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Comparing libev/ev.c (file contents):
Revision 1.55 by root, Sun Nov 4 00:39:24 2007 UTC vs.
Revision 1.95 by root, Sun Nov 11 01:42:13 2007 UTC

26 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 26 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
27 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 27 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
28 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE 28 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
29 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 29 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
30 */ 30 */
31
32#ifdef __cplusplus
33extern "C" {
34#endif
35
31#ifndef EV_STANDALONE 36#ifndef EV_STANDALONE
32# include "config.h" 37# include "config.h"
38
39# if HAVE_CLOCK_GETTIME
40# define EV_USE_MONOTONIC 1
41# define EV_USE_REALTIME 1
42# endif
43
44# if HAVE_SELECT && HAVE_SYS_SELECT_H
45# define EV_USE_SELECT 1
46# endif
47
48# if HAVE_POLL && HAVE_POLL_H
49# define EV_USE_POLL 1
50# endif
51
52# if HAVE_EPOLL && HAVE_EPOLL_CTL && HAVE_SYS_EPOLL_H
53# define EV_USE_EPOLL 1
54# endif
55
56# if HAVE_KQUEUE && HAVE_SYS_EVENT_H && HAVE_SYS_QUEUE_H
57# define EV_USE_KQUEUE 1
58# endif
59
33#endif 60#endif
34 61
35#include <math.h> 62#include <math.h>
36#include <stdlib.h> 63#include <stdlib.h>
37#include <unistd.h>
38#include <fcntl.h> 64#include <fcntl.h>
39#include <signal.h>
40#include <stddef.h> 65#include <stddef.h>
41 66
42#include <stdio.h> 67#include <stdio.h>
43 68
44#include <assert.h> 69#include <assert.h>
45#include <errno.h> 70#include <errno.h>
46#include <sys/types.h> 71#include <sys/types.h>
72#include <time.h>
73
74#include <signal.h>
75
47#ifndef WIN32 76#ifndef WIN32
77# include <unistd.h>
78# include <sys/time.h>
48# include <sys/wait.h> 79# include <sys/wait.h>
49#endif 80#endif
50#include <sys/time.h>
51#include <time.h>
52
53/**/ 81/**/
54 82
55#ifndef EV_USE_MONOTONIC 83#ifndef EV_USE_MONOTONIC
56# define EV_USE_MONOTONIC 1 84# define EV_USE_MONOTONIC 1
57#endif 85#endif
58 86
59#ifndef EV_USE_SELECT 87#ifndef EV_USE_SELECT
60# define EV_USE_SELECT 1 88# define EV_USE_SELECT 1
61#endif 89#endif
62 90
63#ifndef EV_USEV_POLL 91#ifndef EV_USE_POLL
64# define EV_USEV_POLL 0 /* poll is usually slower than select, and not as well tested */ 92# define EV_USE_POLL 0 /* poll is usually slower than select, and not as well tested */
65#endif 93#endif
66 94
67#ifndef EV_USE_EPOLL 95#ifndef EV_USE_EPOLL
68# define EV_USE_EPOLL 0 96# define EV_USE_EPOLL 0
69#endif 97#endif
70 98
71#ifndef EV_USE_KQUEUE 99#ifndef EV_USE_KQUEUE
72# define EV_USE_KQUEUE 0 100# define EV_USE_KQUEUE 0
101#endif
102
103#ifndef EV_USE_WIN32
104# ifdef WIN32
105# define EV_USE_WIN32 0 /* it does not exist, use select */
106# undef EV_USE_SELECT
107# define EV_USE_SELECT 1
108# else
109# define EV_USE_WIN32 0
110# endif
73#endif 111#endif
74 112
75#ifndef EV_USE_REALTIME 113#ifndef EV_USE_REALTIME
76# define EV_USE_REALTIME 1 114# define EV_USE_REALTIME 1
77#endif 115#endif
93#define MIN_TIMEJUMP 1. /* minimum timejump that gets detected (if monotonic clock available) */ 131#define MIN_TIMEJUMP 1. /* minimum timejump that gets detected (if monotonic clock available) */
94#define MAX_BLOCKTIME 59.731 /* never wait longer than this time (to detect time jumps) */ 132#define MAX_BLOCKTIME 59.731 /* never wait longer than this time (to detect time jumps) */
95#define PID_HASHSIZE 16 /* size of pid hash table, must be power of two */ 133#define PID_HASHSIZE 16 /* size of pid hash table, must be power of two */
96/*#define CLEANUP_INTERVAL 300. /* how often to try to free memory and re-check fds */ 134/*#define CLEANUP_INTERVAL 300. /* how often to try to free memory and re-check fds */
97 135
136#ifdef EV_H
137# include EV_H
138#else
98#include "ev.h" 139# include "ev.h"
140#endif
99 141
100#if __GNUC__ >= 3 142#if __GNUC__ >= 3
101# define expect(expr,value) __builtin_expect ((expr),(value)) 143# define expect(expr,value) __builtin_expect ((expr),(value))
102# define inline inline 144# define inline inline
103#else 145#else
115typedef struct ev_watcher_list *WL; 157typedef struct ev_watcher_list *WL;
116typedef struct ev_watcher_time *WT; 158typedef struct ev_watcher_time *WT;
117 159
118static int have_monotonic; /* did clock_gettime (CLOCK_MONOTONIC) work? */ 160static int have_monotonic; /* did clock_gettime (CLOCK_MONOTONIC) work? */
119 161
162#include "ev_win32.c"
163
120/*****************************************************************************/ 164/*****************************************************************************/
121 165
166static void (*syserr_cb)(const char *msg);
167
168void ev_set_syserr_cb (void (*cb)(const char *msg))
169{
170 syserr_cb = cb;
171}
172
173static void
174syserr (const char *msg)
175{
176 if (!msg)
177 msg = "(libev) system error";
178
179 if (syserr_cb)
180 syserr_cb (msg);
181 else
182 {
183 perror (msg);
184 abort ();
185 }
186}
187
188static void *(*alloc)(void *ptr, long size);
189
190void ev_set_allocator (void *(*cb)(void *ptr, long size))
191{
192 alloc = cb;
193}
194
195static void *
196ev_realloc (void *ptr, long size)
197{
198 ptr = alloc ? alloc (ptr, size) : realloc (ptr, size);
199
200 if (!ptr && size)
201 {
202 fprintf (stderr, "libev: cannot allocate %ld bytes, aborting.", size);
203 abort ();
204 }
205
206 return ptr;
207}
208
209#define ev_malloc(size) ev_realloc (0, (size))
210#define ev_free(ptr) ev_realloc ((ptr), 0)
211
212/*****************************************************************************/
213
122typedef struct 214typedef struct
123{ 215{
124 struct ev_watcher_list *head; 216 WL head;
125 unsigned char events; 217 unsigned char events;
126 unsigned char reify; 218 unsigned char reify;
127} ANFD; 219} ANFD;
128 220
129typedef struct 221typedef struct
132 int events; 224 int events;
133} ANPENDING; 225} ANPENDING;
134 226
135#if EV_MULTIPLICITY 227#if EV_MULTIPLICITY
136 228
137struct ev_loop 229 struct ev_loop
138{ 230 {
231 ev_tstamp ev_rt_now;
139# define VAR(name,decl) decl; 232 #define VAR(name,decl) decl;
140# include "ev_vars.h" 233 #include "ev_vars.h"
141};
142# undef VAR 234 #undef VAR
235 };
143# include "ev_wrap.h" 236 #include "ev_wrap.h"
237
238 struct ev_loop default_loop_struct;
239 static struct ev_loop *default_loop;
144 240
145#else 241#else
146 242
243 ev_tstamp ev_rt_now;
147# define VAR(name,decl) static decl; 244 #define VAR(name,decl) static decl;
148# include "ev_vars.h" 245 #include "ev_vars.h"
149# undef VAR 246 #undef VAR
247
248 static int default_loop;
150 249
151#endif 250#endif
152 251
