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Revision: 1.470
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1 root 1.430 =encoding utf-8
2    
3 root 1.1 =head1 NAME
4    
5     libev - a high performance full-featured event loop written in C
6    
7     =head1 SYNOPSIS
8    
9 root 1.164 #include <ev.h>
10 root 1.1
11 root 1.105 =head2 EXAMPLE PROGRAM
12 root 1.54
13 root 1.164 // a single header file is required
14     #include <ev.h>
15 root 1.54
16 root 1.217 #include <stdio.h> // for puts
17    
18 root 1.164 // every watcher type has its own typedef'd struct
19 root 1.200 // with the name ev_TYPE
20 root 1.164 ev_io stdin_watcher;
21     ev_timer timeout_watcher;
22    
23     // all watcher callbacks have a similar signature
24     // this callback is called when data is readable on stdin
25     static void
26 root 1.198 stdin_cb (EV_P_ ev_io *w, int revents)
27 root 1.164 {
28     puts ("stdin ready");
29     // for one-shot events, one must manually stop the watcher
30     // with its corresponding stop function.
31     ev_io_stop (EV_A_ w);
32    
33 root 1.310 // this causes all nested ev_run's to stop iterating
34     ev_break (EV_A_ EVBREAK_ALL);
35 root 1.164 }
36    
37     // another callback, this time for a time-out
38     static void
39 root 1.198 timeout_cb (EV_P_ ev_timer *w, int revents)
40 root 1.164 {
41     puts ("timeout");
42 root 1.310 // this causes the innermost ev_run to stop iterating
43     ev_break (EV_A_ EVBREAK_ONE);
44 root 1.164 }
45    
46     int
47     main (void)
48     {
49     // use the default event loop unless you have special needs
50 root 1.322 struct ev_loop *loop = EV_DEFAULT;
51 root 1.164
52     // initialise an io watcher, then start it
53     // this one will watch for stdin to become readable
54     ev_io_init (&stdin_watcher, stdin_cb, /*STDIN_FILENO*/ 0, EV_READ);
55     ev_io_start (loop, &stdin_watcher);
56    
57     // initialise a timer watcher, then start it
58     // simple non-repeating 5.5 second timeout
59     ev_timer_init (&timeout_watcher, timeout_cb, 5.5, 0.);
60     ev_timer_start (loop, &timeout_watcher);
61    
62     // now wait for events to arrive
63 root 1.310 ev_run (loop, 0);
64 root 1.164
65 root 1.362 // break was called, so exit
66 root 1.164 return 0;
67     }
68 root 1.53
69 root 1.236 =head1 ABOUT THIS DOCUMENT
70    
71     This document documents the libev software package.
72 root 1.1
73 root 1.135 The newest version of this document is also available as an html-formatted
74 root 1.69 web page you might find easier to navigate when reading it for the first
75 root 1.154 time: L<http://pod.tst.eu/http://cvs.schmorp.de/libev/ev.pod>.
76 root 1.69
77 root 1.236 While this document tries to be as complete as possible in documenting
78     libev, its usage and the rationale behind its design, it is not a tutorial
79     on event-based programming, nor will it introduce event-based programming
80     with libev.
81    
82 sf-exg 1.298 Familiarity with event based programming techniques in general is assumed
83 root 1.236 throughout this document.
84    
85 root 1.334 =head1 WHAT TO READ WHEN IN A HURRY
86    
87     This manual tries to be very detailed, but unfortunately, this also makes
88     it very long. If you just want to know the basics of libev, I suggest
89 root 1.414 reading L</ANATOMY OF A WATCHER>, then the L</EXAMPLE PROGRAM> above and
90 root 1.413 look up the missing functions in L</GLOBAL FUNCTIONS> and the C<ev_io> and
91     C<ev_timer> sections in L</WATCHER TYPES>.
92 root 1.334
93 root 1.236 =head1 ABOUT LIBEV
94    
95 root 1.1 Libev is an event loop: you register interest in certain events (such as a
96 root 1.92 file descriptor being readable or a timeout occurring), and it will manage
97 root 1.4 these event sources and provide your program with events.
98 root 1.1
99     To do this, it must take more or less complete control over your process
100     (or thread) by executing the I<event loop> handler, and will then
101     communicate events via a callback mechanism.
102    
103     You register interest in certain events by registering so-called I<event
104     watchers>, which are relatively small C structures you initialise with the
105     details of the event, and then hand it over to libev by I<starting> the
106     watcher.
107    
108 root 1.105 =head2 FEATURES
109 root 1.1
110 root 1.447 Libev supports C<select>, C<poll>, the Linux-specific aio and C<epoll>
111     interfaces, the BSD-specific C<kqueue> and the Solaris-specific event port
112     mechanisms for file descriptor events (C<ev_io>), the Linux C<inotify>
113     interface (for C<ev_stat>), Linux eventfd/signalfd (for faster and cleaner
114 root 1.261 inter-thread wakeup (C<ev_async>)/signal handling (C<ev_signal>)) relative
115     timers (C<ev_timer>), absolute timers with customised rescheduling
116     (C<ev_periodic>), synchronous signals (C<ev_signal>), process status
117     change events (C<ev_child>), and event watchers dealing with the event
118     loop mechanism itself (C<ev_idle>, C<ev_embed>, C<ev_prepare> and
119     C<ev_check> watchers) as well as file watchers (C<ev_stat>) and even
120     limited support for fork events (C<ev_fork>).
