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Comparing libev/ev.c (file contents):
Revision 1.69 by root, Tue Nov 6 00:10:04 2007 UTC vs.
Revision 1.252 by root, Thu May 22 03:43:32 2008 UTC

1/* 1/*
2 * libev event processing core, watcher management 2 * libev event processing core, watcher management
3 * 3 *
4 * Copyright (c) 2007 Marc Alexander Lehmann <libev@schmorp.de> 4 * Copyright (c) 2007,2008 Marc Alexander Lehmann <libev@schmorp.de>
5 * All rights reserved. 5 * All rights reserved.
6 * 6 *
7 * Redistribution and use in source and binary forms, with or without 7 * Redistribution and use in source and binary forms, with or without modifica-
8 * modification, are permitted provided that the following conditions are 8 * tion, are permitted provided that the following conditions are met:
9 * met: 9 *
10 * 1. Redistributions of source code must retain the above copyright notice,
11 * this list of conditions and the following disclaimer.
12 *
13 * 2. Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in the
15 * documentation and/or other materials provided with the distribution.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR IMPLIED
18 * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MER-
19 * CHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO
20 * EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPE-
21 * CIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
22 * PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS;
23 * OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY,
24 * WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTH-
25 * ERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED
26 * OF THE POSSIBILITY OF SUCH DAMAGE.
10 * 27 *
11 * * Redistributions of source code must retain the above copyright 28 * Alternatively, the contents of this file may be used under the terms of
12 * notice, this list of conditions and the following disclaimer. 29 * the GNU General Public License ("GPL") version 2 or any later version,
13 * 30 * in which case the provisions of the GPL are applicable instead of
14 * * Redistributions in binary form must reproduce the above 31 * the above. If you wish to allow the use of your version of this file
15 * copyright notice, this list of conditions and the following 32 * only under the terms of the GPL and not to allow others to use your
16 * disclaimer in the documentation and/or other materials provided 33 * version of this file under the BSD license, indicate your decision
17 * with the distribution. 34 * by deleting the provisions above and replace them with the notice
18 * 35 * and other provisions required by the GPL. If you do not delete the
19 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS 36 * provisions above, a recipient may use your version of this file under
20 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT 37 * either the BSD or the GPL.
21 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
22 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
23 * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
24 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
25 * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
26 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
27 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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.
30 */ 38 */
39
40#ifdef __cplusplus
41extern "C" {
42#endif
43
44/* this big block deduces configuration from config.h */
31#ifndef EV_STANDALONE 45#ifndef EV_STANDALONE
46# ifdef EV_CONFIG_H
47# include EV_CONFIG_H
48# else
32# include "config.h" 49# include "config.h"
50# endif
33 51
34# if HAVE_CLOCK_GETTIME 52# if HAVE_CLOCK_GETTIME
53# ifndef EV_USE_MONOTONIC
35# define EV_USE_MONOTONIC 1 54# define EV_USE_MONOTONIC 1
55# endif
56# ifndef EV_USE_REALTIME
36# define EV_USE_REALTIME 1 57# define EV_USE_REALTIME 1
58# endif
59# else
60# ifndef EV_USE_MONOTONIC
61# define EV_USE_MONOTONIC 0
62# endif
63# ifndef EV_USE_REALTIME
64# define EV_USE_REALTIME 0
65# endif
37# endif 66# endif
38 67
39# if HAVE_SELECT && HAVE_SYS_SELECT_H 68# ifndef EV_USE_NANOSLEEP
69# if HAVE_NANOSLEEP
40# define EV_USE_SELECT 1 70# define EV_USE_NANOSLEEP 1
71# else
72# define EV_USE_NANOSLEEP 0
73# endif
41# endif 74# endif
42 75
43# if HAVE_POLL && HAVE_POLL_H 76# ifndef EV_USE_SELECT
77# if HAVE_SELECT && HAVE_SYS_SELECT_H
44# define EV_USE_POLL 1 78# define EV_USE_SELECT 1
79# else
80# define EV_USE_SELECT 0
81# endif
45# endif 82# endif
46 83
47# if HAVE_EPOLL && HAVE_EPOLL_CTL && HAVE_SYS_EPOLL_H 84# ifndef EV_USE_POLL
85# if HAVE_POLL && HAVE_POLL_H
48# define EV_USE_EPOLL 1 86# define EV_USE_POLL 1
87# else
88# define EV_USE_POLL 0
89# endif
49# endif 90# endif
50 91
51# if HAVE_KQUEUE && HAVE_WORKING_KQUEUE && HAVE_SYS_EVENT_H && HAVE_SYS_QUEUE_H 92# ifndef EV_USE_EPOLL
93# if HAVE_EPOLL_CTL && HAVE_SYS_EPOLL_H
52# define EV_USE_KQUEUE 1 94# define EV_USE_EPOLL 1
95# else
96# define EV_USE_EPOLL 0
97# endif
53# endif 98# endif
99
100# ifndef EV_USE_KQUEUE
101# if HAVE_KQUEUE && HAVE_SYS_EVENT_H && HAVE_SYS_QUEUE_H
102# define EV_USE_KQUEUE 1
103# else
104# define EV_USE_KQUEUE 0
105# endif
106# endif
107
108# ifndef EV_USE_PORT
109# if HAVE_PORT_H && HAVE_PORT_CREATE
110# define EV_USE_PORT 1
111# else
112# define EV_USE_PORT 0
113# endif
114# endif
54 115
116# ifndef EV_USE_INOTIFY
117# if HAVE_INOTIFY_INIT && HAVE_SYS_INOTIFY_H
118# define EV_USE_INOTIFY 1
119# else
120# define EV_USE_INOTIFY 0
121# endif
122# endif
123
124# ifndef EV_USE_EVENTFD
125# if HAVE_EVENTFD
126# define EV_USE_EVENTFD 1
127# else
128# define EV_USE_EVENTFD 0
129# endif
130# endif
131
55#endif 132#endif
56 133
57#include <math.h> 134#include <math.h>
58#include <stdlib.h> 135#include <stdlib.h>
59#include <unistd.h>
60#include <fcntl.h> 136#include <fcntl.h>
61#include <signal.h>
62#include <stddef.h> 137#include <stddef.h>
63 138
64#include <stdio.h> 139#include <stdio.h>
65 140
66#include <assert.h> 141#include <assert.h>
67#include <errno.h> 142#include <errno.h>
68#include <sys/types.h> 143#include <sys/types.h>
144#include <time.h>
145
146#include <signal.h>
147
148#ifdef EV_H
149# include EV_H
150#else
151# include "ev.h"
152#endif
153
69#ifndef WIN32 154#ifndef _WIN32
155# include <sys/time.h>
70# include <sys/wait.h> 156# include <sys/wait.h>
157# include <unistd.h>
158#else
159# define WIN32_LEAN_AND_MEAN
160# include <windows.h>
161# ifndef EV_SELECT_IS_WINSOCKET
162# define EV_SELECT_IS_WINSOCKET 1
71#endif 163# endif
72#include <sys/time.h> 164#endif
73#include <time.h>
74 165
75/**/ 166/* this block tries to deduce configuration from header-defined symbols and defaults */
76 167
77#ifndef EV_USE_MONOTONIC 168#ifndef EV_USE_MONOTONIC
78# define EV_USE_MONOTONIC 1 169# define EV_USE_MONOTONIC 0
170#endif
171
172#ifndef EV_USE_REALTIME
173# define EV_USE_REALTIME 0
174#endif
175
176#ifndef EV_USE_NANOSLEEP
177# define EV_USE_NANOSLEEP 0
79#endif 178#endif
80 179
81#ifndef EV_USE_SELECT 180#ifndef EV_USE_SELECT
82# define EV_USE_SELECT 1 181# define EV_USE_SELECT 1
83#endif 182#endif
84 183
85#ifndef EV_USE_POLL 184#ifndef EV_USE_POLL
86# define EV_USE_POLL 0 /* poll is usually slower than select, and not as well tested */ 185# ifdef _WIN32
186# define EV_USE_POLL 0
187# else
188# define EV_USE_POLL 1
189# endif
87#endif 190#endif
88 191
89#ifndef EV_USE_EPOLL 192#ifndef EV_USE_EPOLL
193# if __linux && (__GLIBC__ > 2 || (__GLIBC__ == 2 && __GLIBC_MINOR__ >= 4))
194# define EV_USE_EPOLL 1
195# else
90# define EV_USE_EPOLL 0 196# define EV_USE_EPOLL 0
197# endif
91#endif 198#endif
92 199
93#ifndef EV_USE_KQUEUE 200#ifndef EV_USE_KQUEUE
94# define EV_USE_KQUEUE 0 201# define EV_USE_KQUEUE 0
95#endif 202#endif
96 203
204#ifndef EV_USE_PORT
205# define EV_USE_PORT 0
206#endif
207
97#ifndef EV_USE_WIN32 208#ifndef EV_USE_INOTIFY
98# ifdef WIN32 209# if __linux && (__GLIBC__ > 2 || (__GLIBC__ == 2 && __GLIBC_MINOR__ >= 4))
99# define EV_USE_WIN32 1 210# define EV_USE_INOTIFY 1
100# else 211# else
101# define EV_USE_WIN32 0 212# define EV_USE_INOTIFY 0
102# endif 213# endif
103#endif 214#endif
104 215
105#ifndef EV_USE_REALTIME 216#ifndef EV_PID_HASHSIZE
106# define EV_USE_REALTIME 1 217# if EV_MINIMAL
218# define EV_PID_HASHSIZE 1
219# else
220# define EV_PID_HASHSIZE 16
107#endif 221# endif
222#endif
108 223
109/**/ 224#ifndef EV_INOTIFY_HASHSIZE
225# if EV_MINIMAL
226# define EV_INOTIFY_HASHSIZE 1
227# else
228# define EV_INOTIFY_HASHSIZE 16
229# endif
230#endif
231
232#ifndef EV_USE_EVENTFD
233# if __linux && (__GLIBC__ > 2 || (__GLIBC__ == 2 && __GLIBC_MINOR__ >= 7))
234# define EV_USE_EVENTFD 1
235# else
236# define EV_USE_EVENTFD 0
237# endif
238#endif
239
240#if 0 /* debugging */
241# define EV_VERIFY 3
242# define EV_USE_4HEAP 1
243# define EV_HEAP_CACHE_AT 1
244#endif
245
246#ifndef EV_VERIFY
247# define EV_VERIFY !EV_MINIMAL
248#endif
249
250#ifndef EV_USE_4HEAP
251# define EV_USE_4HEAP !EV_MINIMAL
252#endif
253
254#ifndef EV_HEAP_CACHE_AT
255# define EV_HEAP_CACHE_AT !EV_MINIMAL
256#endif
257
258/* this block fixes any misconfiguration where we know we run into trouble otherwise */
110 259
111#ifndef CLOCK_MONOTONIC 260#ifndef CLOCK_MONOTONIC
112# undef EV_USE_MONOTONIC 261# undef EV_USE_MONOTONIC
113# define EV_USE_MONOTONIC 0 262# define EV_USE_MONOTONIC 0
114#endif 263#endif
116#ifndef CLOCK_REALTIME 265#ifndef CLOCK_REALTIME
117# undef EV_USE_REALTIME 266# undef EV_USE_REALTIME
118# define EV_USE_REALTIME 0 267# define EV_USE_REALTIME 0
119#endif 268#endif
120 269
270#if !EV_STAT_ENABLE
271# undef EV_USE_INOTIFY
272# define EV_USE_INOTIFY 0
273#endif
274
275#if !EV_USE_NANOSLEEP
276# ifndef _WIN32
277# include <sys/select.h>
278# endif
279#endif
280
281#if EV_USE_INOTIFY
282# include <sys/inotify.h>
283#endif
284
285#if EV_SELECT_IS_WINSOCKET
286# include <winsock.h>
287#endif
288
289#if EV_USE_EVENTFD
290/* our minimum requirement is glibc 2.7 which has the stub, but not the header */
291# include <stdint.h>
292# ifdef __cplusplus
293extern "C" {
294# endif
295int eventfd (unsigned int initval, int flags);
296# ifdef __cplusplus
297}
298# endif
299#endif
300
121/**/ 301/**/
122 302
303#if EV_VERIFY >= 3
304# define EV_FREQUENT_CHECK ev_loop_verify (EV_A)
305#else
306# define EV_FREQUENT_CHECK do { } while (0)
307#endif
308
309/*
310 * This is used to avoid floating point rounding problems.
311 * It is added to ev_rt_now when scheduling periodics
312 * to ensure progress, time-wise, even when rounding
313 * errors are against us.
314 * This value is good at least till the year 4000.
315 * Better solutions welcome.
316 */
317#define TIME_EPSILON 0.0001220703125 /* 1/8192 */
318
123#define MIN_TIMEJUMP 1. /* minimum timejump that gets detected (if monotonic clock available) */ 319#define MIN_TIMEJUMP 1. /* minimum timejump that gets detected (if monotonic clock available) */
124#define MAX_BLOCKTIME 59.731 /* never wait longer than this time (to detect time jumps) */ 320#define MAX_BLOCKTIME 59.743 /* never wait longer than this time (to detect time jumps) */
125#define PID_HASHSIZE 16 /* size of pid hash table, must be power of two */
126/*#define CLEANUP_INTERVAL 300. /* how often to try to free memory and re-check fds */ 321/*#define CLEANUP_INTERVAL (MAX_BLOCKTIME * 5.) /* how often to try to free memory and re-check fds, TODO */
127 322
128#include "ev.h"
129
130#if __GNUC__ >= 3 323#if __GNUC__ >= 4
131# define expect(expr,value) __builtin_expect ((expr),(value)) 324# define expect(expr,value) __builtin_expect ((expr),(value))
132# define inline inline 325# define noinline __attribute__ ((noinline))
133#else 326#else
134# define expect(expr,value) (expr) 327# define expect(expr,value) (expr)
135# define inline static 328# define noinline
329# if __STDC_VERSION__ < 199901L && __GNUC__ < 2
330# define inline
331# endif
136#endif 332#endif
137 333
138#define expect_false(expr) expect ((expr) != 0, 0) 334#define expect_false(expr) expect ((expr) != 0, 0)
139#define expect_true(expr) expect ((expr) != 0, 1) 335#define expect_true(expr) expect ((expr) != 0, 1)
336#define inline_size static inline
337
338#if EV_MINIMAL
339# define inline_speed static noinline
340#else
341# define inline_speed static inline
342#endif
140 343
141#define NUMPRI (EV_MAXPRI - EV_MINPRI + 1) 344#define NUMPRI (EV_MAXPRI - EV_MINPRI + 1)
142#define ABSPRI(w) ((w)->priority - EV_MINPRI) 345#define ABSPRI(w) (((W)w)->priority - EV_MINPRI)
143 346
347#define EMPTY /* required for microsofts broken pseudo-c compiler */
348#define EMPTY2(a,b) /* used to suppress some warnings */
349
144typedef struct ev_watcher *W; 350typedef ev_watcher *W;
145typedef struct ev_watcher_list *WL; 351typedef ev_watcher_list *WL;
146typedef struct ev_watcher_time *WT; 352typedef ev_watcher_time *WT;
147 353
354#define ev_active(w) ((W)(w))->active
355#define ev_at(w) ((WT)(w))->at
356
357#if EV_USE_MONOTONIC
358/* sig_atomic_t is used to avoid per-thread variables or locking but still */
359/* giving it a reasonably high chance of working on typical architetcures */
148static int have_monotonic; /* did clock_gettime (CLOCK_MONOTONIC) work? */ 360static EV_ATOMIC_T have_monotonic; /* did clock_gettime (CLOCK_MONOTONIC) work? */
361#endif
149 362
150#if WIN32 363#ifdef _WIN32
151/* note: the comment below could not be substantiated, but what would I care */ 364# include "ev_win32.c"
152/* MSDN says this is required to handle SIGFPE */
153volatile double SIGFPE_REQ = 0.0f;
154#endif 365#endif
155 366
156/*****************************************************************************/ 367/*****************************************************************************/
157 368
158static void (*syserr_cb)(void); 369static void (*syserr_cb)(const char *msg);
159 370
160void ev_set_syserr_cb (void (*cb)(void)) 371void
372ev_set_syserr_cb (void (*cb)(const char *msg))
161{ 373{
162 syserr_cb = cb; 374 syserr_cb = cb;
163} 375}
164 376
165static void 377static void noinline
166syserr (void) 378syserr (const char *msg)
167{ 379{
380 if (!msg)
381 msg = "(libev) system error";
382
168 if (syserr_cb) 383 if (syserr_cb)
169 syserr_cb (); 384 syserr_cb (msg);
170 else 385 else
171 { 386 {
172 perror ("libev"); 387 perror (msg);
173 abort (); 388 abort ();
174 } 389 }
175} 390}
176 391
392static void *
393ev_realloc_emul (void *ptr, long size)
394{
395 /* some systems, notably openbsd and darwin, fail to properly
396 * implement realloc (x, 0) (as required by both ansi c-98 and
397 * the single unix specification, so work around them here.
