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Jim Cownie5e8470a2013-09-27 10:38:44 +00001/*
2 * z_Linux_util.c -- platform specific routines.
Jim Cownie5e8470a2013-09-27 10:38:44 +00003 */
4
5
6//===----------------------------------------------------------------------===//
7//
8// The LLVM Compiler Infrastructure
9//
10// This file is dual licensed under the MIT and the University of Illinois Open
11// Source Licenses. See LICENSE.txt for details.
12//
13//===----------------------------------------------------------------------===//
14
15
16#include "kmp.h"
17#include "kmp_wrapper_getpid.h"
18#include "kmp_itt.h"
19#include "kmp_str.h"
20#include "kmp_i18n.h"
21#include "kmp_io.h"
Jim Cownie4cc4bb42014-10-07 16:25:50 +000022#include "kmp_stats.h"
23#include "kmp_wait_release.h"
Jim Cownie5e8470a2013-09-27 10:38:44 +000024
Alp Toker763b9392014-02-28 09:42:41 +000025#if !KMP_OS_FREEBSD
26# include <alloca.h>
27#endif
Jim Cownie5e8470a2013-09-27 10:38:44 +000028#include <unistd.h>
29#include <math.h> // HUGE_VAL.
30#include <sys/time.h>
31#include <sys/times.h>
32#include <sys/resource.h>
33#include <sys/syscall.h>
34
Jim Cownie3051f972014-08-07 10:12:54 +000035#if KMP_OS_LINUX && !KMP_OS_CNK
Jim Cownie5e8470a2013-09-27 10:38:44 +000036# include <sys/sysinfo.h>
Andrey Churbanovcbda8682015-01-13 14:43:35 +000037# if KMP_OS_LINUX && (KMP_ARCH_X86 || KMP_ARCH_X86_64 || KMP_ARCH_ARM || KMP_ARCH_AARCH64)
Jim Cownie5e8470a2013-09-27 10:38:44 +000038// We should really include <futex.h>, but that causes compatibility problems on different
39// Linux* OS distributions that either require that you include (or break when you try to include)
40// <pci/types.h>.
41// Since all we need is the two macros below (which are part of the kernel ABI, so can't change)
42// we just define the constants here and don't include <futex.h>
43# ifndef FUTEX_WAIT
44# define FUTEX_WAIT 0
45# endif
46# ifndef FUTEX_WAKE
47# define FUTEX_WAKE 1
48# endif
49# endif
50#elif KMP_OS_DARWIN
51# include <sys/sysctl.h>
52# include <mach/mach.h>
Alp Toker763b9392014-02-28 09:42:41 +000053#elif KMP_OS_FREEBSD
54# include <sys/sysctl.h>
55# include <pthread_np.h>
Jim Cownie5e8470a2013-09-27 10:38:44 +000056#endif
57
58
59#include <dirent.h>
60#include <ctype.h>
61#include <fcntl.h>
62
Jim Cownie181b4bb2013-12-23 17:28:57 +000063// For non-x86 architecture
Andrey Churbanovcbda8682015-01-13 14:43:35 +000064#if KMP_COMPILER_GCC && !(KMP_ARCH_X86 || KMP_ARCH_X86_64 || KMP_ARCH_PPC64 || KMP_ARCH_AARCH64)
Jim Cownie181b4bb2013-12-23 17:28:57 +000065# include <stdbool.h>
66# include <ffi.h>
67#endif
68
Jim Cownie5e8470a2013-09-27 10:38:44 +000069/* ------------------------------------------------------------------------ */
70/* ------------------------------------------------------------------------ */
71
72struct kmp_sys_timer {
73 struct timespec start;
74};
75
76// Convert timespec to nanoseconds.
77#define TS2NS(timespec) (((timespec).tv_sec * 1e9) + (timespec).tv_nsec)
78
79static struct kmp_sys_timer __kmp_sys_timer_data;
80
81#if KMP_HANDLE_SIGNALS
82 typedef void (* sig_func_t )( int );
83 STATIC_EFI2_WORKAROUND struct sigaction __kmp_sighldrs[ NSIG ];
84 static sigset_t __kmp_sigset;
85#endif
86
87static int __kmp_init_runtime = FALSE;
88
89static int __kmp_fork_count = 0;
90
91static pthread_condattr_t __kmp_suspend_cond_attr;
92static pthread_mutexattr_t __kmp_suspend_mutex_attr;
93
94static kmp_cond_align_t __kmp_wait_cv;
95static kmp_mutex_align_t __kmp_wait_mx;
96
97/* ------------------------------------------------------------------------ */
98/* ------------------------------------------------------------------------ */
99
100#ifdef DEBUG_SUSPEND
101static void
102__kmp_print_cond( char *buffer, kmp_cond_align_t *cond )
103{
104 sprintf( buffer, "(cond (lock (%ld, %d)), (descr (%p)))",
105 cond->c_cond.__c_lock.__status, cond->c_cond.__c_lock.__spinlock,
106 cond->c_cond.__c_waiting );
107}
108#endif
109
110/* ------------------------------------------------------------------------ */
111/* ------------------------------------------------------------------------ */
112
Jim Cownie3051f972014-08-07 10:12:54 +0000113#if ( KMP_OS_LINUX && KMP_AFFINITY_SUPPORTED)
Jim Cownie5e8470a2013-09-27 10:38:44 +0000114
115/*
116 * Affinity support
117 */
118
119/*
120 * On some of the older OS's that we build on, these constants aren't present
121 * in <asm/unistd.h> #included from <sys.syscall.h>. They must be the same on
122 * all systems of the same arch where they are defined, and they cannot change.
123 * stone forever.
124 */
125
Jim Cownie181b4bb2013-12-23 17:28:57 +0000126# if KMP_ARCH_X86 || KMP_ARCH_ARM
Jim Cownie5e8470a2013-09-27 10:38:44 +0000127# ifndef __NR_sched_setaffinity
128# define __NR_sched_setaffinity 241
129# elif __NR_sched_setaffinity != 241
130# error Wrong code for setaffinity system call.
131# endif /* __NR_sched_setaffinity */
132# ifndef __NR_sched_getaffinity
133# define __NR_sched_getaffinity 242
134# elif __NR_sched_getaffinity != 242
135# error Wrong code for getaffinity system call.
136# endif /* __NR_sched_getaffinity */
137
Andrey Churbanovcbda8682015-01-13 14:43:35 +0000138# elif KMP_ARCH_AARCH64
139# ifndef __NR_sched_setaffinity
140# define __NR_sched_setaffinity 122
141# elif __NR_sched_setaffinity != 122
142# error Wrong code for setaffinity system call.
143# endif /* __NR_sched_setaffinity */
144# ifndef __NR_sched_getaffinity
145# define __NR_sched_getaffinity 123
146# elif __NR_sched_getaffinity != 123
147# error Wrong code for getaffinity system call.
148# endif /* __NR_sched_getaffinity */
149
Jim Cownie5e8470a2013-09-27 10:38:44 +0000150# elif KMP_ARCH_X86_64
151# ifndef __NR_sched_setaffinity
152# define __NR_sched_setaffinity 203
153# elif __NR_sched_setaffinity != 203
154# error Wrong code for setaffinity system call.
155# endif /* __NR_sched_setaffinity */
156# ifndef __NR_sched_getaffinity
157# define __NR_sched_getaffinity 204
158# elif __NR_sched_getaffinity != 204
159# error Wrong code for getaffinity system call.
160# endif /* __NR_sched_getaffinity */
161
Jim Cownie3051f972014-08-07 10:12:54 +0000162# elif KMP_ARCH_PPC64
163# ifndef __NR_sched_setaffinity
164# define __NR_sched_setaffinity 222
165# elif __NR_sched_setaffinity != 222
166# error Wrong code for setaffinity system call.
167# endif /* __NR_sched_setaffinity */
168# ifndef __NR_sched_getaffinity
169# define __NR_sched_getaffinity 223
170# elif __NR_sched_getaffinity != 223
171# error Wrong code for getaffinity system call.
172# endif /* __NR_sched_getaffinity */
173
174
Jim Cownie5e8470a2013-09-27 10:38:44 +0000175# else
176# error Unknown or unsupported architecture
177
178# endif /* KMP_ARCH_* */
179
180int
181__kmp_set_system_affinity( kmp_affin_mask_t const *mask, int abort_on_error )
182{
183 KMP_ASSERT2(KMP_AFFINITY_CAPABLE(),
184 "Illegal set affinity operation when not capable");
185
186 int retval = syscall( __NR_sched_setaffinity, 0, __kmp_affin_mask_size, mask );
187 if (retval >= 0) {
188 return 0;
189 }
190 int error = errno;
191 if (abort_on_error) {
192 __kmp_msg(
193 kmp_ms_fatal,
194 KMP_MSG( FatalSysError ),
195 KMP_ERR( error ),
196 __kmp_msg_null
197 );
198 }
199 return error;
200}
201
202int
203__kmp_get_system_affinity( kmp_affin_mask_t *mask, int abort_on_error )
204{
205 KMP_ASSERT2(KMP_AFFINITY_CAPABLE(),
206 "Illegal get affinity operation when not capable");
207
208 int retval = syscall( __NR_sched_getaffinity, 0, __kmp_affin_mask_size, mask );
209 if (retval >= 0) {
210 return 0;
211 }
212 int error = errno;
213 if (abort_on_error) {
214 __kmp_msg(
215 kmp_ms_fatal,
216 KMP_MSG( FatalSysError ),
217 KMP_ERR( error ),
218 __kmp_msg_null
219 );
220 }
221 return error;
222}
223
224void
225__kmp_affinity_bind_thread( int which )
226{
227 KMP_ASSERT2(KMP_AFFINITY_CAPABLE(),
228 "Illegal set affinity operation when not capable");
229
230 kmp_affin_mask_t *mask = (kmp_affin_mask_t *)alloca(__kmp_affin_mask_size);
231 KMP_CPU_ZERO(mask);
232 KMP_CPU_SET(which, mask);
233 __kmp_set_system_affinity(mask, TRUE);
234}
235
236/*
237 * Determine if we can access affinity functionality on this version of
238 * Linux* OS by checking __NR_sched_{get,set}affinity system calls, and set
239 * __kmp_affin_mask_size to the appropriate value (0 means not capable).
240 */
241void
242__kmp_affinity_determine_capable(const char *env_var)
243{
244 //
245 // Check and see if the OS supports thread affinity.
246 //
247
248# define KMP_CPU_SET_SIZE_LIMIT (1024*1024)
249
250 int gCode;
251 int sCode;
252 kmp_affin_mask_t *buf;
253 buf = ( kmp_affin_mask_t * ) KMP_INTERNAL_MALLOC( KMP_CPU_SET_SIZE_LIMIT );
254
255 // If Linux* OS:
256 // If the syscall fails or returns a suggestion for the size,
257 // then we don't have to search for an appropriate size.
258 gCode = syscall( __NR_sched_getaffinity, 0, KMP_CPU_SET_SIZE_LIMIT, buf );
259 KA_TRACE(30, ( "__kmp_affinity_determine_capable: "
Alp Toker8f2d3f02014-02-24 10:40:15 +0000260 "initial getaffinity call returned %d errno = %d\n",
Jim Cownie5e8470a2013-09-27 10:38:44 +0000261 gCode, errno));
262
263 //if ((gCode < 0) && (errno == ENOSYS))
264 if (gCode < 0) {
265 //
266 // System call not supported
267 //
268 if (__kmp_affinity_verbose || (__kmp_affinity_warnings
269 && (__kmp_affinity_type != affinity_none)
270 && (__kmp_affinity_type != affinity_default)
271 && (__kmp_affinity_type != affinity_disabled))) {
272 int error = errno;
273 __kmp_msg(
274 kmp_ms_warning,
275 KMP_MSG( GetAffSysCallNotSupported, env_var ),
276 KMP_ERR( error ),
277 __kmp_msg_null
278 );
279 }
Andrey Churbanov1f037e42015-03-10 09:15:26 +0000280 KMP_AFFINITY_DISABLE();
Jim Cownie5e8470a2013-09-27 10:38:44 +0000281 KMP_INTERNAL_FREE(buf);
282 return;
283 }
284 if (gCode > 0) { // Linux* OS only
285 // The optimal situation: the OS returns the size of the buffer
286 // it expects.
287 //
288 // A verification of correct behavior is that Isetaffinity on a NULL
289 // buffer with the same size fails with errno set to EFAULT.
290 sCode = syscall( __NR_sched_setaffinity, 0, gCode, NULL );
291 KA_TRACE(30, ( "__kmp_affinity_determine_capable: "
292 "setaffinity for mask size %d returned %d errno = %d\n",
293 gCode, sCode, errno));
294 if (sCode < 0) {
295 if (errno == ENOSYS) {
296 if (__kmp_affinity_verbose || (__kmp_affinity_warnings
297 && (__kmp_affinity_type != affinity_none)
298 && (__kmp_affinity_type != affinity_default)
299 && (__kmp_affinity_type != affinity_disabled))) {
300 int error = errno;
301 __kmp_msg(
302 kmp_ms_warning,
303 KMP_MSG( SetAffSysCallNotSupported, env_var ),
304 KMP_ERR( error ),
305 __kmp_msg_null
306 );
307 }
Andrey Churbanov1f037e42015-03-10 09:15:26 +0000308 KMP_AFFINITY_DISABLE();
Jim Cownie5e8470a2013-09-27 10:38:44 +0000309 KMP_INTERNAL_FREE(buf);
310 }
311 if (errno == EFAULT) {
Andrey Churbanov1f037e42015-03-10 09:15:26 +0000312 KMP_AFFINITY_ENABLE(gCode);
Jim Cownie5e8470a2013-09-27 10:38:44 +0000313 KA_TRACE(10, ( "__kmp_affinity_determine_capable: "
314 "affinity supported (mask size %d)\n",
315 (int)__kmp_affin_mask_size));
316 KMP_INTERNAL_FREE(buf);
317 return;
318 }
319 }
320 }
321
322 //
323 // Call the getaffinity system call repeatedly with increasing set sizes
324 // until we succeed, or reach an upper bound on the search.