121 root 1.54
122     It also is quite fast (see this
123     L<benchmark|http://libev.schmorp.de/bench.html> comparing it to libevent
124     for example).
125 root 1.1
126 root 1.105 =head2 CONVENTIONS
127 root 1.1
128 root 1.135 Libev is very configurable. In this manual the default (and most common)
129     configuration will be described, which supports multiple event loops. For
130     more info about various configuration options please have a look at
131     B<EMBED> section in this manual. If libev was configured without support
132     for multiple event loops, then all functions taking an initial argument of
133 root 1.274 name C<loop> (which is always of type C<struct ev_loop *>) will not have
134 root 1.135 this argument.
135 root 1.1
136 root 1.105 =head2 TIME REPRESENTATION
137 root 1.1
138 root 1.237 Libev represents time as a single floating point number, representing
139 root 1.317 the (fractional) number of seconds since the (POSIX) epoch (in practice
140 root 1.293 somewhere near the beginning of 1970, details are complicated, don't
141     ask). This type is called C<ev_tstamp>, which is what you should use
142     too. It usually aliases to the C<double> type in C. When you need to do
143     any calculations on it, you should treat it as some floating point value.
144    
145     Unlike the name component C<stamp> might indicate, it is also used for
146     time differences (e.g. delays) throughout libev.
147 root 1.34
148 root 1.160 =head1 ERROR HANDLING
149    
150     Libev knows three classes of errors: operating system errors, usage errors
151     and internal errors (bugs).
152    
153     When libev catches an operating system error it cannot handle (for example
154 root 1.161 a system call indicating a condition libev cannot fix), it calls the callback
155 root 1.160 set via C<ev_set_syserr_cb>, which is supposed to fix the problem or
156     abort. The default is to print a diagnostic message and to call C<abort
157     ()>.
158    
159     When libev detects a usage error such as a negative timer interval, then
160     it will print a diagnostic message and abort (via the C<assert> mechanism,
161     so C<NDEBUG> will disable this checking): these are programming errors in
162     the libev caller and need to be fixed there.
163    
164 root 1.455 Via the C<EV_FREQUENT> macro you can compile in and/or enable extensive
165     consistency checking code inside libev that can be used to check for
166     internal inconsistencies, suually caused by application bugs.
167    
168     Libev also has a few internal error-checking C<assert>ions. These do not
169     trigger under normal circumstances, as they indicate either a bug in libev
170     or worse.
171 root 1.160
172    
173 root 1.17 =head1 GLOBAL FUNCTIONS
174    
175 root 1.18 These functions can be called anytime, even before initialising the
176     library in any way.
177    
178 root 1.1 =over 4
179    
180     =item ev_tstamp ev_time ()
181    
182 root 1.26 Returns the current time as libev would use it. Please note that the
183     C<ev_now> function is usually faster and also often returns the timestamp
184 sf-exg 1.321 you actually want to know. Also interesting is the combination of
185 sf-exg 1.384 C<ev_now_update> and C<ev_now>.
186 root 1.1
187 root 1.97 =item ev_sleep (ev_tstamp interval)
188    
189 root 1.371 Sleep for the given interval: The current thread will be blocked
190     until either it is interrupted or the given time interval has
191     passed (approximately - it might return a bit earlier even if not
192     interrupted). Returns immediately if C<< interval <= 0 >>.
193    
194     Basically this is a sub-second-resolution C<sleep ()>.
195    
196     The range of the C<interval> is limited - libev only guarantees to work
197     with sleep times of up to one day (C<< interval <= 86400 >>).
198 root 1.97
199 root 1.1 =item int ev_version_major ()
200    
201     =item int ev_version_minor ()
202    
203 root 1.80 You can find out the major and minor ABI version numbers of the library
204 root 1.1 you linked against by calling the functions C<ev_version_major> and
205     C<ev_version_minor>. If you want, you can compare against the global
206     symbols C<EV_VERSION_MAJOR> and C<EV_VERSION_MINOR>, which specify the
207     version of the library your program was compiled against.
208    
209 root 1.80 These version numbers refer to the ABI version of the library, not the
210     release version.
211 root 1.79
212 root 1.9 Usually, it's a good idea to terminate if the major versions mismatch,
213 root 1.79 as this indicates an incompatible change. Minor versions are usually
214 root 1.1 compatible to older versions, so a larger minor version alone is usually
215     not a problem.
216    
217 root 1.54 Example: Make sure we haven't accidentally been linked against the wrong
218 root 1.320 version (note, however, that this will not detect other ABI mismatches,
219     such as LFS or reentrancy).
220 root 1.34
221 root 1.164 assert (("libev version mismatch",
222     ev_version_major () == EV_VERSION_MAJOR
223     && ev_version_minor () >= EV_VERSION_MINOR));
224 root 1.34
225 root 1.31 =item unsigned int ev_supported_backends ()
226    
227     Return the set of all backends (i.e. their corresponding C<EV_BACKEND_*>
228     value) compiled into this binary of libev (independent of their
229     availability on the system you are running on). See C<ev_default_loop> for
230     a description of the set values.
