined(__APPLE__)
  (void)maximumCount;
  (void)pName;
  m_sem = new sem_t();
  if (sem_init(m_sem, 0, initialCount)) {
    CRNLIB_FAIL("semaphore: sem_init() failed");
  }
#else
  m_name = pName ? pName : "semaphore";
  for(int i = 0; i < 256; i++) {
      m_sem = sem_open(m_name, O_CREAT | O_EXCL, 0644, initialCount);
      if (m_sem != SEM_FAILED)
      {
        break;
      }
      sem_unlink(m_name);
  }
  if (m_sem == SEM_FAILED)
  {
      CRNLIB_FAIL("semaphore: sem_open() failed");
  }
#endif
}

semaphore::~semaphore() {
#if !defined(__APPLE__)
  sem_destroy(m_sem);
#else
  sem_unlink(m_name);
#endif
}

void semaphore::release(long releaseCount) {
  CRNLIB_ASSERT(releaseCount >= 1);

  int status = 0;
#ifdef WIN32
  if (1 == releaseCount)
    status = sem_post(m_sem);
  else
    status = sem_post_multiple(m_sem, releaseCount);
#else
  while (releaseCount > 0) {
    status = sem_post(m_sem);
    if (status)
      break;
    releaseCount--;
  }
#endif

  if (status) {
    CRNLIB_FAIL("semaphore: sem_post() or sem_post_multiple() failed");
  }
}

void semaphore::try_release(long releaseCount) {
  CRNLIB_ASSERT(releaseCount >= 1);

#ifdef WIN32
  if (1 == releaseCount)
    sem_post(m_sem);
  else
    sem_post_multiple(m_sem, releaseCount);
#else
  while (releaseCount > 0) {
    sem_post(m_sem);
    releaseCount--;
  }
#endif
}

bool semaphore::wait(uint32 milliseconds) {
  int status;
  if (milliseconds == cUINT32_MAX) {
    status = sem_wait(m_sem);
  } else {
#if !defined(__APPLE__)
    struct timespec interval;
    interval.tv_sec = milliseconds / 1000;
    interval.tv_nsec = (milliseconds % 1000) * 1000000L;
    status = sem_timedwait(m_sem, &interval);
#else
    status = sem_wait(m_sem);
#endif
  }

  if (status) {
    if (errno != ETIMEDOUT) {
      CRNLIB_FAIL("semaphore: sem_wait() or sem_timedwait() failed");
    }
    return false;
  }

  return true;
}

spinlock::spinlock() {
#if !defined(__APPLE__)
  if (pthread_spin_init(&m_spinlock, 0)) {
    CRNLIB_FAIL("spinlock: pthread_spin_init() failed");
  }
#else
  m_lock = new os_unfair_lock();
  *m_lock = OS_UNFAIR_LOCK_INIT;
#endif
}

spinlock::~spinlock() {
#if !defined(__APPLE__)
  pthread_spin_destroy(&m_spinlock);
#else
  delete m_lock;
#endif
}

void spinlock::lock() {
#if !defined(__APPLE__)
  if (pthread_spin_lock(&m_spinlock)) {
    CRNLIB_FAIL("spinlock: pthread_spin_lock() failed");
  }
#else
  os_unfair_lock_lock(m_lock);
#endif
}

void spinlock::unlock() {
#if !defined(__APPLE__)
  if (pthread_spin_unlock(&m_spinlock)) {
    CRNLIB_FAIL("spinlock: pthread_spin_unlock() failed");
  }
#else
  os_unfair_lock_unlock(m_lock);
#endif
}

task_pool::task_pool()
    : m_num_threads(0),
      m_tasks_available(0, 32767),
      m_all_tasks_completed(0, 1),
      m_total_submitted_tasks(0),
      m_total_completed_tasks(0),
      m_exit_flag(false) {
  utils::zero_object(m_threads);
}

task_pool::task_pool(uint num_threads)
    : m_num_threads(0),
      m_tasks_available(0, 32767),
      m_all_tasks_completed(0, 1),
      m_total_submitted_tasks(0),
      m_total_completed_tasks(0),
      m_exit_flag(false) {
  utils::zero_object(m_threads);