325 //
326 KA_TRACE(30, ( "__kmp_affinity_determine_capable: "
327 "searching for proper set size\n"));
328 int size;
329 for (size = 1; size <= KMP_CPU_SET_SIZE_LIMIT; size *= 2) {
330 gCode = syscall( __NR_sched_getaffinity, 0, size, buf );
331 KA_TRACE(30, ( "__kmp_affinity_determine_capable: "
332 "getaffinity for mask size %d returned %d errno = %d\n", size,
333 gCode, errno));
334
335 if (gCode < 0) {
336 if ( errno == ENOSYS )
337 {
338 //
339 // We shouldn't get here
340 //
341 KA_TRACE(30, ( "__kmp_affinity_determine_capable: "
342 "inconsistent OS call behavior: errno == ENOSYS for mask size %d\n",
343 size));
344 if (__kmp_affinity_verbose || (__kmp_affinity_warnings
345 && (__kmp_affinity_type != affinity_none)
346 && (__kmp_affinity_type != affinity_default)
347 && (__kmp_affinity_type != affinity_disabled))) {
348 int error = errno;
349 __kmp_msg(
350 kmp_ms_warning,
351 KMP_MSG( GetAffSysCallNotSupported, env_var ),
352 KMP_ERR( error ),
353 __kmp_msg_null
354 );
355 }
Andrey Churbanov1f037e42015-03-10 09:15:26 +0000356 KMP_AFFINITY_DISABLE();
Jim Cownie5e8470a2013-09-27 10:38:44 +0000357 KMP_INTERNAL_FREE(buf);
358 return;
359 }
360 continue;
361 }
362
363 sCode = syscall( __NR_sched_setaffinity, 0, gCode, NULL );
364 KA_TRACE(30, ( "__kmp_affinity_determine_capable: "
365 "setaffinity for mask size %d returned %d errno = %d\n",
366 gCode, sCode, errno));
367 if (sCode < 0) {
368 if (errno == ENOSYS) { // Linux* OS only
369 //
370 // We shouldn't get here
371 //
372 KA_TRACE(30, ( "__kmp_affinity_determine_capable: "
373 "inconsistent OS call behavior: errno == ENOSYS for mask size %d\n",
374 size));
375 if (__kmp_affinity_verbose || (__kmp_affinity_warnings
376 && (__kmp_affinity_type != affinity_none)
377 && (__kmp_affinity_type != affinity_default)
378 && (__kmp_affinity_type != affinity_disabled))) {
379 int error = errno;
380 __kmp_msg(
381 kmp_ms_warning,
382 KMP_MSG( SetAffSysCallNotSupported, env_var ),
383 KMP_ERR( error ),
384 __kmp_msg_null
385 );
386 }
Andrey Churbanov1f037e42015-03-10 09:15:26 +0000387 KMP_AFFINITY_DISABLE();
Jim Cownie5e8470a2013-09-27 10:38:44 +0000388 KMP_INTERNAL_FREE(buf);
389 return;
390 }
391 if (errno == EFAULT) {
Andrey Churbanov1f037e42015-03-10 09:15:26 +0000392 KMP_AFFINITY_ENABLE(gCode);
Jim Cownie5e8470a2013-09-27 10:38:44 +0000393 KA_TRACE(10, ( "__kmp_affinity_determine_capable: "
394 "affinity supported (mask size %d)\n",
395 (int)__kmp_affin_mask_size));
396 KMP_INTERNAL_FREE(buf);
397 return;
398 }
399 }
400 }
401 //int error = errno; // save uncaught error code
402 KMP_INTERNAL_FREE(buf);
403 // errno = error; // restore uncaught error code, will be printed at the next KMP_WARNING below
404
405 //
406 // Affinity is not supported
407 //
Andrey Churbanov1f037e42015-03-10 09:15:26 +0000408 KMP_AFFINITY_DISABLE();
Jim Cownie5e8470a2013-09-27 10:38:44 +0000409 KA_TRACE(10, ( "__kmp_affinity_determine_capable: "
410 "cannot determine mask size - affinity not supported\n"));
411 if (__kmp_affinity_verbose || (__kmp_affinity_warnings
412 && (__kmp_affinity_type != affinity_none)
413 && (__kmp_affinity_type != affinity_default)
414 && (__kmp_affinity_type != affinity_disabled))) {
415 KMP_WARNING( AffCantGetMaskSize, env_var );
416 }
417}
418
Andrey Churbanovd39f11c2015-03-10 10:14:57 +0000419#endif // KMP_OS_LINUX && KMP_AFFINITY_SUPPORTED
Jim Cownie5e8470a2013-09-27 10:38:44 +0000420
Andrey Churbanovd39f11c2015-03-10 10:14:57 +0000421/* ------------------------------------------------------------------------ */
422/* ------------------------------------------------------------------------ */
423
424#if KMP_OS_LINUX && (KMP_ARCH_X86 || KMP_ARCH_X86_64 || KMP_ARCH_ARM || KMP_ARCH_AARCH64) && !KMP_OS_CNK
425
426int
427__kmp_futex_determine_capable()
428{
429 int loc = 0;
430 int rc = syscall( __NR_futex, &loc, FUTEX_WAKE, 1, NULL, NULL, 0 );
431 int retval = ( rc == 0 ) || ( errno != ENOSYS );
432
433 KA_TRACE(10, ( "__kmp_futex_determine_capable: rc = %d errno = %d\n", rc,
434 errno ) );
435 KA_TRACE(10, ( "__kmp_futex_determine_capable: futex syscall%s supported\n",
436 retval ? "" : " not" ) );
437
438 return retval;
439}
440
441#endif // KMP_OS_LINUX && (KMP_ARCH_X86 || KMP_ARCH_X86_64 || KMP_ARCH_ARM) && !KMP_OS_CNK
442
443/* ------------------------------------------------------------------------ */
444/* ------------------------------------------------------------------------ */
445
446#if (KMP_ARCH_X86 || KMP_ARCH_X86_64) && (! KMP_ASM_INTRINS)
Jim Cownie5e8470a2013-09-27 10:38:44 +0000447/*
Andrey Churbanovd39f11c2015-03-10 10:14:57 +0000448 * Only 32-bit "add-exchange" instruction on IA-32 architecture causes us to
449 * use compare_and_store for these routines
Jim Cownie5e8470a2013-09-27 10:38:44 +0000450 */
451
Andrey Churbanov7b2ab712015-03-10 09:03:42 +0000452kmp_int8
453__kmp_test_then_or8( volatile kmp_int8 *p, kmp_int8 d )
454{
455 kmp_int8 old_value, new_value;
456
457 old_value = TCR_1( *p );
458 new_value = old_value | d;
459
460 while ( ! KMP_COMPARE_AND_STORE_REL8 ( p, old_value, new_value ) )
461 {
462 KMP_CPU_PAUSE();
463 old_value = TCR_1( *p );
464 new_value = old_value | d;
465 }
466 return old_value;
467}
468
469kmp_int8
470__kmp_test_then_and8( volatile kmp_int8 *p, kmp_int8 d )
471{
472 kmp_int8 old_value, new_value;
473
474 old_value = TCR_1( *p );
475 new_value = old_value & d;
476
477 while ( ! KMP_COMPARE_AND_STORE_REL8 ( p, old_value, new_value ) )
478 {
479 KMP_CPU_PAUSE();
480 old_value = TCR_1( *p );
481 new_value = old_value & d;
482 }
483 return old_value;
484}
485
Jim Cownie5e8470a2013-09-27 10:38:44 +0000486kmp_int32
487__kmp_test_then_or32( volatile kmp_int32 *p, kmp_int32 d )
488{
489 kmp_int32 old_value, new_value;
490
491 old_value = TCR_4( *p );
492 new_value = old_value | d;
493
Jim Cownie3051f972014-08-07 10:12:54 +0000494 while ( ! KMP_COMPARE_AND_STORE_REL32 ( p, old_value, new_value ) )
Jim Cownie5e8470a2013-09-27 10:38:44 +0000495 {
496 KMP_CPU_PAUSE();
497 old_value = TCR_4( *p );
498 new_value = old_value | d;
499 }
500 return old_value;
501}
502
503kmp_int32
504__kmp_test_then_and32( volatile kmp_int32 *p, kmp_int32 d )
505{
506 kmp_int32 old_value, new_value;
507
508 old_value = TCR_4( *p );
509 new_value = old_value & d;
510
Jim Cownie3051f972014-08-07 10:12:54 +0000511 while ( ! KMP_COMPARE_AND_STORE_REL32 ( p, old_value, new_value ) )
Jim Cownie5e8470a2013-09-27 10:38:44 +0000512 {
513 KMP_CPU_PAUSE();
514 old_value = TCR_4( *p );
515 new_value = old_value & d;
516 }
517 return old_value;
518}
519
Andrey Churbanovcbda8682015-01-13 14:43:35 +0000520# if KMP_ARCH_X86 || KMP_ARCH_PPC64 || KMP_ARCH_AARCH64
Andrey Churbanovd39f11c2015-03-10 10:14:57 +0000521kmp_int8
522__kmp_test_then_add8( volatile kmp_int8 *p, kmp_int8 d )
523{
524 kmp_int8 old_value, new_value;
525
526 old_value = TCR_1( *p );
527 new_value = old_value + d;
528
529 while ( ! KMP_COMPARE_AND_STORE_REL8 ( p, old_value, new_value ) )
530 {
531 KMP_CPU_PAUSE();
532 old_value = TCR_1( *p );
533 new_value = old_value + d;
534 }
535 return old_value;
536}
537
Jim Cownie5e8470a2013-09-27 10:38:44 +0000538kmp_int64
539__kmp_test_then_add64( volatile kmp_int64 *p, kmp_int64 d )
540{
541 kmp_int64 old_value, new_value;
542
543 old_value = TCR_8( *p );
544 new_value = old_value + d;
545
Jim Cownie3051f972014-08-07 10:12:54 +0000546 while ( ! KMP_COMPARE_AND_STORE_REL64 ( p, old_value, new_value ) )
Jim Cownie5e8470a2013-09-27 10:38:44 +0000547 {
548 KMP_CPU_PAUSE();
549 old_value = TCR_8( *p );
550 new_value = old_value + d;
551 }
552 return old_value;
553}
554# endif /* KMP_ARCH_X86 */
555
556kmp_int64
557__kmp_test_then_or64( volatile kmp_int64 *p, kmp_int64 d )
558{
559 kmp_int64 old_value, new_value;
560
561 old_value = TCR_8( *p );
562 new_value = old_value | d;
Jim Cownie3051f972014-08-07 10:12:54 +0000563 while ( ! KMP_COMPARE_AND_STORE_REL64 ( p, old_value, new_value ) )
Jim Cownie5e8470a2013-09-27 10:38:44 +0000564 {
565 KMP_CPU_PAUSE();
566 old_value = TCR_8( *p );
567 new_value = old_value | d;
568 }
569 return old_value;
570}
571
572kmp_int64
573__kmp_test_then_and64( volatile kmp_int64 *p, kmp_int64 d )
574{
575 kmp_int64 old_value, new_value;
576
577 old_value = TCR_8( *p );
578 new_value = old_value & d;
Jim Cownie3051f972014-08-07 10:12:54 +0000579 while ( ! KMP_COMPARE_AND_STORE_REL64 ( p, old_value, new_value ) )
Jim Cownie5e8470a2013-09-27 10:38:44 +0000580 {
581 KMP_CPU_PAUSE();
582 old_value = TCR_8( *p );
583 new_value = old_value & d;
584 }
585 return old_value;
586}
587
588#endif /* (KMP_ARCH_X86 || KMP_ARCH_X86_64) && (! KMP_ASM_INTRINS) */
589
590void
591__kmp_terminate_thread( int gtid )
592{
593 int status;
594 kmp_info_t *th = __kmp_threads[ gtid ];
595
596 if ( !th ) return;
597
598 #ifdef KMP_CANCEL_THREADS
599 KA_TRACE( 10, ("__kmp_terminate_thread: kill (%d)\n", gtid ) );
600 status = pthread_cancel( th->th.th_info.ds.ds_thread );
601 if ( status != 0 && status != ESRCH ) {
602 __kmp_msg(
603 kmp_ms_fatal,
604 KMP_MSG( CantTerminateWorkerThread ),
605 KMP_ERR( status ),
606 __kmp_msg_null
607 );
608 }; // if
609 #endif
610 __kmp_yield( TRUE );
611} //
612
613/* ------------------------------------------------------------------------ */
614/* ------------------------------------------------------------------------ */
615
616/* ------------------------------------------------------------------------ */
617/* ------------------------------------------------------------------------ */
618
619/*
620 * Set thread stack info according to values returned by
621 * pthread_getattr_np().
622 * If values are unreasonable, assume call failed and use
623 * incremental stack refinement method instead.
624 * Returns TRUE if the stack parameters could be determined exactly,
625 * FALSE if incremental refinement is necessary.
626 */
627static kmp_int32
628__kmp_set_stack_info( int gtid, kmp_info_t *th )
629{
630 int stack_data;
Alp Toker763b9392014-02-28 09:42:41 +0000631#if KMP_OS_LINUX || KMP_OS_FREEBSD
Jim Cownie5e8470a2013-09-27 10:38:44 +0000632 /* Linux* OS only -- no pthread_getattr_np support on OS X* */
633 pthread_attr_t attr;
634 int status;
635 size_t size = 0;
636 void * addr = 0;
637
638 /* Always do incremental stack refinement for ubermaster threads since the initial
639 thread stack range can be reduced by sibling thread creation so pthread_attr_getstack
640 may cause thread gtid aliasing */
641 if ( ! KMP_UBER_GTID(gtid) ) {
642
643 /* Fetch the real thread attributes */
644 status = pthread_attr_init( &attr );
645 KMP_CHECK_SYSFAIL( "pthread_attr_init", status );
Alp Toker763b9392014-02-28 09:42:41 +0000646#if KMP_OS_FREEBSD
647 status = pthread_attr_get_np( pthread_self(), &attr );
648 KMP_CHECK_SYSFAIL( "pthread_attr_get_np", status );
649#else
Jim Cownie5e8470a2013-09-27 10:38:44 +0000650 status = pthread_getattr_np( pthread_self(), &attr );
651 KMP_CHECK_SYSFAIL( "pthread_getattr_np", status );
Alp Toker763b9392014-02-28 09:42:41 +0000652#endif
Jim Cownie5e8470a2013-09-27 10:38:44 +0000653 status = pthread_attr_getstack( &attr, &addr, &size );
654 KMP_CHECK_SYSFAIL( "pthread_attr_getstack", status );
655 KA_TRACE( 60, ( "__kmp_set_stack_info: T#%d pthread_attr_getstack returned size: %lu, "
656 "low addr: %p\n",
657 gtid, size, addr ));
658
659 status = pthread_attr_destroy( &attr );
660 KMP_CHECK_SYSFAIL( "pthread_attr_destroy", status );
661 }
662
663 if ( size != 0 && addr != 0 ) { /* was stack parameter determination successful? */
664 /* Store the correct base and size */
665 TCW_PTR(th->th.th_info.ds.ds_stackbase, (((char *)addr) + size));
666 TCW_PTR(th->th.th_info.ds.ds_stacksize, size);
667 TCW_4(th->th.th_info.ds.ds_stackgrow, FALSE);
668 return TRUE;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000669 }
Alp Toker763b9392014-02-28 09:42:41 +0000670#endif /* KMP_OS_LINUX || KMP_OS_FREEBSD */
Alp Toker763b9392014-02-28 09:42:41 +0000671 /* Use incremental refinement starting from initial conservative estimate */
672 TCW_PTR(th->th.th_info.ds.ds_stacksize, 0);
673 TCW_PTR(th -> th.th_info.ds.ds_stackbase, &stack_data);
674 TCW_4(th->th.th_info.ds.ds_stackgrow, TRUE);
675 return FALSE;
Jim Cownie5e8470a2013-09-27 10:38:44 +0000676}
677
678static void*
679__kmp_launch_worker( void *thr )
680{
681 int status, old_type, old_state;
682#ifdef KMP_BLOCK_SIGNALS
683 sigset_t new_set, old_set;
684#endif /* KMP_BLOCK_SIGNALS */
685 void *exit_val;
686 void *padding = 0;
687 int gtid;
688 int error;
689
690 gtid = ((kmp_info_t*)thr) -> th.th_info.ds.ds_gtid;
691 __kmp_gtid_set_specific( gtid );
692#ifdef KMP_TDATA_GTID
693 __kmp_gtid = gtid;
694#endif
Jim Cownie4cc4bb42014-10-07 16:25:50 +0000695#if KMP_STATS_ENABLED
696 // set __thread local index to point to thread-specific stats
697 __kmp_stats_thread_ptr = ((kmp_info_t*)thr)->th.th_stats;
698#endif
Jim Cownie5e8470a2013-09-27 10:38:44 +0000699
700#if USE_ITT_BUILD
701 __kmp_itt_thread_name( gtid );
702#endif /* USE_ITT_BUILD */
703
Alp Toker763b9392014-02-28 09:42:41 +0000704#if KMP_AFFINITY_SUPPORTED
Jim Cownie5e8470a2013-09-27 10:38:44 +0000705 __kmp_affinity_set_init_mask( gtid, FALSE );
Jim Cownie5e8470a2013-09-27 10:38:44 +0000706#endif
707
708#ifdef KMP_CANCEL_THREADS
709 status = pthread_setcanceltype( PTHREAD_CANCEL_ASYNCHRONOUS, & old_type );
710 KMP_CHECK_SYSFAIL( "pthread_setcanceltype", status );
711 /* josh todo: isn't PTHREAD_CANCEL_ENABLE default for newly-created threads? */
712 status = pthread_setcancelstate( PTHREAD_CANCEL_ENABLE, & old_state );
713 KMP_CHECK_SYSFAIL( "pthread_setcancelstate", status );
714#endif
715
716#if KMP_ARCH_X86 || KMP_ARCH_X86_64
717 //
718 // Set the FP control regs to be a copy of
719 // the parallel initialization thread's.