398 */
399
400 if (size)
401 return realloc (ptr, size);
402
403 free (ptr);
404 return 0;
405}
406
177static void *(*alloc)(void *ptr, long size); 407static void *(*alloc)(void *ptr, long size) = ev_realloc_emul;
178 408
409void
179void ev_set_allocator (void *(*cb)(void *ptr, long size)) 410ev_set_allocator (void *(*cb)(void *ptr, long size))
180{ 411{
181 alloc = cb; 412 alloc = cb;
182} 413}
183 414
184static void * 415inline_speed void *
185ev_realloc (void *ptr, long size) 416ev_realloc (void *ptr, long size)
186{ 417{
187 ptr = alloc ? alloc (ptr, size) : realloc (ptr, size); 418 ptr = alloc (ptr, size);
188 419
189 if (!ptr && size) 420 if (!ptr && size)
190 { 421 {
191 fprintf (stderr, "libev: cannot allocate %ld bytes, aborting.", size); 422 fprintf (stderr, "libev: cannot allocate %ld bytes, aborting.", size);
192 abort (); 423 abort ();
203typedef struct 434typedef struct
204{ 435{
205 WL head; 436 WL head;
206 unsigned char events; 437 unsigned char events;
207 unsigned char reify; 438 unsigned char reify;
439#if EV_SELECT_IS_WINSOCKET
440 SOCKET handle;
441#endif
208} ANFD; 442} ANFD;
209 443
210typedef struct 444typedef struct
211{ 445{
212 W w; 446 W w;
213 int events; 447 int events;
214} ANPENDING; 448} ANPENDING;
215 449
450#if EV_USE_INOTIFY
451/* hash table entry per inotify-id */
452typedef struct
453{
454 WL head;
455} ANFS;
456#endif
457
458/* Heap Entry */
459#if EV_HEAP_CACHE_AT
460 typedef struct {
461 ev_tstamp at;
462 WT w;
463 } ANHE;
464
465 #define ANHE_w(he) (he).w /* access watcher, read-write */
466 #define ANHE_at(he) (he).at /* access cached at, read-only */
467 #define ANHE_at_cache(he) (he).at = (he).w->at /* update at from watcher */
468#else
469 typedef WT ANHE;
470
471 #define ANHE_w(he) (he)
472 #define ANHE_at(he) (he)->at
473 #define ANHE_at_cache(he)
474#endif
475
216#if EV_MULTIPLICITY 476#if EV_MULTIPLICITY
217 477
218struct ev_loop 478 struct ev_loop
219{ 479 {
480 ev_tstamp ev_rt_now;
481 #define ev_rt_now ((loop)->ev_rt_now)
220# define VAR(name,decl) decl; 482 #define VAR(name,decl) decl;
221# include "ev_vars.h" 483 #include "ev_vars.h"
222};
223# undef VAR 484 #undef VAR
485 };
224# include "ev_wrap.h" 486 #include "ev_wrap.h"
487
488 static struct ev_loop default_loop_struct;
489 struct ev_loop *ev_default_loop_ptr;
225 490
226#else 491#else
227 492
493 ev_tstamp ev_rt_now;
228# define VAR(name,decl) static decl; 494 #define VAR(name,decl) static decl;
229# include "ev_vars.h" 495 #include "ev_vars.h"
230# undef VAR 496 #undef VAR
497
498 static int ev_default_loop_ptr;
231 499
232#endif 500#endif
233 501
234/*****************************************************************************/ 502/*****************************************************************************/
235 503
236inline ev_tstamp 504ev_tstamp
237ev_time (void) 505ev_time (void)
238{ 506{
239#if EV_USE_REALTIME 507#if EV_USE_REALTIME
240 struct timespec ts; 508 struct timespec ts;
241 clock_gettime (CLOCK_REALTIME, &ts); 509 clock_gettime (CLOCK_REALTIME, &ts);
245 gettimeofday (&tv, 0); 513 gettimeofday (&tv, 0);
246 return tv.tv_sec + tv.tv_usec * 1e-6; 514 return tv.tv_sec + tv.tv_usec * 1e-6;
247#endif 515#endif
248} 516}
249 517
250inline ev_tstamp 518ev_tstamp inline_size
251get_clock (void) 519get_clock (void)
252{ 520{
253#if EV_USE_MONOTONIC 521#if EV_USE_MONOTONIC
254 if (expect_true (have_monotonic)) 522 if (expect_true (have_monotonic))
255 { 523 {
260#endif 528#endif
261 529
262 return ev_time (); 530 return ev_time ();
263} 531}
264 532
533#if EV_MULTIPLICITY
265ev_tstamp 534ev_tstamp
266ev_now (EV_P) 535ev_now (EV_P)
267{ 536{
268 return rt_now; 537 return ev_rt_now;
269} 538}
539#endif
270 540
271#define array_roundsize(base,n) ((n) | 4 & ~3) 541void
542ev_sleep (ev_tstamp delay)
543{
544 if (delay > 0.)
545 {
546#if EV_USE_NANOSLEEP
547 struct timespec ts;
272 548
549 ts.tv_sec = (time_t)delay;
550 ts.tv_nsec = (long)((delay - (ev_tstamp)(ts.tv_sec)) * 1e9);
551
552 nanosleep (&ts, 0);
553#elif defined(_WIN32)
554 Sleep ((unsigned long)(delay * 1e3));
555#else
556 struct timeval tv;
557
558 tv.tv_sec = (time_t)delay;
559 tv.tv_usec = (long)((delay - (ev_tstamp)(tv.tv_sec)) * 1e6);
560
561 select (0, 0, 0, 0, &tv);
562#endif
563 }
564}
565
566/*****************************************************************************/
567
568#define MALLOC_ROUND 4096 /* prefer to allocate in chunks of this size, must be 2**n and >> 4 longs */
569
570int inline_size
571array_nextsize (int elem, int cur, int cnt)
572{
573 int ncur = cur + 1;
574
575 do
576 ncur <<= 1;
577 while (cnt > ncur);
578
579 /* if size is large, round to MALLOC_ROUND - 4 * longs to accomodate malloc overhead */
580 if (elem * ncur > MALLOC_ROUND - sizeof (void *) * 4)
581 {
582 ncur *= elem;
583 ncur = (ncur + elem + (MALLOC_ROUND - 1) + sizeof (void *) * 4) & ~(MALLOC_ROUND - 1);
584 ncur = ncur - sizeof (void *) * 4;
585 ncur /= elem;
586 }
587
588 return ncur;
589}
590
591static noinline void *
592array_realloc (int elem, void *base, int *cur, int cnt)
593{
594 *cur = array_nextsize (elem, *cur, cnt);
595 return ev_realloc (base, elem * *cur);
596}
597
273#define array_needsize(base,cur,cnt,init) \ 598#define array_needsize(type,base,cur,cnt,init) \
274 if (expect_false ((cnt) > cur)) \ 599 if (expect_false ((cnt) > (cur))) \
275 { \ 600 { \
276 int newcnt = cur; \ 601 int ocur_ = (cur); \
277 do \ 602 (base) = (type *)array_realloc \
278 { \ 603 (sizeof (type), (base), &(cur), (cnt)); \
279 newcnt = array_roundsize (base, newcnt << 1); \ 604 init ((base) + (ocur_), (cur) - ocur_); \
280 } \
281 while ((cnt) > newcnt); \
282 \
283 base = ev_realloc (base, sizeof (*base) * (newcnt)); \
284 init (base + cur, newcnt - cur); \
285 cur = newcnt; \
286 } 605 }
287 606
607#if 0
288#define array_slim(stem) \ 608#define array_slim(type,stem) \
289 if (stem ## max < array_roundsize (stem ## cnt >> 2)) \ 609 if (stem ## max < array_roundsize (stem ## cnt >> 2)) \
290 { \ 610 { \
291 stem ## max = array_roundsize (stem ## cnt >> 1); \ 611 stem ## max = array_roundsize (stem ## cnt >> 1); \
292 base = ev_realloc (base, sizeof (*base) * (stem ## max)); \ 612 base = (type *)ev_realloc (base, sizeof (type) * (stem ## max));\
293 fprintf (stderr, "slimmed down " # stem " to %d\n", stem ## max);/*D*/\ 613 fprintf (stderr, "slimmed down " # stem " to %d\n", stem ## max);/*D*/\
294 } 614 }
615#endif
295 616
296#define array_free(stem, idx) \ 617#define array_free(stem, idx) \
297 ev_free (stem ## s idx); stem ## cnt idx = stem ## max idx = 0; 618 ev_free (stem ## s idx); stem ## cnt idx = stem ## max idx = 0;
298 619
299/*****************************************************************************/ 620/*****************************************************************************/
300 621
301static void 622void noinline
623ev_feed_event (EV_P_ void *w, int revents)
624{
625 W w_ = (W)w;
626 int pri = ABSPRI (w_);
627
628 if (expect_false (w_->pending))
629 pendings [pri][w_->pending - 1].events |= revents;
630 else
631 {
632 w_->pending = ++pendingcnt [pri];
633 array_needsize (ANPENDING, pendings [pri], pendingmax [pri], w_->pending, EMPTY2);
634 pendings [pri][w_->pending - 1].w = w_;
635 pendings [pri][w_->pending - 1].events = revents;
636 }
637}
638
639void inline_speed
640queue_events (EV_P_ W *events, int eventcnt, int type)
641{
642 int i;
643
644 for (i = 0; i < eventcnt; ++i)
645 ev_feed_event (EV_A_ events [i], type);
646}
647
648/*****************************************************************************/
649
650void inline_size
302anfds_init (ANFD *base, int count) 651anfds_init (ANFD *base, int count)
303{ 652{
304 while (count--) 653 while (count--)
305 { 654 {
306 base->head = 0; 655 base->head = 0;
309 658
310 ++base; 659 ++base;
311 } 660 }
312} 661}
313 662
314static void 663void inline_speed
315event (EV_P_ W w, int events)
316{
317 if (w->pending)
318 {
319 pendings [ABSPRI (w)][w->pending - 1].events |= events;
320 return;
321 }
322
323 w->pending = ++pendingcnt [ABSPRI (w)];
324 array_needsize (pendings [ABSPRI (w)], pendingmax [ABSPRI (w)], pendingcnt [ABSPRI (w)], );
325 pendings [ABSPRI (w)][w->pending - 1].w = w;
326 pendings [ABSPRI (w)][w->pending - 1].events = events;
327}
328
329static void
330queue_events (EV_P_ W *events, int eventcnt, int type)
331{
332 int i;
333
334 for (i = 0; i < eventcnt; ++i)
335 event (EV_A_ events [i], type);
336}
337
338static void
339fd_event (EV_P_ int fd, int events) 664fd_event (EV_P_ int fd, int revents)
340{ 665{
341 ANFD *anfd = anfds + fd; 666 ANFD *anfd = anfds + fd;
342 struct ev_io *w; 667 ev_io *w;
343 668
344 for (w = (struct ev_io *)anfd->head; w; w = (struct ev_io *)((WL)w)->next) 669 for (w = (ev_io *)anfd->head; w; w = (ev_io *)((WL)w)->next)
345 { 670 {
346 int ev = w->events & events; 671 int ev = w->events & revents;
347 672
348 if (ev) 673 if (ev)
349 event (EV_A_ (W)w, ev); 674 ev_feed_event (EV_A_ (W)w, ev);
350 } 675 }
351} 676}
352 677
353/*****************************************************************************/ 678void
679ev_feed_fd_event (EV_P_ int fd, int revents)
680{
681 if (fd >= 0 && fd < anfdmax)
682 fd_event (EV_A_ fd, revents);
683}
354 684
355static void 685void inline_size
356fd_reify (EV_P) 686fd_reify (EV_P)
357{ 687{
358 int i; 688 int i;
359 689
360 for (i = 0; i < fdchangecnt; ++i) 690 for (i = 0; i < fdchangecnt; ++i)
361 { 691 {
362 int fd = fdchanges [i]; 692 int fd = fdchanges [i];
363 ANFD *anfd = anfds + fd; 693 ANFD *anfd = anfds + fd;
364 struct ev_io *w; 694 ev_io *w;
365 695
366 int events = 0; 696 unsigned char events = 0;
367 697
368 for (w = (struct ev_io *)anfd->head; w; w = (struct ev_io *)((WL)w)->next) 698 for (w = (ev_io *)anfd->head; w; w = (ev_io *)((WL)w)->next)
369 events |= w->events; 699 events |= (unsigned char)w->events;
370 700
701#if EV_SELECT_IS_WINSOCKET
702 if (events)
703 {
704 unsigned long argp;
705 #ifdef EV_FD_TO_WIN32_HANDLE
706 anfd->handle = EV_FD_TO_WIN32_HANDLE (fd);
707 #else
708 anfd->handle = _get_osfhandle (fd);
709 #endif
710 assert (("libev only supports socket fds in this configuration", ioctlsocket (anfd->handle, FIONREAD, &argp) == 0));
711 }
712#endif
713
714 {
715 unsigned char o_events = anfd->events;
716 unsigned char o_reify = anfd->reify;
717
371 anfd->reify = 0; 718 anfd->reify = 0;
372
373 method_modify (EV_A_ fd, anfd->events, events);
374 anfd->events = events; 719 anfd->events = events;
720
721 if (o_events != events || o_reify & EV_IOFDSET)
722 backend_modify (EV_A_ fd, o_events, events);
723 }
375 } 724 }
376 725
377 fdchangecnt = 0; 726 fdchangecnt = 0;
378} 727}
379 728
380static void 729void inline_size
381fd_change (EV_P_ int fd) 730fd_change (EV_P_ int fd, int flags)
382{ 731{
383 if (anfds [fd].reify || fdchangecnt < 0) 732 unsigned char reify = anfds [fd].reify;
384 return;
385
386 anfds [fd].reify = 1; 733 anfds [fd].reify |= flags;
387 734
735 if (expect_true (!reify))
736 {
388 ++fdchangecnt; 737 ++fdchangecnt;
389 array_needsize (fdchanges, fdchangemax, fdchangecnt, ); 738 array_needsize (int, fdchanges, fdchangemax, fdchangecnt, EMPTY2);
390 fdchanges [fdchangecnt - 1] = fd; 739 fdchanges [fdchangecnt - 1] = fd;
740 }
391} 741}
392 742
393static void 743void inline_speed
394fd_kill (EV_P_ int fd) 744fd_kill (EV_P_ int fd)
395{ 745{
396 struct ev_io *w; 746 ev_io *w;
397 747
398 while ((w = (struct ev_io *)anfds [fd].head)) 748 while ((w = (ev_io *)anfds [fd].head))
399 { 749 {
400 ev_io_stop (EV_A_ w); 750 ev_io_stop (EV_A_ w);
401 event (EV_A_ (W)w, EV_ERROR | EV_READ | EV_WRITE); 751 ev_feed_event (EV_A_ (W)w, EV_ERROR | EV_READ | EV_WRITE);
402 } 752 }
753}
754
755int inline_size
756fd_valid (int fd)
757{
758#ifdef _WIN32
759 return _get_osfhandle (fd) != -1;
760#else
761 return fcntl (fd, F_GETFD) != -1;
762#endif
403} 763}
404 764
405/* called on EBADF to verify fds */ 765/* called on EBADF to verify fds */
406static void 766static void noinline
407fd_ebadf (EV_P) 767fd_ebadf (EV_P)
408{ 768{
409 int fd; 769 int fd;
410 770
411 for (fd = 0; fd < anfdmax; ++fd) 771 for (fd = 0; fd < anfdmax; ++fd)
412 if (anfds [fd].events) 772 if (anfds [fd].events)
413 if (fcntl (fd, F_GETFD) == -1 && errno == EBADF) 773 if (!fd_valid (fd) == -1 && errno == EBADF)
414 fd_kill (EV_A_ fd); 774 fd_kill (EV_A_ fd);
415} 775}
416 776
417/* called on ENOMEM in select/poll to kill some fds and retry */ 777/* called on ENOMEM in select/poll to kill some fds and retry */
418static void 778static void noinline
419fd_enomem (EV_P) 779fd_enomem (EV_P)
420{ 780{
421 int fd; 781 int fd;
422 782
423 for (fd = anfdmax; fd--; ) 783 for (fd = anfdmax; fd--; )
426 fd_kill (EV_A_ fd); 786 fd_kill (EV_A_ fd);
427 return; 787 return;
428 } 788 }
429} 789}
430 790
431/* susually called after fork if method needs to re-arm all fds from scratch */ 791/* usually called after fork if backend needs to re-arm all fds from scratch */
432static void 792static void noinline
433fd_rearm_all (EV_P) 793fd_rearm_all (EV_P)
434{ 794{
435 int fd; 795 int fd;
436 796
437 /* this should be highly optimised to not do anything but set a flag */
438 for (fd = 0; fd < anfdmax; ++fd) 797 for (fd = 0; fd < anfdmax; ++fd)
439 if (anfds [fd].events) 798 if (anfds [fd].events)
440 { 799 {
441 anfds [fd].events = 0; 800 anfds [fd].events = 0;
442 fd_change (EV_A_ fd); 801 fd_change (EV_A_ fd, EV_IOFDSET | 1);
443 } 802 }
444} 803}
445 804
446/*****************************************************************************/ 805/*****************************************************************************/
447 806
448static void 807/*
449upheap (WT *heap, int k) 808 * the heap functions want a real array index. array index 0 uis guaranteed to not
450{ 809 * be in-use at any time. the first heap entry is at array [HEAP0]. DHEAP gives
451 WT w = heap [k]; 810 * the branching factor of the d-tree.
811 */
452 812
453 while (k && heap [k >> 1]->at > w->at) 813/*
454 { 814 * at the moment we allow libev the luxury of two heaps,
455 heap [k] = heap [k >> 1]; 815 * a small-code-size 2-heap one and a ~1.5kb larger 4-heap
456 ((W)heap [k])->active = k + 1; 816 * which is more cache-efficient.