  bool status = init(num_threads);
  CRNLIB_VERIFY(status);
}

task_pool::~task_pool() {
  deinit();
}

bool task_pool::init(uint num_threads) {
  CRNLIB_ASSERT(num_threads <= cMaxThreads);
  num_threads = math::minimum<uint>(num_threads, cMaxThreads);

  deinit();

  bool succeeded = true;

  m_num_threads = 0;
  while (m_num_threads < num_threads) {
    int status = pthread_create(&m_threads[m_num_threads], NULL, thread_func, this);
    if (status) {
      succeeded = false;
      break;
    }

    m_num_threads++;
  }

  if (!succeeded) {
    deinit();
    return false;
  }

  return true;
}

void task_pool::deinit() {
  if (m_num_threads) {
    join();

    atomic_exchange32(&m_exit_flag, true);

    m_tasks_available.release(m_num_threads);

    for (uint i = 0; i < m_num_threads; i++)
      pthread_join(m_threads[i], NULL);

    m_num_threads = 0;

    atomic_exchange32(&m_exit_flag, false);
  }

  m_task_stack.clear();
  m_total_submitted_tasks = 0;
  m_total_completed_tasks = 0;
}

bool task_pool::queue_task(task_callback_func pFunc, uint64 data, void* pData_ptr) {
  CRNLIB_ASSERT(pFunc);

  task tsk;
  tsk.m_callback = pFunc;
  tsk.m_data = data;
  tsk.m_pData_ptr = pData_ptr;
  tsk.m_flags = 0;

  atomic_increment32(&m_total_submitted_tasks);
  if (!m_task_stack.try_push(tsk)) {
    atomic_increment32(&m_total_completed_tasks);
    return false;
  }

  m_tasks_available.release(1);

  return true;
}

// It's the object's responsibility to delete pObj within the execute_task() method, if needed!
bool task_pool::queue_task(executable_task* pObj, uint64 data, void* pData_ptr) {
  CRNLIB_ASSERT(pObj);

  task tsk;
  tsk.m_pObj = pObj;
  tsk.m_data = data;
  tsk.m_pData_ptr = pData_ptr;
  tsk.m_flags = cTaskFlagObject;

  atomic_increment32(&m_total_submitted_tasks);
  if (!m_task_stack.try_push(tsk)) {
    atomic_increment32(&m_total_completed_tasks);
    return false;
  }

  m_tasks_available.release(1);

  return true;
}

void task_pool::process_task(task& tsk) {
  if (tsk.m_flags & cTaskFlagObject)
    tsk.m_pObj->execute_task(tsk.m_data, tsk.m_pData_ptr);
  else
    tsk.m_callback(tsk.m_data, tsk.m_pData_ptr);

  if (atomic_increment32(&m_total_completed_tasks) == m_total_submitted_tasks) {
    // Try to signal the semaphore (the max count is 1 so this may actually fail).
    m_all_tasks_completed.try_release();
  }
}

void task_pool::join() {
  // Try to steal any outstanding tasks. This could cause one or more worker threads to wake up and immediately go back to sleep, which is wasteful but should be harmless.
  task tsk;
  while (m_task_stack.pop(tsk))
    process_task(tsk);

  // At this point the task stack is empty.
  // Now wait for all concurrent tasks to complete. The m_all_tasks_completed semaphore has a max count of 1, so it's possible it could have saturated to 1 as the tasks
  // where issued and asynchronously completed, so this loop may iterate a few times.
  const int total_submitted_tasks = atomic_add32(&m_total_submitted_tasks, 0);
  while (m_total_completed_tasks != total_submitted_tasks) {
    // If the previous (m_total_completed_tasks != total_submitted_tasks) check failed the semaphore MUST be eventually signalled once the last task completes.
    // So I think this can actually be an INFINITE delay, but it shouldn't really matter if it's 1ms.
    m_all_tasks_completed.wait(1);
  }
}

void* task_pool::thread_func(void* pContext) {
  task_pool* pPool = static_cast<task_pool*>(pContext);
  task tsk;

  for (;;) {
    if (!pPool->m_tasks_available.wait())
      break;

    if (pPool->m_exit_flag)
      break;

    if (pPool->m_task_stack.pop(tsk)) {
      pPool->process_task(tsk);
    }
  }

  return NULL;
}

}  // namespace crnlib

#endif  // CRNLIB_USE_PTHREADS_API