231    
232 root 1.34 Example: make sure we have the epoll method, because yeah this is cool and
233     a must have and can we have a torrent of it please!!!11
234    
235 root 1.164 assert (("sorry, no epoll, no sex",
236     ev_supported_backends () & EVBACKEND_EPOLL));
237 root 1.34
238 root 1.31 =item unsigned int ev_recommended_backends ()
239    
240 root 1.318 Return the set of all backends compiled into this binary of libev and
241     also recommended for this platform, meaning it will work for most file
242     descriptor types. This set is often smaller than the one returned by
243     C<ev_supported_backends>, as for example kqueue is broken on most BSDs
244     and will not be auto-detected unless you explicitly request it (assuming
245     you know what you are doing). This is the set of backends that libev will
246     probe for if you specify no backends explicitly.
247 root 1.31
248 root 1.35 =item unsigned int ev_embeddable_backends ()
249    
250     Returns the set of backends that are embeddable in other event loops. This
251 root 1.319 value is platform-specific but can include backends not available on the
252     current system. To find which embeddable backends might be supported on
253     the current system, you would need to look at C<ev_embeddable_backends ()
254     & ev_supported_backends ()>, likewise for recommended ones.
255 root 1.35
256     See the description of C<ev_embed> watchers for more info.
257    
258 root 1.401 =item ev_set_allocator (void *(*cb)(void *ptr, long size) throw ())
259 root 1.1
260 root 1.59 Sets the allocation function to use (the prototype is similar - the
261 root 1.145 semantics are identical to the C<realloc> C89/SuS/POSIX function). It is
262     used to allocate and free memory (no surprises here). If it returns zero
263     when memory needs to be allocated (C<size != 0>), the library might abort
264     or take some potentially destructive action.
265    
266     Since some systems (at least OpenBSD and Darwin) fail to implement
267     correct C<realloc> semantics, libev will use a wrapper around the system
268     C<realloc> and C<free> functions by default.
269 root 1.1
270     You could override this function in high-availability programs to, say,
271     free some memory if it cannot allocate memory, to use a special allocator,
272     or even to sleep a while and retry until some memory is available.
273    
274 root 1.446 Example: The following is the C<realloc> function that libev itself uses
275     which should work with C<realloc> and C<free> functions of all kinds and
276     is probably a good basis for your own implementation.
277    
278     static void *
279     ev_realloc_emul (void *ptr, long size) EV_NOEXCEPT
280     {
281     if (size)
282     return realloc (ptr, size);
283    
284     free (ptr);
285     return 0;
286     }
287    
288 root 1.54 Example: Replace the libev allocator with one that waits a bit and then
289 root 1.446 retries.
290 root 1.34
291     static void *
292 root 1.52 persistent_realloc (void *ptr, size_t size)
293 root 1.34 {
294 root 1.446 if (!size)
295     {
296     free (ptr);
297     return 0;
298     }
299    
300 root 1.34 for (;;)
301     {
302     void *newptr = realloc (ptr, size);
303    
304     if (newptr)
305     return newptr;
306    
307     sleep (60);
308     }
309     }
310    
311     ...
312     ev_set_allocator (persistent_realloc);
313    
314 root 1.401 =item ev_set_syserr_cb (void (*cb)(const char *msg) throw ())
315 root 1.1
316 root 1.161 Set the callback function to call on a retryable system call error (such
317 root 1.1 as failed select, poll, epoll_wait). The message is a printable string
318     indicating the system call or subsystem causing the problem. If this
319 root 1.161 callback is set, then libev will expect it to remedy the situation, no
320 root 1.7 matter what, when it returns. That is, libev will generally retry the
321 root 1.1 requested operation, or, if the condition doesn't go away, do bad stuff
322     (such as abort).
323    
324 root 1.54 Example: This is basically the same thing that libev does internally, too.
325 root 1.34
326     static void
327     fatal_error (const char *msg)
328     {
329     perror (msg);
330     abort ();
331     }
332    
333     ...
334     ev_set_syserr_cb (fatal_error);
335    
336 root 1.349 =item ev_feed_signal (int signum)
337    
338     This function can be used to "simulate" a signal receive. It is completely
339     safe to call this function at any time, from any context, including signal
340     handlers or random threads.
341    
342 sf-exg 1.350 Its main use is to customise signal handling in your process, especially
343 root 1.349 in the presence of threads. For example, you could block signals
344     by default in all threads (and specifying C<EVFLAG_NOSIGMASK> when
345     creating any loops), and in one thread, use C<sigwait> or any other
346     mechanism to wait for signals, then "deliver" them to libev by calling
347     C<ev_feed_signal>.
348    
349 root 1.1 =back
350    
351 root 1.322 =head1 FUNCTIONS CONTROLLING EVENT LOOPS
352 root 1.1
353 root 1.310 An event loop is described by a C<struct ev_loop *> (the C<struct> is
354 root 1.311 I<not> optional in this case unless libev 3 compatibility is disabled, as
355     libev 3 had an C<ev_loop> function colliding with the struct name).
356 root 1.200
357     The library knows two types of such loops, the I<default> loop, which
358 root 1.331 supports child process events, and dynamically created event loops which
359     do not.
360 root 1.1
361     =over 4
362    
363     =item struct ev_loop *ev_default_loop (unsigned int flags)
364    
365 root 1.322 This returns the "default" event loop object, which is what you should
366     normally use when you just need "the event loop". Event loop objects and
367     the C<flags> parameter are described in more detail in the entry for
368     C<ev_loop_new>.
369    
370     If the default loop is already initialised then this function simply
371     returns it (and ignores the flags. If that is troubling you, check
372     C<ev_backend ()> afterwards). Otherwise it will create it with the given
373     flags, which should almost always be C<0>, unless the caller is also the
374     one calling C<ev_run> or otherwise qualifies as "the main program".