457 k >>= 1; 817 * the difference is about 5% with 50000+ watchers.
458 } 818 */
819#if EV_USE_4HEAP
459 820
460 heap [k] = w; 821#define DHEAP 4
461 ((W)heap [k])->active = k + 1; 822#define HEAP0 (DHEAP - 1) /* index of first element in heap */
823#define HPARENT(k) ((((k) - HEAP0 - 1) / DHEAP) + HEAP0)
824#define UPHEAP_DONE(p,k) ((p) == (k))
462 825
463} 826/* away from the root */
464 827void inline_speed
465static void
466downheap (WT *heap, int N, int k) 828downheap (ANHE *heap, int N, int k)
467{ 829{
468 WT w = heap [k]; 830 ANHE he = heap [k];
831 ANHE *E = heap + N + HEAP0;
469 832
470 while (k < (N >> 1)) 833 for (;;)
471 { 834 {
472 int j = k << 1; 835 ev_tstamp minat;
836 ANHE *minpos;
837 ANHE *pos = heap + DHEAP * (k - HEAP0) + HEAP0 + 1;
473 838
474 if (j + 1 < N && heap [j]->at > heap [j + 1]->at) 839 /* find minimum child */
840 if (expect_true (pos + DHEAP - 1 < E))
475 ++j; 841 {
476 842 /* fast path */ (minpos = pos + 0), (minat = ANHE_at (*minpos));
477 if (w->at <= heap [j]->at) 843 if ( ANHE_at (pos [1]) < minat) (minpos = pos + 1), (minat = ANHE_at (*minpos));
844 if ( ANHE_at (pos [2]) < minat) (minpos = pos + 2), (minat = ANHE_at (*minpos));
845 if ( ANHE_at (pos [3]) < minat) (minpos = pos + 3), (minat = ANHE_at (*minpos));
846 }
847 else if (pos < E)
848 {
849 /* slow path */ (minpos = pos + 0), (minat = ANHE_at (*minpos));
850 if (pos + 1 < E && ANHE_at (pos [1]) < minat) (minpos = pos + 1), (minat = ANHE_at (*minpos));
851 if (pos + 2 < E && ANHE_at (pos [2]) < minat) (minpos = pos + 2), (minat = ANHE_at (*minpos));
852 if (pos + 3 < E && ANHE_at (pos [3]) < minat) (minpos = pos + 3), (minat = ANHE_at (*minpos));
853 }
854 else
478 break; 855 break;
479 856
857 if (ANHE_at (he) <= minat)
858 break;
859
860 heap [k] = *minpos;
861 ev_active (ANHE_w (*minpos)) = k;
862
863 k = minpos - heap;
864 }
865
866 heap [k] = he;
867 ev_active (ANHE_w (he)) = k;
868}
869
870#else /* 4HEAP */
871
872#define HEAP0 1
873#define HPARENT(k) ((k) >> 1)
874#define UPHEAP_DONE(p,k) (!(p))
875
876/* away from the root */
877void inline_speed
878downheap (ANHE *heap, int N, int k)
879{
880 ANHE he = heap [k];
881
882 for (;;)
883 {
884 int c = k << 1;
885
886 if (c > N + HEAP0 - 1)
887 break;
888
889 c += c + 1 < N + HEAP0 && ANHE_at (heap [c]) > ANHE_at (heap [c + 1])
890 ? 1 : 0;
891
892 if (ANHE_at (he) <= ANHE_at (heap [c]))
893 break;
894
480 heap [k] = heap [j]; 895 heap [k] = heap [c];
481 ((W)heap [k])->active = k + 1; 896 ev_active (ANHE_w (heap [k])) = k;
897
482 k = j; 898 k = c;
483 } 899 }
484 900
485 heap [k] = w; 901 heap [k] = he;
486 ((W)heap [k])->active = k + 1; 902 ev_active (ANHE_w (he)) = k;
903}
904#endif
905
906/* towards the root */
907void inline_speed
908upheap (ANHE *heap, int k)
909{
910 ANHE he = heap [k];
911
912 for (;;)
913 {
914 int p = HPARENT (k);
915
916 if (UPHEAP_DONE (p, k) || ANHE_at (heap [p]) <= ANHE_at (he))
917 break;
918
919 heap [k] = heap [p];
920 ev_active (ANHE_w (heap [k])) = k;
921 k = p;
922 }
923
924 heap [k] = he;
925 ev_active (ANHE_w (he)) = k;
926}
927
928void inline_size
929adjustheap (ANHE *heap, int N, int k)
930{
931 if (k > HEAP0 && ANHE_at (heap [HPARENT (k)]) >= ANHE_at (heap [k]))
932 upheap (heap, k);
933 else
934 downheap (heap, N, k);
935}
936
937/* rebuild the heap: this function is used only once and executed rarely */
938void inline_size
939reheap (ANHE *heap, int N)
940{
941 int i;
942
943 /* we don't use floyds algorithm, upheap is simpler and is more cache-efficient */
944 /* also, this is easy to implement and correct for both 2-heaps and 4-heaps */
945 for (i = 0; i < N; ++i)
946 upheap (heap, i + HEAP0);
487} 947}
488 948
489/*****************************************************************************/ 949/*****************************************************************************/
490 950
491typedef struct 951typedef struct
492{ 952{
493 WL head; 953 WL head;
494 sig_atomic_t volatile gotsig; 954 EV_ATOMIC_T gotsig;
495} ANSIG; 955} ANSIG;
496 956
497static ANSIG *signals; 957static ANSIG *signals;
498static int signalmax; 958static int signalmax;
499 959
500static int sigpipe [2]; 960static EV_ATOMIC_T gotsig;
501static sig_atomic_t volatile gotsig;
502static struct ev_io sigev;
503 961
504static void 962void inline_size
505signals_init (ANSIG *base, int count) 963signals_init (ANSIG *base, int count)
506{ 964{
507 while (count--) 965 while (count--)
508 { 966 {
509 base->head = 0; 967 base->head = 0;
511 969
512 ++base; 970 ++base;
513 } 971 }
514} 972}
515 973
974/*****************************************************************************/
975
976void inline_speed
977fd_intern (int fd)
978{
979#ifdef _WIN32
980 int arg = 1;
981 ioctlsocket (_get_osfhandle (fd), FIONBIO, &arg);
982#else
983 fcntl (fd, F_SETFD, FD_CLOEXEC);
984 fcntl (fd, F_SETFL, O_NONBLOCK);
985#endif
986}
987
988static void noinline
989evpipe_init (EV_P)
990{
991 if (!ev_is_active (&pipeev))
992 {
993#if EV_USE_EVENTFD
994 if ((evfd = eventfd (0, 0)) >= 0)
995 {
996 evpipe [0] = -1;
997 fd_intern (evfd);
998 ev_io_set (&pipeev, evfd, EV_READ);
999 }
1000 else
1001#endif
1002 {
1003 while (pipe (evpipe))
1004 syserr ("(libev) error creating signal/async pipe");
1005
1006 fd_intern (evpipe [0]);
1007 fd_intern (evpipe [1]);
1008 ev_io_set (&pipeev, evpipe [0], EV_READ);
1009 }
1010
1011 ev_io_start (EV_A_ &pipeev);
1012 ev_unref (EV_A); /* watcher should not keep loop alive */
1013 }
1014}
1015
1016void inline_size
1017evpipe_write (EV_P_ EV_ATOMIC_T *flag)
1018{
1019 if (!*flag)
1020 {
1021 int old_errno = errno; /* save errno because write might clobber it */
1022
1023 *flag = 1;
1024
1025#if EV_USE_EVENTFD
1026 if (evfd >= 0)
1027 {
1028 uint64_t counter = 1;
1029 write (evfd, &counter, sizeof (uint64_t));
1030 }
1031 else
1032#endif
1033 write (evpipe [1], &old_errno, 1);
1034
1035 errno = old_errno;
1036 }
1037}
1038
516static void 1039static void
1040pipecb (EV_P_ ev_io *iow, int revents)
1041{
1042#if EV_USE_EVENTFD
1043 if (evfd >= 0)
1044 {
1045 uint64_t counter;
1046 read (evfd, &counter, sizeof (uint64_t));
1047 }
1048 else
1049#endif
1050 {
1051 char dummy;
1052 read (evpipe [0], &dummy, 1);
1053 }
1054
1055 if (gotsig && ev_is_default_loop (EV_A))
1056 {
1057 int signum;
1058 gotsig = 0;
1059
1060 for (signum = signalmax; signum--; )
1061 if (signals [signum].gotsig)
1062 ev_feed_signal_event (EV_A_ signum + 1);
1063 }
1064
1065#if EV_ASYNC_ENABLE
1066 if (gotasync)
1067 {
1068 int i;
1069 gotasync = 0;
1070
1071 for (i = asynccnt; i--; )
1072 if (asyncs [i]->sent)
1073 {
1074 asyncs [i]->sent = 0;
1075 ev_feed_event (EV_A_ asyncs [i], EV_ASYNC);
1076 }
1077 }
1078#endif
1079}
1080
1081/*****************************************************************************/
1082
1083static void
517sighandler (int signum) 1084ev_sighandler (int signum)
518{ 1085{
1086#if EV_MULTIPLICITY
1087 struct ev_loop *loop = &default_loop_struct;
1088#endif
1089
519#if WIN32 1090#if _WIN32
520 signal (signum, sighandler); 1091 signal (signum, ev_sighandler);
521#endif 1092#endif
522 1093
523 signals [signum - 1].gotsig = 1; 1094 signals [signum - 1].gotsig = 1;
524 1095 evpipe_write (EV_A_ &gotsig);
525 if (!gotsig)
526 {
527 int old_errno = errno;
528 gotsig = 1;
529 write (sigpipe [1], &signum, 1);
530 errno = old_errno;
531 }
532} 1096}
533 1097
534static void 1098void noinline
535sigcb (EV_P_ struct ev_io *iow, int revents) 1099ev_feed_signal_event (EV_P_ int signum)
536{ 1100{
537 WL w; 1101 WL w;
1102
1103#if EV_MULTIPLICITY
1104 assert (("feeding signal events is only supported in the default loop", loop == ev_default_loop_ptr));
1105#endif
1106
538 int signum; 1107 --signum;
539 1108
540 read (sigpipe [0], &revents, 1); 1109 if (signum < 0 || signum >= signalmax)
541 gotsig = 0; 1110 return;
542 1111
543 for (signum = signalmax; signum--; )
544 if (signals [signum].gotsig)
545 {
546 signals [signum].gotsig = 0; 1112 signals [signum].gotsig = 0;
547 1113
548 for (w = signals [signum].head; w; w = w->next) 1114 for (w = signals [signum].head; w; w = w->next)
549 event (EV_A_ (W)w, EV_SIGNAL); 1115 ev_feed_event (EV_A_ (W)w, EV_SIGNAL);
550 }
551}
552
553static void
554siginit (EV_P)
555{
556#ifndef WIN32
557 fcntl (sigpipe [0], F_SETFD, FD_CLOEXEC);
558 fcntl (sigpipe [1], F_SETFD, FD_CLOEXEC);
559
560 /* rather than sort out wether we really need nb, set it */
561 fcntl (sigpipe [0], F_SETFL, O_NONBLOCK);
562 fcntl (sigpipe [1], F_SETFL, O_NONBLOCK);
563#endif
564
565 ev_io_set (&sigev, sigpipe [0], EV_READ);
566 ev_io_start (EV_A_ &sigev);
567 ev_unref (EV_A); /* child watcher should not keep loop alive */
568} 1116}
569 1117
570/*****************************************************************************/ 1118/*****************************************************************************/
571 1119
1120static WL childs [EV_PID_HASHSIZE];
1121
572#ifndef WIN32 1122#ifndef _WIN32
573 1123
574static struct ev_child *childs [PID_HASHSIZE];
575static struct ev_signal childev; 1124static ev_signal childev;
1125
1126#ifndef WIFCONTINUED
1127# define WIFCONTINUED(status) 0
1128#endif
1129
1130void inline_speed
1131child_reap (EV_P_ int chain, int pid, int status)
1132{
1133 ev_child *w;
1134 int traced = WIFSTOPPED (status) || WIFCONTINUED (status);
1135
1136 for (w = (ev_child *)childs [chain & (EV_PID_HASHSIZE - 1)]; w; w = (ev_child *)((WL)w)->next)
1137 {
1138 if ((w->pid == pid || !w->pid)
1139 && (!traced || (w->flags & 1)))
1140 {
1141 ev_set_priority (w, EV_MAXPRI); /* need to do it *now*, this *must* be the same prio as the signal watcher itself */
1142 w->rpid = pid;
1143 w->rstatus = status;
1144 ev_feed_event (EV_A_ (W)w, EV_CHILD);
1145 }
1146 }
1147}
576 1148
577#ifndef WCONTINUED 1149#ifndef WCONTINUED
578# define WCONTINUED 0 1150# define WCONTINUED 0
579#endif 1151#endif
580 1152
581static void 1153static void
582child_reap (EV_P_ struct ev_signal *sw, int chain, int pid, int status)
583{
584 struct ev_child *w;
585
586 for (w = (struct ev_child *)childs [chain & (PID_HASHSIZE - 1)]; w; w = (struct ev_child *)((WL)w)->next)
587 if (w->pid == pid || !w->pid)
588 {
589 ev_priority (w) = ev_priority (sw); /* need to do it *now* */
590 w->rpid = pid;
591 w->rstatus = status;
592 event (EV_A_ (W)w, EV_CHILD);
593 }
594}
595
596static void
597childcb (EV_P_ struct ev_signal *sw, int revents) 1154childcb (EV_P_ ev_signal *sw, int revents)
598{ 1155{
599 int pid, status; 1156 int pid, status;
600 1157
1158 /* some systems define WCONTINUED but then fail to support it (linux 2.4) */
601 if (0 < (pid = waitpid (-1, &status, WNOHANG | WUNTRACED | WCONTINUED))) 1159 if (0 >= (pid = waitpid (-1, &status, WNOHANG | WUNTRACED | WCONTINUED)))
602 { 1160 if (!WCONTINUED
1161 || errno != EINVAL
1162 || 0 >= (pid = waitpid (-1, &status, WNOHANG | WUNTRACED)))
1163 return;
1164
603 /* make sure we are called again until all childs have been reaped */ 1165 /* make sure we are called again until all children have been reaped */
1166 /* we need to do it this way so that the callback gets called before we continue */
604 event (EV_A_ (W)sw, EV_SIGNAL); 1167 ev_feed_event (EV_A_ (W)sw, EV_SIGNAL);
605 1168
606 child_reap (EV_A_ sw, pid, pid, status); 1169 child_reap (EV_A_ pid, pid, status);
1170 if (EV_PID_HASHSIZE > 1)
607 child_reap (EV_A_ sw, 0, pid, status); /* this might trigger a watcher twice, but event catches that */ 1171 child_reap (EV_A_ 0, pid, status); /* this might trigger a watcher twice, but feed_event catches that */