720 //
721 __kmp_clear_x87_fpu_status_word();
722 __kmp_load_x87_fpu_control_word( &__kmp_init_x87_fpu_control_word );
723 __kmp_load_mxcsr( &__kmp_init_mxcsr );
724#endif /* KMP_ARCH_X86 || KMP_ARCH_X86_64 */
725
726#ifdef KMP_BLOCK_SIGNALS
727 status = sigfillset( & new_set );
728 KMP_CHECK_SYSFAIL_ERRNO( "sigfillset", status );
729 status = pthread_sigmask( SIG_BLOCK, & new_set, & old_set );
730 KMP_CHECK_SYSFAIL( "pthread_sigmask", status );
731#endif /* KMP_BLOCK_SIGNALS */
732
Alp Toker763b9392014-02-28 09:42:41 +0000733#if KMP_OS_LINUX || KMP_OS_FREEBSD
Jim Cownie5e8470a2013-09-27 10:38:44 +0000734 if ( __kmp_stkoffset > 0 && gtid > 0 ) {
735 padding = alloca( gtid * __kmp_stkoffset );
736 }
737#endif
738
739 KMP_MB();
740 __kmp_set_stack_info( gtid, (kmp_info_t*)thr );
741
742 __kmp_check_stack_overlap( (kmp_info_t*)thr );
743
744 exit_val = __kmp_launch_thread( (kmp_info_t *) thr );
745
746#ifdef KMP_BLOCK_SIGNALS
747 status = pthread_sigmask( SIG_SETMASK, & old_set, NULL );
748 KMP_CHECK_SYSFAIL( "pthread_sigmask", status );
749#endif /* KMP_BLOCK_SIGNALS */
750
751 return exit_val;
752}
753
754
755/* The monitor thread controls all of the threads in the complex */
756
757static void*
758__kmp_launch_monitor( void *thr )
759{
760 int status, old_type, old_state;
761#ifdef KMP_BLOCK_SIGNALS
762 sigset_t new_set;
763#endif /* KMP_BLOCK_SIGNALS */
764 struct timespec interval;
765 int yield_count;
766 int yield_cycles = 0;
767 int error;
768
769 KMP_MB(); /* Flush all pending memory write invalidates. */
770
771 KA_TRACE( 10, ("__kmp_launch_monitor: #1 launched\n" ) );
772
773 /* register us as the monitor thread */
774 __kmp_gtid_set_specific( KMP_GTID_MONITOR );
775#ifdef KMP_TDATA_GTID
776 __kmp_gtid = KMP_GTID_MONITOR;
777#endif
778
779 KMP_MB();
780
781#if USE_ITT_BUILD
782 __kmp_itt_thread_ignore(); // Instruct Intel(R) Threading Tools to ignore monitor thread.
783#endif /* USE_ITT_BUILD */
784
785 __kmp_set_stack_info( ((kmp_info_t*)thr)->th.th_info.ds.ds_gtid, (kmp_info_t*)thr );
786
787 __kmp_check_stack_overlap( (kmp_info_t*)thr );
788
789#ifdef KMP_CANCEL_THREADS
790 status = pthread_setcanceltype( PTHREAD_CANCEL_ASYNCHRONOUS, & old_type );
791 KMP_CHECK_SYSFAIL( "pthread_setcanceltype", status );
792 /* josh todo: isn't PTHREAD_CANCEL_ENABLE default for newly-created threads? */
793 status = pthread_setcancelstate( PTHREAD_CANCEL_ENABLE, & old_state );
794 KMP_CHECK_SYSFAIL( "pthread_setcancelstate", status );
795#endif
796
797 #if KMP_REAL_TIME_FIX
798 // This is a potential fix which allows application with real-time scheduling policy work.
799 // However, decision about the fix is not made yet, so it is disabled by default.
800 { // Are program started with real-time scheduling policy?
801 int sched = sched_getscheduler( 0 );
802 if ( sched == SCHED_FIFO || sched == SCHED_RR ) {
803 // Yes, we are a part of real-time application. Try to increase the priority of the
804 // monitor.
805 struct sched_param param;
806 int max_priority = sched_get_priority_max( sched );
807 int rc;
808 KMP_WARNING( RealTimeSchedNotSupported );
809 sched_getparam( 0, & param );
810 if ( param.sched_priority < max_priority ) {
811 param.sched_priority += 1;
812 rc = sched_setscheduler( 0, sched, & param );
813 if ( rc != 0 ) {
814 int error = errno;
815 __kmp_msg(
816 kmp_ms_warning,
817 KMP_MSG( CantChangeMonitorPriority ),
818 KMP_ERR( error ),
819 KMP_MSG( MonitorWillStarve ),
820 __kmp_msg_null
821 );
822 }; // if
823 } else {
824 // We cannot abort here, because number of CPUs may be enough for all the threads,
825 // including the monitor thread, so application could potentially work...
826 __kmp_msg(
827 kmp_ms_warning,
828 KMP_MSG( RunningAtMaxPriority ),
829 KMP_MSG( MonitorWillStarve ),
830 KMP_HNT( RunningAtMaxPriority ),
831 __kmp_msg_null
832 );
833 }; // if
834 }; // if
Jim Cownie4cc4bb42014-10-07 16:25:50 +0000835 TCW_4( __kmp_global.g.g_time.dt.t_value, 0 ); // AC: free thread that waits for monitor started
Jim Cownie5e8470a2013-09-27 10:38:44 +0000836 }
837 #endif // KMP_REAL_TIME_FIX
838
839 KMP_MB(); /* Flush all pending memory write invalidates. */
840
841 if ( __kmp_monitor_wakeups == 1 ) {
842 interval.tv_sec = 1;
843 interval.tv_nsec = 0;
844 } else {
845 interval.tv_sec = 0;
846 interval.tv_nsec = (NSEC_PER_SEC / __kmp_monitor_wakeups);
847 }
848
849 KA_TRACE( 10, ("__kmp_launch_monitor: #2 monitor\n" ) );
850
851 if (__kmp_yield_cycle) {
852 __kmp_yielding_on = 0; /* Start out with yielding shut off */
853 yield_count = __kmp_yield_off_count;
854 } else {
855 __kmp_yielding_on = 1; /* Yielding is on permanently */
856 }
857
858 while( ! TCR_4( __kmp_global.g.g_done ) ) {
859 struct timespec now;
860 struct timeval tval;
861
862 /* This thread monitors the state of the system */
863
864 KA_TRACE( 15, ( "__kmp_launch_monitor: update\n" ) );
865
866 status = gettimeofday( &tval, NULL );
867 KMP_CHECK_SYSFAIL_ERRNO( "gettimeofday", status );
868 TIMEVAL_TO_TIMESPEC( &tval, &now );
869
870 now.tv_sec += interval.tv_sec;
871 now.tv_nsec += interval.tv_nsec;
872
873 if (now.tv_nsec >= NSEC_PER_SEC) {
874 now.tv_sec += 1;
875 now.tv_nsec -= NSEC_PER_SEC;
876 }
877
878 status = pthread_mutex_lock( & __kmp_wait_mx.m_mutex );
879 KMP_CHECK_SYSFAIL( "pthread_mutex_lock", status );
Jim Cownie07ea89f2014-09-03 11:10:54 +0000880 // AC: the monitor should not fall asleep if g_done has been set
881 if ( !TCR_4(__kmp_global.g.g_done) ) { // check once more under mutex
882 status = pthread_cond_timedwait( &__kmp_wait_cv.c_cond, &__kmp_wait_mx.m_mutex, &now );
883 if ( status != 0 ) {
884 if ( status != ETIMEDOUT && status != EINTR ) {
885 KMP_SYSFAIL( "pthread_cond_timedwait", status );
886 };
Jim Cownie5e8470a2013-09-27 10:38:44 +0000887 };
888 };
Jim Cownie5e8470a2013-09-27 10:38:44 +0000889 status = pthread_mutex_unlock( & __kmp_wait_mx.m_mutex );
890 KMP_CHECK_SYSFAIL( "pthread_mutex_unlock", status );
891
892 if (__kmp_yield_cycle) {
893 yield_cycles++;
894 if ( (yield_cycles % yield_count) == 0 ) {
895 if (__kmp_yielding_on) {
896 __kmp_yielding_on = 0; /* Turn it off now */
897 yield_count = __kmp_yield_off_count;
898 } else {
899 __kmp_yielding_on = 1; /* Turn it on now */
900 yield_count = __kmp_yield_on_count;
901 }
902 yield_cycles = 0;
903 }
904 } else {
905 __kmp_yielding_on = 1;
906 }
907
908 TCW_4( __kmp_global.g.g_time.dt.t_value,
909 TCR_4( __kmp_global.g.g_time.dt.t_value ) + 1 );
910
911 KMP_MB(); /* Flush all pending memory write invalidates. */
912 }
913
914 KA_TRACE( 10, ("__kmp_launch_monitor: #3 cleanup\n" ) );
915
916#ifdef KMP_BLOCK_SIGNALS
917 status = sigfillset( & new_set );
918 KMP_CHECK_SYSFAIL_ERRNO( "sigfillset", status );
919 status = pthread_sigmask( SIG_UNBLOCK, & new_set, NULL );
920 KMP_CHECK_SYSFAIL( "pthread_sigmask", status );
921#endif /* KMP_BLOCK_SIGNALS */
922
923 KA_TRACE( 10, ("__kmp_launch_monitor: #4 finished\n" ) );
924
925 if( __kmp_global.g.g_abort != 0 ) {
926 /* now we need to terminate the worker threads */
927 /* the value of t_abort is the signal we caught */
928
929 int gtid;
930
931 KA_TRACE( 10, ("__kmp_launch_monitor: #5 terminate sig=%d\n", __kmp_global.g.g_abort ) );
932
933 /* terminate the OpenMP worker threads */
934 /* TODO this is not valid for sibling threads!!
935 * the uber master might not be 0 anymore.. */
936 for (gtid = 1; gtid < __kmp_threads_capacity; ++gtid)
937 __kmp_terminate_thread( gtid );
938
939 __kmp_cleanup();
940
941 KA_TRACE( 10, ("__kmp_launch_monitor: #6 raise sig=%d\n", __kmp_global.g.g_abort ) );
942
943 if (__kmp_global.g.g_abort > 0)
944 raise( __kmp_global.g.g_abort );
945
946 }
947
948 KA_TRACE( 10, ("__kmp_launch_monitor: #7 exit\n" ) );
949
950 return thr;
951}
952
953void
954__kmp_create_worker( int gtid, kmp_info_t *th, size_t stack_size )
955{
956 pthread_t handle;
957 pthread_attr_t thread_attr;
958 int status;
959
960
961 th->th.th_info.ds.ds_gtid = gtid;
962
Jim Cownie4cc4bb42014-10-07 16:25:50 +0000963#if KMP_STATS_ENABLED
964 // sets up worker thread stats
965 __kmp_acquire_tas_lock(&__kmp_stats_lock, gtid);
966
967 // th->th.th_stats is used to transfer thread specific stats-pointer to __kmp_launch_worker
968 // So when thread is created (goes into __kmp_launch_worker) it will
969 // set it's __thread local pointer to th->th.th_stats
970 th->th.th_stats = __kmp_stats_list.push_back(gtid);
971 if(KMP_UBER_GTID(gtid)) {
972 __kmp_stats_start_time = tsc_tick_count::now();
973 __kmp_stats_thread_ptr = th->th.th_stats;
974 __kmp_stats_init();
975 KMP_START_EXPLICIT_TIMER(OMP_serial);
976 KMP_START_EXPLICIT_TIMER(OMP_start_end);
977 }
978 __kmp_release_tas_lock(&__kmp_stats_lock, gtid);
979
980#endif // KMP_STATS_ENABLED
981
Jim Cownie5e8470a2013-09-27 10:38:44 +0000982 if ( KMP_UBER_GTID(gtid) ) {
983 KA_TRACE( 10, ("__kmp_create_worker: uber thread (%d)\n", gtid ) );
984 th -> th.th_info.ds.ds_thread = pthread_self();
985 __kmp_set_stack_info( gtid, th );
986 __kmp_check_stack_overlap( th );
987 return;
988 }; // if
989
990 KA_TRACE( 10, ("__kmp_create_worker: try to create thread (%d)\n", gtid ) );
991
992 KMP_MB(); /* Flush all pending memory write invalidates. */
993
994#ifdef KMP_THREAD_ATTR
995 {
996 status = pthread_attr_init( &thread_attr );
997 if ( status != 0 ) {
998 __kmp_msg(
999 kmp_ms_fatal,
1000 KMP_MSG( CantInitThreadAttrs ),
1001 KMP_ERR( status ),
1002 __kmp_msg_null
1003 );
1004 }; // if
1005 status = pthread_attr_setdetachstate( & thread_attr, PTHREAD_CREATE_JOINABLE );
1006 if ( status != 0 ) {
1007 __kmp_msg(
1008 kmp_ms_fatal,
1009 KMP_MSG( CantSetWorkerState ),
1010 KMP_ERR( status ),
1011 __kmp_msg_null
1012 );
1013 }; // if
1014
1015 /* Set stack size for this thread now. */
1016 stack_size += gtid * __kmp_stkoffset;
1017
1018 KA_TRACE( 10, ( "__kmp_create_worker: T#%d, default stacksize = %lu bytes, "
1019 "__kmp_stksize = %lu bytes, final stacksize = %lu bytes\n",
1020 gtid, KMP_DEFAULT_STKSIZE, __kmp_stksize, stack_size ) );
1021
1022# ifdef _POSIX_THREAD_ATTR_STACKSIZE
1023 status = pthread_attr_setstacksize( & thread_attr, stack_size );
1024# ifdef KMP_BACKUP_STKSIZE
1025 if ( status != 0 ) {
1026 if ( ! __kmp_env_stksize ) {
1027 stack_size = KMP_BACKUP_STKSIZE + gtid * __kmp_stkoffset;
1028 __kmp_stksize = KMP_BACKUP_STKSIZE;
1029 KA_TRACE( 10, ("__kmp_create_worker: T#%d, default stacksize = %lu bytes, "
1030 "__kmp_stksize = %lu bytes, (backup) final stacksize = %lu "
1031 "bytes\n",
1032 gtid, KMP_DEFAULT_STKSIZE, __kmp_stksize, stack_size )
1033 );
1034 status = pthread_attr_setstacksize( &thread_attr, stack_size );
1035 }; // if
1036 }; // if
1037# endif /* KMP_BACKUP_STKSIZE */
1038 if ( status != 0 ) {
1039 __kmp_msg(
1040 kmp_ms_fatal,
1041 KMP_MSG( CantSetWorkerStackSize, stack_size ),
1042 KMP_ERR( status ),
1043 KMP_HNT( ChangeWorkerStackSize ),
1044 __kmp_msg_null
1045 );
1046 }; // if
1047# endif /* _POSIX_THREAD_ATTR_STACKSIZE */
1048 }
1049#endif /* KMP_THREAD_ATTR */
1050
1051 {
1052 status = pthread_create( & handle, & thread_attr, __kmp_launch_worker, (void *) th );
1053 if ( status != 0 || ! handle ) { // ??? Why do we check handle??