375 root 1.1
376     If you don't know what event loop to use, use the one returned from this
377 root 1.322 function (or via the C<EV_DEFAULT> macro).
378 root 1.1
379 root 1.139 Note that this function is I<not> thread-safe, so if you want to use it
380 root 1.322 from multiple threads, you have to employ some kind of mutex (note also
381     that this case is unlikely, as loops cannot be shared easily between
382     threads anyway).
383    
384     The default loop is the only loop that can handle C<ev_child> watchers,
385     and to do this, it always registers a handler for C<SIGCHLD>. If this is
386     a problem for your application you can either create a dynamic loop with
387     C<ev_loop_new> which doesn't do that, or you can simply overwrite the
388     C<SIGCHLD> signal handler I<after> calling C<ev_default_init>.
389 root 1.139
390 root 1.322 Example: This is the most typical usage.
391    
392     if (!ev_default_loop (0))
393     fatal ("could not initialise libev, bad $LIBEV_FLAGS in environment?");
394    
395     Example: Restrict libev to the select and poll backends, and do not allow
396     environment settings to be taken into account:
397    
398     ev_default_loop (EVBACKEND_POLL | EVBACKEND_SELECT | EVFLAG_NOENV);
399    
400     =item struct ev_loop *ev_loop_new (unsigned int flags)
401    
402     This will create and initialise a new event loop object. If the loop
403     could not be initialised, returns false.
404    
405 root 1.343 This function is thread-safe, and one common way to use libev with
406     threads is indeed to create one loop per thread, and using the default
407     loop in the "main" or "initial" thread.
408 root 1.118
409 root 1.1 The flags argument can be used to specify special behaviour or specific
410 root 1.33 backends to use, and is usually specified as C<0> (or C<EVFLAG_AUTO>).
411 root 1.1
412 root 1.33 The following flags are supported:
413 root 1.1
414     =over 4
415    
416 root 1.10 =item C<EVFLAG_AUTO>
417 root 1.1
418 root 1.9 The default flags value. Use this if you have no clue (it's the right
419 root 1.1 thing, believe me).
420    
421 root 1.10 =item C<EVFLAG_NOENV>
422 root 1.1
423 root 1.161 If this flag bit is or'ed into the flag value (or the program runs setuid
424 root 1.8 or setgid) then libev will I<not> look at the environment variable
425     C<LIBEV_FLAGS>. Otherwise (the default), this environment variable will
426     override the flags completely if it is found in the environment. This is
427 root 1.427 useful to try out specific backends to test their performance, to work
428     around bugs, or to make libev threadsafe (accessing environment variables
429     cannot be done in a threadsafe way, but usually it works if no other
430     thread modifies them).
431 root 1.1
432 root 1.62 =item C<EVFLAG_FORKCHECK>
433    
434 root 1.291 Instead of calling C<ev_loop_fork> manually after a fork, you can also
435     make libev check for a fork in each iteration by enabling this flag.
436 root 1.62
437     This works by calling C<getpid ()> on every iteration of the loop,
438     and thus this might slow down your event loop if you do a lot of loop
439 ayin 1.65 iterations and little real work, but is usually not noticeable (on my
440 root 1.441 GNU/Linux system for example, C<getpid> is actually a simple 5-insn
441     sequence without a system call and thus I<very> fast, but my GNU/Linux
442     system also has C<pthread_atfork> which is even faster). (Update: glibc
443     versions 2.25 apparently removed the C<getpid> optimisation again).
444 root 1.62
445     The big advantage of this flag is that you can forget about fork (and
446 root 1.436 forget about forgetting to tell libev about forking, although you still
447     have to ignore C<SIGPIPE>) when you use this flag.
448 root 1.62
449 root 1.161 This flag setting cannot be overridden or specified in the C<LIBEV_FLAGS>
450 root 1.62 environment variable.
451    
452 root 1.260 =item C<EVFLAG_NOINOTIFY>
453    
454     When this flag is specified, then libev will not attempt to use the
455 root 1.340 I<inotify> API for its C<ev_stat> watchers. Apart from debugging and
456 root 1.260 testing, this flag can be useful to conserve inotify file descriptors, as
457     otherwise each loop using C<ev_stat> watchers consumes one inotify handle.
458    
459 root 1.277 =item C<EVFLAG_SIGNALFD>
460 root 1.260
461 root 1.277 When this flag is specified, then libev will attempt to use the
462 root 1.340 I<signalfd> API for its C<ev_signal> (and C<ev_child>) watchers. This API
463 root 1.278 delivers signals synchronously, which makes it both faster and might make
464     it possible to get the queued signal data. It can also simplify signal
465     handling with threads, as long as you properly block signals in your
466     threads that are not interested in handling them.
467 root 1.277
468     Signalfd will not be used by default as this changes your signal mask, and
469     there are a lot of shoddy libraries and programs (glib's threadpool for
470     example) that can't properly initialise their signal masks.
471 root 1.260
472 root 1.349 =item C<EVFLAG_NOSIGMASK>
473    
474     When this flag is specified, then libev will avoid to modify the signal
475 sf-exg 1.374 mask. Specifically, this means you have to make sure signals are unblocked
476 root 1.349 when you want to receive them.