608 }
609} 1172}
610 1173
611#endif 1174#endif
612 1175
613/*****************************************************************************/ 1176/*****************************************************************************/
614 1177
1178#if EV_USE_PORT
1179# include "ev_port.c"
1180#endif
615#if EV_USE_KQUEUE 1181#if EV_USE_KQUEUE
616# include "ev_kqueue.c" 1182# include "ev_kqueue.c"
617#endif 1183#endif
618#if EV_USE_EPOLL 1184#if EV_USE_EPOLL
619# include "ev_epoll.c" 1185# include "ev_epoll.c"
636{ 1202{
637 return EV_VERSION_MINOR; 1203 return EV_VERSION_MINOR;
638} 1204}
639 1205
640/* return true if we are running with elevated privileges and should ignore env variables */ 1206/* return true if we are running with elevated privileges and should ignore env variables */
641static int 1207int inline_size
642enable_secure (void) 1208enable_secure (void)
643{ 1209{
644#ifdef WIN32 1210#ifdef _WIN32
645 return 0; 1211 return 0;
646#else 1212#else
647 return getuid () != geteuid () 1213 return getuid () != geteuid ()
648 || getgid () != getegid (); 1214 || getgid () != getegid ();
649#endif 1215#endif
650} 1216}
651 1217
652int 1218unsigned int
653ev_method (EV_P) 1219ev_supported_backends (void)
654{ 1220{
655 return method; 1221 unsigned int flags = 0;
656}
657 1222
658static void 1223 if (EV_USE_PORT ) flags |= EVBACKEND_PORT;
659loop_init (EV_P_ int methods) 1224 if (EV_USE_KQUEUE) flags |= EVBACKEND_KQUEUE;
1225 if (EV_USE_EPOLL ) flags |= EVBACKEND_EPOLL;
1226 if (EV_USE_POLL ) flags |= EVBACKEND_POLL;
1227 if (EV_USE_SELECT) flags |= EVBACKEND_SELECT;
1228
1229 return flags;
1230}
1231
1232unsigned int
1233ev_recommended_backends (void)
660{ 1234{
661 if (!method) 1235 unsigned int flags = ev_supported_backends ();
1236
1237#ifndef __NetBSD__
1238 /* kqueue is borked on everything but netbsd apparently */
1239 /* it usually doesn't work correctly on anything but sockets and pipes */
1240 flags &= ~EVBACKEND_KQUEUE;
1241#endif
1242#ifdef __APPLE__
1243 // flags &= ~EVBACKEND_KQUEUE; for documentation
1244 flags &= ~EVBACKEND_POLL;
1245#endif
1246
1247 return flags;
1248}
1249
1250unsigned int
1251ev_embeddable_backends (void)
1252{
1253 int flags = EVBACKEND_EPOLL | EVBACKEND_KQUEUE | EVBACKEND_PORT;
1254
1255 /* epoll embeddability broken on all linux versions up to at least 2.6.23 */
1256 /* please fix it and tell me how to detect the fix */
1257 flags &= ~EVBACKEND_EPOLL;
1258
1259 return flags;
1260}
1261
1262unsigned int
1263ev_backend (EV_P)
1264{
1265 return backend;
1266}
1267
1268unsigned int
1269ev_loop_count (EV_P)
1270{
1271 return loop_count;
1272}
1273
1274void
1275ev_set_io_collect_interval (EV_P_ ev_tstamp interval)
1276{
1277 io_blocktime = interval;
1278}
1279
1280void
1281ev_set_timeout_collect_interval (EV_P_ ev_tstamp interval)
1282{
1283 timeout_blocktime = interval;
1284}
1285
1286static void noinline
1287loop_init (EV_P_ unsigned int flags)
1288{
1289 if (!backend)
662 { 1290 {
663#if EV_USE_MONOTONIC 1291#if EV_USE_MONOTONIC
664 { 1292 {
665 struct timespec ts; 1293 struct timespec ts;
666 if (!clock_gettime (CLOCK_MONOTONIC, &ts)) 1294 if (!clock_gettime (CLOCK_MONOTONIC, &ts))
667 have_monotonic = 1; 1295 have_monotonic = 1;
668 } 1296 }
669#endif 1297#endif
670 1298
671 rt_now = ev_time (); 1299 ev_rt_now = ev_time ();
672 mn_now = get_clock (); 1300 mn_now = get_clock ();
673 now_floor = mn_now; 1301 now_floor = mn_now;
674 rtmn_diff = rt_now - mn_now; 1302 rtmn_diff = ev_rt_now - mn_now;
675 1303
676 if (methods == EVMETHOD_AUTO) 1304 io_blocktime = 0.;
677 if (!enable_secure () && getenv ("LIBEV_METHODS")) 1305 timeout_blocktime = 0.;
1306 backend = 0;
1307 backend_fd = -1;
1308 gotasync = 0;
1309#if EV_USE_INOTIFY
1310 fs_fd = -2;
1311#endif
1312
1313 /* pid check not overridable via env */
1314#ifndef _WIN32
1315 if (flags & EVFLAG_FORKCHECK)
1316 curpid = getpid ();
1317#endif
1318
1319 if (!(flags & EVFLAG_NOENV)
1320 && !enable_secure ()
1321 && getenv ("LIBEV_FLAGS"))
678 methods = atoi (getenv ("LIBEV_METHODS")); 1322 flags = atoi (getenv ("LIBEV_FLAGS"));
679 else
680 methods = EVMETHOD_ANY;
681 1323
682 method = 0; 1324 if (!(flags & 0x0000ffffU))
683#if EV_USE_WIN32 1325 flags |= ev_recommended_backends ();
684 if (!method && (methods & EVMETHOD_WIN32 )) method = win32_init (EV_A_ methods); 1326
1327#if EV_USE_PORT
1328 if (!backend && (flags & EVBACKEND_PORT )) backend = port_init (EV_A_ flags);
685#endif 1329#endif
686#if EV_USE_KQUEUE 1330#if EV_USE_KQUEUE
687 if (!method && (methods & EVMETHOD_KQUEUE)) method = kqueue_init (EV_A_ methods); 1331 if (!backend && (flags & EVBACKEND_KQUEUE)) backend = kqueue_init (EV_A_ flags);
688#endif 1332#endif
689#if EV_USE_EPOLL 1333#if EV_USE_EPOLL
690 if (!method && (methods & EVMETHOD_EPOLL )) method = epoll_init (EV_A_ methods); 1334 if (!backend && (flags & EVBACKEND_EPOLL )) backend = epoll_init (EV_A_ flags);
691#endif 1335#endif
692#if EV_USE_POLL 1336#if EV_USE_POLL
693 if (!method && (methods & EVMETHOD_POLL )) method = poll_init (EV_A_ methods); 1337 if (!backend && (flags & EVBACKEND_POLL )) backend = poll_init (EV_A_ flags);
694#endif 1338#endif
695#if EV_USE_SELECT 1339#if EV_USE_SELECT
696 if (!method && (methods & EVMETHOD_SELECT)) method = select_init (EV_A_ methods); 1340 if (!backend && (flags & EVBACKEND_SELECT)) backend = select_init (EV_A_ flags);
697#endif 1341#endif
698 }
699}
700 1342
701void 1343 ev_init (&pipeev, pipecb);
1344 ev_set_priority (&pipeev, EV_MAXPRI);
1345 }
1346}
1347
1348static void noinline
702loop_destroy (EV_P) 1349loop_destroy (EV_P)
703{ 1350{
704 int i; 1351 int i;
705 1352
1353 if (ev_is_active (&pipeev))
1354 {
1355 ev_ref (EV_A); /* signal watcher */
1356 ev_io_stop (EV_A_ &pipeev);
1357
1358#if EV_USE_EVENTFD
1359 if (evfd >= 0)
1360 close (evfd);
1361#endif
1362
1363 if (evpipe [0] >= 0)
1364 {
1365 close (evpipe [0]);
1366 close (evpipe [1]);
1367 }
1368 }
1369
706#if EV_USE_WIN32 1370#if EV_USE_INOTIFY
707 if (method == EVMETHOD_WIN32 ) win32_destroy (EV_A); 1371 if (fs_fd >= 0)
1372 close (fs_fd);
1373#endif
1374
1375 if (backend_fd >= 0)
1376 close (backend_fd);
1377
1378#if EV_USE_PORT
1379 if (backend == EVBACKEND_PORT ) port_destroy (EV_A);
708#endif 1380#endif
709#if EV_USE_KQUEUE 1381#if EV_USE_KQUEUE
710 if (method == EVMETHOD_KQUEUE) kqueue_destroy (EV_A); 1382 if (backend == EVBACKEND_KQUEUE) kqueue_destroy (EV_A);
711#endif 1383#endif
712#if EV_USE_EPOLL 1384#if EV_USE_EPOLL
713 if (method == EVMETHOD_EPOLL ) epoll_destroy (EV_A); 1385 if (backend == EVBACKEND_EPOLL ) epoll_destroy (EV_A);
714#endif 1386#endif
715#if EV_USE_POLL 1387#if EV_USE_POLL
716 if (method == EVMETHOD_POLL ) poll_destroy (EV_A); 1388 if (backend == EVBACKEND_POLL ) poll_destroy (EV_A);
717#endif 1389#endif
718#if EV_USE_SELECT 1390#if EV_USE_SELECT
719 if (method == EVMETHOD_SELECT) select_destroy (EV_A); 1391 if (backend == EVBACKEND_SELECT) select_destroy (EV_A);
720#endif 1392#endif
721 1393
722 for (i = NUMPRI; i--; ) 1394 for (i = NUMPRI; i--; )
1395 {
723 array_free (pending, [i]); 1396 array_free (pending, [i]);
1397#if EV_IDLE_ENABLE
1398 array_free (idle, [i]);
1399#endif
1400 }
724 1401
1402 ev_free (anfds); anfdmax = 0;
1403
1404 /* have to use the microsoft-never-gets-it-right macro */
725 array_free (fdchange, ); 1405 array_free (fdchange, EMPTY);
726 array_free (timer, ); 1406 array_free (timer, EMPTY);
1407#if EV_PERIODIC_ENABLE
727 array_free (periodic, ); 1408 array_free (periodic, EMPTY);
728 array_free (idle, ); 1409#endif
1410#if EV_FORK_ENABLE
1411 array_free (fork, EMPTY);
1412#endif
729 array_free (prepare, ); 1413 array_free (prepare, EMPTY);
730 array_free (check, ); 1414 array_free (check, EMPTY);
1415#if EV_ASYNC_ENABLE
1416 array_free (async, EMPTY);
1417#endif
731 1418
732 method = 0; 1419 backend = 0;
733 /*TODO*/
734} 1420}
735 1421
736void 1422#if EV_USE_INOTIFY
1423void inline_size infy_fork (EV_P);
1424#endif
1425
1426void inline_size
737loop_fork (EV_P) 1427loop_fork (EV_P)
738{ 1428{
739 /*TODO*/ 1429#if EV_USE_PORT
1430 if (backend == EVBACKEND_PORT ) port_fork (EV_A);
1431#endif
1432#if EV_USE_KQUEUE
1433 if (backend == EVBACKEND_KQUEUE) kqueue_fork (EV_A);
1434#endif
740#if EV_USE_EPOLL 1435#if EV_USE_EPOLL
741 if (method == EVMETHOD_EPOLL ) epoll_fork (EV_A); 1436 if (backend == EVBACKEND_EPOLL ) epoll_fork (EV_A);
1437#endif
1438#if EV_USE_INOTIFY
1439 infy_fork (EV_A);
1440#endif
1441
1442 if (ev_is_active (&pipeev))
1443 {
1444 /* this "locks" the handlers against writing to the pipe */
1445 /* while we modify the fd vars */
1446 gotsig = 1;
1447#if EV_ASYNC_ENABLE
1448 gotasync = 1;
1449#endif
1450
1451 ev_ref (EV_A);
1452 ev_io_stop (EV_A_ &pipeev);
1453
1454#if EV_USE_EVENTFD
1455 if (evfd >= 0)
1456 close (evfd);
1457#endif
1458
1459 if (evpipe [0] >= 0)
1460 {
1461 close (evpipe [0]);
1462 close (evpipe [1]);
1463 }
1464
1465 evpipe_init (EV_A);
1466 /* now iterate over everything, in case we missed something */
1467 pipecb (EV_A_ &pipeev, EV_READ);
1468 }
1469
1470 postfork = 0;
1471}
1472
1473#if EV_MULTIPLICITY
1474
1475struct ev_loop *
1476ev_loop_new (unsigned int flags)
1477{
1478 struct ev_loop *loop = (struct ev_loop *)ev_malloc (sizeof (struct ev_loop));
1479
1480 memset (loop, 0, sizeof (struct ev_loop));
1481
1482 loop_init (EV_A_ flags);
1483
1484 if (ev_backend (EV_A))
1485 return loop;
1486
1487 return 0;
1488}
1489
1490void
1491ev_loop_destroy (EV_P)
1492{
1493 loop_destroy (EV_A);
1494 ev_free (loop);
1495}
1496
1497void
1498ev_loop_fork (EV_P)
1499{
1500 postfork = 1; /* must be in line with ev_default_fork */
1501}
1502
1503#if EV_VERIFY
1504void noinline
1505verify_watcher (EV_P_ W w)
1506{
1507 assert (("watcher has invalid priority", ABSPRI (w) >= 0 && ABSPRI (w) < NUMPRI));
1508
1509 if (w->pending)
1510 assert (("pending watcher not on pending queue", pendings [ABSPRI (w)][w->pending - 1].w == w));
1511}
1512
1513static void noinline
1514verify_heap (EV_P_ ANHE *heap, int N)
1515{
1516 int i;
1517
1518 for (i = HEAP0; i < N + HEAP0; ++i)
1519 {
1520 assert (("active index mismatch in heap", ev_active (ANHE_w (heap [i])) == i));
1521 assert (("heap condition violated", i == HEAP0 || ANHE_at (heap [HPARENT (i)]) <= ANHE_at (heap [i])));
1522 assert (("heap at cache mismatch", ANHE_at (heap [i]) == ev_at (ANHE_w (heap [i]))));
1523
1524 verify_watcher (EV_A_ (W)ANHE_w (heap [i]));
1525 }
1526}
1527
1528static void noinline
1529array_verify (EV_P_ W *ws, int cnt)
1530{
1531 while (cnt--)
1532 {
1533 assert (("active index mismatch", ev_active (ws [cnt]) == cnt + 1));
1534 verify_watcher (EV_A_ ws [cnt]);
1535 }
1536}
1537#endif
1538
1539void
1540ev_loop_verify (EV_P)
1541{
1542#if EV_VERIFY
1543 int i;
1544 WL w;
1545
1546 assert (activecnt >= -1);
1547
1548 assert (fdchangemax >= fdchangecnt);
1549 for (i = 0; i < fdchangecnt; ++i)
1550 assert (("negative fd in fdchanges", fdchanges [i] >= 0));
1551
1552 assert (anfdmax >= 0);
1553 for (i = 0; i < anfdmax; ++i)
1554 for (w = anfds [i].head; w; w = w->next)
1555 {
1556 verify_watcher (EV_A_ (W)w);
1557 assert (("inactive fd watcher on anfd list", ev_active (w) == 1));
1558 assert (("fd mismatch between watcher and anfd", ((ev_io *)w)->fd == i));
1559 }
1560
1561 assert (timermax >= timercnt);
1562 verify_heap (EV_A_ timers, timercnt);
1563
1564#if EV_PERIODIC_ENABLE
1565 assert (periodicmax >= periodiccnt);