1054#ifdef _POSIX_THREAD_ATTR_STACKSIZE
1055 if ( status == EINVAL ) {
1056 __kmp_msg(
1057 kmp_ms_fatal,
1058 KMP_MSG( CantSetWorkerStackSize, stack_size ),
1059 KMP_ERR( status ),
1060 KMP_HNT( IncreaseWorkerStackSize ),
1061 __kmp_msg_null
1062 );
1063 };
1064 if ( status == ENOMEM ) {
1065 __kmp_msg(
1066 kmp_ms_fatal,
1067 KMP_MSG( CantSetWorkerStackSize, stack_size ),
1068 KMP_ERR( status ),
1069 KMP_HNT( DecreaseWorkerStackSize ),
1070 __kmp_msg_null
1071 );
1072 };
1073#endif /* _POSIX_THREAD_ATTR_STACKSIZE */
1074 if ( status == EAGAIN ) {
1075 __kmp_msg(
1076 kmp_ms_fatal,
1077 KMP_MSG( NoResourcesForWorkerThread ),
1078 KMP_ERR( status ),
1079 KMP_HNT( Decrease_NUM_THREADS ),
1080 __kmp_msg_null
1081 );
1082 }; // if
1083 KMP_SYSFAIL( "pthread_create", status );
1084 }; // if
1085
1086 th->th.th_info.ds.ds_thread = handle;
1087 }
1088
1089#ifdef KMP_THREAD_ATTR
1090 {
1091 status = pthread_attr_destroy( & thread_attr );
1092 if ( status ) {
1093 __kmp_msg(
1094 kmp_ms_warning,
1095 KMP_MSG( CantDestroyThreadAttrs ),
1096 KMP_ERR( status ),
1097 __kmp_msg_null
1098 );
1099 }; // if
1100 }
1101#endif /* KMP_THREAD_ATTR */
1102
1103 KMP_MB(); /* Flush all pending memory write invalidates. */
1104
1105 KA_TRACE( 10, ("__kmp_create_worker: done creating thread (%d)\n", gtid ) );
1106
1107} // __kmp_create_worker
1108
1109
1110void
1111__kmp_create_monitor( kmp_info_t *th )
1112{
1113 pthread_t handle;
1114 pthread_attr_t thread_attr;
1115 size_t size;
1116 int status;
1117 int caller_gtid = __kmp_get_gtid();
1118 int auto_adj_size = FALSE;
1119
1120 KA_TRACE( 10, ("__kmp_create_monitor: try to create monitor\n" ) );
1121
1122 KMP_MB(); /* Flush all pending memory write invalidates. */
1123
1124 th->th.th_info.ds.ds_tid = KMP_GTID_MONITOR;
1125 th->th.th_info.ds.ds_gtid = KMP_GTID_MONITOR;
1126 #if KMP_REAL_TIME_FIX
1127 TCW_4( __kmp_global.g.g_time.dt.t_value, -1 ); // Will use it for synchronization a bit later.
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001128 #else
1129 TCW_4( __kmp_global.g.g_time.dt.t_value, 0 );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001130 #endif // KMP_REAL_TIME_FIX
1131
1132 #ifdef KMP_THREAD_ATTR
1133 if ( __kmp_monitor_stksize == 0 ) {
1134 __kmp_monitor_stksize = KMP_DEFAULT_MONITOR_STKSIZE;
1135 auto_adj_size = TRUE;
1136 }
1137 status = pthread_attr_init( &thread_attr );
1138 if ( status != 0 ) {
1139 __kmp_msg(
1140 kmp_ms_fatal,
1141 KMP_MSG( CantInitThreadAttrs ),
1142 KMP_ERR( status ),
1143 __kmp_msg_null
1144 );
1145 }; // if
1146 status = pthread_attr_setdetachstate( & thread_attr, PTHREAD_CREATE_JOINABLE );
1147 if ( status != 0 ) {
1148 __kmp_msg(
1149 kmp_ms_fatal,
1150 KMP_MSG( CantSetMonitorState ),
1151 KMP_ERR( status ),
1152 __kmp_msg_null
1153 );
1154 }; // if
1155
1156 #ifdef _POSIX_THREAD_ATTR_STACKSIZE
1157 status = pthread_attr_getstacksize( & thread_attr, & size );
1158 KMP_CHECK_SYSFAIL( "pthread_attr_getstacksize", status );
1159 #else
1160 size = __kmp_sys_min_stksize;
1161 #endif /* _POSIX_THREAD_ATTR_STACKSIZE */
1162 #endif /* KMP_THREAD_ATTR */
1163
1164 if ( __kmp_monitor_stksize == 0 ) {
1165 __kmp_monitor_stksize = KMP_DEFAULT_MONITOR_STKSIZE;
1166 }
1167 if ( __kmp_monitor_stksize < __kmp_sys_min_stksize ) {
1168 __kmp_monitor_stksize = __kmp_sys_min_stksize;
1169 }
1170
1171 KA_TRACE( 10, ( "__kmp_create_monitor: default stacksize = %lu bytes,"
1172 "requested stacksize = %lu bytes\n",
1173 size, __kmp_monitor_stksize ) );
1174
1175 retry:
1176
1177 /* Set stack size for this thread now. */
1178
1179 #ifdef _POSIX_THREAD_ATTR_STACKSIZE
1180 KA_TRACE( 10, ( "__kmp_create_monitor: setting stacksize = %lu bytes,",
1181 __kmp_monitor_stksize ) );
1182 status = pthread_attr_setstacksize( & thread_attr, __kmp_monitor_stksize );
1183 if ( status != 0 ) {
1184 if ( auto_adj_size ) {
1185 __kmp_monitor_stksize *= 2;
1186 goto retry;
1187 }
1188 __kmp_msg(
1189 kmp_ms_warning, // should this be fatal? BB
1190 KMP_MSG( CantSetMonitorStackSize, (long int) __kmp_monitor_stksize ),
1191 KMP_ERR( status ),
1192 KMP_HNT( ChangeMonitorStackSize ),
1193 __kmp_msg_null
1194 );
1195 }; // if
1196 #endif /* _POSIX_THREAD_ATTR_STACKSIZE */
1197
Jim Cownie5e8470a2013-09-27 10:38:44 +00001198 status = pthread_create( &handle, & thread_attr, __kmp_launch_monitor, (void *) th );
1199
1200 if ( status != 0 ) {
1201 #ifdef _POSIX_THREAD_ATTR_STACKSIZE
1202 if ( status == EINVAL ) {
1203 if ( auto_adj_size && ( __kmp_monitor_stksize < (size_t)0x40000000 ) ) {
1204 __kmp_monitor_stksize *= 2;
1205 goto retry;
1206 }
1207 __kmp_msg(
1208 kmp_ms_fatal,
1209 KMP_MSG( CantSetMonitorStackSize, __kmp_monitor_stksize ),
1210 KMP_ERR( status ),
1211 KMP_HNT( IncreaseMonitorStackSize ),
1212 __kmp_msg_null
1213 );
1214 }; // if
1215 if ( status == ENOMEM ) {
1216 __kmp_msg(
1217 kmp_ms_fatal,
1218 KMP_MSG( CantSetMonitorStackSize, __kmp_monitor_stksize ),
1219 KMP_ERR( status ),
1220 KMP_HNT( DecreaseMonitorStackSize ),
1221 __kmp_msg_null
1222 );
1223 }; // if
1224 #endif /* _POSIX_THREAD_ATTR_STACKSIZE */
1225 if ( status == EAGAIN ) {
1226 __kmp_msg(
1227 kmp_ms_fatal,
1228 KMP_MSG( NoResourcesForMonitorThread ),
1229 KMP_ERR( status ),
1230 KMP_HNT( DecreaseNumberOfThreadsInUse ),
1231 __kmp_msg_null
1232 );
1233 }; // if
1234 KMP_SYSFAIL( "pthread_create", status );
1235 }; // if
1236
1237 th->th.th_info.ds.ds_thread = handle;
1238
1239 #if KMP_REAL_TIME_FIX
1240 // Wait for the monitor thread is really started and set its *priority*.
1241 KMP_DEBUG_ASSERT( sizeof( kmp_uint32 ) == sizeof( __kmp_global.g.g_time.dt.t_value ) );
1242 __kmp_wait_yield_4(
1243 (kmp_uint32 volatile *) & __kmp_global.g.g_time.dt.t_value, -1, & __kmp_neq_4, NULL
1244 );
1245 #endif // KMP_REAL_TIME_FIX
1246
1247 #ifdef KMP_THREAD_ATTR
1248 status = pthread_attr_destroy( & thread_attr );
1249 if ( status != 0 ) {
1250 __kmp_msg( //
1251 kmp_ms_warning,
1252 KMP_MSG( CantDestroyThreadAttrs ),
1253 KMP_ERR( status ),
1254 __kmp_msg_null
1255 );
1256 }; // if
1257 #endif
1258
1259 KMP_MB(); /* Flush all pending memory write invalidates. */
1260
1261 KA_TRACE( 10, ( "__kmp_create_monitor: monitor created %#.8lx\n", th->th.th_info.ds.ds_thread ) );
1262
1263} // __kmp_create_monitor
1264
1265void
1266__kmp_exit_thread(
1267 int exit_status
1268) {
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001269 pthread_exit( (void *)(intptr_t) exit_status );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001270} // __kmp_exit_thread
1271
Jim Cownie07ea89f2014-09-03 11:10:54 +00001272void __kmp_resume_monitor();
1273
Jim Cownie5e8470a2013-09-27 10:38:44 +00001274void
1275__kmp_reap_monitor( kmp_info_t *th )
1276{
1277 int status, i;
1278 void *exit_val;
1279
1280 KA_TRACE( 10, ("__kmp_reap_monitor: try to reap monitor thread with handle %#.8lx\n",
1281 th->th.th_info.ds.ds_thread ) );
1282
1283 // If monitor has been created, its tid and gtid should be KMP_GTID_MONITOR.
1284 // If both tid and gtid are 0, it means the monitor did not ever start.
1285 // If both tid and gtid are KMP_GTID_DNE, the monitor has been shut down.
1286 KMP_DEBUG_ASSERT( th->th.th_info.ds.ds_tid == th->th.th_info.ds.ds_gtid );
1287 if ( th->th.th_info.ds.ds_gtid != KMP_GTID_MONITOR ) {
1288 return;
1289 }; // if
1290
1291 KMP_MB(); /* Flush all pending memory write invalidates. */
1292
1293
1294 /* First, check to see whether the monitor thread exists. This could prevent a hang,
1295 but if the monitor dies after the pthread_kill call and before the pthread_join
1296 call, it will still hang. */
1297
1298 status = pthread_kill( th->th.th_info.ds.ds_thread, 0 );
1299 if (status == ESRCH) {
1300
1301 KA_TRACE( 10, ("__kmp_reap_monitor: monitor does not exist, returning\n") );
1302
1303 } else
1304 {
Jim Cownie07ea89f2014-09-03 11:10:54 +00001305 __kmp_resume_monitor(); // Wake up the monitor thread
Jim Cownie5e8470a2013-09-27 10:38:44 +00001306 status = pthread_join( th->th.th_info.ds.ds_thread, & exit_val);
1307 if (exit_val != th) {
1308 __kmp_msg(
1309 kmp_ms_fatal,
1310 KMP_MSG( ReapMonitorError ),
1311 KMP_ERR( status ),
1312 __kmp_msg_null
1313 );
1314 }
1315 }
1316
1317 th->th.th_info.ds.ds_tid = KMP_GTID_DNE;
1318 th->th.th_info.ds.ds_gtid = KMP_GTID_DNE;
1319
1320 KA_TRACE( 10, ("__kmp_reap_monitor: done reaping monitor thread with handle %#.8lx\n",
1321 th->th.th_info.ds.ds_thread ) );
1322
1323 KMP_MB(); /* Flush all pending memory write invalidates. */
1324
1325}
1326
1327void
1328__kmp_reap_worker( kmp_info_t *th )
1329{
1330 int status;
1331 void *exit_val;
1332
1333 KMP_MB(); /* Flush all pending memory write invalidates. */
1334
1335 KA_TRACE( 10, ("__kmp_reap_worker: try to reap T#%d\n", th->th.th_info.ds.ds_gtid ) );
1336
1337 /* First, check to see whether the worker thread exists. This could prevent a hang,
1338 but if the worker dies after the pthread_kill call and before the pthread_join
1339 call, it will still hang. */
1340
1341 {
1342 status = pthread_kill( th->th.th_info.ds.ds_thread, 0 );
1343 if (status == ESRCH) {
1344 KA_TRACE( 10, ("__kmp_reap_worker: worker T#%d does not exist, returning\n",
1345 th->th.th_info.ds.ds_gtid ) );
1346 }
1347 else {
1348 KA_TRACE( 10, ("__kmp_reap_worker: try to join with worker T#%d\n",
1349 th->th.th_info.ds.ds_gtid ) );
1350
1351 status = pthread_join( th->th.th_info.ds.ds_thread, & exit_val);
1352#ifdef KMP_DEBUG
1353 /* Don't expose these to the user until we understand when they trigger */
1354 if ( status != 0 ) {
1355 __kmp_msg(
1356 kmp_ms_fatal,
1357 KMP_MSG( ReapWorkerError ),
1358 KMP_ERR( status ),
1359 __kmp_msg_null
1360 );
1361 }
1362 if ( exit_val != th ) {
1363 KA_TRACE( 10, ( "__kmp_reap_worker: worker T#%d did not reap properly, "
1364 "exit_val = %p\n",
1365 th->th.th_info.ds.ds_gtid, exit_val ) );
1366 }
1367#endif /* KMP_DEBUG */
1368 }
1369 }
1370
1371 KA_TRACE( 10, ("__kmp_reap_worker: done reaping T#%d\n", th->th.th_info.ds.ds_gtid ) );
1372
1373 KMP_MB(); /* Flush all pending memory write invalidates. */
1374}
1375
1376
1377/* ------------------------------------------------------------------------ */
1378/* ------------------------------------------------------------------------ */
1379
1380#if KMP_HANDLE_SIGNALS
1381
1382
1383static void
1384__kmp_null_handler( int signo )
1385{
1386 // Do nothing, for doing SIG_IGN-type actions.