153/*****************************************************************************/ 252/*****************************************************************************/
154 253
155inline ev_tstamp 254ev_tstamp
156ev_time (void) 255ev_time (void)
157{ 256{
158#if EV_USE_REALTIME 257#if EV_USE_REALTIME
159 struct timespec ts; 258 struct timespec ts;
160 clock_gettime (CLOCK_REALTIME, &ts); 259 clock_gettime (CLOCK_REALTIME, &ts);
179#endif 278#endif
180 279
181 return ev_time (); 280 return ev_time ();
182} 281}
183 282
283#if EV_MULTIPLICITY
184ev_tstamp 284ev_tstamp
185ev_now (EV_P) 285ev_now (EV_P)
186{ 286{
187 return rt_now; 287 return ev_rt_now;
188} 288}
289#endif
189 290
190#define array_roundsize(base,n) ((n) | 4 & ~3) 291#define array_roundsize(type,n) ((n) | 4 & ~3)
191 292
192#define array_needsize(base,cur,cnt,init) \ 293#define array_needsize(type,base,cur,cnt,init) \
193 if (expect_false ((cnt) > cur)) \ 294 if (expect_false ((cnt) > cur)) \
194 { \ 295 { \
195 int newcnt = cur; \ 296 int newcnt = cur; \
196 do \ 297 do \
197 { \ 298 { \
198 newcnt = array_roundsize (base, newcnt << 1); \ 299 newcnt = array_roundsize (type, newcnt << 1); \
199 } \ 300 } \
200 while ((cnt) > newcnt); \ 301 while ((cnt) > newcnt); \
201 \ 302 \
202 base = realloc (base, sizeof (*base) * (newcnt)); \ 303 base = (type *)ev_realloc (base, sizeof (type) * (newcnt));\
203 init (base + cur, newcnt - cur); \ 304 init (base + cur, newcnt - cur); \
204 cur = newcnt; \ 305 cur = newcnt; \
205 } 306 }
307
308#define array_slim(type,stem) \
309 if (stem ## max < array_roundsize (stem ## cnt >> 2)) \
310 { \
311 stem ## max = array_roundsize (stem ## cnt >> 1); \
312 base = (type *)ev_realloc (base, sizeof (type) * (stem ## max));\
313 fprintf (stderr, "slimmed down " # stem " to %d\n", stem ## max);/*D*/\
314 }
315
316/* microsoft's pseudo-c is quite far from C as the rest of the world and the standard knows it */
317/* bringing us everlasting joy in form of stupid extra macros that are not required in C */
318#define array_free_microshit(stem) \
319 ev_free (stem ## s); stem ## cnt = stem ## max = 0;
320
321#define array_free(stem, idx) \
322 ev_free (stem ## s idx); stem ## cnt idx = stem ## max idx = 0;
206 323
207/*****************************************************************************/ 324/*****************************************************************************/
208 325
209static void 326static void
210anfds_init (ANFD *base, int count) 327anfds_init (ANFD *base, int count)
217 334
218 ++base; 335 ++base;
219 } 336 }
220} 337}
221 338
222static void 339void
223event (EV_P_ W w, int events) 340ev_feed_event (EV_P_ void *w, int revents)
224{ 341{
342 W w_ = (W)w;
343
225 if (w->pending) 344 if (w_->pending)
226 { 345 {
227 pendings [ABSPRI (w)][w->pending - 1].events |= events; 346 pendings [ABSPRI (w_)][w_->pending - 1].events |= revents;
228 return; 347 return;
229 } 348 }
230 349
231 w->pending = ++pendingcnt [ABSPRI (w)]; 350 w_->pending = ++pendingcnt [ABSPRI (w_)];
232 array_needsize (pendings [ABSPRI (w)], pendingmax [ABSPRI (w)], pendingcnt [ABSPRI (w)], ); 351 array_needsize (ANPENDING, pendings [ABSPRI (w_)], pendingmax [ABSPRI (w_)], pendingcnt [ABSPRI (w_)], (void));
233 pendings [ABSPRI (w)][w->pending - 1].w = w; 352 pendings [ABSPRI (w_)][w_->pending - 1].w = w_;
234 pendings [ABSPRI (w)][w->pending - 1].events = events; 353 pendings [ABSPRI (w_)][w_->pending - 1].events = revents;
235} 354}
236 355
237static void 356static void
238queue_events (EV_P_ W *events, int eventcnt, int type) 357queue_events (EV_P_ W *events, int eventcnt, int type)
239{ 358{
240 int i; 359 int i;
241 360
242 for (i = 0; i < eventcnt; ++i) 361 for (i = 0; i < eventcnt; ++i)
243 event (EV_A_ events [i], type); 362 ev_feed_event (EV_A_ events [i], type);
244} 363}
245 364
246static void 365inline void
247fd_event (EV_P_ int fd, int events) 366fd_event (EV_P_ int fd, int revents)
248{ 367{
249 ANFD *anfd = anfds + fd; 368 ANFD *anfd = anfds + fd;
250 struct ev_io *w; 369 struct ev_io *w;
251 370
252 for (w = (struct ev_io *)anfd->head; w; w = (struct ev_io *)((WL)w)->next) 371 for (w = (struct ev_io *)anfd->head; w; w = (struct ev_io *)((WL)w)->next)
253 { 372 {
254 int ev = w->events & events; 373 int ev = w->events & revents;
255 374
256 if (ev) 375 if (ev)
257 event (EV_A_ (W)w, ev); 376 ev_feed_event (EV_A_ (W)w, ev);
258 } 377 }
378}
379
380void
381ev_feed_fd_event (EV_P_ int fd, int revents)
382{
383 fd_event (EV_A_ fd, revents);
259} 384}
260 385
261/*****************************************************************************/ 386/*****************************************************************************/
262 387
263static void 388static void
276 for (w = (struct ev_io *)anfd->head; w; w = (struct ev_io *)((WL)w)->next) 401 for (w = (struct ev_io *)anfd->head; w; w = (struct ev_io *)((WL)w)->next)
277 events |= w->events; 402 events |= w->events;
278 403
279 anfd->reify = 0; 404 anfd->reify = 0;
280 405
281 if (anfd->events != events)
282 {
283 method_modify (EV_A_ fd, anfd->events, events); 406 method_modify (EV_A_ fd, anfd->events, events);
284 anfd->events = events; 407 anfd->events = events;
285 }
286 } 408 }
287 409
288 fdchangecnt = 0; 410 fdchangecnt = 0;
289} 411}
290 412
291static void 413static void
292fd_change (EV_P_ int fd) 414fd_change (EV_P_ int fd)
293{ 415{
294 if (anfds [fd].reify || fdchangecnt < 0) 416 if (anfds [fd].reify)
295 return; 417 return;
296 418
297 anfds [fd].reify = 1; 419 anfds [fd].reify = 1;
298 420
299 ++fdchangecnt; 421 ++fdchangecnt;
300 array_needsize (fdchanges, fdchangemax, fdchangecnt, ); 422 array_needsize (int, fdchanges, fdchangemax, fdchangecnt, (void));
301 fdchanges [fdchangecnt - 1] = fd; 423 fdchanges [fdchangecnt - 1] = fd;
302} 424}
303 425
304static void 426static void
305fd_kill (EV_P_ int fd) 427fd_kill (EV_P_ int fd)
307 struct ev_io *w; 429 struct ev_io *w;
308 430
309 while ((w = (struct ev_io *)anfds [fd].head)) 431 while ((w = (struct ev_io *)anfds [fd].head))
310 { 432 {
311 ev_io_stop (EV_A_ w); 433 ev_io_stop (EV_A_ w);
312 event (EV_A_ (W)w, EV_ERROR | EV_READ | EV_WRITE); 434 ev_feed_event (EV_A_ (W)w, EV_ERROR | EV_READ | EV_WRITE);
313 } 435 }
436}
437
438static int
439fd_valid (int fd)
440{
441#ifdef WIN32
442 return !!win32_get_osfhandle (fd);
443#else
444 return fcntl (fd, F_GETFD) != -1;
445#endif
314} 446}
315 447
316/* called on EBADF to verify fds */ 448/* called on EBADF to verify fds */
317static void 449static void
318fd_ebadf (EV_P) 450fd_ebadf (EV_P)
319{ 451{
320 int fd; 452 int fd;
321 453
322 for (fd = 0; fd < anfdmax; ++fd) 454 for (fd = 0; fd < anfdmax; ++fd)
323 if (anfds [fd].events) 455 if (anfds [fd].events)
324 if (fcntl (fd, F_GETFD) == -1 && errno == EBADF) 456 if (!fd_valid (fd) == -1 && errno == EBADF)