1566 verify_heap (EV_A_ periodics, periodiccnt);
1567#endif
1568
1569 for (i = NUMPRI; i--; )
1570 {
1571 assert (pendingmax [i] >= pendingcnt [i]);
1572#if EV_IDLE_ENABLE
1573 assert (idleall >= 0);
1574 assert (idlemax [i] >= idlecnt [i]);
1575 array_verify (EV_A_ (W *)idles [i], idlecnt [i]);
1576#endif
1577 }
1578
1579#if EV_FORK_ENABLE
1580 assert (forkmax >= forkcnt);
1581 array_verify (EV_A_ (W *)forks, forkcnt);
1582#endif
1583
1584#if EV_ASYNC_ENABLE
1585 assert (asyncmax >= asynccnt);
1586 array_verify (EV_A_ (W *)asyncs, asynccnt);
1587#endif
1588
1589 assert (preparemax >= preparecnt);
1590 array_verify (EV_A_ (W *)prepares, preparecnt);
1591
1592 assert (checkmax >= checkcnt);
1593 array_verify (EV_A_ (W *)checks, checkcnt);
1594
1595# if 0
1596 for (w = (ev_child *)childs [chain & (EV_PID_HASHSIZE - 1)]; w; w = (ev_child *)((WL)w)->next)
1597 for (signum = signalmax; signum--; ) if (signals [signum].gotsig)
742#endif 1598# endif
743#if EV_USE_KQUEUE
744 if (method == EVMETHOD_KQUEUE) kqueue_fork (EV_A);
745#endif 1599#endif
746} 1600}
1601
1602#endif /* multiplicity */
747 1603
748#if EV_MULTIPLICITY 1604#if EV_MULTIPLICITY
749struct ev_loop * 1605struct ev_loop *
750ev_loop_new (int methods) 1606ev_default_loop_init (unsigned int flags)
751{ 1607#else
752 struct ev_loop *loop = (struct ev_loop *)ev_malloc (sizeof (struct ev_loop)); 1608int
753 1609ev_default_loop (unsigned int flags)
754 memset (loop, 0, sizeof (struct ev_loop));
755
756 loop_init (EV_A_ methods);
757
758 if (ev_method (EV_A))
759 return loop;
760
761 return 0;
762}
763
764void
765ev_loop_destroy (EV_P)
766{
767 loop_destroy (EV_A);
768 ev_free (loop);
769}
770
771void
772ev_loop_fork (EV_P)
773{
774 loop_fork (EV_A);
775}
776
777#endif 1610#endif
778 1611{
1612 if (!ev_default_loop_ptr)
1613 {
779#if EV_MULTIPLICITY 1614#if EV_MULTIPLICITY
780struct ev_loop default_loop_struct; 1615 struct ev_loop *loop = ev_default_loop_ptr = &default_loop_struct;
781static struct ev_loop *default_loop;
782
783struct ev_loop *
784#else 1616#else
785static int default_loop;
786
787int
788#endif
789ev_default_loop (int methods)
790{
791 if (sigpipe [0] == sigpipe [1])
792 if (pipe (sigpipe))
793 return 0;
794
795 if (!default_loop)
796 {
797#if EV_MULTIPLICITY
798 struct ev_loop *loop = default_loop = &default_loop_struct;
799#else
800 default_loop = 1; 1617 ev_default_loop_ptr = 1;
801#endif 1618#endif
802 1619
803 loop_init (EV_A_ methods); 1620 loop_init (EV_A_ flags);
804 1621
805 if (ev_method (EV_A)) 1622 if (ev_backend (EV_A))
806 { 1623 {
807 ev_watcher_init (&sigev, sigcb);
808 ev_set_priority (&sigev, EV_MAXPRI);
809 siginit (EV_A);
810
811#ifndef WIN32 1624#ifndef _WIN32
812 ev_signal_init (&childev, childcb, SIGCHLD); 1625 ev_signal_init (&childev, childcb, SIGCHLD);
813 ev_set_priority (&childev, EV_MAXPRI); 1626 ev_set_priority (&childev, EV_MAXPRI);
814 ev_signal_start (EV_A_ &childev); 1627 ev_signal_start (EV_A_ &childev);
815 ev_unref (EV_A); /* child watcher should not keep loop alive */ 1628 ev_unref (EV_A); /* child watcher should not keep loop alive */
816#endif 1629#endif
817 } 1630 }
818 else 1631 else
819 default_loop = 0; 1632 ev_default_loop_ptr = 0;
820 } 1633 }
821 1634
822 return default_loop; 1635 return ev_default_loop_ptr;
823} 1636}
824 1637
825void 1638void
826ev_default_destroy (void) 1639ev_default_destroy (void)
827{ 1640{
828#if EV_MULTIPLICITY 1641#if EV_MULTIPLICITY
829 struct ev_loop *loop = default_loop; 1642 struct ev_loop *loop = ev_default_loop_ptr;
830#endif 1643#endif
831 1644
1645#ifndef _WIN32
832 ev_ref (EV_A); /* child watcher */ 1646 ev_ref (EV_A); /* child watcher */
833 ev_signal_stop (EV_A_ &childev); 1647 ev_signal_stop (EV_A_ &childev);
834 1648#endif
835 ev_ref (EV_A); /* signal watcher */
836 ev_io_stop (EV_A_ &sigev);
837
838 close (sigpipe [0]); sigpipe [0] = 0;
839 close (sigpipe [1]); sigpipe [1] = 0;
840 1649
841 loop_destroy (EV_A); 1650 loop_destroy (EV_A);
842} 1651}
843 1652
844void 1653void
845ev_default_fork (void) 1654ev_default_fork (void)
846{ 1655{
847#if EV_MULTIPLICITY 1656#if EV_MULTIPLICITY
848 struct ev_loop *loop = default_loop; 1657 struct ev_loop *loop = ev_default_loop_ptr;
849#endif 1658#endif
850 1659
851 loop_fork (EV_A); 1660 if (backend)
852 1661 postfork = 1; /* must be in line with ev_loop_fork */
853 ev_io_stop (EV_A_ &sigev);
854 close (sigpipe [0]);
855 close (sigpipe [1]);
856 pipe (sigpipe);
857
858 ev_ref (EV_A); /* signal watcher */
859 siginit (EV_A);
860} 1662}
861 1663
862/*****************************************************************************/ 1664/*****************************************************************************/
863 1665
864static void 1666void
1667ev_invoke (EV_P_ void *w, int revents)
1668{
1669 EV_CB_INVOKE ((W)w, revents);
1670}
1671
1672void inline_speed
865call_pending (EV_P) 1673call_pending (EV_P)
866{ 1674{
867 int pri; 1675 int pri;
868 1676
869 for (pri = NUMPRI; pri--; ) 1677 for (pri = NUMPRI; pri--; )
870 while (pendingcnt [pri]) 1678 while (pendingcnt [pri])
871 { 1679 {
872 ANPENDING *p = pendings [pri] + --pendingcnt [pri]; 1680 ANPENDING *p = pendings [pri] + --pendingcnt [pri];
873 1681
874 if (p->w) 1682 if (expect_true (p->w))
875 { 1683 {
1684 /*assert (("non-pending watcher on pending list", p->w->pending));*/
1685
876 p->w->pending = 0; 1686 p->w->pending = 0;
877 p->w->cb (EV_A_ p->w, p->events); 1687 EV_CB_INVOKE (p->w, p->events);
1688 EV_FREQUENT_CHECK;
878 } 1689 }
879 } 1690 }
880} 1691}
881 1692
882static void 1693#if EV_IDLE_ENABLE
1694void inline_size
1695idle_reify (EV_P)
1696{
1697 if (expect_false (idleall))
1698 {
1699 int pri;
1700
1701 for (pri = NUMPRI; pri--; )
1702 {
1703 if (pendingcnt [pri])
1704 break;
1705
1706 if (idlecnt [pri])
1707 {
1708 queue_events (EV_A_ (W *)idles [pri], idlecnt [pri], EV_IDLE);
1709 break;
1710 }
1711 }
1712 }
1713}
1714#endif
1715
1716void inline_size
883timers_reify (EV_P) 1717timers_reify (EV_P)
884{ 1718{
1719 EV_FREQUENT_CHECK;
1720
885 while (timercnt && ((WT)timers [0])->at <= mn_now) 1721 while (timercnt && ANHE_at (timers [HEAP0]) < mn_now)
886 { 1722 {
887 struct ev_timer *w = timers [0]; 1723 ev_timer *w = (ev_timer *)ANHE_w (timers [HEAP0]);
888 1724
889 assert (("inactive timer on timer heap detected", ev_is_active (w))); 1725 /*assert (("inactive timer on timer heap detected", ev_is_active (w)));*/
890 1726
891 /* first reschedule or stop timer */ 1727 /* first reschedule or stop timer */
892 if (w->repeat) 1728 if (w->repeat)
893 { 1729 {
1730 ev_at (w) += w->repeat;
1731 if (ev_at (w) < mn_now)
1732 ev_at (w) = mn_now;
1733
894 assert (("negative ev_timer repeat value found while processing timers", w->repeat > 0.)); 1734 assert (("negative ev_timer repeat value found while processing timers", w->repeat > 0.));
895 ((WT)w)->at = mn_now + w->repeat; 1735
1736 ANHE_at_cache (timers [HEAP0]);
896 downheap ((WT *)timers, timercnt, 0); 1737 downheap (timers, timercnt, HEAP0);
897 } 1738 }
898 else 1739 else
899 ev_timer_stop (EV_A_ w); /* nonrepeating: stop timer */ 1740 ev_timer_stop (EV_A_ w); /* nonrepeating: stop timer */
900 1741
1742 EV_FREQUENT_CHECK;
901 event (EV_A_ (W)w, EV_TIMEOUT); 1743 ev_feed_event (EV_A_ (W)w, EV_TIMEOUT);
902 } 1744 }
903} 1745}
904 1746
905static void 1747#if EV_PERIODIC_ENABLE
1748void inline_size
906periodics_reify (EV_P) 1749periodics_reify (EV_P)
907{ 1750{
1751 EV_FREQUENT_CHECK;
1752
908 while (periodiccnt && ((WT)periodics [0])->at <= rt_now) 1753 while (periodiccnt && ANHE_at (periodics [HEAP0]) < ev_rt_now)
909 { 1754 {
910 struct ev_periodic *w = periodics [0]; 1755 ev_periodic *w = (ev_periodic *)ANHE_w (periodics [HEAP0]);
911 1756
912 assert (("inactive timer on periodic heap detected", ev_is_active (w))); 1757 /*assert (("inactive timer on periodic heap detected", ev_is_active (w)));*/
913 1758
914 /* first reschedule or stop timer */ 1759 /* first reschedule or stop timer */
915 if (w->interval) 1760 if (w->reschedule_cb)
916 { 1761 {
917 ((WT)w)->at += floor ((rt_now - ((WT)w)->at) / w->interval + 1.) * w->interval; 1762 ev_at (w) = w->reschedule_cb (w, ev_rt_now);
918 assert (("ev_periodic timeout in the past detected while processing timers, negative interval?", ((WT)w)->at > rt_now)); 1763
1764 assert (("ev_periodic reschedule callback returned time in the past", ev_at (w) >= ev_rt_now));
1765
1766 ANHE_at_cache (periodics [HEAP0]);
919 downheap ((WT *)periodics, periodiccnt, 0); 1767 downheap (periodics, periodiccnt, HEAP0);
1768 }
1769 else if (w->interval)
1770 {
1771 ev_at (w) = w->offset + ceil ((ev_rt_now - w->offset) / w->interval) * w->interval;
1772 /* if next trigger time is not sufficiently in the future, put it there */
1773 /* this might happen because of floating point inexactness */
1774 if (ev_at (w) - ev_rt_now < TIME_EPSILON)
1775 {
1776 ev_at (w) += w->interval;
1777
1778 /* if interval is unreasonably low we might still have a time in the past */
1779 /* so correct this. this will make the periodic very inexact, but the user */
1780 /* has effectively asked to get triggered more often than possible */
1781 if (ev_at (w) < ev_rt_now)
1782 ev_at (w) = ev_rt_now;
1783 }
1784
1785 ANHE_at_cache (periodics [HEAP0]);
1786 downheap (periodics, periodiccnt, HEAP0);
920 } 1787 }
921 else 1788 else
922 ev_periodic_stop (EV_A_ w); /* nonrepeating: stop timer */ 1789 ev_periodic_stop (EV_A_ w); /* nonrepeating: stop timer */
923 1790
1791 EV_FREQUENT_CHECK;
924 event (EV_A_ (W)w, EV_PERIODIC); 1792 ev_feed_event (EV_A_ (W)w, EV_PERIODIC);
925 } 1793 }
926} 1794}
927 1795
928static void 1796static void noinline
929periodics_reschedule (EV_P) 1797periodics_reschedule (EV_P)
930{ 1798{
931 int i; 1799 int i;
932 1800
933 /* adjust periodics after time jump */ 1801 /* adjust periodics after time jump */
934 for (i = 0; i < periodiccnt; ++i) 1802 for (i = HEAP0; i < periodiccnt + HEAP0; ++i)
935 { 1803 {
936 struct ev_periodic *w = periodics [i]; 1804 ev_periodic *w = (ev_periodic *)ANHE_w (periodics [i]);
937 1805
1806 if (w->reschedule_cb)
1807 ev_at (w) = w->reschedule_cb (w, ev_rt_now);
938 if (w->interval) 1808 else if (w->interval)
1809 ev_at (w) = w->offset + ceil ((ev_rt_now - w->offset) / w->interval) * w->interval;
1810
1811 ANHE_at_cache (periodics [i]);
1812 }
1813
1814 reheap (periodics, periodiccnt);
1815}
1816#endif
1817
1818void inline_speed
1819time_update (EV_P_ ev_tstamp max_block)
1820{
1821 int i;
1822
1823#if EV_USE_MONOTONIC
1824 if (expect_true (have_monotonic))
1825 {
1826 ev_tstamp odiff = rtmn_diff;
1827
1828 mn_now = get_clock ();
1829
1830 /* only fetch the realtime clock every 0.5*MIN_TIMEJUMP seconds */
1831 /* interpolate in the meantime */
1832 if (expect_true (mn_now - now_floor < MIN_TIMEJUMP * .5))
939 { 1833 {
940 ev_tstamp diff = ceil ((rt_now - ((WT)w)->at) / w->interval) * w->interval; 1834 ev_rt_now = rtmn_diff + mn_now;
1835 return;
1836 }
941 1837
942 if (fabs (diff) >= 1e-4) 1838 now_floor = mn_now;
1839 ev_rt_now = ev_time ();
1840
1841 /* loop a few times, before making important decisions.
1842 * on the choice of "4": one iteration isn't enough,
1843 * in case we get preempted during the calls to
1844 * ev_time and get_clock. a second call is almost guaranteed
1845 * to succeed in that case, though. and looping a few more times
1846 * doesn't hurt either as we only do this on time-jumps or
1847 * in the unlikely event of having been preempted here.