1387} // __kmp_null_handler
1388
1389
1390static void
1391__kmp_team_handler( int signo )
1392{
1393 if ( __kmp_global.g.g_abort == 0 ) {
1394 /* Stage 1 signal handler, let's shut down all of the threads */
1395 #ifdef KMP_DEBUG
1396 __kmp_debug_printf( "__kmp_team_handler: caught signal = %d\n", signo );
1397 #endif
1398 switch ( signo ) {
1399 case SIGHUP :
1400 case SIGINT :
1401 case SIGQUIT :
1402 case SIGILL :
1403 case SIGABRT :
1404 case SIGFPE :
1405 case SIGBUS :
1406 case SIGSEGV :
1407 #ifdef SIGSYS
1408 case SIGSYS :
1409 #endif
1410 case SIGTERM :
1411 if ( __kmp_debug_buf ) {
1412 __kmp_dump_debug_buffer( );
1413 }; // if
1414 KMP_MB(); // Flush all pending memory write invalidates.
1415 TCW_4( __kmp_global.g.g_abort, signo );
1416 KMP_MB(); // Flush all pending memory write invalidates.
1417 TCW_4( __kmp_global.g.g_done, TRUE );
1418 KMP_MB(); // Flush all pending memory write invalidates.
1419 break;
1420 default:
1421 #ifdef KMP_DEBUG
1422 __kmp_debug_printf( "__kmp_team_handler: unknown signal type" );
1423 #endif
1424 break;
1425 }; // switch
1426 }; // if
1427} // __kmp_team_handler
1428
1429
1430static
1431void __kmp_sigaction( int signum, const struct sigaction * act, struct sigaction * oldact ) {
1432 int rc = sigaction( signum, act, oldact );
1433 KMP_CHECK_SYSFAIL_ERRNO( "sigaction", rc );
1434}
1435
1436
1437static void
1438__kmp_install_one_handler( int sig, sig_func_t handler_func, int parallel_init )
1439{
1440 KMP_MB(); // Flush all pending memory write invalidates.
1441 KB_TRACE( 60, ( "__kmp_install_one_handler( %d, ..., %d )\n", sig, parallel_init ) );
1442 if ( parallel_init ) {
1443 struct sigaction new_action;
1444 struct sigaction old_action;
1445 new_action.sa_handler = handler_func;
1446 new_action.sa_flags = 0;
1447 sigfillset( & new_action.sa_mask );
1448 __kmp_sigaction( sig, & new_action, & old_action );
1449 if ( old_action.sa_handler == __kmp_sighldrs[ sig ].sa_handler ) {
1450 sigaddset( & __kmp_sigset, sig );
1451 } else {
1452 // Restore/keep user's handler if one previously installed.
1453 __kmp_sigaction( sig, & old_action, NULL );
1454 }; // if
1455 } else {
1456 // Save initial/system signal handlers to see if user handlers installed.
1457 __kmp_sigaction( sig, NULL, & __kmp_sighldrs[ sig ] );
1458 }; // if
1459 KMP_MB(); // Flush all pending memory write invalidates.
1460} // __kmp_install_one_handler
1461
1462
1463static void
1464__kmp_remove_one_handler( int sig )
1465{
1466 KB_TRACE( 60, ( "__kmp_remove_one_handler( %d )\n", sig ) );
1467 if ( sigismember( & __kmp_sigset, sig ) ) {
1468 struct sigaction old;
1469 KMP_MB(); // Flush all pending memory write invalidates.
1470 __kmp_sigaction( sig, & __kmp_sighldrs[ sig ], & old );
1471 if ( ( old.sa_handler != __kmp_team_handler ) && ( old.sa_handler != __kmp_null_handler ) ) {
1472 // Restore the users signal handler.
1473 KB_TRACE( 10, ( "__kmp_remove_one_handler: oops, not our handler, restoring: sig=%d\n", sig ) );
1474 __kmp_sigaction( sig, & old, NULL );
1475 }; // if
1476 sigdelset( & __kmp_sigset, sig );
1477 KMP_MB(); // Flush all pending memory write invalidates.
1478 }; // if
1479} // __kmp_remove_one_handler
1480
1481
1482void
1483__kmp_install_signals( int parallel_init )
1484{
1485 KB_TRACE( 10, ( "__kmp_install_signals( %d )\n", parallel_init ) );
1486 if ( __kmp_handle_signals || ! parallel_init ) {
1487 // If ! parallel_init, we do not install handlers, just save original handlers.
1488 // Let us do it even __handle_signals is 0.
1489 sigemptyset( & __kmp_sigset );
1490 __kmp_install_one_handler( SIGHUP, __kmp_team_handler, parallel_init );
1491 __kmp_install_one_handler( SIGINT, __kmp_team_handler, parallel_init );
1492 __kmp_install_one_handler( SIGQUIT, __kmp_team_handler, parallel_init );
1493 __kmp_install_one_handler( SIGILL, __kmp_team_handler, parallel_init );
1494 __kmp_install_one_handler( SIGABRT, __kmp_team_handler, parallel_init );
1495 __kmp_install_one_handler( SIGFPE, __kmp_team_handler, parallel_init );
1496 __kmp_install_one_handler( SIGBUS, __kmp_team_handler, parallel_init );
1497 __kmp_install_one_handler( SIGSEGV, __kmp_team_handler, parallel_init );
1498 #ifdef SIGSYS
1499 __kmp_install_one_handler( SIGSYS, __kmp_team_handler, parallel_init );
1500 #endif // SIGSYS
1501 __kmp_install_one_handler( SIGTERM, __kmp_team_handler, parallel_init );
1502 #ifdef SIGPIPE
1503 __kmp_install_one_handler( SIGPIPE, __kmp_team_handler, parallel_init );
1504 #endif // SIGPIPE
1505 }; // if
1506} // __kmp_install_signals
1507
1508
1509void
1510__kmp_remove_signals( void )
1511{
1512 int sig;
1513 KB_TRACE( 10, ( "__kmp_remove_signals()\n" ) );
1514 for ( sig = 1; sig < NSIG; ++ sig ) {
1515 __kmp_remove_one_handler( sig );
1516 }; // for sig
1517} // __kmp_remove_signals
1518
1519
1520#endif // KMP_HANDLE_SIGNALS
1521
1522/* ------------------------------------------------------------------------ */
1523/* ------------------------------------------------------------------------ */
1524
1525void
1526__kmp_enable( int new_state )
1527{
1528 #ifdef KMP_CANCEL_THREADS
1529 int status, old_state;
1530 status = pthread_setcancelstate( new_state, & old_state );
1531 KMP_CHECK_SYSFAIL( "pthread_setcancelstate", status );
1532 KMP_DEBUG_ASSERT( old_state == PTHREAD_CANCEL_DISABLE );
1533 #endif
1534}
1535
1536void
1537__kmp_disable( int * old_state )
1538{
1539 #ifdef KMP_CANCEL_THREADS
1540 int status;
1541 status = pthread_setcancelstate( PTHREAD_CANCEL_DISABLE, old_state );
1542 KMP_CHECK_SYSFAIL( "pthread_setcancelstate", status );
1543 #endif
1544}
1545
1546/* ------------------------------------------------------------------------ */
1547/* ------------------------------------------------------------------------ */
1548
1549static void
1550__kmp_atfork_prepare (void)
1551{
1552 /* nothing to do */
1553}
1554
1555static void
1556__kmp_atfork_parent (void)
1557{
1558 /* nothing to do */
1559}
1560
1561/*
1562 Reset the library so execution in the child starts "all over again" with
1563 clean data structures in initial states. Don't worry about freeing memory
1564 allocated by parent, just abandon it to be safe.
1565*/
1566static void
1567__kmp_atfork_child (void)
1568{
1569 /* TODO make sure this is done right for nested/sibling */
1570 // ATT: Memory leaks are here? TODO: Check it and fix.
1571 /* KMP_ASSERT( 0 ); */
1572
1573 ++__kmp_fork_count;
1574
1575 __kmp_init_runtime = FALSE;
1576 __kmp_init_monitor = 0;
1577 __kmp_init_parallel = FALSE;
1578 __kmp_init_middle = FALSE;
1579 __kmp_init_serial = FALSE;
1580 TCW_4(__kmp_init_gtid, FALSE);
1581 __kmp_init_common = FALSE;
1582
1583 TCW_4(__kmp_init_user_locks, FALSE);
Andrey Churbanov5c56fb52015-02-20 18:05:17 +00001584#if ! KMP_USE_DYNAMIC_LOCK
Jim Cownie07ea89f2014-09-03 11:10:54 +00001585 __kmp_user_lock_table.used = 1;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001586 __kmp_user_lock_table.allocated = 0;
1587 __kmp_user_lock_table.table = NULL;
1588 __kmp_lock_blocks = NULL;
Andrey Churbanov5c56fb52015-02-20 18:05:17 +00001589#endif
Jim Cownie5e8470a2013-09-27 10:38:44 +00001590
1591 __kmp_all_nth = 0;
1592 TCW_4(__kmp_nth, 0);
1593
1594 /* Must actually zero all the *cache arguments passed to __kmpc_threadprivate here
1595 so threadprivate doesn't use stale data */
1596 KA_TRACE( 10, ( "__kmp_atfork_child: checking cache address list %p\n",
1597 __kmp_threadpriv_cache_list ) );
1598
1599 while ( __kmp_threadpriv_cache_list != NULL ) {
1600
1601 if ( *__kmp_threadpriv_cache_list -> addr != NULL ) {
1602 KC_TRACE( 50, ( "__kmp_atfork_child: zeroing cache at address %p\n",
1603 &(*__kmp_threadpriv_cache_list -> addr) ) );
1604
1605 *__kmp_threadpriv_cache_list -> addr = NULL;
1606 }
1607 __kmp_threadpriv_cache_list = __kmp_threadpriv_cache_list -> next;
1608 }
1609
1610 __kmp_init_runtime = FALSE;
1611
1612 /* reset statically initialized locks */
1613 __kmp_init_bootstrap_lock( &__kmp_initz_lock );
1614 __kmp_init_bootstrap_lock( &__kmp_stdio_lock );
1615 __kmp_init_bootstrap_lock( &__kmp_console_lock );
1616
1617 /* This is necessary to make sure no stale data is left around */
1618 /* AC: customers complain that we use unsafe routines in the atfork
1619 handler. Mathworks: dlsym() is unsafe. We call dlsym and dlopen
1620 in dynamic_link when check the presence of shared tbbmalloc library.
1621 Suggestion is to make the library initialization lazier, similar
1622 to what done for __kmpc_begin(). */
1623 // TODO: synchronize all static initializations with regular library
1624 // startup; look at kmp_global.c and etc.
1625 //__kmp_internal_begin ();
1626
1627}
1628
1629void
1630__kmp_register_atfork(void) {
1631 if ( __kmp_need_register_atfork ) {
1632 int status = pthread_atfork( __kmp_atfork_prepare, __kmp_atfork_parent, __kmp_atfork_child );
1633 KMP_CHECK_SYSFAIL( "pthread_atfork", status );
1634 __kmp_need_register_atfork = FALSE;
1635 }
1636}
1637
1638void
1639__kmp_suspend_initialize( void )
1640{
1641 int status;
1642 status = pthread_mutexattr_init( &__kmp_suspend_mutex_attr );
1643 KMP_CHECK_SYSFAIL( "pthread_mutexattr_init", status );
1644 status = pthread_condattr_init( &__kmp_suspend_cond_attr );
1645 KMP_CHECK_SYSFAIL( "pthread_condattr_init", status );
1646}
1647
1648static void
1649__kmp_suspend_initialize_thread( kmp_info_t *th )
1650{
1651 if ( th->th.th_suspend_init_count <= __kmp_fork_count ) {
1652 /* this means we haven't initialized the suspension pthread objects for this thread
1653 in this instance of the process */
1654 int status;
1655 status = pthread_cond_init( &th->th.th_suspend_cv.c_cond, &__kmp_suspend_cond_attr );
1656 KMP_CHECK_SYSFAIL( "pthread_cond_init", status );
1657 status = pthread_mutex_init( &th->th.th_suspend_mx.m_mutex, & __kmp_suspend_mutex_attr );
1658 KMP_CHECK_SYSFAIL( "pthread_mutex_init", status );
1659 *(volatile int*)&th->th.th_suspend_init_count = __kmp_fork_count + 1;
1660 };
1661}
1662
1663void
1664__kmp_suspend_uninitialize_thread( kmp_info_t *th )
1665{
1666 if(th->th.th_suspend_init_count > __kmp_fork_count) {
1667 /* this means we have initialize the suspension pthread objects for this thread
1668 in this instance of the process */
1669 int status;
1670
1671 status = pthread_cond_destroy( &th->th.th_suspend_cv.c_cond );
1672 if ( status != 0 && status != EBUSY ) {
1673 KMP_SYSFAIL( "pthread_cond_destroy", status );
1674 };
1675 status = pthread_mutex_destroy( &th->th.th_suspend_mx.m_mutex );
1676 if ( status != 0 && status != EBUSY ) {
1677 KMP_SYSFAIL( "pthread_mutex_destroy", status );
1678 };
1679 --th->th.th_suspend_init_count;
1680 KMP_DEBUG_ASSERT(th->th.th_suspend_init_count == __kmp_fork_count);
1681 }
1682}
1683
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001684/* This routine puts the calling thread to sleep after setting the
1685 * sleep bit for the indicated flag variable to true.
Jim Cownie5e8470a2013-09-27 10:38:44 +00001686 */
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001687template <class C>
1688static inline void __kmp_suspend_template( int th_gtid, C *flag )
Jim Cownie5e8470a2013-09-27 10:38:44 +00001689{
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001690 KMP_TIME_BLOCK(USER_suspend);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001691 kmp_info_t *th = __kmp_threads[th_gtid];
1692 int status;
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001693 typename C::flag_t old_spin;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001694
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001695 KF_TRACE( 30, ("__kmp_suspend_template: T#%d enter for flag = %p\n", th_gtid, flag->get() ) );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001696
1697 __kmp_suspend_initialize_thread( th );
1698
1699 status = pthread_mutex_lock( &th->th.th_suspend_mx.m_mutex );
1700 KMP_CHECK_SYSFAIL( "pthread_mutex_lock", status );
1701
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001702 KF_TRACE( 10, ( "__kmp_suspend_template: T#%d setting sleep bit for spin(%p)\n",
1703 th_gtid, flag->get() ) );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001704
1705 /* TODO: shouldn't this use release semantics to ensure that __kmp_suspend_initialize_thread
1706 gets called first?