477    
478     This behaviour is useful when you want to do your own signal handling, or
479     want to handle signals only in specific threads and want to avoid libev
480     unblocking the signals.
481    
482 root 1.360 It's also required by POSIX in a threaded program, as libev calls
483     C<sigprocmask>, whose behaviour is officially unspecified.
484    
485 root 1.458 =item C<EVFLAG_NOTIMERFD>
486    
487     When this flag is specified, the libev will avoid using a C<timerfd> to
488     detect time jumps. It will still be able to detect time jumps, but takes
489     longer and has a lower accuracy in doing so, but saves a file descriptor
490     per loop.
491    
492     The current implementation only tries to use a C<timerfd> when the first
493     C<ev_periodic> watcher is started and falls back on other methods if it
494     cannot be created, but this behaviour might change in the future.
495 root 1.349
496 root 1.31 =item C<EVBACKEND_SELECT> (value 1, portable select backend)
497 root 1.1
498 root 1.29 This is your standard select(2) backend. Not I<completely> standard, as
499     libev tries to roll its own fd_set with no limits on the number of fds,
500     but if that fails, expect a fairly low limit on the number of fds when
501 root 1.102 using this backend. It doesn't scale too well (O(highest_fd)), but its
502     usually the fastest backend for a low number of (low-numbered :) fds.
503    
504     To get good performance out of this backend you need a high amount of
505 root 1.161 parallelism (most of the file descriptors should be busy). If you are
506 root 1.102 writing a server, you should C<accept ()> in a loop to accept as many
507     connections as possible during one iteration. You might also want to have
508     a look at C<ev_set_io_collect_interval ()> to increase the amount of
509 root 1.155 readiness notifications you get per iteration.
510 root 1.1
511 root 1.179 This backend maps C<EV_READ> to the C<readfds> set and C<EV_WRITE> to the
512     C<writefds> set (and to work around Microsoft Windows bugs, also onto the
513     C<exceptfds> set on that platform).
514    
515 root 1.31 =item C<EVBACKEND_POLL> (value 2, poll backend, available everywhere except on windows)
516 root 1.1
517 root 1.102 And this is your standard poll(2) backend. It's more complicated
518     than select, but handles sparse fds better and has no artificial
519     limit on the number of fds you can use (except it will slow down
520     considerably with a lot of inactive fds). It scales similarly to select,
521     i.e. O(total_fds). See the entry for C<EVBACKEND_SELECT>, above, for
522     performance tips.
523 root 1.1
524 root 1.179 This backend maps C<EV_READ> to C<POLLIN | POLLERR | POLLHUP>, and
525     C<EV_WRITE> to C<POLLOUT | POLLERR | POLLHUP>.
526    
527 root 1.31 =item C<EVBACKEND_EPOLL> (value 4, Linux)
528 root 1.1
529 root 1.454 Use the Linux-specific epoll(7) interface (for both pre- and post-2.6.9
530 root 1.272 kernels).
531    
532 root 1.368 For few fds, this backend is a bit little slower than poll and select, but
533     it scales phenomenally better. While poll and select usually scale like
534     O(total_fds) where total_fds is the total number of fds (or the highest
535     fd), epoll scales either O(1) or O(active_fds).
536 root 1.205
537 root 1.210 The epoll mechanism deserves honorable mention as the most misdesigned
538     of the more advanced event mechanisms: mere annoyances include silently
539     dropping file descriptors, requiring a system call per change per file
540 root 1.337 descriptor (and unnecessary guessing of parameters), problems with dup,
541 root 1.338 returning before the timeout value, resulting in additional iterations
542     (and only giving 5ms accuracy while select on the same platform gives
543     0.1ms) and so on. The biggest issue is fork races, however - if a program
544     forks then I<both> parent and child process have to recreate the epoll
545     set, which can take considerable time (one syscall per file descriptor)
546     and is of course hard to detect.
547 root 1.1
548 root 1.370 Epoll is also notoriously buggy - embedding epoll fds I<should> work,
549     but of course I<doesn't>, and epoll just loves to report events for
550     totally I<different> file descriptors (even already closed ones, so
551     one cannot even remove them from the set) than registered in the set
552     (especially on SMP systems). Libev tries to counter these spurious
553     notifications by employing an additional generation counter and comparing
554     that against the events to filter out spurious ones, recreating the set
555 sf-exg 1.374 when required. Epoll also erroneously rounds down timeouts, but gives you
556 root 1.370 no way to know when and by how much, so sometimes you have to busy-wait
557     because epoll returns immediately despite a nonzero timeout. And last
558 root 1.306 not least, it also refuses to work with some file descriptors which work
559     perfectly fine with C<select> (files, many character devices...).
560 root 1.204
561 root 1.370 Epoll is truly the train wreck among event poll mechanisms, a frankenpoll,
562     cobbled together in a hurry, no thought to design or interaction with
563     others. Oh, the pain, will it ever stop...
564 root 1.338
565 root 1.94 While stopping, setting and starting an I/O watcher in the same iteration
566 root 1.210 will result in some caching, there is still a system call per such
567     incident (because the same I<file descriptor> could point to a different
568     I<file description> now), so its best to avoid that. Also, C<dup ()>'ed
569     file descriptors might not work very well if you register events for both
570     file descriptors.