1848 */
1849 for (i = 4; --i; )
1850 {
1851 rtmn_diff = ev_rt_now - mn_now;
1852
1853 if (expect_true (fabs (odiff - rtmn_diff) < MIN_TIMEJUMP))
1854 return; /* all is well */
1855
1856 ev_rt_now = ev_time ();
1857 mn_now = get_clock ();
1858 now_floor = mn_now;
1859 }
1860
1861# if EV_PERIODIC_ENABLE
1862 periodics_reschedule (EV_A);
1863# endif
1864 /* no timer adjustment, as the monotonic clock doesn't jump */
1865 /* timers_reschedule (EV_A_ rtmn_diff - odiff) */
1866 }
1867 else
1868#endif
1869 {
1870 ev_rt_now = ev_time ();
1871
1872 if (expect_false (mn_now > ev_rt_now || ev_rt_now > mn_now + max_block + MIN_TIMEJUMP))
1873 {
1874#if EV_PERIODIC_ENABLE
1875 periodics_reschedule (EV_A);
1876#endif
1877 /* adjust timers. this is easy, as the offset is the same for all of them */
1878 for (i = 0; i < timercnt; ++i)
943 { 1879 {
944 ev_periodic_stop (EV_A_ w); 1880 ANHE *he = timers + i + HEAP0;
945 ev_periodic_start (EV_A_ w); 1881 ANHE_w (*he)->at += ev_rt_now - mn_now;
946 1882 ANHE_at_cache (*he);
947 i = 0; /* restart loop, inefficient, but time jumps should be rare */
948 } 1883 }
949 } 1884 }
950 }
951}
952 1885
953inline int
954time_update_monotonic (EV_P)
955{
956 mn_now = get_clock ();
957
958 if (expect_true (mn_now - now_floor < MIN_TIMEJUMP * .5))
959 {
960 rt_now = rtmn_diff + mn_now;
961 return 0;
962 }
963 else
964 {
965 now_floor = mn_now;
966 rt_now = ev_time ();
967 return 1;
968 }
969}
970
971static void
972time_update (EV_P)
973{
974 int i;
975
976#if EV_USE_MONOTONIC
977 if (expect_true (have_monotonic))
978 {
979 if (time_update_monotonic (EV_A))
980 {
981 ev_tstamp odiff = rtmn_diff;
982
983 for (i = 4; --i; ) /* loop a few times, before making important decisions */
984 {
985 rtmn_diff = rt_now - mn_now;
986
987 if (fabs (odiff - rtmn_diff) < MIN_TIMEJUMP)
988 return; /* all is well */
989
990 rt_now = ev_time ();
991 mn_now = get_clock ();
992 now_floor = mn_now;
993 }
994
995 periodics_reschedule (EV_A);
996 /* no timer adjustment, as the monotonic clock doesn't jump */
997 /* timers_reschedule (EV_A_ rtmn_diff - odiff) */
998 }
999 }
1000 else
1001#endif
1002 {
1003 rt_now = ev_time ();
1004
1005 if (expect_false (mn_now > rt_now || mn_now < rt_now - MAX_BLOCKTIME - MIN_TIMEJUMP))
1006 {
1007 periodics_reschedule (EV_A);
1008
1009 /* adjust timers. this is easy, as the offset is the same for all */
1010 for (i = 0; i < timercnt; ++i)
1011 ((WT)timers [i])->at += rt_now - mn_now;
1012 }
1013
1014 mn_now = rt_now; 1886 mn_now = ev_rt_now;
1015 } 1887 }
1016} 1888}
1017 1889
1018void 1890void
1019ev_ref (EV_P) 1891ev_ref (EV_P)
1030static int loop_done; 1902static int loop_done;
1031 1903
1032void 1904void
1033ev_loop (EV_P_ int flags) 1905ev_loop (EV_P_ int flags)
1034{ 1906{
1035 double block; 1907 loop_done = EVUNLOOP_CANCEL;
1036 loop_done = flags & (EVLOOP_ONESHOT | EVLOOP_NONBLOCK) ? 1 : 0; 1908
1909 call_pending (EV_A); /* in case we recurse, ensure ordering stays nice and clean */
1037 1910
1038 do 1911 do
1039 { 1912 {
1913#if EV_VERIFY >= 2
1914 ev_loop_verify (EV_A);
1915#endif
1916
1917#ifndef _WIN32
1918 if (expect_false (curpid)) /* penalise the forking check even more */
1919 if (expect_false (getpid () != curpid))
1920 {
1921 curpid = getpid ();
1922 postfork = 1;
1923 }
1924#endif
1925
1926#if EV_FORK_ENABLE
1927 /* we might have forked, so queue fork handlers */
1928 if (expect_false (postfork))
1929 if (forkcnt)
1930 {
1931 queue_events (EV_A_ (W *)forks, forkcnt, EV_FORK);
1932 call_pending (EV_A);
1933 }
1934#endif
1935
1040 /* queue check watchers (and execute them) */ 1936 /* queue prepare watchers (and execute them) */
1041 if (expect_false (preparecnt)) 1937 if (expect_false (preparecnt))
1042 { 1938 {
1043 queue_events (EV_A_ (W *)prepares, preparecnt, EV_PREPARE); 1939 queue_events (EV_A_ (W *)prepares, preparecnt, EV_PREPARE);
1044 call_pending (EV_A); 1940 call_pending (EV_A);
1045 } 1941 }
1046 1942
1943 if (expect_false (!activecnt))
1944 break;
1945
1946 /* we might have forked, so reify kernel state if necessary */
1947 if (expect_false (postfork))
1948 loop_fork (EV_A);
1949
1047 /* update fd-related kernel structures */ 1950 /* update fd-related kernel structures */
1048 fd_reify (EV_A); 1951 fd_reify (EV_A);
1049 1952
1050 /* calculate blocking time */ 1953 /* calculate blocking time */
1954 {
1955 ev_tstamp waittime = 0.;
1956 ev_tstamp sleeptime = 0.;
1051 1957
1052 /* we only need this for !monotonic clockor timers, but as we basically 1958 if (expect_true (!(flags & EVLOOP_NONBLOCK || idleall || !activecnt)))
1053 always have timers, we just calculate it always */
1054#if EV_USE_MONOTONIC
1055 if (expect_true (have_monotonic))
1056 time_update_monotonic (EV_A);
1057 else
1058#endif
1059 { 1959 {
1060 rt_now = ev_time (); 1960 /* update time to cancel out callback processing overhead */
1061 mn_now = rt_now; 1961 time_update (EV_A_ 1e100);
1062 }
1063 1962
1064 if (flags & EVLOOP_NONBLOCK || idlecnt)
1065 block = 0.;
1066 else
1067 {
1068 block = MAX_BLOCKTIME; 1963 waittime = MAX_BLOCKTIME;
1069 1964
1070 if (timercnt) 1965 if (timercnt)
1071 { 1966 {
1072 ev_tstamp to = ((WT)timers [0])->at - mn_now + method_fudge; 1967 ev_tstamp to = ANHE_at (timers [HEAP0]) - mn_now + backend_fudge;
1073 if (block > to) block = to; 1968 if (waittime > to) waittime = to;
1074 } 1969 }
1075 1970
1971#if EV_PERIODIC_ENABLE
1076 if (periodiccnt) 1972 if (periodiccnt)
1077 { 1973 {
1078 ev_tstamp to = ((WT)periodics [0])->at - rt_now + method_fudge; 1974 ev_tstamp to = ANHE_at (periodics [HEAP0]) - ev_rt_now + backend_fudge;
1079 if (block > to) block = to; 1975 if (waittime > to) waittime = to;
1080 } 1976 }
1977#endif
1081 1978
1082 if (block < 0.) block = 0.; 1979 if (expect_false (waittime < timeout_blocktime))
1980 waittime = timeout_blocktime;
1981
1982 sleeptime = waittime - backend_fudge;
1983
1984 if (expect_true (sleeptime > io_blocktime))
1985 sleeptime = io_blocktime;
1986
1987 if (sleeptime)
1988 {
1989 ev_sleep (sleeptime);
1990 waittime -= sleeptime;
1991 }
1083 } 1992 }
1084 1993
1085 method_poll (EV_A_ block); 1994 ++loop_count;
1995 backend_poll (EV_A_ waittime);
1086 1996
1087 /* update rt_now, do magic */ 1997 /* update ev_rt_now, do magic */
1088 time_update (EV_A); 1998 time_update (EV_A_ waittime + sleeptime);
1999 }
1089 2000
1090 /* queue pending timers and reschedule them */ 2001 /* queue pending timers and reschedule them */
1091 timers_reify (EV_A); /* relative timers called last */ 2002 timers_reify (EV_A); /* relative timers called last */
2003#if EV_PERIODIC_ENABLE
1092 periodics_reify (EV_A); /* absolute timers called first */ 2004 periodics_reify (EV_A); /* absolute timers called first */
2005#endif
1093 2006
2007#if EV_IDLE_ENABLE
1094 /* queue idle watchers unless io or timers are pending */ 2008 /* queue idle watchers unless other events are pending */
1095 if (!pendingcnt) 2009 idle_reify (EV_A);
1096 queue_events (EV_A_ (W *)idles, idlecnt, EV_IDLE); 2010#endif
1097 2011
1098 /* queue check watchers, to be executed first */ 2012 /* queue check watchers, to be executed first */
1099 if (checkcnt) 2013 if (expect_false (checkcnt))
1100 queue_events (EV_A_ (W *)checks, checkcnt, EV_CHECK); 2014 queue_events (EV_A_ (W *)checks, checkcnt, EV_CHECK);
1101 2015
1102 call_pending (EV_A); 2016 call_pending (EV_A);
1103 } 2017 }
1104 while (activecnt && !loop_done); 2018 while (expect_true (
2019 activecnt
2020 && !loop_done
2021 && !(flags & (EVLOOP_ONESHOT | EVLOOP_NONBLOCK))
2022 ));
1105 2023
1106 if (loop_done != 2) 2024 if (loop_done == EVUNLOOP_ONE)
1107 loop_done = 0; 2025 loop_done = EVUNLOOP_CANCEL;
1108} 2026}
1109 2027
1110void 2028void
1111ev_unloop (EV_P_ int how) 2029ev_unloop (EV_P_ int how)
1112{ 2030{
1113 loop_done = how; 2031 loop_done = how;
1114} 2032}
1115 2033
1116/*****************************************************************************/ 2034/*****************************************************************************/
1117 2035
1118inline void 2036void inline_size
1119wlist_add (WL *head, WL elem) 2037wlist_add (WL *head, WL elem)
1120{ 2038{
1121 elem->next = *head; 2039 elem->next = *head;
1122 *head = elem; 2040 *head = elem;
1123} 2041}
1124 2042
1125inline void 2043void inline_size
1126wlist_del (WL *head, WL elem) 2044wlist_del (WL *head, WL elem)
1127{ 2045{
1128 while (*head) 2046 while (*head)
1129 { 2047 {
1130 if (*head == elem) 2048 if (*head == elem)
1135 2053
1136 head = &(*head)->next; 2054 head = &(*head)->next;
1137 } 2055 }
1138} 2056}
1139 2057
1140inline void 2058void inline_speed
1141ev_clear_pending (EV_P_ W w) 2059clear_pending (EV_P_ W w)
1142{ 2060{
1143 if (w->pending) 2061 if (w->pending)
1144 { 2062 {
1145 pendings [ABSPRI (w)][w->pending - 1].w = 0; 2063 pendings [ABSPRI (w)][w->pending - 1].w = 0;
1146 w->pending = 0; 2064 w->pending = 0;
1147 } 2065 }
1148} 2066}
1149 2067
1150inline void 2068int
2069ev_clear_pending (EV_P_ void *w)
2070{
2071 W w_ = (W)w;
2072 int pending = w_->pending;
2073
2074 if (expect_true (pending))
2075 {
2076 ANPENDING *p = pendings [ABSPRI (w_)] + pending - 1;
2077 w_->pending = 0;
2078 p->w = 0;
2079 return p->events;
2080 }
2081 else
2082 return 0;
2083}
2084
2085void inline_size
2086pri_adjust (EV_P_ W w)
2087{
2088 int pri = w->priority;
2089 pri = pri < EV_MINPRI ? EV_MINPRI : pri;
2090 pri = pri > EV_MAXPRI ? EV_MAXPRI : pri;
2091 w->priority = pri;
2092}
2093
2094void inline_speed
1151ev_start (EV_P_ W w, int active) 2095ev_start (EV_P_ W w, int active)
1152{ 2096{
1153 if (w->priority < EV_MINPRI) w->priority = EV_MINPRI; 2097 pri_adjust (EV_A_ w);
1154 if (w->priority > EV_MAXPRI) w->priority = EV_MAXPRI;
1155
1156 w->active = active; 2098 w->active = active;
1157 ev_ref (EV_A); 2099 ev_ref (EV_A);
1158} 2100}
1159 2101
1160inline void 2102void inline_size
1161ev_stop (EV_P_ W w) 2103ev_stop (EV_P_ W w)
1162{ 2104{
1163 ev_unref (EV_A); 2105 ev_unref (EV_A);
1164 w->active = 0; 2106 w->active = 0;
1165} 2107}
1166 2108
1167/*****************************************************************************/ 2109/*****************************************************************************/
1168 2110
1169void 2111void noinline
1170ev_io_start (EV_P_ struct ev_io *w) 2112ev_io_start (EV_P_ ev_io *w)
1171{ 2113{
1172 int fd = w->fd; 2114 int fd = w->fd;
1173 2115
1174 if (ev_is_active (w)) 2116 if (expect_false (ev_is_active (w)))
1175 return; 2117 return;
1176 2118
1177 assert (("ev_io_start called with negative fd", fd >= 0)); 2119 assert (("ev_io_start called with negative fd", fd >= 0));
1178 2120
2121 EV_FREQUENT_CHECK;
2122
1179 ev_start (EV_A_ (W)w, 1); 2123 ev_start (EV_A_ (W)w, 1);
1180 array_needsize (anfds, anfdmax, fd + 1, anfds_init); 2124 array_needsize (ANFD, anfds, anfdmax, fd + 1, anfds_init);
1181 wlist_add ((WL *)&anfds[fd].head, (WL)w); 2125 wlist_add (&anfds[fd].head, (WL)w);
1182 2126
1183 fd_change (EV_A_ fd); 2127 fd_change (EV_A_ fd, w->events & EV_IOFDSET | 1);
1184} 2128 w->events &= ~EV_IOFDSET;
1185 2129
1186void 2130 EV_FREQUENT_CHECK;
2131}
2132
2133void noinline
1187ev_io_stop (EV_P_ struct ev_io *w) 2134ev_io_stop (EV_P_ ev_io *w)
1188{ 2135{
1189 ev_clear_pending (EV_A_ (W)w); 2136 clear_pending (EV_A_ (W)w);
1190 if (!ev_is_active (w)) 2137 if (expect_false (!ev_is_active (w)))
1191 return; 2138 return;
1192 2139
2140 assert (("ev_io_stop called with illegal fd (must stay constant after start!)", w->fd >= 0 && w->fd < anfdmax));
2141
2142 EV_FREQUENT_CHECK;
2143
1193 wlist_del ((WL *)&anfds[w->fd].head, (WL)w); 2144 wlist_del (&anfds[w->fd].head, (WL)w);
1194 ev_stop (EV_A_ (W)w); 2145 ev_stop (EV_A_ (W)w);
1195 2146
1196 fd_change (EV_A_ w->fd); 2147 fd_change (EV_A_ w->fd, 1);
1197}
1198 2148
1199void 2149 EV_FREQUENT_CHECK;
2150}
2151
2152void noinline
1200ev_timer_start (EV_P_ struct ev_timer *w) 2153ev_timer_start (EV_P_ ev_timer *w)
1201{ 2154{
1202 if (ev_is_active (w)) 2155 if (expect_false (ev_is_active (w)))
1203 return; 2156 return;
1204 2157
1205 ((WT)w)->at += mn_now; 2158 ev_at (w) += mn_now;
1206 2159
1207 assert (("ev_timer_start called with negative timer repeat value", w->repeat >= 0.)); 2160 assert (("ev_timer_start called with negative timer repeat value", w->repeat >= 0.));
1208 2161
2162 EV_FREQUENT_CHECK;
2163
2164 ++timercnt;
1209 ev_start (EV_A_ (W)w, ++timercnt); 2165 ev_start (EV_A_ (W)w, timercnt + HEAP0 - 1);
1210 array_needsize (timers, timermax, timercnt, ); 2166 array_needsize (ANHE, timers, timermax, ev_active (w) + 1, EMPTY2);
1211 timers [timercnt - 1] = w; 2167 ANHE_w (timers [ev_active (w)]) = (WT)w;
1212 upheap ((WT *)timers, timercnt - 1); 2168 ANHE_at_cache (timers [ev_active (w)]);
2169 upheap (timers, ev_active (w));
1213 2170
2171 EV_FREQUENT_CHECK;
2172
1214 assert (("internal timer heap corruption", timers [((W)w)->active - 1] == w)); 2173 /*assert (("internal timer heap corruption", timers [ev_active (w)] == (WT)w));*/