325 fd_kill (EV_A_ fd); 457 fd_kill (EV_A_ fd);
326} 458}
327 459
328/* called on ENOMEM in select/poll to kill some fds and retry */ 460/* called on ENOMEM in select/poll to kill some fds and retry */
329static void 461static void
330fd_enomem (EV_P) 462fd_enomem (EV_P)
331{ 463{
332 int fd = anfdmax; 464 int fd;
333 465
334 while (fd--) 466 for (fd = anfdmax; fd--; )
335 if (anfds [fd].events) 467 if (anfds [fd].events)
336 { 468 {
337 close (fd);
338 fd_kill (EV_A_ fd); 469 fd_kill (EV_A_ fd);
339 return; 470 return;
340 } 471 }
341} 472}
342 473
474/* usually called after fork if method needs to re-arm all fds from scratch */
475static void
476fd_rearm_all (EV_P)
477{
478 int fd;
479
480 /* this should be highly optimised to not do anything but set a flag */
481 for (fd = 0; fd < anfdmax; ++fd)
482 if (anfds [fd].events)
483 {
484 anfds [fd].events = 0;
485 fd_change (EV_A_ fd);
486 }
487}
488
343/*****************************************************************************/ 489/*****************************************************************************/
344 490
345static void 491static void
346upheap (WT *heap, int k) 492upheap (WT *heap, int k)
347{ 493{
348 WT w = heap [k]; 494 WT w = heap [k];
349 495
350 while (k && heap [k >> 1]->at > w->at) 496 while (k && heap [k >> 1]->at > w->at)
351 { 497 {
352 heap [k] = heap [k >> 1]; 498 heap [k] = heap [k >> 1];
353 heap [k]->active = k + 1; 499 ((W)heap [k])->active = k + 1;
354 k >>= 1; 500 k >>= 1;
355 } 501 }
356 502
357 heap [k] = w; 503 heap [k] = w;
358 heap [k]->active = k + 1; 504 ((W)heap [k])->active = k + 1;
359 505
360} 506}
361 507
362static void 508static void
363downheap (WT *heap, int N, int k) 509downheap (WT *heap, int N, int k)
373 519
374 if (w->at <= heap [j]->at) 520 if (w->at <= heap [j]->at)
375 break; 521 break;
376 522
377 heap [k] = heap [j]; 523 heap [k] = heap [j];
378 heap [k]->active = k + 1; 524 ((W)heap [k])->active = k + 1;
379 k = j; 525 k = j;
380 } 526 }
381 527
382 heap [k] = w; 528 heap [k] = w;
383 heap [k]->active = k + 1; 529 ((W)heap [k])->active = k + 1;
530}
531
532inline void
533adjustheap (WT *heap, int N, int k, ev_tstamp at)
534{
535 ev_tstamp old_at = heap [k]->at;
536 heap [k]->at = at;
537
538 if (old_at < at)
539 downheap (heap, N, k);
540 else
541 upheap (heap, k);
384} 542}
385 543
386/*****************************************************************************/ 544/*****************************************************************************/
387 545
388typedef struct 546typedef struct
389{ 547{
390 struct ev_watcher_list *head; 548 WL head;
391 sig_atomic_t volatile gotsig; 549 sig_atomic_t volatile gotsig;
392} ANSIG; 550} ANSIG;
393 551
394static ANSIG *signals; 552static ANSIG *signals;
395static int signalmax; 553static int signalmax;
396 554
397static int sigpipe [2]; 555static int sigpipe [2];
398static sig_atomic_t volatile gotsig; 556static sig_atomic_t volatile gotsig;
557static struct ev_io sigev;
399 558
400static void 559static void
401signals_init (ANSIG *base, int count) 560signals_init (ANSIG *base, int count)
402{ 561{
403 while (count--) 562 while (count--)
410} 569}
411 570
412static void 571static void
413sighandler (int signum) 572sighandler (int signum)
414{ 573{
574#if WIN32
575 signal (signum, sighandler);
576#endif
577
415 signals [signum - 1].gotsig = 1; 578 signals [signum - 1].gotsig = 1;
416 579
417 if (!gotsig) 580 if (!gotsig)
418 { 581 {
419 int old_errno = errno; 582 int old_errno = errno;
420 gotsig = 1; 583 gotsig = 1;
584#ifdef WIN32
585 send (sigpipe [1], &signum, 1, MSG_DONTWAIT);
586#else
421 write (sigpipe [1], &signum, 1); 587 write (sigpipe [1], &signum, 1);
588#endif
422 errno = old_errno; 589 errno = old_errno;
423 } 590 }
424} 591}
425 592
593void
594ev_feed_signal_event (EV_P_ int signum)
595{
596 WL w;
597
598#if EV_MULTIPLICITY
599 assert (("feeding signal events is only supported in the default loop", loop == default_loop));
600#endif
601
602 --signum;
603
604 if (signum < 0 || signum >= signalmax)
605 return;
606
607 signals [signum].gotsig = 0;
608
609 for (w = signals [signum].head; w; w = w->next)
610 ev_feed_event (EV_A_ (W)w, EV_SIGNAL);
611}
612
426static void 613static void
427sigcb (EV_P_ struct ev_io *iow, int revents) 614sigcb (EV_P_ struct ev_io *iow, int revents)
428{ 615{
429 struct ev_watcher_list *w;
430 int signum; 616 int signum;
431 617
618#ifdef WIN32
619 recv (sigpipe [0], &revents, 1, MSG_DONTWAIT);
620#else
432 read (sigpipe [0], &revents, 1); 621 read (sigpipe [0], &revents, 1);
622#endif
433 gotsig = 0; 623 gotsig = 0;
434 624
435 for (signum = signalmax; signum--; ) 625 for (signum = signalmax; signum--; )
436 if (signals [signum].gotsig) 626 if (signals [signum].gotsig)
437 { 627 ev_feed_signal_event (EV_A_ signum + 1);
438 signals [signum].gotsig = 0;
439
440 for (w = signals [signum].head; w; w = w->next)
441 event (EV_A_ (W)w, EV_SIGNAL);
442 }
443} 628}
444 629
445static void 630static void
446siginit (EV_P) 631siginit (EV_P)
447{ 632{
459 ev_unref (EV_A); /* child watcher should not keep loop alive */ 644 ev_unref (EV_A); /* child watcher should not keep loop alive */
460} 645}
461 646
462/*****************************************************************************/ 647/*****************************************************************************/
463 648
649static struct ev_child *childs [PID_HASHSIZE];
650
464#ifndef WIN32 651#ifndef WIN32
652
653static struct ev_signal childev;
465 654
466#ifndef WCONTINUED 655#ifndef WCONTINUED
467# define WCONTINUED 0 656# define WCONTINUED 0
468#endif 657#endif
469 658
473 struct ev_child *w; 662 struct ev_child *w;
474 663
475 for (w = (struct ev_child *)childs [chain & (PID_HASHSIZE - 1)]; w; w = (struct ev_child *)((WL)w)->next) 664 for (w = (struct ev_child *)childs [chain & (PID_HASHSIZE - 1)]; w; w = (struct ev_child *)((WL)w)->next)
476 if (w->pid == pid || !w->pid) 665 if (w->pid == pid || !w->pid)
477 { 666 {
478 w->priority = sw->priority; /* need to do it *now* */ 667 ev_priority (w) = ev_priority (sw); /* need to do it *now* */
479 w->rpid = pid; 668 w->rpid = pid;
480 w->rstatus = status; 669 w->rstatus = status;
481 event (EV_A_ (W)w, EV_CHILD); 670 ev_feed_event (EV_A_ (W)w, EV_CHILD);
482 } 671 }
483} 672}
484 673
485static void 674static void
486childcb (EV_P_ struct ev_signal *sw, int revents) 675childcb (EV_P_ struct ev_signal *sw, int revents)
488 int pid, status; 677 int pid, status;
489 678
490 if (0 < (pid = waitpid (-1, &status, WNOHANG | WUNTRACED | WCONTINUED))) 679 if (0 < (pid = waitpid (-1, &status, WNOHANG | WUNTRACED | WCONTINUED)))
491 { 680 {