1707 */
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001708 old_spin = flag->set_sleeping();
Jim Cownie5e8470a2013-09-27 10:38:44 +00001709
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001710 KF_TRACE( 5, ( "__kmp_suspend_template: T#%d set sleep bit for spin(%p)==%d\n",
1711 th_gtid, flag->get(), *(flag->get()) ) );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001712
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001713 if ( flag->done_check_val(old_spin) ) {
1714 old_spin = flag->unset_sleeping();
1715 KF_TRACE( 5, ( "__kmp_suspend_template: T#%d false alarm, reset sleep bit for spin(%p)\n",
1716 th_gtid, flag->get()) );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001717 } else {
Jim Cownie5e8470a2013-09-27 10:38:44 +00001718 /* Encapsulate in a loop as the documentation states that this may
1719 * "with low probability" return when the condition variable has
1720 * not been signaled or broadcast
1721 */
1722 int deactivated = FALSE;
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001723 TCW_PTR(th->th.th_sleep_loc, (void *)flag);
1724 while ( flag->is_sleeping() ) {
Jim Cownie5e8470a2013-09-27 10:38:44 +00001725#ifdef DEBUG_SUSPEND
1726 char buffer[128];
1727 __kmp_suspend_count++;
1728 __kmp_print_cond( buffer, &th->th.th_suspend_cv );
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001729 __kmp_printf( "__kmp_suspend_template: suspending T#%d: %s\n", th_gtid, buffer );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001730#endif
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001731 // Mark the thread as no longer active (only in the first iteration of the loop).
Jim Cownie5e8470a2013-09-27 10:38:44 +00001732 if ( ! deactivated ) {
1733 th->th.th_active = FALSE;
1734 if ( th->th.th_active_in_pool ) {
1735 th->th.th_active_in_pool = FALSE;
1736 KMP_TEST_THEN_DEC32(
1737 (kmp_int32 *) &__kmp_thread_pool_active_nth );
1738 KMP_DEBUG_ASSERT( TCR_4(__kmp_thread_pool_active_nth) >= 0 );
1739 }
1740 deactivated = TRUE;
1741
1742
1743 }
1744
1745#if USE_SUSPEND_TIMEOUT
1746 struct timespec now;
1747 struct timeval tval;
1748 int msecs;
1749
1750 status = gettimeofday( &tval, NULL );
1751 KMP_CHECK_SYSFAIL_ERRNO( "gettimeofday", status );
1752 TIMEVAL_TO_TIMESPEC( &tval, &now );
1753
1754 msecs = (4*__kmp_dflt_blocktime) + 200;
1755 now.tv_sec += msecs / 1000;
1756 now.tv_nsec += (msecs % 1000)*1000;
1757
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001758 KF_TRACE( 15, ( "__kmp_suspend_template: T#%d about to perform pthread_cond_timedwait\n",
Jim Cownie5e8470a2013-09-27 10:38:44 +00001759 th_gtid ) );
1760 status = pthread_cond_timedwait( &th->th.th_suspend_cv.c_cond, &th->th.th_suspend_mx.m_mutex, & now );
1761#else
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001762 KF_TRACE( 15, ( "__kmp_suspend_template: T#%d about to perform pthread_cond_wait\n",
Jim Cownie5e8470a2013-09-27 10:38:44 +00001763 th_gtid ) );
1764
1765 status = pthread_cond_wait( &th->th.th_suspend_cv.c_cond, &th->th.th_suspend_mx.m_mutex );
1766#endif
1767
1768 if ( (status != 0) && (status != EINTR) && (status != ETIMEDOUT) ) {
1769 KMP_SYSFAIL( "pthread_cond_wait", status );
1770 }
1771#ifdef KMP_DEBUG
1772 if (status == ETIMEDOUT) {
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001773 if ( flag->is_sleeping() ) {
1774 KF_TRACE( 100, ( "__kmp_suspend_template: T#%d timeout wakeup\n", th_gtid ) );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001775 } else {
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001776 KF_TRACE( 2, ( "__kmp_suspend_template: T#%d timeout wakeup, sleep bit not set!\n",
Jim Cownie5e8470a2013-09-27 10:38:44 +00001777 th_gtid ) );
1778 }
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001779 } else if ( flag->is_sleeping() ) {
1780 KF_TRACE( 100, ( "__kmp_suspend_template: T#%d spurious wakeup\n", th_gtid ) );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001781 }
1782#endif
Jim Cownie5e8470a2013-09-27 10:38:44 +00001783 } // while
1784
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001785 // Mark the thread as active again (if it was previous marked as inactive)
Jim Cownie5e8470a2013-09-27 10:38:44 +00001786 if ( deactivated ) {
1787 th->th.th_active = TRUE;
1788 if ( TCR_4(th->th.th_in_pool) ) {
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001789 KMP_TEST_THEN_INC32( (kmp_int32 *) &__kmp_thread_pool_active_nth );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001790 th->th.th_active_in_pool = TRUE;
1791 }
1792 }
1793 }
1794
1795#ifdef DEBUG_SUSPEND
1796 {
1797 char buffer[128];
1798 __kmp_print_cond( buffer, &th->th.th_suspend_cv);
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001799 __kmp_printf( "__kmp_suspend_template: T#%d has awakened: %s\n", th_gtid, buffer );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001800 }
1801#endif
1802
1803
1804 status = pthread_mutex_unlock( &th->th.th_suspend_mx.m_mutex );
1805 KMP_CHECK_SYSFAIL( "pthread_mutex_unlock", status );
1806
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001807 KF_TRACE( 30, ("__kmp_suspend_template: T#%d exit\n", th_gtid ) );
1808}
1809
1810void __kmp_suspend_32(int th_gtid, kmp_flag_32 *flag) {
1811 __kmp_suspend_template(th_gtid, flag);
1812}
1813void __kmp_suspend_64(int th_gtid, kmp_flag_64 *flag) {
1814 __kmp_suspend_template(th_gtid, flag);
1815}
1816void __kmp_suspend_oncore(int th_gtid, kmp_flag_oncore *flag) {
1817 __kmp_suspend_template(th_gtid, flag);
Jim Cownie5e8470a2013-09-27 10:38:44 +00001818}
1819
1820
1821/* This routine signals the thread specified by target_gtid to wake up
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001822 * after setting the sleep bit indicated by the flag argument to FALSE.
1823 * The target thread must already have called __kmp_suspend_template()
Jim Cownie5e8470a2013-09-27 10:38:44 +00001824 */
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001825template <class C>
1826static inline void __kmp_resume_template( int target_gtid, C *flag )
Jim Cownie5e8470a2013-09-27 10:38:44 +00001827{
1828 kmp_info_t *th = __kmp_threads[target_gtid];
1829 int status;
Jim Cownie5e8470a2013-09-27 10:38:44 +00001830
1831#ifdef KMP_DEBUG
1832 int gtid = TCR_4(__kmp_init_gtid) ? __kmp_get_gtid() : -1;
1833#endif
1834
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001835 KF_TRACE( 30, ( "__kmp_resume_template: T#%d wants to wakeup T#%d enter\n", gtid, target_gtid ) );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001836 KMP_DEBUG_ASSERT( gtid != target_gtid );
1837
1838 __kmp_suspend_initialize_thread( th );
1839
1840 status = pthread_mutex_lock( &th->th.th_suspend_mx.m_mutex );
1841 KMP_CHECK_SYSFAIL( "pthread_mutex_lock", status );
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001842
1843 if (!flag) {
1844 flag = (C *)th->th.th_sleep_loc;
1845 }
1846
1847 if (!flag) {
1848 KF_TRACE( 5, ( "__kmp_resume_template: T#%d exiting, thread T#%d already awake: flag(%p)\n",
1849 gtid, target_gtid, NULL ) );
1850 status = pthread_mutex_unlock( &th->th.th_suspend_mx.m_mutex );
1851 KMP_CHECK_SYSFAIL( "pthread_mutex_unlock", status );
1852 return;
1853 }
1854 else {
1855 typename C::flag_t old_spin = flag->unset_sleeping();
1856 if ( ! flag->is_sleeping_val(old_spin) ) {
1857 KF_TRACE( 5, ( "__kmp_resume_template: T#%d exiting, thread T#%d already awake: flag(%p): "
1858 "%u => %u\n",
1859 gtid, target_gtid, flag->get(), old_spin, *flag->get() ) );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001860
1861 status = pthread_mutex_unlock( &th->th.th_suspend_mx.m_mutex );
1862 KMP_CHECK_SYSFAIL( "pthread_mutex_unlock", status );
1863 return;
1864 }
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001865 KF_TRACE( 5, ( "__kmp_resume_template: T#%d about to wakeup T#%d, reset sleep bit for flag's loc(%p): "
1866 "%u => %u\n",
1867 gtid, target_gtid, flag->get(), old_spin, *flag->get() ) );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001868 }
1869 TCW_PTR(th->th.th_sleep_loc, NULL);
1870
Jim Cownie5e8470a2013-09-27 10:38:44 +00001871
1872#ifdef DEBUG_SUSPEND
1873 {
1874 char buffer[128];
1875 __kmp_print_cond( buffer, &th->th.th_suspend_cv );
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001876 __kmp_printf( "__kmp_resume_template: T#%d resuming T#%d: %s\n", gtid, target_gtid, buffer );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001877 }
1878#endif
1879
1880
1881 status = pthread_cond_signal( &th->th.th_suspend_cv.c_cond );
1882 KMP_CHECK_SYSFAIL( "pthread_cond_signal", status );
1883 status = pthread_mutex_unlock( &th->th.th_suspend_mx.m_mutex );
1884 KMP_CHECK_SYSFAIL( "pthread_mutex_unlock", status );
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001885 KF_TRACE( 30, ( "__kmp_resume_template: T#%d exiting after signaling wake up for T#%d\n",
Jim Cownie5e8470a2013-09-27 10:38:44 +00001886 gtid, target_gtid ) );
1887}
1888
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001889void __kmp_resume_32(int target_gtid, kmp_flag_32 *flag) {
1890 __kmp_resume_template(target_gtid, flag);
1891}
1892void __kmp_resume_64(int target_gtid, kmp_flag_64 *flag) {
1893 __kmp_resume_template(target_gtid, flag);
1894}
1895void __kmp_resume_oncore(int target_gtid, kmp_flag_oncore *flag) {
1896 __kmp_resume_template(target_gtid, flag);
1897}
1898
Jim Cownie07ea89f2014-09-03 11:10:54 +00001899void
1900__kmp_resume_monitor()
1901{
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001902 KMP_TIME_BLOCK(USER_resume);
Jim Cownie07ea89f2014-09-03 11:10:54 +00001903 int status;
1904#ifdef KMP_DEBUG
1905 int gtid = TCR_4(__kmp_init_gtid) ? __kmp_get_gtid() : -1;
1906 KF_TRACE( 30, ( "__kmp_resume_monitor: T#%d wants to wakeup T#%d enter\n",
1907 gtid, KMP_GTID_MONITOR ) );
1908 KMP_DEBUG_ASSERT( gtid != KMP_GTID_MONITOR );
1909#endif
1910 status = pthread_mutex_lock( &__kmp_wait_mx.m_mutex );
1911 KMP_CHECK_SYSFAIL( "pthread_mutex_lock", status );
1912#ifdef DEBUG_SUSPEND
1913 {
1914 char buffer[128];
1915 __kmp_print_cond( buffer, &__kmp_wait_cv.c_cond );
1916 __kmp_printf( "__kmp_resume_monitor: T#%d resuming T#%d: %s\n", gtid, KMP_GTID_MONITOR, buffer );
1917 }
1918#endif
1919 status = pthread_cond_signal( &__kmp_wait_cv.c_cond );
1920 KMP_CHECK_SYSFAIL( "pthread_cond_signal", status );
1921 status = pthread_mutex_unlock( &__kmp_wait_mx.m_mutex );
1922 KMP_CHECK_SYSFAIL( "pthread_mutex_unlock", status );
1923 KF_TRACE( 30, ( "__kmp_resume_monitor: T#%d exiting after signaling wake up for T#%d\n",
1924 gtid, KMP_GTID_MONITOR ) );
1925}
Jim Cownie5e8470a2013-09-27 10:38:44 +00001926
1927/* ------------------------------------------------------------------------ */
1928/* ------------------------------------------------------------------------ */
1929
1930void
1931__kmp_yield( int cond )
1932{
1933 if (cond && __kmp_yielding_on) {
1934 sched_yield();
1935 }
1936}
1937
1938/* ------------------------------------------------------------------------ */
1939/* ------------------------------------------------------------------------ */
1940
1941void
1942__kmp_gtid_set_specific( int gtid )
1943{
1944 int status;
1945 KMP_ASSERT( __kmp_init_runtime );
Jim Cownie4cc4bb42014-10-07 16:25:50 +00001946 status = pthread_setspecific( __kmp_gtid_threadprivate_key, (void*)(intptr_t)(gtid+1) );
Jim Cownie5e8470a2013-09-27 10:38:44 +00001947 KMP_CHECK_SYSFAIL( "pthread_setspecific", status );
1948}
1949
1950int
1951__kmp_gtid_get_specific()
1952{
1953 int gtid;
1954 if ( !__kmp_init_runtime ) {
1955 KA_TRACE( 50, ("__kmp_get_specific: runtime shutdown, returning KMP_GTID_SHUTDOWN\n" ) );
1956 return KMP_GTID_SHUTDOWN;
1957 }
1958 gtid = (int)(size_t)pthread_getspecific( __kmp_gtid_threadprivate_key );
1959 if ( gtid == 0 ) {
1960 gtid = KMP_GTID_DNE;
1961 }
1962 else {
1963 gtid--;
1964 }
1965 KA_TRACE( 50, ("__kmp_gtid_get_specific: key:%d gtid:%d\n",
1966 __kmp_gtid_threadprivate_key, gtid ));
1967 return gtid;
1968}
1969
1970/* ------------------------------------------------------------------------ */
1971/* ------------------------------------------------------------------------ */
1972
1973double
1974__kmp_read_cpu_time( void )
1975{
1976 /*clock_t t;*/
1977 struct tms buffer;
1978
1979 /*t =*/ times( & buffer );
1980
1981 return (buffer.tms_utime + buffer.tms_cutime) / (double) CLOCKS_PER_SEC;
1982}
1983
1984int
1985__kmp_read_system_info( struct kmp_sys_info *info )
1986{
1987 int status;
1988 struct rusage r_usage;
1989
1990 memset( info, 0, sizeof( *info ) );
1991
1992 status = getrusage( RUSAGE_SELF, &r_usage);
1993 KMP_CHECK_SYSFAIL_ERRNO( "getrusage", status );
1994
1995 info->maxrss = r_usage.ru_maxrss; /* the maximum resident set size utilized (in kilobytes) */
1996 info->minflt = r_usage.ru_minflt; /* the number of page faults serviced without any I/O */
1997 info->majflt = r_usage.ru_majflt; /* the number of page faults serviced that required I/O */
1998 info->nswap = r_usage.ru_nswap; /* the number of times a process was "swapped" out of memory */
1999 info->inblock = r_usage.ru_inblock; /* the number of times the file system had to perform input */
2000 info->oublock = r_usage.ru_oublock; /* the number of times the file system had to perform output */
2001 info->nvcsw = r_usage.ru_nvcsw; /* the number of times a context switch was voluntarily */
2002 info->nivcsw = r_usage.ru_nivcsw; /* the number of times a context switch was forced */
2003
2004 return (status != 0);
2005}
2006
2007/* ------------------------------------------------------------------------ */
2008/* ------------------------------------------------------------------------ */
2009
2010
2011void
2012__kmp_read_system_time( double *delta )
2013{
2014 double t_ns;
2015 struct timeval tval;
2016 struct timespec stop;
2017 int status;
2018
2019 status = gettimeofday( &tval, NULL );
2020 KMP_CHECK_SYSFAIL_ERRNO( "gettimeofday", status );
2021 TIMEVAL_TO_TIMESPEC( &tval, &stop );
2022 t_ns = TS2NS(stop) - TS2NS(__kmp_sys_timer_data.start);
2023 *delta = (t_ns * 1e-9);
2024}
2025
2026void
2027__kmp_clear_system_time( void )
2028{
2029 struct timeval tval;
2030 int status;
2031 status = gettimeofday( &tval, NULL );
2032 KMP_CHECK_SYSFAIL_ERRNO( "gettimeofday", status );
2033 TIMEVAL_TO_TIMESPEC( &tval, &__kmp_sys_timer_data.start );
2034}
2035
2036/* ------------------------------------------------------------------------ */
2037/* ------------------------------------------------------------------------ */
2038
2039#ifdef BUILD_TV
2040
2041void
2042__kmp_tv_threadprivate_store( kmp_info_t *th, void *global_addr, void *thread_addr )
2043{
2044 struct tv_data *p;
2045
2046 p = (struct tv_data *) __kmp_allocate( sizeof( *p ) );
2047
2048 p->u.tp.global_addr = global_addr;
2049 p->u.tp.thread_addr = thread_addr;
2050
2051 p->type = (void *) 1;
2052
2053 p->next = th->th.th_local.tv_data;
2054 th->th.th_local.tv_data = p;
2055
2056 if ( p->next == 0 ) {
2057 int rc = pthread_setspecific( __kmp_tv_key, p );
2058 KMP_CHECK_SYSFAIL( "pthread_setspecific", rc );
2059 }
2060}
2061
2062#endif /* BUILD_TV */
2063
2064/* ------------------------------------------------------------------------ */
2065/* ------------------------------------------------------------------------ */
2066
2067static int
2068__kmp_get_xproc( void ) {
2069
2070 int r = 0;
2071
2072 #if KMP_OS_LINUX
2073
2074 r = sysconf( _SC_NPROCESSORS_ONLN );
2075
2076 #elif KMP_OS_DARWIN
2077
2078 // Bug C77011 High "OpenMP Threads and number of active cores".