1215} 2174}
1216 2175
1217void 2176void noinline
1218ev_timer_stop (EV_P_ struct ev_timer *w) 2177ev_timer_stop (EV_P_ ev_timer *w)
1219{ 2178{
1220 ev_clear_pending (EV_A_ (W)w); 2179 clear_pending (EV_A_ (W)w);
1221 if (!ev_is_active (w)) 2180 if (expect_false (!ev_is_active (w)))
1222 return; 2181 return;
1223 2182
2183 EV_FREQUENT_CHECK;
2184
2185 {
2186 int active = ev_active (w);
2187
1224 assert (("internal timer heap corruption", timers [((W)w)->active - 1] == w)); 2188 assert (("internal timer heap corruption", ANHE_w (timers [active]) == (WT)w));
1225 2189
1226 if (((W)w)->active < timercnt--) 2190 --timercnt;
2191
2192 if (expect_true (active < timercnt + HEAP0))
1227 { 2193 {
1228 timers [((W)w)->active - 1] = timers [timercnt]; 2194 timers [active] = timers [timercnt + HEAP0];
1229 downheap ((WT *)timers, timercnt, ((W)w)->active - 1); 2195 adjustheap (timers, timercnt, active);
1230 } 2196 }
2197 }
1231 2198
1232 ((WT)w)->at = w->repeat; 2199 EV_FREQUENT_CHECK;
2200
2201 ev_at (w) -= mn_now;
1233 2202
1234 ev_stop (EV_A_ (W)w); 2203 ev_stop (EV_A_ (W)w);
1235} 2204}
1236 2205
1237void 2206void noinline
1238ev_timer_again (EV_P_ struct ev_timer *w) 2207ev_timer_again (EV_P_ ev_timer *w)
1239{ 2208{
2209 EV_FREQUENT_CHECK;
2210
1240 if (ev_is_active (w)) 2211 if (ev_is_active (w))
1241 { 2212 {
1242 if (w->repeat) 2213 if (w->repeat)
1243 { 2214 {
1244 ((WT)w)->at = mn_now + w->repeat; 2215 ev_at (w) = mn_now + w->repeat;
1245 downheap ((WT *)timers, timercnt, ((W)w)->active - 1); 2216 ANHE_at_cache (timers [ev_active (w)]);
2217 adjustheap (timers, timercnt, ev_active (w));
1246 } 2218 }
1247 else 2219 else
1248 ev_timer_stop (EV_A_ w); 2220 ev_timer_stop (EV_A_ w);
1249 } 2221 }
1250 else if (w->repeat) 2222 else if (w->repeat)
2223 {
2224 ev_at (w) = w->repeat;
1251 ev_timer_start (EV_A_ w); 2225 ev_timer_start (EV_A_ w);
1252} 2226 }
1253 2227
1254void 2228 EV_FREQUENT_CHECK;
2229}
2230
2231#if EV_PERIODIC_ENABLE
2232void noinline
1255ev_periodic_start (EV_P_ struct ev_periodic *w) 2233ev_periodic_start (EV_P_ ev_periodic *w)
1256{ 2234{
1257 if (ev_is_active (w)) 2235 if (expect_false (ev_is_active (w)))
1258 return; 2236 return;
1259 2237
2238 if (w->reschedule_cb)
2239 ev_at (w) = w->reschedule_cb (w, ev_rt_now);
2240 else if (w->interval)
2241 {
1260 assert (("ev_periodic_start called with negative interval value", w->interval >= 0.)); 2242 assert (("ev_periodic_start called with negative interval value", w->interval >= 0.));
1261
1262 /* this formula differs from the one in periodic_reify because we do not always round up */ 2243 /* this formula differs from the one in periodic_reify because we do not always round up */
1263 if (w->interval)
1264 ((WT)w)->at += ceil ((rt_now - ((WT)w)->at) / w->interval) * w->interval; 2244 ev_at (w) = w->offset + ceil ((ev_rt_now - w->offset) / w->interval) * w->interval;
2245 }
2246 else
2247 ev_at (w) = w->offset;
1265 2248
2249 EV_FREQUENT_CHECK;
2250
2251 ++periodiccnt;
1266 ev_start (EV_A_ (W)w, ++periodiccnt); 2252 ev_start (EV_A_ (W)w, periodiccnt + HEAP0 - 1);
1267 array_needsize (periodics, periodicmax, periodiccnt, ); 2253 array_needsize (ANHE, periodics, periodicmax, ev_active (w) + 1, EMPTY2);
1268 periodics [periodiccnt - 1] = w; 2254 ANHE_w (periodics [ev_active (w)]) = (WT)w;
1269 upheap ((WT *)periodics, periodiccnt - 1); 2255 ANHE_at_cache (periodics [ev_active (w)]);
2256 upheap (periodics, ev_active (w));
1270 2257
2258 EV_FREQUENT_CHECK;
2259
1271 assert (("internal periodic heap corruption", periodics [((W)w)->active - 1] == w)); 2260 /*assert (("internal periodic heap corruption", ANHE_w (periodics [ev_active (w)]) == (WT)w));*/
1272} 2261}
1273 2262
1274void 2263void noinline
1275ev_periodic_stop (EV_P_ struct ev_periodic *w) 2264ev_periodic_stop (EV_P_ ev_periodic *w)
1276{ 2265{
1277 ev_clear_pending (EV_A_ (W)w); 2266 clear_pending (EV_A_ (W)w);
1278 if (!ev_is_active (w)) 2267 if (expect_false (!ev_is_active (w)))
1279 return; 2268 return;
1280 2269
2270 EV_FREQUENT_CHECK;
2271
2272 {
2273 int active = ev_active (w);
2274
1281 assert (("internal periodic heap corruption", periodics [((W)w)->active - 1] == w)); 2275 assert (("internal periodic heap corruption", ANHE_w (periodics [active]) == (WT)w));
1282 2276
1283 if (((W)w)->active < periodiccnt--) 2277 --periodiccnt;
2278
2279 if (expect_true (active < periodiccnt + HEAP0))
1284 { 2280 {
1285 periodics [((W)w)->active - 1] = periodics [periodiccnt]; 2281 periodics [active] = periodics [periodiccnt + HEAP0];
1286 downheap ((WT *)periodics, periodiccnt, ((W)w)->active - 1); 2282 adjustheap (periodics, periodiccnt, active);
1287 } 2283 }
2284 }
2285
2286 EV_FREQUENT_CHECK;
1288 2287
1289 ev_stop (EV_A_ (W)w); 2288 ev_stop (EV_A_ (W)w);
1290} 2289}
1291 2290
1292void 2291void noinline
1293ev_idle_start (EV_P_ struct ev_idle *w) 2292ev_periodic_again (EV_P_ ev_periodic *w)
1294{ 2293{
1295 if (ev_is_active (w)) 2294 /* TODO: use adjustheap and recalculation */
1296 return;
1297
1298 ev_start (EV_A_ (W)w, ++idlecnt);
1299 array_needsize (idles, idlemax, idlecnt, );
1300 idles [idlecnt - 1] = w;
1301}
1302
1303void
1304ev_idle_stop (EV_P_ struct ev_idle *w)
1305{
1306 ev_clear_pending (EV_A_ (W)w);
1307 if (ev_is_active (w))
1308 return;
1309
1310 idles [((W)w)->active - 1] = idles [--idlecnt];
1311 ev_stop (EV_A_ (W)w); 2295 ev_periodic_stop (EV_A_ w);
2296 ev_periodic_start (EV_A_ w);
1312} 2297}
1313 2298#endif
1314void
1315ev_prepare_start (EV_P_ struct ev_prepare *w)
1316{
1317 if (ev_is_active (w))
1318 return;
1319
1320 ev_start (EV_A_ (W)w, ++preparecnt);
1321 array_needsize (prepares, preparemax, preparecnt, );
1322 prepares [preparecnt - 1] = w;
1323}
1324
1325void
1326ev_prepare_stop (EV_P_ struct ev_prepare *w)
1327{
1328 ev_clear_pending (EV_A_ (W)w);
1329 if (ev_is_active (w))
1330 return;
1331
1332 prepares [((W)w)->active - 1] = prepares [--preparecnt];
1333 ev_stop (EV_A_ (W)w);
1334}
1335
1336void
1337ev_check_start (EV_P_ struct ev_check *w)
1338{
1339 if (ev_is_active (w))
1340 return;
1341
1342 ev_start (EV_A_ (W)w, ++checkcnt);
1343 array_needsize (checks, checkmax, checkcnt, );
1344 checks [checkcnt - 1] = w;
1345}
1346
1347void
1348ev_check_stop (EV_P_ struct ev_check *w)
1349{
1350 ev_clear_pending (EV_A_ (W)w);
1351 if (ev_is_active (w))
1352 return;
1353
1354 checks [((W)w)->active - 1] = checks [--checkcnt];
1355 ev_stop (EV_A_ (W)w);
1356}
1357 2299
1358#ifndef SA_RESTART 2300#ifndef SA_RESTART
1359# define SA_RESTART 0 2301# define SA_RESTART 0
1360#endif 2302#endif
1361 2303
1362void 2304void noinline
1363ev_signal_start (EV_P_ struct ev_signal *w) 2305ev_signal_start (EV_P_ ev_signal *w)
1364{ 2306{
1365#if EV_MULTIPLICITY 2307#if EV_MULTIPLICITY
1366 assert (("signal watchers are only supported in the default loop", loop == default_loop)); 2308 assert (("signal watchers are only supported in the default loop", loop == ev_default_loop_ptr));
1367#endif 2309#endif
1368 if (ev_is_active (w)) 2310 if (expect_false (ev_is_active (w)))
1369 return; 2311 return;
1370 2312
1371 assert (("ev_signal_start called with illegal signal number", w->signum > 0)); 2313 assert (("ev_signal_start called with illegal signal number", w->signum > 0));
1372 2314
2315 evpipe_init (EV_A);
2316
2317 EV_FREQUENT_CHECK;
2318
2319 {
2320#ifndef _WIN32
2321 sigset_t full, prev;
2322 sigfillset (&full);
2323 sigprocmask (SIG_SETMASK, &full, &prev);
2324#endif
2325
2326 array_needsize (ANSIG, signals, signalmax, w->signum, signals_init);
2327
2328#ifndef _WIN32
2329 sigprocmask (SIG_SETMASK, &prev, 0);
2330#endif
2331 }
2332
1373 ev_start (EV_A_ (W)w, 1); 2333 ev_start (EV_A_ (W)w, 1);
1374 array_needsize (signals, signalmax, w->signum, signals_init);
1375 wlist_add ((WL *)&signals [w->signum - 1].head, (WL)w); 2334 wlist_add (&signals [w->signum - 1].head, (WL)w);
1376 2335
1377 if (!((WL)w)->next) 2336 if (!((WL)w)->next)
1378 { 2337 {
1379#if WIN32 2338#if _WIN32
1380 signal (w->signum, sighandler); 2339 signal (w->signum, ev_sighandler);
1381#else 2340#else
1382 struct sigaction sa; 2341 struct sigaction sa;
1383 sa.sa_handler = sighandler; 2342 sa.sa_handler = ev_sighandler;
1384 sigfillset (&sa.sa_mask); 2343 sigfillset (&sa.sa_mask);
1385 sa.sa_flags = SA_RESTART; /* if restarting works we save one iteration */ 2344 sa.sa_flags = SA_RESTART; /* if restarting works we save one iteration */
1386 sigaction (w->signum, &sa, 0); 2345 sigaction (w->signum, &sa, 0);
1387#endif 2346#endif
1388 } 2347 }
1389}
1390 2348
1391void 2349 EV_FREQUENT_CHECK;
2350}
2351
2352void noinline
1392ev_signal_stop (EV_P_ struct ev_signal *w) 2353ev_signal_stop (EV_P_ ev_signal *w)
1393{ 2354{
1394 ev_clear_pending (EV_A_ (W)w); 2355 clear_pending (EV_A_ (W)w);
1395 if (!ev_is_active (w)) 2356 if (expect_false (!ev_is_active (w)))
1396 return; 2357 return;
1397 2358
2359 EV_FREQUENT_CHECK;
2360
1398 wlist_del ((WL *)&signals [w->signum - 1].head, (WL)w); 2361 wlist_del (&signals [w->signum - 1].head, (WL)w);
1399 ev_stop (EV_A_ (W)w); 2362 ev_stop (EV_A_ (W)w);
1400 2363
1401 if (!signals [w->signum - 1].head) 2364 if (!signals [w->signum - 1].head)
1402 signal (w->signum, SIG_DFL); 2365 signal (w->signum, SIG_DFL);
1403}
1404 2366
2367 EV_FREQUENT_CHECK;
2368}
2369
1405void 2370void
1406ev_child_start (EV_P_ struct ev_child *w) 2371ev_child_start (EV_P_ ev_child *w)
1407{ 2372{
1408#if EV_MULTIPLICITY 2373#if EV_MULTIPLICITY
1409 assert (("child watchers are only supported in the default loop", loop == default_loop)); 2374 assert (("child watchers are only supported in the default loop", loop == ev_default_loop_ptr));
1410#endif 2375#endif
1411 if (ev_is_active (w)) 2376 if (expect_false (ev_is_active (w)))
1412 return; 2377 return;
1413 2378
2379 EV_FREQUENT_CHECK;
2380
1414 ev_start (EV_A_ (W)w, 1); 2381 ev_start (EV_A_ (W)w, 1);
1415 wlist_add ((WL *)&childs [w->pid & (PID_HASHSIZE - 1)], (WL)w); 2382 wlist_add (&childs [w->pid & (EV_PID_HASHSIZE - 1)], (WL)w);
1416}
1417 2383
2384 EV_FREQUENT_CHECK;
2385}
2386
1418void 2387void
1419ev_child_stop (EV_P_ struct ev_child *w) 2388ev_child_stop (EV_P_ ev_child *w)
1420{ 2389{
1421 ev_clear_pending (EV_A_ (W)w); 2390 clear_pending (EV_A_ (W)w);
1422 if (ev_is_active (w)) 2391 if (expect_false (!ev_is_active (w)))
1423 return; 2392 return;
1424 2393
2394 EV_FREQUENT_CHECK;
2395
1425 wlist_del ((WL *)&childs [w->pid & (PID_HASHSIZE - 1)], (WL)w); 2396 wlist_del (&childs [w->pid & (EV_PID_HASHSIZE - 1)], (WL)w);
1426 ev_stop (EV_A_ (W)w); 2397 ev_stop (EV_A_ (W)w);
2398
2399 EV_FREQUENT_CHECK;
1427} 2400}
2401
2402#if EV_STAT_ENABLE
2403
2404# ifdef _WIN32
2405# undef lstat
2406# define lstat(a,b) _stati64 (a,b)
2407# endif
2408
2409#define DEF_STAT_INTERVAL 5.0074891
2410#define MIN_STAT_INTERVAL 0.1074891
2411
2412static void noinline stat_timer_cb (EV_P_ ev_timer *w_, int revents);
2413
2414#if EV_USE_INOTIFY
2415# define EV_INOTIFY_BUFSIZE 8192
2416
2417static void noinline
2418infy_add (EV_P_ ev_stat *w)
2419{
2420 w->wd = inotify_add_watch (fs_fd, w->path, IN_ATTRIB | IN_DELETE_SELF | IN_MOVE_SELF | IN_MODIFY | IN_DONT_FOLLOW | IN_MASK_ADD);
2421
2422 if (w->wd < 0)
2423 {
2424 ev_timer_start (EV_A_ &w->timer); /* this is not race-free, so we still need to recheck periodically */
2425
2426 /* monitor some parent directory for speedup hints */
2427 /* note that exceeding the hardcoded limit is not a correctness issue, */
2428 /* but an efficiency issue only */
2429 if ((errno == ENOENT || errno == EACCES) && strlen (w->path) < 4096)
2430 {
2431 char path [4096];
2432 strcpy (path, w->path);
2433
2434 do
2435 {
2436 int mask = IN_MASK_ADD | IN_DELETE_SELF | IN_MOVE_SELF
2437 | (errno == EACCES ? IN_ATTRIB : IN_CREATE | IN_MOVED_TO);
2438
2439 char *pend = strrchr (path, '/');
2440
2441 if (!pend)
2442 break; /* whoops, no '/', complain to your admin */
2443
2444 *pend = 0;
2445 w->wd = inotify_add_watch (fs_fd, path, mask);
2446 }
2447 while (w->wd < 0 && (errno == ENOENT || errno == EACCES));
2448 }
2449 }
2450 else
2451 ev_timer_stop (EV_A_ &w->timer); /* we can watch this in a race-free way */
2452
2453 if (w->wd >= 0)
2454 wlist_add (&fs_hash [w->wd & (EV_INOTIFY_HASHSIZE - 1)].head, (WL)w);
2455}
2456
2457static void noinline
2458infy_del (EV_P_ ev_stat *w)
2459{
2460 int slot;
2461 int wd = w->wd;
2462
2463 if (wd < 0)
2464 return;
2465
2466 w->wd = -2;
2467 slot = wd & (EV_INOTIFY_HASHSIZE - 1);
2468 wlist_del (&fs_hash [slot].head, (WL)w);
2469
2470 /* remove this watcher, if others are watching it, they will rearm */
2471 inotify_rm_watch (fs_fd, wd);
2472}
2473
2474static void noinline
2475infy_wd (EV_P_ int slot, int wd, struct inotify_event *ev)
2476{
2477 if (slot < 0)
2478 /* overflow, need to check for all hahs slots */
2479 for (slot = 0; slot < EV_INOTIFY_HASHSIZE; ++slot)
2480 infy_wd (EV_A_ slot, wd, ev);
2481 else
2482 {
2483 WL w_;
2484
2485 for (w_ = fs_hash [slot & (EV_INOTIFY_HASHSIZE - 1)].head; w_; )