492 /* make sure we are called again until all childs have been reaped */ 681 /* make sure we are called again until all childs have been reaped */
493 event (EV_A_ (W)sw, EV_SIGNAL); 682 ev_feed_event (EV_A_ (W)sw, EV_SIGNAL);
494 683
495 child_reap (EV_A_ sw, pid, pid, status); 684 child_reap (EV_A_ sw, pid, pid, status);
496 child_reap (EV_A_ sw, 0, pid, status); /* this might trigger a watcher twice, but event catches that */ 685 child_reap (EV_A_ sw, 0, pid, status); /* this might trigger a watcher twice, but event catches that */
497 } 686 }
498} 687}
505# include "ev_kqueue.c" 694# include "ev_kqueue.c"
506#endif 695#endif
507#if EV_USE_EPOLL 696#if EV_USE_EPOLL
508# include "ev_epoll.c" 697# include "ev_epoll.c"
509#endif 698#endif
510#if EV_USEV_POLL 699#if EV_USE_POLL
511# include "ev_poll.c" 700# include "ev_poll.c"
512#endif 701#endif
513#if EV_USE_SELECT 702#if EV_USE_SELECT
514# include "ev_select.c" 703# include "ev_select.c"
515#endif 704#endif
542ev_method (EV_P) 731ev_method (EV_P)
543{ 732{
544 return method; 733 return method;
545} 734}
546 735
547inline int 736static void
548loop_init (EV_P_ int methods) 737loop_init (EV_P_ int methods)
549{ 738{
550 if (!method) 739 if (!method)
551 { 740 {
552#if EV_USE_MONOTONIC 741#if EV_USE_MONOTONIC
555 if (!clock_gettime (CLOCK_MONOTONIC, &ts)) 744 if (!clock_gettime (CLOCK_MONOTONIC, &ts))
556 have_monotonic = 1; 745 have_monotonic = 1;
557 } 746 }
558#endif 747#endif
559 748
560 rt_now = ev_time (); 749 ev_rt_now = ev_time ();
561 mn_now = get_clock (); 750 mn_now = get_clock ();
562 now_floor = mn_now; 751 now_floor = mn_now;
563 rtmn_diff = rt_now - mn_now; 752 rtmn_diff = ev_rt_now - mn_now;
564
565 if (pipe (sigpipe))
566 return 0;
567 753
568 if (methods == EVMETHOD_AUTO) 754 if (methods == EVMETHOD_AUTO)
569 if (!enable_secure () && getenv ("LIBmethodS")) 755 if (!enable_secure () && getenv ("LIBEV_METHODS"))
570 methods = atoi (getenv ("LIBmethodS")); 756 methods = atoi (getenv ("LIBEV_METHODS"));
571 else 757 else
572 methods = EVMETHOD_ANY; 758 methods = EVMETHOD_ANY;
573 759
574 method = 0; 760 method = 0;
761#if EV_USE_WIN32
762 if (!method && (methods & EVMETHOD_WIN32 )) method = win32_init (EV_A_ methods);
763#endif
575#if EV_USE_KQUEUE 764#if EV_USE_KQUEUE
576 if (!method && (methods & EVMETHOD_KQUEUE)) method = kqueue_init (EV_A_ methods); 765 if (!method && (methods & EVMETHOD_KQUEUE)) method = kqueue_init (EV_A_ methods);
577#endif 766#endif
578#if EV_USE_EPOLL 767#if EV_USE_EPOLL
579 if (!method && (methods & EVMETHOD_EPOLL )) method = epoll_init (EV_A_ methods); 768 if (!method && (methods & EVMETHOD_EPOLL )) method = epoll_init (EV_A_ methods);
580#endif 769#endif
581#if EV_USEV_POLL 770#if EV_USE_POLL
582 if (!method && (methods & EVMETHOD_POLL )) method = poll_init (EV_A_ methods); 771 if (!method && (methods & EVMETHOD_POLL )) method = poll_init (EV_A_ methods);
583#endif 772#endif
584#if EV_USE_SELECT 773#if EV_USE_SELECT
585 if (!method && (methods & EVMETHOD_SELECT)) method = select_init (EV_A_ methods); 774 if (!method && (methods & EVMETHOD_SELECT)) method = select_init (EV_A_ methods);
586#endif 775#endif
587 776
777 ev_init (&sigev, sigcb);
778 ev_set_priority (&sigev, EV_MAXPRI);
779 }
780}
781
782void
783loop_destroy (EV_P)
784{
785 int i;
786
787#if EV_USE_WIN32
788 if (method == EVMETHOD_WIN32 ) win32_destroy (EV_A);
789#endif
790#if EV_USE_KQUEUE
791 if (method == EVMETHOD_KQUEUE) kqueue_destroy (EV_A);
792#endif
793#if EV_USE_EPOLL
794 if (method == EVMETHOD_EPOLL ) epoll_destroy (EV_A);
795#endif
796#if EV_USE_POLL
797 if (method == EVMETHOD_POLL ) poll_destroy (EV_A);
798#endif
799#if EV_USE_SELECT
800 if (method == EVMETHOD_SELECT) select_destroy (EV_A);
801#endif
802
803 for (i = NUMPRI; i--; )
804 array_free (pending, [i]);
805
806 /* have to use the microsoft-never-gets-it-right macro */
807 array_free_microshit (fdchange);
808 array_free_microshit (timer);
809#if EV_PERIODICS
810 array_free_microshit (periodic);
811#endif
812 array_free_microshit (idle);
813 array_free_microshit (prepare);
814 array_free_microshit (check);
815
816 method = 0;
817}
818
819static void
820loop_fork (EV_P)
821{
822#if EV_USE_EPOLL
823 if (method == EVMETHOD_EPOLL ) epoll_fork (EV_A);
824#endif
825#if EV_USE_KQUEUE
826 if (method == EVMETHOD_KQUEUE) kqueue_fork (EV_A);
827#endif
828
829 if (ev_is_active (&sigev))
830 {
831 /* default loop */
832
833 ev_ref (EV_A);
834 ev_io_stop (EV_A_ &sigev);
835 close (sigpipe [0]);
836 close (sigpipe [1]);
837
838 while (pipe (sigpipe))
839 syserr ("(libev) error creating pipe");
840
841 siginit (EV_A);
842 }
843
844 postfork = 0;
845}
846
847#if EV_MULTIPLICITY
848struct ev_loop *
849ev_loop_new (int methods)
850{
851 struct ev_loop *loop = (struct ev_loop *)ev_malloc (sizeof (struct ev_loop));
852
853 memset (loop, 0, sizeof (struct ev_loop));
854
855 loop_init (EV_A_ methods);
856
857 if (ev_method (EV_A))
858 return loop;
859
860 return 0;
861}
862
863void
864ev_loop_destroy (EV_P)
865{
866 loop_destroy (EV_A);
867 ev_free (loop);
868}
869
870void
871ev_loop_fork (EV_P)
872{
873 postfork = 1;
874}
875
876#endif
877
878#if EV_MULTIPLICITY
879struct ev_loop *
880#else
881int
882#endif
883ev_default_loop (int methods)
884{
885 if (sigpipe [0] == sigpipe [1])
886 if (pipe (sigpipe))
887 return 0;
888
889 if (!default_loop)
890 {
891#if EV_MULTIPLICITY
892 struct ev_loop *loop = default_loop = &default_loop_struct;
893#else
894 default_loop = 1;
895#endif
896
897 loop_init (EV_A_ methods);
898
588 if (method) 899 if (ev_method (EV_A))
589 { 900 {
590 ev_watcher_init (&sigev, sigcb);
591 ev_set_priority (&sigev, EV_MAXPRI);
592 siginit (EV_A); 901 siginit (EV_A);
593 902
594#ifndef WIN32 903#ifndef WIN32
595 ev_signal_init (&childev, childcb, SIGCHLD); 904 ev_signal_init (&childev, childcb, SIGCHLD);
596 ev_set_priority (&childev, EV_MAXPRI); 905 ev_set_priority (&childev, EV_MAXPRI);
597 ev_signal_start (EV_A_ &childev); 906 ev_signal_start (EV_A_ &childev);
598 ev_unref (EV_A); /* child watcher should not keep loop alive */ 907 ev_unref (EV_A); /* child watcher should not keep loop alive */
599#endif 908#endif
600 } 909 }
910 else
911 default_loop = 0;
601 } 912 }
602 913
603 return method; 914 return default_loop;
604} 915}
605 916
917void
918ev_default_destroy (void)
919{
606#if EV_MULTIPLICITY 920#if EV_MULTIPLICITY
921 struct ev_loop *loop = default_loop;
922#endif
607 923
608struct ev_loop * 924#ifndef WIN32
609ev_loop_new (int methods) 925 ev_ref (EV_A); /* child watcher */
610{ 926 ev_signal_stop (EV_A_ &childev);
611 struct ev_loop *loop = (struct ev_loop *)calloc (1, sizeof (struct ev_loop)); 927#endif
612 928
613 if (loop_init (EV_A_ methods)) 929 ev_ref (EV_A); /* signal watcher */
930 ev_io_stop (EV_A_ &sigev);
931