571 root 1.29
572 root 1.102 Best performance from this backend is achieved by not unregistering all
573 root 1.183 watchers for a file descriptor until it has been closed, if possible,
574     i.e. keep at least one watcher active per fd at all times. Stopping and
575     starting a watcher (without re-setting it) also usually doesn't cause
576 root 1.206 extra overhead. A fork can both result in spurious notifications as well
577     as in libev having to destroy and recreate the epoll object, which can
578     take considerable time and thus should be avoided.
579 root 1.102
580 root 1.215 All this means that, in practice, C<EVBACKEND_SELECT> can be as fast or
581     faster than epoll for maybe up to a hundred file descriptors, depending on
582 root 1.214 the usage. So sad.
583 root 1.213
584 root 1.161 While nominally embeddable in other event loops, this feature is broken in
585 root 1.447 a lot of kernel revisions, but probably(!) works in current versions.
586    
587     This backend maps C<EV_READ> and C<EV_WRITE> in the same way as
588     C<EVBACKEND_POLL>.
589    
590 root 1.470 =item C<EVBACKEND_IOURING> (value 128, linux)
591    
592     Use the linux-specific io_uring backend. It offers an enourmous amount
593     of features other than just I/O events, but suffers from an extreme
594     feature-first, correctness-later approach, and is slower than epoll, so
595     it is not used by default.
596    
597     If your application forks frequently, then this backend might be faster,
598     as setting it up again after a fork is far more efficient with this
599     backend, and it also doesn't suffer from the epoll design flaw of
600     receiving events for closed file descriptors.
601    
602 root 1.447 =item C<EVBACKEND_LINUXAIO> (value 64, Linux)
603    
604 root 1.454 Use the Linux-specific Linux AIO (I<not> C<< aio(7) >> but C<<
605 root 1.452 io_submit(2) >>) event interface available in post-4.18 kernels (but libev
606     only tries to use it in 4.19+).
607    
608 root 1.454 This is another Linux train wreck of an event interface.
609 root 1.447
610     If this backend works for you (as of this writing, it was very
611 root 1.454 experimental), it is the best event interface available on Linux and might
612 root 1.448 be well worth enabling it - if it isn't available in your kernel this will
613     be detected and this backend will be skipped.
614    
615     This backend can batch oneshot requests and supports a user-space ring
616     buffer to receive events. It also doesn't suffer from most of the design
617 root 1.452 problems of epoll (such as not being able to remove event sources from
618     the epoll set), and generally sounds too good to be true. Because, this
619 root 1.454 being the Linux kernel, of course it suffers from a whole new set of
620 root 1.452 limitations, forcing you to fall back to epoll, inheriting all its design
621     issues.
622 root 1.447
623     For one, it is not easily embeddable (but probably could be done using
624 root 1.448 an event fd at some extra overhead). It also is subject to a system wide
625 root 1.454 limit that can be configured in F</proc/sys/fs/aio-max-nr>. If no AIO
626 root 1.452 requests are left, this backend will be skipped during initialisation, and
627     will switch to epoll when the loop is active.
628 root 1.448
629 root 1.452 Most problematic in practice, however, is that not all file descriptors
630 root 1.454 work with it. For example, in Linux 5.1, TCP sockets, pipes, event fds,
631     files, F</dev/null> and many others are supported, but ttys do not work
632 root 1.450 properly (a known bug that the kernel developers don't care about, see
633     L<https://lore.kernel.org/patchwork/patch/1047453/>), so this is not
634     (yet?) a generic event polling interface.
635 root 1.448
636 root 1.454 Overall, it seems the Linux developers just don't want it to have a
637 root 1.451 generic event handling mechanism other than C<select> or C<poll>.
638    
639 root 1.452 To work around all these problem, the current version of libev uses its
640     epoll backend as a fallback for file descriptor types that do not work. Or
641     falls back completely to epoll if the kernel acts up.
642 root 1.102
643 root 1.179 This backend maps C<EV_READ> and C<EV_WRITE> in the same way as
644     C<EVBACKEND_POLL>.
645    
646 root 1.31 =item C<EVBACKEND_KQUEUE> (value 8, most BSD clones)
647 root 1.29
648 root 1.453 Kqueue deserves special mention, as at the time this backend was
649     implemented, it was broken on all BSDs except NetBSD (usually it doesn't
650     work reliably with anything but sockets and pipes, except on Darwin,
651     where of course it's completely useless). Unlike epoll, however, whose
652     brokenness is by design, these kqueue bugs can be (and mostly have been)
653     fixed without API changes to existing programs. For this reason it's not
654     being "auto-detected" on all platforms unless you explicitly specify it
655     in the flags (i.e. using C<EVBACKEND_KQUEUE>) or libev was compiled on a
656     known-to-be-good (-enough) system like NetBSD.
657 root 1.29
658 root 1.100 You still can embed kqueue into a normal poll or select backend and use it
659     only for sockets (after having made sure that sockets work with kqueue on
660     the target platform). See C<ev_embed> watchers for more info.
661    
662 root 1.29 It scales in the same way as the epoll backend, but the interface to the
663 root 1.100 kernel is more efficient (which says nothing about its actual speed, of
664     course). While stopping, setting and starting an I/O watcher does never
665 root 1.161 cause an extra system call as with C<EVBACKEND_EPOLL>, it still adds up to
666 root 1.398 two event changes per incident. Support for C<fork ()> is very bad (you
667 root 1.454 might have to leak fds on fork, but it's more sane than epoll) and it
668 root 1.422 drops fds silently in similarly hard-to-detect cases.