2079
2080 // Find the number of available CPUs.
2081 kern_return_t rc;
2082 host_basic_info_data_t info;
2083 mach_msg_type_number_t num = HOST_BASIC_INFO_COUNT;
2084 rc = host_info( mach_host_self(), HOST_BASIC_INFO, (host_info_t) & info, & num );
2085 if ( rc == 0 && num == HOST_BASIC_INFO_COUNT ) {
2086 // Cannot use KA_TRACE() here because this code works before trace support is
2087 // initialized.
2088 r = info.avail_cpus;
2089 } else {
2090 KMP_WARNING( CantGetNumAvailCPU );
2091 KMP_INFORM( AssumedNumCPU );
2092 }; // if
2093
Alp Toker763b9392014-02-28 09:42:41 +00002094 #elif KMP_OS_FREEBSD
2095
2096 int mib[] = { CTL_HW, HW_NCPU };
2097 size_t len = sizeof( r );
2098 if ( sysctl( mib, 2, &r, &len, NULL, 0 ) < 0 ) {
Jim Cownie4cc4bb42014-10-07 16:25:50 +00002099 r = 0;
2100 KMP_WARNING( CantGetNumAvailCPU );
2101 KMP_INFORM( AssumedNumCPU );
Alp Toker763b9392014-02-28 09:42:41 +00002102 }
2103
Jim Cownie5e8470a2013-09-27 10:38:44 +00002104 #else
2105
2106 #error "Unknown or unsupported OS."
2107
2108 #endif
2109
2110 return r > 0 ? r : 2; /* guess value of 2 if OS told us 0 */
2111
2112} // __kmp_get_xproc
2113
Jim Cownie181b4bb2013-12-23 17:28:57 +00002114int
2115__kmp_read_from_file( char const *path, char const *format, ... )
2116{
2117 int result;
2118 va_list args;
Jim Cownie5e8470a2013-09-27 10:38:44 +00002119
Jim Cownie181b4bb2013-12-23 17:28:57 +00002120 va_start(args, format);
2121 FILE *f = fopen(path, "rb");
2122 if ( f == NULL )
2123 return 0;
2124 result = vfscanf(f, format, args);
2125 fclose(f);
Jim Cownie5e8470a2013-09-27 10:38:44 +00002126
Jim Cownie5e8470a2013-09-27 10:38:44 +00002127 return result;
Jim Cownie181b4bb2013-12-23 17:28:57 +00002128}
Jim Cownie5e8470a2013-09-27 10:38:44 +00002129
2130void
2131__kmp_runtime_initialize( void )
2132{
2133 int status;
2134 pthread_mutexattr_t mutex_attr;
2135 pthread_condattr_t cond_attr;
2136
2137 if ( __kmp_init_runtime ) {
2138 return;
2139 }; // if
2140
2141 #if ( KMP_ARCH_X86 || KMP_ARCH_X86_64 )
2142 if ( ! __kmp_cpuinfo.initialized ) {
2143 __kmp_query_cpuid( &__kmp_cpuinfo );
2144 }; // if
2145 #endif /* KMP_ARCH_X86 || KMP_ARCH_X86_64 */
2146
Jim Cownie5e8470a2013-09-27 10:38:44 +00002147 __kmp_xproc = __kmp_get_xproc();
2148
2149 if ( sysconf( _SC_THREADS ) ) {
2150
2151 /* Query the maximum number of threads */
2152 __kmp_sys_max_nth = sysconf( _SC_THREAD_THREADS_MAX );
2153 if ( __kmp_sys_max_nth == -1 ) {
2154 /* Unlimited threads for NPTL */
2155 __kmp_sys_max_nth = INT_MAX;
2156 }
2157 else if ( __kmp_sys_max_nth <= 1 ) {
2158 /* Can't tell, just use PTHREAD_THREADS_MAX */
2159 __kmp_sys_max_nth = KMP_MAX_NTH;
2160 }
2161
2162 /* Query the minimum stack size */
2163 __kmp_sys_min_stksize = sysconf( _SC_THREAD_STACK_MIN );
2164 if ( __kmp_sys_min_stksize <= 1 ) {
2165 __kmp_sys_min_stksize = KMP_MIN_STKSIZE;
2166 }
2167 }
2168
2169 /* Set up minimum number of threads to switch to TLS gtid */
2170 __kmp_tls_gtid_min = KMP_TLS_GTID_MIN;
2171
2172
2173 #ifdef BUILD_TV
2174 {
2175 int rc = pthread_key_create( & __kmp_tv_key, 0 );
2176 KMP_CHECK_SYSFAIL( "pthread_key_create", rc );
2177 }
2178 #endif
2179
2180 status = pthread_key_create( &__kmp_gtid_threadprivate_key, __kmp_internal_end_dest );
2181 KMP_CHECK_SYSFAIL( "pthread_key_create", status );
2182 status = pthread_mutexattr_init( & mutex_attr );
2183 KMP_CHECK_SYSFAIL( "pthread_mutexattr_init", status );
2184 status = pthread_mutex_init( & __kmp_wait_mx.m_mutex, & mutex_attr );
2185 KMP_CHECK_SYSFAIL( "pthread_mutex_init", status );
2186 status = pthread_condattr_init( & cond_attr );
2187 KMP_CHECK_SYSFAIL( "pthread_condattr_init", status );
2188 status = pthread_cond_init( & __kmp_wait_cv.c_cond, & cond_attr );
2189 KMP_CHECK_SYSFAIL( "pthread_cond_init", status );
2190#if USE_ITT_BUILD
2191 __kmp_itt_initialize();
2192#endif /* USE_ITT_BUILD */
2193
2194 __kmp_init_runtime = TRUE;
2195}
2196
2197void
2198__kmp_runtime_destroy( void )
2199{
2200 int status;
2201
2202 if ( ! __kmp_init_runtime ) {
2203 return; // Nothing to do.
2204 };
2205
2206#if USE_ITT_BUILD
2207 __kmp_itt_destroy();
2208#endif /* USE_ITT_BUILD */
2209
2210 status = pthread_key_delete( __kmp_gtid_threadprivate_key );
2211 KMP_CHECK_SYSFAIL( "pthread_key_delete", status );
2212 #ifdef BUILD_TV
2213 status = pthread_key_delete( __kmp_tv_key );
2214 KMP_CHECK_SYSFAIL( "pthread_key_delete", status );
2215 #endif
2216
2217 status = pthread_mutex_destroy( & __kmp_wait_mx.m_mutex );
2218 if ( status != 0 && status != EBUSY ) {
2219 KMP_SYSFAIL( "pthread_mutex_destroy", status );
2220 }
2221 status = pthread_cond_destroy( & __kmp_wait_cv.c_cond );
2222 if ( status != 0 && status != EBUSY ) {
2223 KMP_SYSFAIL( "pthread_cond_destroy", status );
2224 }
Alp Toker763b9392014-02-28 09:42:41 +00002225 #if KMP_AFFINITY_SUPPORTED
Jim Cownie5e8470a2013-09-27 10:38:44 +00002226 __kmp_affinity_uninitialize();
Jim Cownie5e8470a2013-09-27 10:38:44 +00002227 #endif
2228
2229 __kmp_init_runtime = FALSE;
2230}
2231
2232
2233/* Put the thread to sleep for a time period */
2234/* NOTE: not currently used anywhere */
2235void
2236__kmp_thread_sleep( int millis )
2237{
2238 sleep( ( millis + 500 ) / 1000 );
2239}
2240
2241/* Calculate the elapsed wall clock time for the user */
2242void
2243__kmp_elapsed( double *t )
2244{
2245 int status;
2246# ifdef FIX_SGI_CLOCK
2247 struct timespec ts;
2248
2249 status = clock_gettime( CLOCK_PROCESS_CPUTIME_ID, &ts );
2250 KMP_CHECK_SYSFAIL_ERRNO( "clock_gettime", status );
2251 *t = (double) ts.tv_nsec * (1.0 / (double) NSEC_PER_SEC) +
2252 (double) ts.tv_sec;
2253# else
2254 struct timeval tv;
2255
2256 status = gettimeofday( & tv, NULL );
2257 KMP_CHECK_SYSFAIL_ERRNO( "gettimeofday", status );
2258 *t = (double) tv.tv_usec * (1.0 / (double) USEC_PER_SEC) +
2259 (double) tv.tv_sec;
2260# endif
2261}
2262
2263/* Calculate the elapsed wall clock tick for the user */
2264void
2265__kmp_elapsed_tick( double *t )
2266{
2267 *t = 1 / (double) CLOCKS_PER_SEC;
2268}
2269
2270/*
2271 Determine whether the given address is mapped into the current address space.
2272*/
2273
2274int
2275__kmp_is_address_mapped( void * addr ) {
2276
2277 int found = 0;
2278 int rc;
2279
2280 #if KMP_OS_LINUX
2281
2282 /*
2283 On Linux* OS, read the /proc/<pid>/maps pseudo-file to get all the address ranges mapped
2284 into the address space.
2285 */
2286
2287 char * name = __kmp_str_format( "/proc/%d/maps", getpid() );
2288 FILE * file = NULL;
2289
2290 file = fopen( name, "r" );
2291 KMP_ASSERT( file != NULL );
2292
2293 for ( ; ; ) {
2294
2295 void * beginning = NULL;
2296 void * ending = NULL;
2297 char perms[ 5 ];
2298
2299 rc = fscanf( file, "%p-%p %4s %*[^\n]\n", & beginning, & ending, perms );
2300 if ( rc == EOF ) {
2301 break;
2302 }; // if
2303 KMP_ASSERT( rc == 3 && strlen( perms ) == 4 ); // Make sure all fields are read.
2304
2305 // Ending address is not included in the region, but beginning is.
2306 if ( ( addr >= beginning ) && ( addr < ending ) ) {
2307 perms[ 2 ] = 0; // 3th and 4th character does not matter.
2308 if ( strcmp( perms, "rw" ) == 0 ) {
2309 // Memory we are looking for should be readable and writable.
2310 found = 1;
2311 }; // if
2312 break;
2313 }; // if
2314
2315 }; // forever
2316
2317 // Free resources.
2318 fclose( file );
2319 KMP_INTERNAL_FREE( name );
2320
2321 #elif KMP_OS_DARWIN
2322
2323 /*
2324 On OS X*, /proc pseudo filesystem is not available. Try to read memory using vm
2325 interface.
2326 */
2327
2328 int buffer;
2329 vm_size_t count;
2330 rc =
2331 vm_read_overwrite(
2332 mach_task_self(), // Task to read memory of.
2333 (vm_address_t)( addr ), // Address to read from.
2334 1, // Number of bytes to be read.
2335 (vm_address_t)( & buffer ), // Address of buffer to save read bytes in.
2336 & count // Address of var to save number of read bytes in.
2337 );
2338 if ( rc == 0 ) {
2339 // Memory successfully read.
2340 found = 1;
2341 }; // if
2342
Alp Toker763b9392014-02-28 09:42:41 +00002343 #elif KMP_OS_FREEBSD
2344
Jim Cownie4cc4bb42014-10-07 16:25:50 +00002345 // FIXME(FreeBSD*): Implement this
Alp Toker763b9392014-02-28 09:42:41 +00002346 found = 1;
2347
Jim Cownie5e8470a2013-09-27 10:38:44 +00002348 #else
2349
2350 #error "Unknown or unsupported OS"
2351
2352 #endif
2353
2354 return found;
2355
2356} // __kmp_is_address_mapped
2357
2358#ifdef USE_LOAD_BALANCE
2359
2360
2361# if KMP_OS_DARWIN
2362
2363// The function returns the rounded value of the system load average
2364// during given time interval which depends on the value of
2365// __kmp_load_balance_interval variable (default is 60 sec, other values
2366// may be 300 sec or 900 sec).
2367// It returns -1 in case of error.