932 close (sigpipe [0]); sigpipe [0] = 0;
933 close (sigpipe [1]); sigpipe [1] = 0;
934
935 loop_destroy (EV_A);
936}
937
938void
939ev_default_fork (void)
940{
941#if EV_MULTIPLICITY
942 struct ev_loop *loop = default_loop;
943#endif
944
945 if (method)
946 postfork = 1;
947}
948
949/*****************************************************************************/
950
951static int
952any_pending (EV_P)
953{
954 int pri;
955
956 for (pri = NUMPRI; pri--; )
957 if (pendingcnt [pri])
614 return loop; 958 return 1;
615
616 ev_loop_delete (loop);
617 959
618 return 0; 960 return 0;
619} 961}
620
621void
622ev_loop_delete (EV_P)
623{
624 /*TODO*/
625 free (loop);
626}
627
628#else
629
630int
631ev_init (int methods)
632{
633 return loop_init (methods);
634}
635
636#endif
637
638/*****************************************************************************/
639
640void
641ev_fork_prepare (void)
642{
643 /* nop */
644}
645
646void
647ev_fork_parent (void)
648{
649 /* nop */
650}
651
652void
653ev_fork_child (void)
654{
655 /*TODO*/
656#if !EV_MULTIPLICITY
657#if EV_USE_EPOLL
658 if (method == EVMETHOD_EPOLL)
659 epoll_postfork_child (EV_A);
660#endif
661
662 ev_io_stop (EV_A_ &sigev);
663 close (sigpipe [0]);
664 close (sigpipe [1]);
665 pipe (sigpipe);
666 siginit (EV_A);
667#endif
668}
669
670/*****************************************************************************/
671 962
672static void 963static void
673call_pending (EV_P) 964call_pending (EV_P)
674{ 965{
675 int pri; 966 int pri;
680 ANPENDING *p = pendings [pri] + --pendingcnt [pri]; 971 ANPENDING *p = pendings [pri] + --pendingcnt [pri];
681 972
682 if (p->w) 973 if (p->w)
683 { 974 {
684 p->w->pending = 0; 975 p->w->pending = 0;
685 p->w->cb (EV_A_ p->w, p->events); 976 EV_CB_INVOKE (p->w, p->events);
686 } 977 }
687 } 978 }
688} 979}
689 980
690static void 981static void
691timers_reify (EV_P) 982timers_reify (EV_P)
692{ 983{
693 while (timercnt && timers [0]->at <= mn_now) 984 while (timercnt && ((WT)timers [0])->at <= mn_now)
694 { 985 {
695 struct ev_timer *w = timers [0]; 986 struct ev_timer *w = timers [0];
987
988 assert (("inactive timer on timer heap detected", ev_is_active (w)));
696 989
697 /* first reschedule or stop timer */ 990 /* first reschedule or stop timer */
698 if (w->repeat) 991 if (w->repeat)
699 { 992 {
700 assert (("negative ev_timer repeat value found while processing timers", w->repeat > 0.)); 993 assert (("negative ev_timer repeat value found while processing timers", w->repeat > 0.));
994
701 w->at = mn_now + w->repeat; 995 ((WT)w)->at += w->repeat;
996 if (((WT)w)->at < mn_now)
997 ((WT)w)->at = mn_now;
998
702 downheap ((WT *)timers, timercnt, 0); 999 downheap ((WT *)timers, timercnt, 0);
703 } 1000 }
704 else 1001 else
705 ev_timer_stop (EV_A_ w); /* nonrepeating: stop timer */ 1002 ev_timer_stop (EV_A_ w); /* nonrepeating: stop timer */
706 1003
707 event (EV_A_ (W)w, EV_TIMEOUT); 1004 ev_feed_event (EV_A_ (W)w, EV_TIMEOUT);
708 } 1005 }
709} 1006}
710 1007
1008#if EV_PERIODICS
711static void 1009static void
712periodics_reify (EV_P) 1010periodics_reify (EV_P)
713{ 1011{
714 while (periodiccnt && periodics [0]->at <= rt_now) 1012 while (periodiccnt && ((WT)periodics [0])->at <= ev_rt_now)
715 { 1013 {
716 struct ev_periodic *w = periodics [0]; 1014 struct ev_periodic *w = periodics [0];
717 1015
1016 assert (("inactive timer on periodic heap detected", ev_is_active (w)));
1017
718 /* first reschedule or stop timer */ 1018 /* first reschedule or stop timer */
719 if (w->interval) 1019 if (w->reschedule_cb)
720 { 1020 {
1021 ev_tstamp at = ((WT)w)->at = w->reschedule_cb (w, ev_rt_now + 0.0001);
1022
1023 assert (("ev_periodic reschedule callback returned time in the past", ((WT)w)->at > ev_rt_now));
1024 downheap ((WT *)periodics, periodiccnt, 0);
1025 }
1026 else if (w->interval)
1027 {
721 w->at += floor ((rt_now - w->at) / w->interval + 1.) * w->interval; 1028 ((WT)w)->at += floor ((ev_rt_now - ((WT)w)->at) / w->interval + 1.) * w->interval;
722 assert (("ev_periodic timeout in the past detected while processing timers, negative interval?", w->at > rt_now)); 1029 assert (("ev_periodic timeout in the past detected while processing timers, negative interval?", ((WT)w)->at > ev_rt_now));
723 downheap ((WT *)periodics, periodiccnt, 0); 1030 downheap ((WT *)periodics, periodiccnt, 0);
724 } 1031 }
725 else 1032 else
726 ev_periodic_stop (EV_A_ w); /* nonrepeating: stop timer */ 1033 ev_periodic_stop (EV_A_ w); /* nonrepeating: stop timer */
727 1034
728 event (EV_A_ (W)w, EV_PERIODIC); 1035 ev_feed_event (EV_A_ (W)w, EV_PERIODIC);
729 } 1036 }
730} 1037}
731 1038
732static void 1039static void
733periodics_reschedule (EV_P) 1040periodics_reschedule (EV_P)
737 /* adjust periodics after time jump */ 1044 /* adjust periodics after time jump */
738 for (i = 0; i < periodiccnt; ++i) 1045 for (i = 0; i < periodiccnt; ++i)
739 { 1046 {
740 struct ev_periodic *w = periodics [i]; 1047 struct ev_periodic *w = periodics [i];
741 1048
1049 if (w->reschedule_cb)
1050 ((WT)w)->at = w->reschedule_cb (w, ev_rt_now);
742 if (w->interval) 1051 else if (w->interval)
743 {
744 ev_tstamp diff = ceil ((rt_now - w->at) / w->interval) * w->interval; 1052 ((WT)w)->at += ceil ((ev_rt_now - ((WT)w)->at) / w->interval) * w->interval;
745
746 if (fabs (diff) >= 1e-4)
747 {
748 ev_periodic_stop (EV_A_ w);
749 ev_periodic_start (EV_A_ w);
750
751 i = 0; /* restart loop, inefficient, but time jumps should be rare */
752 }
753 }
754 } 1053 }
1054
1055 /* now rebuild the heap */
1056 for (i = periodiccnt >> 1; i--; )
1057 downheap ((WT *)periodics, periodiccnt, i);
755} 1058}
1059#endif
756 1060
757inline int 1061inline int
758time_update_monotonic (EV_P) 1062time_update_monotonic (EV_P)
759{ 1063{
760 mn_now = get_clock (); 1064 mn_now = get_clock ();
761 1065
762 if (expect_true (mn_now - now_floor < MIN_TIMEJUMP * .5)) 1066 if (expect_true (mn_now - now_floor < MIN_TIMEJUMP * .5))
763 { 1067 {
764 rt_now = rtmn_diff + mn_now; 1068 ev_rt_now = rtmn_diff + mn_now;
765 return 0; 1069 return 0;
766 } 1070 }
767 else 1071 else
768 { 1072 {
769 now_floor = mn_now; 1073 now_floor = mn_now;
770 rt_now = ev_time (); 1074 ev_rt_now = ev_time ();
771 return 1; 1075 return 1;
772 } 1076 }
773} 1077}
774 1078
775static void 1079static void
784 { 1088 {
785 ev_tstamp odiff = rtmn_diff; 1089 ev_tstamp odiff = rtmn_diff;
786 1090
787 for (i = 4; --i; ) /* loop a few times, before making important decisions */ 1091 for (i = 4; --i; ) /* loop a few times, before making important decisions */
788 { 1092 {
789 rtmn_diff = rt_now - mn_now; 1093 rtmn_diff = ev_rt_now - mn_now;
790 1094
791 if (fabs (odiff - rtmn_diff) < MIN_TIMEJUMP) 1095 if (fabs (odiff - rtmn_diff) < MIN_TIMEJUMP)