669 root 1.29
670 root 1.102 This backend usually performs well under most conditions.
671    
672     While nominally embeddable in other event loops, this doesn't work
673     everywhere, so you might need to test for this. And since it is broken
674     almost everywhere, you should only use it when you have a lot of sockets
675     (for which it usually works), by embedding it into another event loop
676 root 1.223 (e.g. C<EVBACKEND_SELECT> or C<EVBACKEND_POLL> (but C<poll> is of course
677     also broken on OS X)) and, did I mention it, using it only for sockets.
678 root 1.102
679 root 1.179 This backend maps C<EV_READ> into an C<EVFILT_READ> kevent with
680     C<NOTE_EOF>, and C<EV_WRITE> into an C<EVFILT_WRITE> kevent with
681     C<NOTE_EOF>.
682    
683 root 1.31 =item C<EVBACKEND_DEVPOLL> (value 16, Solaris 8)
684 root 1.29
685 root 1.102 This is not implemented yet (and might never be, unless you send me an
686     implementation). According to reports, C</dev/poll> only supports sockets
687     and is not embeddable, which would limit the usefulness of this backend
688     immensely.
689 root 1.29
690 root 1.31 =item C<EVBACKEND_PORT> (value 32, Solaris 10)
691 root 1.29
692 root 1.469 This uses the Solaris 10 event port mechanism. As with everything on
693     Solaris, it's really slow, but it still scales very well (O(active_fds)).
694 root 1.29
695 root 1.102 While this backend scales well, it requires one system call per active
696     file descriptor per loop iteration. For small and medium numbers of file
697     descriptors a "slow" C<EVBACKEND_SELECT> or C<EVBACKEND_POLL> backend
698     might perform better.
699    
700 root 1.351 On the positive side, this backend actually performed fully to
701     specification in all tests and is fully embeddable, which is a rare feat
702     among the OS-specific backends (I vastly prefer correctness over speed
703     hacks).
704    
705 root 1.352 On the negative side, the interface is I<bizarre> - so bizarre that
706     even sun itself gets it wrong in their code examples: The event polling
707 root 1.375 function sometimes returns events to the caller even though an error
708 root 1.353 occurred, but with no indication whether it has done so or not (yes, it's
709 root 1.375 even documented that way) - deadly for edge-triggered interfaces where you
710     absolutely have to know whether an event occurred or not because you have
711     to re-arm the watcher.
712 root 1.352
713     Fortunately libev seems to be able to work around these idiocies.
714 root 1.117
715 root 1.179 This backend maps C<EV_READ> and C<EV_WRITE> in the same way as
716     C<EVBACKEND_POLL>.
717    
718 root 1.31 =item C<EVBACKEND_ALL>
719 root 1.29
720     Try all backends (even potentially broken ones that wouldn't be tried
721     with C<EVFLAG_AUTO>). Since this is a mask, you can do stuff such as
722 root 1.31 C<EVBACKEND_ALL & ~EVBACKEND_KQUEUE>.
723 root 1.1
724 root 1.349 It is definitely not recommended to use this flag, use whatever
725     C<ev_recommended_backends ()> returns, or simply do not specify a backend
726     at all.
727    
728     =item C<EVBACKEND_MASK>
729    
730     Not a backend at all, but a mask to select all backend bits from a
731     C<flags> value, in case you want to mask out any backends from a flags
732     value (e.g. when modifying the C<LIBEV_FLAGS> environment variable).
733 root 1.102
734 root 1.1 =back
735    
736 root 1.260 If one or more of the backend flags are or'ed into the flags value,
737     then only these backends will be tried (in the reverse order as listed
738     here). If none are specified, all backends in C<ev_recommended_backends
739     ()> will be tried.
740 root 1.29
741 root 1.54 Example: Try to create a event loop that uses epoll and nothing else.
742 root 1.34
743 root 1.164 struct ev_loop *epoller = ev_loop_new (EVBACKEND_EPOLL | EVFLAG_NOENV);
744     if (!epoller)
745     fatal ("no epoll found here, maybe it hides under your chair");
746 root 1.34
747 root 1.323 Example: Use whatever libev has to offer, but make sure that kqueue is
748     used if available.
749    
750     struct ev_loop *loop = ev_loop_new (ev_recommended_backends () | EVBACKEND_KQUEUE);
751    
752 root 1.447 Example: Similarly, on linux, you mgiht want to take advantage of the
753     linux aio backend if possible, but fall back to something else if that
754     isn't available.
755    
756     struct ev_loop *loop = ev_loop_new (ev_recommended_backends () | EVBACKEND_LINUXAIO);
757    
758 root 1.322 =item ev_loop_destroy (loop)
759 root 1.1
760 root 1.322 Destroys an event loop object (frees all memory and kernel state
761     etc.). None of the active event watchers will be stopped in the normal
762     sense, so e.g. C<ev_is_active> might still return true. It is your
763     responsibility to either stop all watchers cleanly yourself I<before>
764     calling this function, or cope with the fact afterwards (which is usually
765     the easiest thing, you can just ignore the watchers and/or C<free ()> them
766     for example).
767 root 1.1
768 root 1.203 Note that certain global state, such as signal state (and installed signal
769     handlers), will not be freed by this function, and related watchers (such
770     as signal and child watchers) would need to be stopped manually.