2368int
2369__kmp_get_load_balance( int max )
2370{
2371 double averages[3];
2372 int ret_avg = 0;
2373
2374 int res = getloadavg( averages, 3 );
2375
2376 //Check __kmp_load_balance_interval to determine which of averages to use.
2377 // getloadavg() may return the number of samples less than requested that is
2378 // less than 3.
2379 if ( __kmp_load_balance_interval < 180 && ( res >= 1 ) ) {
2380 ret_avg = averages[0];// 1 min
2381 } else if ( ( __kmp_load_balance_interval >= 180
2382 && __kmp_load_balance_interval < 600 ) && ( res >= 2 ) ) {
2383 ret_avg = averages[1];// 5 min
2384 } else if ( ( __kmp_load_balance_interval >= 600 ) && ( res == 3 ) ) {
2385 ret_avg = averages[2];// 15 min
Alp Toker8f2d3f02014-02-24 10:40:15 +00002386 } else {// Error occurred
Jim Cownie5e8470a2013-09-27 10:38:44 +00002387 return -1;
2388 }
2389
2390 return ret_avg;
2391}
2392
2393# else // Linux* OS
2394
2395// The fuction returns number of running (not sleeping) threads, or -1 in case of error.
2396// Error could be reported if Linux* OS kernel too old (without "/proc" support).
2397// Counting running threads stops if max running threads encountered.
2398int
2399__kmp_get_load_balance( int max )
2400{
2401 static int permanent_error = 0;
2402
2403 static int glb_running_threads = 0; /* Saved count of the running threads for the thread balance algortihm */
2404 static double glb_call_time = 0; /* Thread balance algorithm call time */
2405
2406 int running_threads = 0; // Number of running threads in the system.
2407
2408 DIR * proc_dir = NULL; // Handle of "/proc/" directory.
2409 struct dirent * proc_entry = NULL;
2410
2411 kmp_str_buf_t task_path; // "/proc/<pid>/task/<tid>/" path.
2412 DIR * task_dir = NULL; // Handle of "/proc/<pid>/task/<tid>/" directory.
2413 struct dirent * task_entry = NULL;
2414 int task_path_fixed_len;
2415
2416 kmp_str_buf_t stat_path; // "/proc/<pid>/task/<tid>/stat" path.
2417 int stat_file = -1;
2418 int stat_path_fixed_len;
2419
2420 int total_processes = 0; // Total number of processes in system.
2421 int total_threads = 0; // Total number of threads in system.
2422
2423 double call_time = 0.0;
2424
2425 __kmp_str_buf_init( & task_path );
2426 __kmp_str_buf_init( & stat_path );
2427
2428 __kmp_elapsed( & call_time );
2429
2430 if ( glb_call_time &&
2431 ( call_time - glb_call_time < __kmp_load_balance_interval ) ) {
2432 running_threads = glb_running_threads;
2433 goto finish;
2434 }
2435
2436 glb_call_time = call_time;
2437
2438 // Do not spend time on scanning "/proc/" if we have a permanent error.
2439 if ( permanent_error ) {
2440 running_threads = -1;
2441 goto finish;
2442 }; // if
2443
2444 if ( max <= 0 ) {
2445 max = INT_MAX;
2446 }; // if
2447
2448 // Open "/proc/" directory.
2449 proc_dir = opendir( "/proc" );
2450 if ( proc_dir == NULL ) {
2451 // Cannot open "/prroc/". Probably the kernel does not support it. Return an error now and
2452 // in subsequent calls.
2453 running_threads = -1;
2454 permanent_error = 1;
2455 goto finish;
2456 }; // if
2457
2458 // Initialize fixed part of task_path. This part will not change.
2459 __kmp_str_buf_cat( & task_path, "/proc/", 6 );
2460 task_path_fixed_len = task_path.used; // Remember number of used characters.
2461
2462 proc_entry = readdir( proc_dir );
2463 while ( proc_entry != NULL ) {
2464 // Proc entry is a directory and name starts with a digit. Assume it is a process'
2465 // directory.
2466 if ( proc_entry->d_type == DT_DIR && isdigit( proc_entry->d_name[ 0 ] ) ) {
2467
2468 ++ total_processes;
2469 // Make sure init process is the very first in "/proc", so we can replace
2470 // strcmp( proc_entry->d_name, "1" ) == 0 with simpler total_processes == 1.
2471 // We are going to check that total_processes == 1 => d_name == "1" is true (where
2472 // "=>" is implication). Since C++ does not have => operator, let us replace it with its
2473 // equivalent: a => b == ! a || b.
2474 KMP_DEBUG_ASSERT( total_processes != 1 || strcmp( proc_entry->d_name, "1" ) == 0 );
2475
2476 // Construct task_path.
2477 task_path.used = task_path_fixed_len; // Reset task_path to "/proc/".
2478 __kmp_str_buf_cat( & task_path, proc_entry->d_name, strlen( proc_entry->d_name ) );
2479 __kmp_str_buf_cat( & task_path, "/task", 5 );
2480
2481 task_dir = opendir( task_path.str );
2482 if ( task_dir == NULL ) {
2483 // Process can finish between reading "/proc/" directory entry and opening process'
2484 // "task/" directory. So, in general case we should not complain, but have to skip
2485 // this process and read the next one.
2486 // But on systems with no "task/" support we will spend lot of time to scan "/proc/"
2487 // tree again and again without any benefit. "init" process (its pid is 1) should
2488 // exist always, so, if we cannot open "/proc/1/task/" directory, it means "task/"
2489 // is not supported by kernel. Report an error now and in the future.
2490 if ( strcmp( proc_entry->d_name, "1" ) == 0 ) {
2491 running_threads = -1;
2492 permanent_error = 1;
2493 goto finish;
2494 }; // if
2495 } else {
2496 // Construct fixed part of stat file path.
2497 __kmp_str_buf_clear( & stat_path );
2498 __kmp_str_buf_cat( & stat_path, task_path.str, task_path.used );
2499 __kmp_str_buf_cat( & stat_path, "/", 1 );
2500 stat_path_fixed_len = stat_path.used;
2501
2502 task_entry = readdir( task_dir );
2503 while ( task_entry != NULL ) {
2504 // It is a directory and name starts with a digit.
2505 if ( proc_entry->d_type == DT_DIR && isdigit( task_entry->d_name[ 0 ] ) ) {
2506
2507 ++ total_threads;
2508
2509 // Consruct complete stat file path. Easiest way would be:
2510 // __kmp_str_buf_print( & stat_path, "%s/%s/stat", task_path.str, task_entry->d_name );
2511 // but seriae of __kmp_str_buf_cat works a bit faster.
2512 stat_path.used = stat_path_fixed_len; // Reset stat path to its fixed part.
2513 __kmp_str_buf_cat( & stat_path, task_entry->d_name, strlen( task_entry->d_name ) );
2514 __kmp_str_buf_cat( & stat_path, "/stat", 5 );
2515
2516 // Note: Low-level API (open/read/close) is used. High-level API
2517 // (fopen/fclose) works ~ 30 % slower.
2518 stat_file = open( stat_path.str, O_RDONLY );
2519 if ( stat_file == -1 ) {
2520 // We cannot report an error because task (thread) can terminate just
2521 // before reading this file.
2522 } else {
2523 /*
2524 Content of "stat" file looks like:
2525
2526 24285 (program) S ...
2527
2528 It is a single line (if program name does not include fanny
2529 symbols). First number is a thread id, then name of executable file
2530 name in paretheses, then state of the thread. We need just thread
2531 state.
2532
2533 Good news: Length of program name is 15 characters max. Longer
2534 names are truncated.
2535
2536 Thus, we need rather short buffer: 15 chars for program name +
2537 2 parenthesis, + 3 spaces + ~7 digits of pid = 37.
2538
2539 Bad news: Program name may contain special symbols like space,
2540 closing parenthesis, or even new line. This makes parsing "stat"
2541 file not 100 % reliable. In case of fanny program names parsing
2542 may fail (report incorrect thread state).
2543
2544 Parsing "status" file looks more promissing (due to different
2545 file structure and escaping special symbols) but reading and
2546 parsing of "status" file works slower.
2547
2548 -- ln
2549 */
2550 char buffer[ 65 ];
2551 int len;
2552 len = read( stat_file, buffer, sizeof( buffer ) - 1 );
2553 if ( len >= 0 ) {
2554 buffer[ len ] = 0;
2555 // Using scanf:
2556 // sscanf( buffer, "%*d (%*s) %c ", & state );
2557 // looks very nice, but searching for a closing parenthesis works a
2558 // bit faster.
2559 char * close_parent = strstr( buffer, ") " );
2560 if ( close_parent != NULL ) {
2561 char state = * ( close_parent + 2 );
2562 if ( state == 'R' ) {
2563 ++ running_threads;
2564 if ( running_threads >= max ) {
2565 goto finish;
2566 }; // if
2567 }; // if
2568 }; // if
2569 }; // if
2570 close( stat_file );
2571 stat_file = -1;
2572 }; // if
2573 }; // if
2574 task_entry = readdir( task_dir );
2575 }; // while
2576 closedir( task_dir );
2577 task_dir = NULL;
2578 }; // if
2579 }; // if
2580 proc_entry = readdir( proc_dir );
2581 }; // while
2582
2583 //
2584 // There _might_ be a timing hole where the thread executing this
2585 // code get skipped in the load balance, and running_threads is 0.
2586 // Assert in the debug builds only!!!
2587 //
2588 KMP_DEBUG_ASSERT( running_threads > 0 );
2589 if ( running_threads <= 0 ) {
2590 running_threads = 1;
2591 }
2592
2593 finish: // Clean up and exit.
2594 if ( proc_dir != NULL ) {
2595 closedir( proc_dir );
2596 }; // if
2597 __kmp_str_buf_free( & task_path );
2598 if ( task_dir != NULL ) {
2599 closedir( task_dir );
2600 }; // if
2601 __kmp_str_buf_free( & stat_path );
2602 if ( stat_file != -1 ) {
2603 close( stat_file );
2604 }; // if
2605
2606 glb_running_threads = running_threads;
2607
2608 return running_threads;
2609
2610} // __kmp_get_load_balance
2611
2612# endif // KMP_OS_DARWIN
2613
2614#endif // USE_LOAD_BALANCE
2615
Jim Cownie181b4bb2013-12-23 17:28:57 +00002616
Andrey Churbanovcbda8682015-01-13 14:43:35 +00002617#if KMP_COMPILER_GCC && !(KMP_ARCH_X86 || KMP_ARCH_X86_64 || KMP_ARCH_PPC64 || KMP_ARCH_AARCH64)
Jim Cownie181b4bb2013-12-23 17:28:57 +00002618
2619int __kmp_invoke_microtask( microtask_t pkfn, int gtid, int tid, int argc,
2620 void *p_argv[] )
2621{
2622 int argc_full = argc + 2;
2623 int i;
2624 ffi_cif cif;
2625 ffi_type *types[argc_full];
2626 void *args[argc_full];
2627 void *idp[2];
2628
2629 /* We're only passing pointers to the target. */
2630 for (i = 0; i < argc_full; i++)
2631 types[i] = &ffi_type_pointer;
2632
2633 /* Ugly double-indirection, but that's how it goes... */
2634 idp[0] = &gtid;
2635 idp[1] = &tid;
2636 args[0] = &idp[0];
2637 args[1] = &idp[1];
2638
2639 for (i = 0; i < argc; i++)
2640 args[2 + i] = &p_argv[i];
2641
2642 if (ffi_prep_cif(&cif, FFI_DEFAULT_ABI, argc_full,
2643 &ffi_type_void, types) != FFI_OK)
2644 abort();
2645
2646 ffi_call(&cif, (void (*)(void))pkfn, NULL, args);
2647
2648 return 1;
2649}
2650
Jim Cownie3051f972014-08-07 10:12:54 +00002651#endif // KMP_COMPILER_GCC && !(KMP_ARCH_X86 || KMP_ARCH_X86_64 || KMP_ARCH_PPC64)
2652
Andrey Churbanovcbda8682015-01-13 14:43:35 +00002653#if KMP_ARCH_PPC64 || KMP_ARCH_AARCH64
Jim Cownie3051f972014-08-07 10:12:54 +00002654
2655// we really only need the case with 1 argument, because CLANG always build
2656// a struct of pointers to shared variables referenced in the outlined function
2657int
2658__kmp_invoke_microtask( microtask_t pkfn,
2659 int gtid, int tid,
2660 int argc, void *p_argv[] ) {
2661 switch (argc) {
2662 default:
2663 fprintf(stderr, "Too many args to microtask: %d!\n", argc);
2664 fflush(stderr);
2665 exit(-1);
2666 case 0:
2667 (*pkfn)(&gtid, &tid);
2668 break;
2669 case 1:
2670 (*pkfn)(&gtid, &tid, p_argv[0]);
2671 break;
2672 case 2:
2673 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1]);
2674 break;
2675 case 3:
2676 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2]);
2677 break;
2678 case 4:
2679 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3]);
2680 break;
2681 case 5:
2682 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3], p_argv[4]);
2683 break;
2684 case 6:
2685 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3], p_argv[4],
2686 p_argv[5]);
2687 break;
2688 case 7:
2689 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3], p_argv[4],
2690 p_argv[5], p_argv[6]);
2691 break;
2692 case 8:
2693 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3], p_argv[4],
2694 p_argv[5], p_argv[6], p_argv[7]);
2695 break;
2696 case 9:
2697 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3], p_argv[4],
2698 p_argv[5], p_argv[6], p_argv[7], p_argv[8]);
2699 break;
2700 case 10:
2701 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3], p_argv[4],
2702 p_argv[5], p_argv[6], p_argv[7], p_argv[8], p_argv[9]);
2703 break;
2704 case 11:
2705 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3], p_argv[4],
2706 p_argv[5], p_argv[6], p_argv[7], p_argv[8], p_argv[9], p_argv[10]);
2707 break;
2708 case 12:
2709 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3], p_argv[4],
2710 p_argv[5], p_argv[6], p_argv[7], p_argv[8], p_argv[9], p_argv[10],
2711 p_argv[11]);
2712 break;
2713 case 13:
2714 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3], p_argv[4],
2715 p_argv[5], p_argv[6], p_argv[7], p_argv[8], p_argv[9], p_argv[10],
2716 p_argv[11], p_argv[12]);
2717 break;
2718 case 14:
2719 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3], p_argv[4],
2720 p_argv[5], p_argv[6], p_argv[7], p_argv[8], p_argv[9], p_argv[10],
2721 p_argv[11], p_argv[12], p_argv[13]);
2722 break;
2723 case 15:
2724 (*pkfn)(&gtid, &tid, p_argv[0], p_argv[1], p_argv[2], p_argv[3], p_argv[4],
2725 p_argv[5], p_argv[6], p_argv[7], p_argv[8], p_argv[9], p_argv[10],
2726 p_argv[11], p_argv[12], p_argv[13], p_argv[14]);
2727 break;
2728 }
2729
2730 return 1;
2731}
2732
2733#endif
Jim Cownie181b4bb2013-12-23 17:28:57 +00002734
Jim Cownie5e8470a2013-09-27 10:38:44 +00002735// end of file //
2736