792 return; /* all is well */ 1096 return; /* all is well */
793 1097
794 rt_now = ev_time (); 1098 ev_rt_now = ev_time ();
795 mn_now = get_clock (); 1099 mn_now = get_clock ();
796 now_floor = mn_now; 1100 now_floor = mn_now;
797 } 1101 }
798 1102
1103# if EV_PERIODICS
799 periodics_reschedule (EV_A); 1104 periodics_reschedule (EV_A);
1105# endif
800 /* no timer adjustment, as the monotonic clock doesn't jump */ 1106 /* no timer adjustment, as the monotonic clock doesn't jump */
801 /* timers_reschedule (EV_A_ rtmn_diff - odiff) */ 1107 /* timers_reschedule (EV_A_ rtmn_diff - odiff) */
802 } 1108 }
803 } 1109 }
804 else 1110 else
805#endif 1111#endif
806 { 1112 {
807 rt_now = ev_time (); 1113 ev_rt_now = ev_time ();
808 1114
809 if (expect_false (mn_now > rt_now || mn_now < rt_now - MAX_BLOCKTIME - MIN_TIMEJUMP)) 1115 if (expect_false (mn_now > ev_rt_now || mn_now < ev_rt_now - MAX_BLOCKTIME - MIN_TIMEJUMP))
810 { 1116 {
1117#if EV_PERIODICS
811 periodics_reschedule (EV_A); 1118 periodics_reschedule (EV_A);
1119#endif
812 1120
813 /* adjust timers. this is easy, as the offset is the same for all */ 1121 /* adjust timers. this is easy, as the offset is the same for all */
814 for (i = 0; i < timercnt; ++i) 1122 for (i = 0; i < timercnt; ++i)
815 timers [i]->at += rt_now - mn_now; 1123 ((WT)timers [i])->at += ev_rt_now - mn_now;
816 } 1124 }
817 1125
818 mn_now = rt_now; 1126 mn_now = ev_rt_now;
819 } 1127 }
820} 1128}
821 1129
822void 1130void
823ev_ref (EV_P) 1131ev_ref (EV_P)
846 { 1154 {
847 queue_events (EV_A_ (W *)prepares, preparecnt, EV_PREPARE); 1155 queue_events (EV_A_ (W *)prepares, preparecnt, EV_PREPARE);
848 call_pending (EV_A); 1156 call_pending (EV_A);
849 } 1157 }
850 1158
1159 /* we might have forked, so reify kernel state if necessary */
1160 if (expect_false (postfork))
1161 loop_fork (EV_A);
1162
851 /* update fd-related kernel structures */ 1163 /* update fd-related kernel structures */
852 fd_reify (EV_A); 1164 fd_reify (EV_A);
853 1165
854 /* calculate blocking time */ 1166 /* calculate blocking time */
855 1167
856 /* we only need this for !monotonic clockor timers, but as we basically 1168 /* we only need this for !monotonic clock or timers, but as we basically
857 always have timers, we just calculate it always */ 1169 always have timers, we just calculate it always */
858#if EV_USE_MONOTONIC 1170#if EV_USE_MONOTONIC
859 if (expect_true (have_monotonic)) 1171 if (expect_true (have_monotonic))
860 time_update_monotonic (EV_A); 1172 time_update_monotonic (EV_A);
861 else 1173 else
862#endif 1174#endif
863 { 1175 {
864 rt_now = ev_time (); 1176 ev_rt_now = ev_time ();
865 mn_now = rt_now; 1177 mn_now = ev_rt_now;
866 } 1178 }
867 1179
868 if (flags & EVLOOP_NONBLOCK || idlecnt) 1180 if (flags & EVLOOP_NONBLOCK || idlecnt)
869 block = 0.; 1181 block = 0.;
870 else 1182 else
871 { 1183 {
872 block = MAX_BLOCKTIME; 1184 block = MAX_BLOCKTIME;
873 1185
874 if (timercnt) 1186 if (timercnt)
875 { 1187 {
876 ev_tstamp to = timers [0]->at - mn_now + method_fudge; 1188 ev_tstamp to = ((WT)timers [0])->at - mn_now + method_fudge;
877 if (block > to) block = to; 1189 if (block > to) block = to;
878 } 1190 }
879 1191
1192#if EV_PERIODICS
880 if (periodiccnt) 1193 if (periodiccnt)
881 { 1194 {
882 ev_tstamp to = periodics [0]->at - rt_now + method_fudge; 1195 ev_tstamp to = ((WT)periodics [0])->at - ev_rt_now + method_fudge;
883 if (block > to) block = to; 1196 if (block > to) block = to;
884 } 1197 }
1198#endif
885 1199
886 if (block < 0.) block = 0.; 1200 if (block < 0.) block = 0.;
887 } 1201 }
888 1202
889 method_poll (EV_A_ block); 1203 method_poll (EV_A_ block);
890 1204
891 /* update rt_now, do magic */ 1205 /* update ev_rt_now, do magic */
892 time_update (EV_A); 1206 time_update (EV_A);
893 1207
894 /* queue pending timers and reschedule them */ 1208 /* queue pending timers and reschedule them */
895 timers_reify (EV_A); /* relative timers called last */ 1209 timers_reify (EV_A); /* relative timers called last */
1210#if EV_PERIODICS
896 periodics_reify (EV_A); /* absolute timers called first */ 1211 periodics_reify (EV_A); /* absolute timers called first */
1212#endif
897 1213
898 /* queue idle watchers unless io or timers are pending */ 1214 /* queue idle watchers unless io or timers are pending */
899 if (!pendingcnt) 1215 if (idlecnt && !any_pending (EV_A))
900 queue_events (EV_A_ (W *)idles, idlecnt, EV_IDLE); 1216 queue_events (EV_A_ (W *)idles, idlecnt, EV_IDLE);
901 1217
902 /* queue check watchers, to be executed first */ 1218 /* queue check watchers, to be executed first */
903 if (checkcnt) 1219 if (checkcnt)
904 queue_events (EV_A_ (W *)checks, checkcnt, EV_CHECK); 1220 queue_events (EV_A_ (W *)checks, checkcnt, EV_CHECK);
979 return; 1295 return;
980 1296
981 assert (("ev_io_start called with negative fd", fd >= 0)); 1297 assert (("ev_io_start called with negative fd", fd >= 0));
982 1298
983 ev_start (EV_A_ (W)w, 1); 1299 ev_start (EV_A_ (W)w, 1);
984 array_needsize (anfds, anfdmax, fd + 1, anfds_init); 1300 array_needsize (ANFD, anfds, anfdmax, fd + 1, anfds_init);
985 wlist_add ((WL *)&anfds[fd].head, (WL)w); 1301 wlist_add ((WL *)&anfds[fd].head, (WL)w);
986 1302
987 fd_change (EV_A_ fd); 1303 fd_change (EV_A_ fd);
988} 1304}
989 1305
992{ 1308{
993 ev_clear_pending (EV_A_ (W)w); 1309 ev_clear_pending (EV_A_ (W)w);
994 if (!ev_is_active (w)) 1310 if (!ev_is_active (w))
995 return; 1311 return;
996 1312
1313 assert (("ev_io_start called with illegal fd (must stay constant after start!)", w->fd >= 0 && w->fd < anfdmax));
1314
997 wlist_del ((WL *)&anfds[w->fd].head, (WL)w); 1315 wlist_del ((WL *)&anfds[w->fd].head, (WL)w);
998 ev_stop (EV_A_ (W)w); 1316 ev_stop (EV_A_ (W)w);
999 1317
1000 fd_change (EV_A_ w->fd); 1318 fd_change (EV_A_ w->fd);
1001} 1319}
1004ev_timer_start (EV_P_ struct ev_timer *w) 1322ev_timer_start (EV_P_ struct ev_timer *w)
1005{ 1323{
1006 if (ev_is_active (w)) 1324 if (ev_is_active (w))
1007 return; 1325 return;
1008 1326
1009 w->at += mn_now; 1327 ((WT)w)->at += mn_now;
1010 1328
1011 assert (("ev_timer_start called with negative timer repeat value", w->repeat >= 0.)); 1329 assert (("ev_timer_start called with negative timer repeat value", w->repeat >= 0.));
1012 1330
1013 ev_start (EV_A_ (W)w, ++timercnt); 1331 ev_start (EV_A_ (W)w, ++timercnt);
1014 array_needsize (timers, timermax, timercnt, ); 1332 array_needsize (struct ev_timer *, timers, timermax, timercnt, (void));
1015 timers [timercnt - 1] = w; 1333 timers [timercnt - 1] = w;
1016 upheap ((WT *)timers, timercnt - 1); 1334 upheap ((WT *)timers, timercnt - 1);
1335
1336 assert (("internal timer heap corruption", timers [((W)w)->active - 1] == w));
1017} 1337}
1018 1338