2486 {
2487 ev_stat *w = (ev_stat *)w_;
2488 w_ = w_->next; /* lets us remove this watcher and all before it */
2489
2490 if (w->wd == wd || wd == -1)
2491 {
2492 if (ev->mask & (IN_IGNORED | IN_UNMOUNT | IN_DELETE_SELF))
2493 {
2494 w->wd = -1;
2495 infy_add (EV_A_ w); /* re-add, no matter what */
2496 }
2497
2498 stat_timer_cb (EV_A_ &w->timer, 0);
2499 }
2500 }
2501 }
2502}
2503
2504static void
2505infy_cb (EV_P_ ev_io *w, int revents)
2506{
2507 char buf [EV_INOTIFY_BUFSIZE];
2508 struct inotify_event *ev = (struct inotify_event *)buf;
2509 int ofs;
2510 int len = read (fs_fd, buf, sizeof (buf));
2511
2512 for (ofs = 0; ofs < len; ofs += sizeof (struct inotify_event) + ev->len)
2513 infy_wd (EV_A_ ev->wd, ev->wd, ev);
2514}
2515
2516void inline_size
2517infy_init (EV_P)
2518{
2519 if (fs_fd != -2)
2520 return;
2521
2522 fs_fd = inotify_init ();
2523
2524 if (fs_fd >= 0)
2525 {
2526 ev_io_init (&fs_w, infy_cb, fs_fd, EV_READ);
2527 ev_set_priority (&fs_w, EV_MAXPRI);
2528 ev_io_start (EV_A_ &fs_w);
2529 }
2530}
2531
2532void inline_size
2533infy_fork (EV_P)
2534{
2535 int slot;
2536
2537 if (fs_fd < 0)
2538 return;
2539
2540 close (fs_fd);
2541 fs_fd = inotify_init ();
2542
2543 for (slot = 0; slot < EV_INOTIFY_HASHSIZE; ++slot)
2544 {
2545 WL w_ = fs_hash [slot].head;
2546 fs_hash [slot].head = 0;
2547
2548 while (w_)
2549 {
2550 ev_stat *w = (ev_stat *)w_;
2551 w_ = w_->next; /* lets us add this watcher */
2552
2553 w->wd = -1;
2554
2555 if (fs_fd >= 0)
2556 infy_add (EV_A_ w); /* re-add, no matter what */
2557 else
2558 ev_timer_start (EV_A_ &w->timer);
2559 }
2560
2561 }
2562}
2563
2564#endif
2565
2566void
2567ev_stat_stat (EV_P_ ev_stat *w)
2568{
2569 if (lstat (w->path, &w->attr) < 0)
2570 w->attr.st_nlink = 0;
2571 else if (!w->attr.st_nlink)
2572 w->attr.st_nlink = 1;
2573}
2574
2575static void noinline
2576stat_timer_cb (EV_P_ ev_timer *w_, int revents)
2577{
2578 ev_stat *w = (ev_stat *)(((char *)w_) - offsetof (ev_stat, timer));
2579
2580 /* we copy this here each the time so that */
2581 /* prev has the old value when the callback gets invoked */
2582 w->prev = w->attr;
2583 ev_stat_stat (EV_A_ w);
2584
2585 /* memcmp doesn't work on netbsd, they.... do stuff to their struct stat */
2586 if (
2587 w->prev.st_dev != w->attr.st_dev
2588 || w->prev.st_ino != w->attr.st_ino
2589 || w->prev.st_mode != w->attr.st_mode
2590 || w->prev.st_nlink != w->attr.st_nlink
2591 || w->prev.st_uid != w->attr.st_uid
2592 || w->prev.st_gid != w->attr.st_gid
2593 || w->prev.st_rdev != w->attr.st_rdev
2594 || w->prev.st_size != w->attr.st_size
2595 || w->prev.st_atime != w->attr.st_atime
2596 || w->prev.st_mtime != w->attr.st_mtime
2597 || w->prev.st_ctime != w->attr.st_ctime
2598 ) {
2599 #if EV_USE_INOTIFY
2600 infy_del (EV_A_ w);
2601 infy_add (EV_A_ w);
2602 ev_stat_stat (EV_A_ w); /* avoid race... */
2603 #endif
2604
2605 ev_feed_event (EV_A_ w, EV_STAT);
2606 }
2607}
2608
2609void
2610ev_stat_start (EV_P_ ev_stat *w)
2611{
2612 if (expect_false (ev_is_active (w)))
2613 return;
2614
2615 /* since we use memcmp, we need to clear any padding data etc. */
2616 memset (&w->prev, 0, sizeof (ev_statdata));
2617 memset (&w->attr, 0, sizeof (ev_statdata));
2618
2619 ev_stat_stat (EV_A_ w);
2620
2621 if (w->interval < MIN_STAT_INTERVAL)
2622 w->interval = w->interval ? MIN_STAT_INTERVAL : DEF_STAT_INTERVAL;
2623
2624 ev_timer_init (&w->timer, stat_timer_cb, w->interval, w->interval);
2625 ev_set_priority (&w->timer, ev_priority (w));
2626
2627#if EV_USE_INOTIFY
2628 infy_init (EV_A);
2629
2630 if (fs_fd >= 0)
2631 infy_add (EV_A_ w);
2632 else
2633#endif
2634 ev_timer_start (EV_A_ &w->timer);
2635
2636 ev_start (EV_A_ (W)w, 1);
2637
2638 EV_FREQUENT_CHECK;
2639}
2640
2641void
2642ev_stat_stop (EV_P_ ev_stat *w)
2643{
2644 clear_pending (EV_A_ (W)w);
2645 if (expect_false (!ev_is_active (w)))
2646 return;
2647
2648 EV_FREQUENT_CHECK;
2649
2650#if EV_USE_INOTIFY
2651 infy_del (EV_A_ w);
2652#endif
2653 ev_timer_stop (EV_A_ &w->timer);
2654
2655 ev_stop (EV_A_ (W)w);
2656
2657 EV_FREQUENT_CHECK;
2658}
2659#endif
2660
2661#if EV_IDLE_ENABLE
2662void
2663ev_idle_start (EV_P_ ev_idle *w)
2664{
2665 if (expect_false (ev_is_active (w)))
2666 return;
2667
2668 pri_adjust (EV_A_ (W)w);
2669
2670 EV_FREQUENT_CHECK;
2671
2672 {
2673 int active = ++idlecnt [ABSPRI (w)];
2674
2675 ++idleall;
2676 ev_start (EV_A_ (W)w, active);
2677
2678 array_needsize (ev_idle *, idles [ABSPRI (w)], idlemax [ABSPRI (w)], active, EMPTY2);
2679 idles [ABSPRI (w)][active - 1] = w;
2680 }
2681
2682 EV_FREQUENT_CHECK;
2683}
2684
2685void
2686ev_idle_stop (EV_P_ ev_idle *w)
2687{
2688 clear_pending (EV_A_ (W)w);
2689 if (expect_false (!ev_is_active (w)))
2690 return;
2691
2692 EV_FREQUENT_CHECK;
2693
2694 {
2695 int active = ev_active (w);
2696
2697 idles [ABSPRI (w)][active - 1] = idles [ABSPRI (w)][--idlecnt [ABSPRI (w)]];
2698 ev_active (idles [ABSPRI (w)][active - 1]) = active;
2699
2700 ev_stop (EV_A_ (W)w);
2701 --idleall;
2702 }
2703
2704 EV_FREQUENT_CHECK;
2705}
2706#endif
2707
2708void
2709ev_prepare_start (EV_P_ ev_prepare *w)
2710{
2711 if (expect_false (ev_is_active (w)))
2712 return;
2713
2714 EV_FREQUENT_CHECK;
2715
2716 ev_start (EV_A_ (W)w, ++preparecnt);
2717 array_needsize (ev_prepare *, prepares, preparemax, preparecnt, EMPTY2);
2718 prepares [preparecnt - 1] = w;
2719
2720 EV_FREQUENT_CHECK;
2721}
2722
2723void
2724ev_prepare_stop (EV_P_ ev_prepare *w)
2725{
2726 clear_pending (EV_A_ (W)w);
2727 if (expect_false (!ev_is_active (w)))
2728 return;
2729
2730 EV_FREQUENT_CHECK;
2731
2732 {
2733 int active = ev_active (w);
2734
2735 prepares [active - 1] = prepares [--preparecnt];
2736 ev_active (prepares [active - 1]) = active;
2737 }
2738
2739 ev_stop (EV_A_ (W)w);
2740
2741 EV_FREQUENT_CHECK;
2742}
2743
2744void
2745ev_check_start (EV_P_ ev_check *w)
2746{
2747 if (expect_false (ev_is_active (w)))
2748 return;
2749
2750 EV_FREQUENT_CHECK;
2751
2752 ev_start (EV_A_ (W)w, ++checkcnt);
2753 array_needsize (ev_check *, checks, checkmax, checkcnt, EMPTY2);
2754 checks [checkcnt - 1] = w;
2755
2756 EV_FREQUENT_CHECK;
2757}
2758
2759void
2760ev_check_stop (EV_P_ ev_check *w)
2761{
2762 clear_pending (EV_A_ (W)w);
2763 if (expect_false (!ev_is_active (w)))
2764 return;
2765
2766 EV_FREQUENT_CHECK;
2767
2768 {
2769 int active = ev_active (w);
2770
2771 checks [active - 1] = checks [--checkcnt];
2772 ev_active (checks [active - 1]) = active;
2773 }
2774
2775 ev_stop (EV_A_ (W)w);
2776
2777 EV_FREQUENT_CHECK;
2778}
2779
2780#if EV_EMBED_ENABLE
2781void noinline
2782ev_embed_sweep (EV_P_ ev_embed *w)
2783{
2784 ev_loop (w->other, EVLOOP_NONBLOCK);
2785}
2786
2787static void
2788embed_io_cb (EV_P_ ev_io *io, int revents)
2789{
2790 ev_embed *w = (ev_embed *)(((char *)io) - offsetof (ev_embed, io));
2791
2792 if (ev_cb (w))
2793 ev_feed_event (EV_A_ (W)w, EV_EMBED);
2794 else
2795 ev_loop (w->other, EVLOOP_NONBLOCK);
2796}
2797
2798static void
2799embed_prepare_cb (EV_P_ ev_prepare *prepare, int revents)
2800{
2801 ev_embed *w = (ev_embed *)(((char *)prepare) - offsetof (ev_embed, prepare));
2802
2803 {
2804 struct ev_loop *loop = w->other;
2805
2806 while (fdchangecnt)
2807 {
2808 fd_reify (EV_A);
2809 ev_loop (EV_A_ EVLOOP_NONBLOCK);
2810 }
2811 }
2812}
2813
2814#if 0
2815static void
2816embed_idle_cb (EV_P_ ev_idle *idle, int revents)
2817{
2818 ev_idle_stop (EV_A_ idle);
2819}
2820#endif
2821
2822void
2823ev_embed_start (EV_P_ ev_embed *w)
2824{
2825 if (expect_false (ev_is_active (w)))
2826 return;
2827
2828 {
2829 struct ev_loop *loop = w->other;
2830 assert (("loop to be embedded is not embeddable", backend & ev_embeddable_backends ()));
2831 ev_io_init (&w->io, embed_io_cb, backend_fd, EV_READ);
2832 }
2833
2834 EV_FREQUENT_CHECK;
2835
2836 ev_set_priority (&w->io, ev_priority (w));
2837 ev_io_start (EV_A_ &w->io);
2838
2839 ev_prepare_init (&w->prepare, embed_prepare_cb);
2840 ev_set_priority (&w->prepare, EV_MINPRI);
2841 ev_prepare_start (EV_A_ &w->prepare);
2842
2843 /*ev_idle_init (&w->idle, e,bed_idle_cb);*/
2844
2845 ev_start (EV_A_ (W)w, 1);
2846
2847 EV_FREQUENT_CHECK;
2848}
2849
2850void
2851ev_embed_stop (EV_P_ ev_embed *w)
2852{
2853 clear_pending (EV_A_ (W)w);
2854 if (expect_false (!ev_is_active (w)))
2855 return;
2856
2857 EV_FREQUENT_CHECK;
2858
2859 ev_io_stop (EV_A_ &w->io);
2860 ev_prepare_stop (EV_A_ &w->prepare);
2861
2862 ev_stop (EV_A_ (W)w);
2863
2864 EV_FREQUENT_CHECK;
2865}
2866#endif
2867
2868#if EV_FORK_ENABLE
2869void
2870ev_fork_start (EV_P_ ev_fork *w)
2871{
2872 if (expect_false (ev_is_active (w)))
2873 return;
2874
2875 EV_FREQUENT_CHECK;
2876
2877 ev_start (EV_A_ (W)w, ++forkcnt);
2878 array_needsize (ev_fork *, forks, forkmax, forkcnt, EMPTY2);
2879 forks [forkcnt - 1] = w;
2880
2881 EV_FREQUENT_CHECK;
2882}
2883
2884void
2885ev_fork_stop (EV_P_ ev_fork *w)
2886{
2887 clear_pending (EV_A_ (W)w);
2888 if (expect_false (!ev_is_active (w)))
2889 return;
2890
2891 EV_FREQUENT_CHECK;
2892
2893 {
2894 int active = ev_active (w);
2895
2896 forks [active - 1] = forks [--forkcnt];
2897 ev_active (forks [active - 1]) = active;
2898 }
2899
2900 ev_stop (EV_A_ (W)w);
2901
2902 EV_FREQUENT_CHECK;
2903}
2904#endif
2905
2906#if EV_ASYNC_ENABLE
2907void
2908ev_async_start (EV_P_ ev_async *w)
2909{
2910 if (expect_false (ev_is_active (w)))
2911 return;
2912
2913 evpipe_init (EV_A);
2914
2915 EV_FREQUENT_CHECK;
2916
2917 ev_start (EV_A_ (W)w, ++asynccnt);
2918 array_needsize (ev_async *, asyncs, asyncmax, asynccnt, EMPTY2);
2919 asyncs [asynccnt - 1] = w;
2920
2921 EV_FREQUENT_CHECK;
2922}
2923
2924void
2925ev_async_stop (EV_P_ ev_async *w)
2926{
2927 clear_pending (EV_A_ (W)w);
2928 if (expect_false (!ev_is_active (w)))
2929 return;
2930
2931 EV_FREQUENT_CHECK;
2932
2933 {
2934 int active = ev_active (w);
2935
2936 asyncs [active - 1] = asyncs [--asynccnt];
2937 ev_active (asyncs [active - 1]) = active;
2938 }
2939
2940 ev_stop (EV_A_ (W)w);
2941
2942 EV_FREQUENT_CHECK;
2943}
2944
2945void
2946ev_async_send (EV_P_ ev_async *w)
2947{
2948 w->sent = 1;
2949 evpipe_write (EV_A_ &gotasync);
2950}
2951#endif
1428 2952
1429/*****************************************************************************/ 2953/*****************************************************************************/
1430 2954
1431struct ev_once 2955struct ev_once
1432{ 2956{
1433 struct ev_io io; 2957 ev_io io;
1434 struct ev_timer to; 2958 ev_timer to;
1435 void (*cb)(int revents, void *arg); 2959 void (*cb)(int revents, void *arg);
1436 void *arg; 2960 void *arg;
1437}; 2961};
1438 2962
1439static void 2963static void
1448 2972
1449 cb (revents, arg); 2973 cb (revents, arg);
1450} 2974}
1451 2975
1452static void 2976static void
1453once_cb_io (EV_P_ struct ev_io *w, int revents) 2977once_cb_io (EV_P_ ev_io *w, int revents)
1454{ 2978{
1455 once_cb (EV_A_ (struct ev_once *)(((char *)w) - offsetof (struct ev_once, io)), revents); 2979 once_cb (EV_A_ (struct ev_once *)(((char *)w) - offsetof (struct ev_once, io)), revents);
1456} 2980}
1457 2981
1458static void 2982static void
1459once_cb_to (EV_P_ struct ev_timer *w, int revents) 2983once_cb_to (EV_P_ ev_timer *w, int revents)
1460{ 2984{
1461 once_cb (EV_A_ (struct ev_once *)(((char *)w) - offsetof (struct ev_once, to)), revents); 2985 once_cb (EV_A_ (struct ev_once *)(((char *)w) - offsetof (struct ev_once, to)), revents);
1462} 2986}
1463 2987
1464void 2988void
1465ev_once (EV_P_ int fd, int events, ev_tstamp timeout, void (*cb)(int revents, void *arg), void *arg) 2989ev_once (EV_P_ int fd, int events, ev_tstamp timeout, void (*cb)(int revents, void *arg), void *arg)
1466{ 2990{
1467 struct ev_once *once = ev_malloc (sizeof (struct ev_once)); 2991 struct ev_once *once = (struct ev_once *)ev_malloc (sizeof (struct ev_once));
1468 2992
1469 if (!once) 2993 if (expect_false (!once))
2994 {
1470 cb (EV_ERROR | EV_READ | EV_WRITE | EV_TIMEOUT, arg); 2995 cb (EV_ERROR | EV_READ | EV_WRITE | EV_TIMEOUT, arg);
1471 else 2996 return;
1472 { 2997 }
2998
1473 once->cb = cb; 2999 once->cb = cb;
1474 once->arg = arg; 3000 once->arg = arg;
1475 3001
1476 ev_watcher_init (&once->io, once_cb_io); 3002 ev_init (&once->io, once_cb_io);
1477 if (fd >= 0) 3003 if (fd >= 0)
1478 { 3004 {
1479 ev_io_set (&once->io, fd, events); 3005 ev_io_set (&once->io, fd, events);
1480 ev_io_start (EV_A_ &once->io); 3006 ev_io_start (EV_A_ &once->io);
1481 } 3007 }
1482 3008
1483 ev_watcher_init (&once->to, once_cb_to); 3009 ev_init (&once->to, once_cb_to);
1484 if (timeout >= 0.) 3010 if (timeout >= 0.)
1485 { 3011 {
1486 ev_timer_set (&once->to, timeout, 0.); 3012 ev_timer_set (&once->to, timeout, 0.);
1487 ev_timer_start (EV_A_ &once->to); 3013 ev_timer_start (EV_A_ &once->to);
1488 }
1489 } 3014 }
1490} 3015}
1491 3016
3017#if EV_MULTIPLICITY
3018 #include "ev_wrap.h"
3019#endif
3020
3021#ifdef __cplusplus
3022}
3023#endif
3024

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