1019void 1339void
1020ev_timer_stop (EV_P_ struct ev_timer *w) 1340ev_timer_stop (EV_P_ struct ev_timer *w)
1021{ 1341{
1022 ev_clear_pending (EV_A_ (W)w); 1342 ev_clear_pending (EV_A_ (W)w);
1023 if (!ev_is_active (w)) 1343 if (!ev_is_active (w))
1024 return; 1344 return;
1025 1345
1346 assert (("internal timer heap corruption", timers [((W)w)->active - 1] == w));
1347
1026 if (w->active < timercnt--) 1348 if (((W)w)->active < timercnt--)
1027 { 1349 {
1028 timers [w->active - 1] = timers [timercnt]; 1350 timers [((W)w)->active - 1] = timers [timercnt];
1029 downheap ((WT *)timers, timercnt, w->active - 1); 1351 downheap ((WT *)timers, timercnt, ((W)w)->active - 1);
1030 } 1352 }
1031 1353
1032 w->at = w->repeat; 1354 ((WT)w)->at -= mn_now;
1033 1355
1034 ev_stop (EV_A_ (W)w); 1356 ev_stop (EV_A_ (W)w);
1035} 1357}
1036 1358
1037void 1359void
1038ev_timer_again (EV_P_ struct ev_timer *w) 1360ev_timer_again (EV_P_ struct ev_timer *w)
1039{ 1361{
1040 if (ev_is_active (w)) 1362 if (ev_is_active (w))
1041 { 1363 {
1042 if (w->repeat) 1364 if (w->repeat)
1043 {
1044 w->at = mn_now + w->repeat;
1045 downheap ((WT *)timers, timercnt, w->active - 1); 1365 adjustheap ((WT *)timers, timercnt, ((W)w)->active - 1, mn_now + w->repeat);
1046 }
1047 else 1366 else
1048 ev_timer_stop (EV_A_ w); 1367 ev_timer_stop (EV_A_ w);
1049 } 1368 }
1050 else if (w->repeat) 1369 else if (w->repeat)
1051 ev_timer_start (EV_A_ w); 1370 ev_timer_start (EV_A_ w);
1052} 1371}
1053 1372
1373#if EV_PERIODICS
1054void 1374void
1055ev_periodic_start (EV_P_ struct ev_periodic *w) 1375ev_periodic_start (EV_P_ struct ev_periodic *w)
1056{ 1376{
1057 if (ev_is_active (w)) 1377 if (ev_is_active (w))
1058 return; 1378 return;
1059 1379
1380 if (w->reschedule_cb)
1381 ((WT)w)->at = w->reschedule_cb (w, ev_rt_now);
1382 else if (w->interval)
1383 {
1060 assert (("ev_periodic_start called with negative interval value", w->interval >= 0.)); 1384 assert (("ev_periodic_start called with negative interval value", w->interval >= 0.));
1061
1062 /* this formula differs from the one in periodic_reify because we do not always round up */ 1385 /* this formula differs from the one in periodic_reify because we do not always round up */
1063 if (w->interval)
1064 w->at += ceil ((rt_now - w->at) / w->interval) * w->interval; 1386 ((WT)w)->at += ceil ((ev_rt_now - ((WT)w)->at) / w->interval) * w->interval;
1387 }
1065 1388
1066 ev_start (EV_A_ (W)w, ++periodiccnt); 1389 ev_start (EV_A_ (W)w, ++periodiccnt);
1067 array_needsize (periodics, periodicmax, periodiccnt, ); 1390 array_needsize (struct ev_periodic *, periodics, periodicmax, periodiccnt, (void));
1068 periodics [periodiccnt - 1] = w; 1391 periodics [periodiccnt - 1] = w;
1069 upheap ((WT *)periodics, periodiccnt - 1); 1392 upheap ((WT *)periodics, periodiccnt - 1);
1393
1394 assert (("internal periodic heap corruption", periodics [((W)w)->active - 1] == w));
1070} 1395}
1071 1396
1072void 1397void
1073ev_periodic_stop (EV_P_ struct ev_periodic *w) 1398ev_periodic_stop (EV_P_ struct ev_periodic *w)
1074{ 1399{
1075 ev_clear_pending (EV_A_ (W)w); 1400 ev_clear_pending (EV_A_ (W)w);
1076 if (!ev_is_active (w)) 1401 if (!ev_is_active (w))
1077 return; 1402 return;
1078 1403
1404 assert (("internal periodic heap corruption", periodics [((W)w)->active - 1] == w));
1405
1079 if (w->active < periodiccnt--) 1406 if (((W)w)->active < periodiccnt--)
1080 { 1407 {
1081 periodics [w->active - 1] = periodics [periodiccnt]; 1408 periodics [((W)w)->active - 1] = periodics [periodiccnt];
1082 downheap ((WT *)periodics, periodiccnt, w->active - 1); 1409 downheap ((WT *)periodics, periodiccnt, ((W)w)->active - 1);
1083 } 1410 }
1084 1411
1412 ev_stop (EV_A_ (W)w);
1413}
1414
1415void
1416ev_periodic_again (EV_P_ struct ev_periodic *w)
1417{
1418 /* TODO: use adjustheap and recalculation */
1419 ev_periodic_stop (EV_A_ w);
1420 ev_periodic_start (EV_A_ w);
1421}
1422#endif
1423
1424void
1425ev_idle_start (EV_P_ struct ev_idle *w)
1426{
1427 if (ev_is_active (w))
1428 return;
1429
1430 ev_start (EV_A_ (W)w, ++idlecnt);
1431 array_needsize (struct ev_idle *, idles, idlemax, idlecnt, (void));
1432 idles [idlecnt - 1] = w;
1433}
1434
1435void
1436ev_idle_stop (EV_P_ struct ev_idle *w)
1437{
1438 ev_clear_pending (EV_A_ (W)w);
1439 if (ev_is_active (w))
1440 return;
1441
1442 idles [((W)w)->active - 1] = idles [--idlecnt];
1443 ev_stop (EV_A_ (W)w);
1444}
1445
1446void
1447ev_prepare_start (EV_P_ struct ev_prepare *w)
1448{
1449 if (ev_is_active (w))
1450 return;
1451
1452 ev_start (EV_A_ (W)w, ++preparecnt);
1453 array_needsize (struct ev_prepare *, prepares, preparemax, preparecnt, (void));
1454 prepares [preparecnt - 1] = w;
1455}
1456
1457void
1458ev_prepare_stop (EV_P_ struct ev_prepare *w)
1459{
1460 ev_clear_pending (EV_A_ (W)w);
1461 if (ev_is_active (w))
1462 return;
1463
1464 prepares [((W)w)->active - 1] = prepares [--preparecnt];
1465 ev_stop (EV_A_ (W)w);
1466}
1467
1468void
1469ev_check_start (EV_P_ struct ev_check *w)
1470{
1471 if (ev_is_active (w))
1472 return;
1473
1474 ev_start (EV_A_ (W)w, ++checkcnt);
1475 array_needsize (struct ev_check *, checks, checkmax, checkcnt, (void));
1476 checks [checkcnt - 1] = w;
1477}
1478
1479void
1480ev_check_stop (EV_P_ struct ev_check *w)
1481{
1482 ev_clear_pending (EV_A_ (W)w);
1483 if (!ev_is_active (w))
1484 return;
1485
1486 checks [((W)w)->active - 1] = checks [--checkcnt];
1085 ev_stop (EV_A_ (W)w); 1487 ev_stop (EV_A_ (W)w);
1086} 1488}
1087 1489
1088#ifndef SA_RESTART 1490#ifndef SA_RESTART
1089# define SA_RESTART 0 1491# define SA_RESTART 0
1090#endif 1492#endif
1091 1493
1092void 1494void
1093ev_signal_start (EV_P_ struct ev_signal *w) 1495ev_signal_start (EV_P_ struct ev_signal *w)
1094{ 1496{
1497#if EV_MULTIPLICITY
1498 assert (("signal watchers are only supported in the default loop", loop == default_loop));
1499#endif
1095 if (ev_is_active (w)) 1500 if (ev_is_active (w))
1096 return; 1501 return;
1097 1502
1098 assert (("ev_signal_start called with illegal signal number", w->signum > 0)); 1503 assert (("ev_signal_start called with illegal signal number", w->signum > 0));
1099 1504
1100 ev_start (EV_A_ (W)w, 1); 1505 ev_start (EV_A_ (W)w, 1);
1101 array_needsize (signals, signalmax, w->signum, signals_init); 1506 array_needsize (ANSIG, signals, signalmax, w->signum, signals_init);
1102 wlist_add ((WL *)&signals [w->signum - 1].head, (WL)w); 1507 wlist_add ((WL *)&signals [w->signum - 1].head, (WL)w);
1103 1508
1104 if (!w->next) 1509 if (!((WL)w)->next)
1105 { 1510 {
1511#if WIN32
1512 signal (w->signum, sighandler);
1513#else
1106 struct sigaction sa; 1514 struct sigaction sa;
1107 sa.sa_handler = sighandler; 1515 sa.sa_handler = sighandler;
1108 sigfillset (&sa.sa_mask); 1516 sigfillset (&sa.sa_mask);
1109 sa.sa_flags = SA_RESTART; /* if restarting works we save one iteration */ 1517 sa.sa_flags = SA_RESTART; /* if restarting works we save one iteration */
1110 sigaction (w->signum, &sa, 0); 1518 sigaction (w->signum, &sa, 0);
1519#endif
1111 } 1520 }
1112} 1521}
1113 1522
1114void 1523void
1115ev_signal_stop (EV_P_ struct ev_signal *w) 1524ev_signal_stop (EV_P_ struct ev_signal *w)
1124 if (!signals [w->signum - 1].head) 1533 if (!signals [w->signum - 1].head)
1125 signal (w->signum, SIG_DFL); 1534 signal (w->signum, SIG_DFL);
1126} 1535}
1127 1536
1128void 1537void
1129ev_idle_start (EV_P_ struct ev_idle *w)
1130{
1131 if (ev_is_active (w))
1132 return;
1133
1134 ev_start (EV_A_ (W)w, ++idlecnt);
1135 array_needsize (idles, idlemax, idlecnt, );
1136 idles [idlecnt - 1] = w;
1137}
1138
1139void
1140ev_idle_stop (EV_P_ struct ev_idle *w)
1141{
1142 ev_clear_pending (EV_A_ (W)w);
1143 if (ev_is_active (w))
1144 return;
1145
1146 idles [w->active - 1] = idles [--idlecnt];
1147 ev_stop (EV_A_ (W)w);
1148}
1149
1150void
1151ev_prepare_start (EV_P_ struct ev_prepare *w)
1152{
1153 if (ev_is_active (w))
1154 return;
1155
1156 ev_start (EV_A_ (W)w, ++preparecnt);
1157 array_needsize (prepares, preparemax, preparecnt, );
1158 prepares [preparecnt - 1] = w;
1159}
1160
1161void
1162ev_prepare_stop (EV_P_ struct ev_prepare *w)
1163{
1164 ev_clear_pending (EV_A_ (W)w);
1165 if (ev_is_active (w))
1166 return;
1167
1168 prepares [w->active - 1] = prepares [--preparecnt];
1169 ev_stop (EV_A_ (W)w);
1170}
1171
1172void
1173ev_check_start (EV_P_ struct ev_check *w)
1174{
1175 if (ev_is_active (w))
1176 return;
1177
1178 ev_start (EV_A_ (W)w, ++checkcnt);
1179 array_needsize (checks, checkmax, checkcnt, );
1180 checks [checkcnt - 1] = w;
1181}
1182
1183void
1184ev_check_stop (EV_P_ struct ev_check *w)
1185{
1186 ev_clear_pending (EV_A_ (W)w);
1187 if (ev_is_active (w))
1188 return;
1189
1190 checks [w->active - 1] = checks [--checkcnt];
1191 ev_stop (EV_A_ (W)w);
1192}
1193
1194void
1195ev_child_start (EV_P_ struct ev_child *w) 1538ev_child_start (EV_P_ struct ev_child *w)
1196{ 1539{
1540#if EV_MULTIPLICITY
1541 assert (("child watchers are only supported in the default loop", loop == default_loop));
1542#endif
1197 if (ev_is_active (w)) 1543 if (ev_is_active (w))
1198 return; 1544 return;
1199 1545
1200 ev_start (EV_A_ (W)w, 1); 1546 ev_start (EV_A_ (W)w, 1);
1201 wlist_add ((WL *)&childs [w->pid & (PID_HASHSIZE - 1)], (WL)w); 1547 wlist_add ((WL *)&childs [w->pid & (PID_HASHSIZE - 1)], (WL)w);
1203 1549
1204void 1550void
1205ev_child_stop (EV_P_ struct ev_child *w) 1551ev_child_stop (EV_P_ struct ev_child *w)
1206{ 1552{
1207 ev_clear_pending (EV_A_ (W)w); 1553 ev_clear_pending (EV_A_ (W)w);
1208 if (ev_is_active (w)) 1554 if (!ev_is_active (w))
1209 return; 1555 return;
1210 1556
1211 wlist_del ((WL *)&childs [w->pid & (PID_HASHSIZE - 1)], (WL)w); 1557 wlist_del ((WL *)&childs [w->pid & (PID_HASHSIZE - 1)], (WL)w);
1212 ev_stop (EV_A_ (W)w); 1558 ev_stop (EV_A_ (W)w);
1213} 1559}
1228 void (*cb)(int revents, void *arg) = once->cb; 1574 void (*cb)(int revents, void *arg) = once->cb;
1229 void *arg = once->arg; 1575 void *arg = once->arg;
1230 1576
1231 ev_io_stop (EV_A_ &once->io); 1577 ev_io_stop (EV_A_ &once->io);
1232 ev_timer_stop (EV_A_ &once->to); 1578 ev_timer_stop (EV_A_ &once->to);
1233 free (once); 1579 ev_free (once);
1234 1580
1235 cb (revents, arg); 1581 cb (revents, arg);
1236} 1582}
1237 1583
1238static void 1584static void
1248} 1594}
1249 1595
1250void 1596void
1251ev_once (EV_P_ int fd, int events, ev_tstamp timeout, void (*cb)(int revents, void *arg), void *arg) 1597ev_once (EV_P_ int fd, int events, ev_tstamp timeout, void (*cb)(int revents, void *arg), void *arg)
1252{ 1598{
1253 struct ev_once *once = malloc (sizeof (struct ev_once)); 1599 struct ev_once *once = (struct ev_once *)ev_malloc (sizeof (struct ev_once));
1254 1600
1255 if (!once) 1601 if (!once)
1256 cb (EV_ERROR | EV_READ | EV_WRITE | EV_TIMEOUT, arg); 1602 cb (EV_ERROR | EV_READ | EV_WRITE | EV_TIMEOUT, arg);
1257 else 1603 else
1258 { 1604 {
1259 once->cb = cb; 1605 once->cb = cb;
1260 once->arg = arg; 1606 once->arg = arg;
1261 1607
1262 ev_watcher_init (&once->io, once_cb_io); 1608 ev_init (&once->io, once_cb_io);
1263 if (fd >= 0) 1609 if (fd >= 0)
1264 { 1610 {
1265 ev_io_set (&once->io, fd, events); 1611 ev_io_set (&once->io, fd, events);
1266 ev_io_start (EV_A_ &once->io); 1612 ev_io_start (EV_A_ &once->io);
1267 } 1613 }
1268 1614
1269 ev_watcher_init (&once->to, once_cb_to); 1615 ev_init (&once->to, once_cb_to);
1270 if (timeout >= 0.) 1616 if (timeout >= 0.)
1271 { 1617 {
1272 ev_timer_set (&once->to, timeout, 0.); 1618 ev_timer_set (&once->to, timeout, 0.);
1273 ev_timer_start (EV_A_ &once->to); 1619 ev_timer_start (EV_A_ &once->to);
1274 } 1620 }
1275 } 1621 }
1276} 1622}
1277 1623
1278/*****************************************************************************/ 1624#ifdef __cplusplus
1279
1280#if 0
1281
1282struct ev_io wio;
1283
1284static void
1285sin_cb (struct ev_io *w, int revents)
1286{
1287 fprintf (stderr, "sin %d, revents %d\n", w->fd, revents);
1288} 1625}
1289
1290static void
1291ocb (struct ev_timer *w, int revents)
1292{
1293 //fprintf (stderr, "timer %f,%f (%x) (%f) d%p\n", w->at, w->repeat, revents, w->at - ev_time (), w->data);
1294 ev_timer_stop (w);
1295 ev_timer_start (w);
1296}
1297
1298static void
1299scb (struct ev_signal *w, int revents)
1300{
1301 fprintf (stderr, "signal %x,%d\n", revents, w->signum);
1302 ev_io_stop (&wio);
1303 ev_io_start (&wio);
1304}
1305
1306static void
1307gcb (struct ev_signal *w, int revents)
1308{
1309 fprintf (stderr, "generic %x\n", revents);
1310
1311}
1312
1313int main (void)
1314{
1315 ev_init (0);
1316
1317 ev_io_init (&wio, sin_cb, 0, EV_READ);
1318 ev_io_start (&wio);
1319
1320 struct ev_timer t[10000];
1321
1322#if 0
1323 int i;
1324 for (i = 0; i < 10000; ++i)
1325 {
1326 struct ev_timer *w = t + i;
1327 ev_watcher_init (w, ocb, i);
1328 ev_timer_init_abs (w, ocb, drand48 (), 0.99775533);
1329 ev_timer_start (w);
1330 if (drand48 () < 0.5)
1331 ev_timer_stop (w);
1332 }
1333#endif 1626#endif
1334 1627
1335 struct ev_timer t1;
1336 ev_timer_init (&t1, ocb, 5, 10);
1337 ev_timer_start (&t1);
1338
1339 struct ev_signal sig;
1340 ev_signal_init (&sig, scb, SIGQUIT);
1341 ev_signal_start (&sig);
1342
1343 struct ev_check cw;
1344 ev_check_init (&cw, gcb);
1345 ev_check_start (&cw);
1346
1347 struct ev_idle iw;
1348 ev_idle_init (&iw, gcb);
1349 ev_idle_start (&iw);
1350
1351 ev_loop (0);
1352
1353 return 0;
1354}
1355
1356#endif
1357
1358
1359
1360

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