771 root 1.87
772 root 1.322 This function is normally used on loop objects allocated by
773     C<ev_loop_new>, but it can also be used on the default loop returned by
774     C<ev_default_loop>, in which case it is not thread-safe.
775    
776     Note that it is not advisable to call this function on the default loop
777 root 1.340 except in the rare occasion where you really need to free its resources.
778 root 1.322 If you need dynamically allocated loops it is better to use C<ev_loop_new>
779     and C<ev_loop_destroy>.
780 root 1.87
781 root 1.322 =item ev_loop_fork (loop)
782 root 1.1
783 root 1.433 This function sets a flag that causes subsequent C<ev_run> iterations
784     to reinitialise the kernel state for backends that have one. Despite
785     the name, you can call it anytime you are allowed to start or stop
786     watchers (except inside an C<ev_prepare> callback), but it makes most
787     sense after forking, in the child process. You I<must> call it (or use
788     C<EVFLAG_FORKCHECK>) in the child before resuming or calling C<ev_run>.
789 root 1.119
790 root 1.437 In addition, if you want to reuse a loop (via this function or
791 root 1.436 C<EVFLAG_FORKCHECK>), you I<also> have to ignore C<SIGPIPE>.
792    
793 root 1.429 Again, you I<have> to call it on I<any> loop that you want to re-use after
794 root 1.291 a fork, I<even if you do not plan to use the loop in the parent>. This is
795     because some kernel interfaces *cough* I<kqueue> *cough* do funny things
796     during fork.
797    
798 root 1.119 On the other hand, you only need to call this function in the child
799 root 1.310 process if and only if you want to use the event loop in the child. If
800     you just fork+exec or create a new loop in the child, you don't have to
801     call it at all (in fact, C<epoll> is so badly broken that it makes a
802     difference, but libev will usually detect this case on its own and do a
803     costly reset of the backend).
804 root 1.1
805 root 1.9 The function itself is quite fast and it's usually not a problem to call
806 root 1.322 it just in case after a fork.
807 root 1.1
808 root 1.322 Example: Automate calling C<ev_loop_fork> on the default loop when
809     using pthreads.
810 root 1.1
811 root 1.322 static void
812     post_fork_child (void)
813     {
814     ev_loop_fork (EV_DEFAULT);
815     }
816 root 1.1
817 root 1.322 ...
818     pthread_atfork (0, 0, post_fork_child);
819 root 1.1
820 root 1.131 =item int ev_is_default_loop (loop)
821    
822 root 1.183 Returns true when the given loop is, in fact, the default loop, and false
823     otherwise.
824 root 1.131
825 root 1.291 =item unsigned int ev_iteration (loop)
826 root 1.66
827 root 1.310 Returns the current iteration count for the event loop, which is identical
828     to the number of times libev did poll for new events. It starts at C<0>
829     and happily wraps around with enough iterations.
830 root 1.66
831     This value can sometimes be useful as a generation counter of sorts (it
832     "ticks" the number of loop iterations), as it roughly corresponds with
833 root 1.291 C<ev_prepare> and C<ev_check> calls - and is incremented between the
834     prepare and check phases.
835 root 1.66
836 root 1.291 =item unsigned int ev_depth (loop)
837 root 1.247
838 root 1.310 Returns the number of times C<ev_run> was entered minus the number of
839 root 1.343 times C<ev_run> was exited normally, in other words, the recursion depth.
840 root 1.247
841 root 1.310 Outside C<ev_run>, this number is zero. In a callback, this number is
842     C<1>, unless C<ev_run> was invoked recursively (or from another thread),
843 root 1.247 in which case it is higher.
844    
845 root 1.343 Leaving C<ev_run> abnormally (setjmp/longjmp, cancelling the thread,
846     throwing an exception etc.), doesn't count as "exit" - consider this
847     as a hint to avoid such ungentleman-like behaviour unless it's really
848     convenient, in which case it is fully supported.
849 root 1.247
850 root 1.31 =item unsigned int ev_backend (loop)
851 root 1.1
852 root 1.31 Returns one of the C<EVBACKEND_*> flags indicating the event backend in
853 root 1.1 use.
854    
855 root 1.9 =item ev_tstamp ev_now (loop)
856 root 1.1
857     Returns the current "event loop time", which is the time the event loop
858 root 1.34 received events and started processing them. This timestamp does not
859     change as long as callbacks are being processed, and this is also the base
860     time used for relative timers. You can treat it as the timestamp of the
861 root 1.92 event occurring (or more correctly, libev finding out about it).
862 root 1.1
863 root 1.176 =item ev_now_update (loop)
864    
865     Establishes the current time by querying the kernel, updating the time
866     returned by C<ev_now ()> in the progress. This is a costly operation and
867 root 1.310 is usually done automatically within C<ev_run ()>.
868 root 1.176
869     This function is rarely useful, but when some event callback runs for a
870     very long time without entering the event loop, updating libev's idea of
871     the current time is a good idea.
872    
873 root 1.413 See also L</The special problem of time updates> in the C<ev_timer> section.
874 root 1.176
875 root 1.231 =item ev_suspend (loop)
876    
877     =item ev_resume (loop)
878    
879 root 1.310 These two functions suspend and resume an event loop, for use when the
880     loop is not used for a while and timeouts should not be processed.
881 root 1.231
882     A typical use case would be an interactive program such as a game: When
883     the user presses C<^Z> to suspend the game and resumes it an hour later it
884     would be best to handle timeouts as if no time had actually passed while
885     the program was suspended. This can be achieved by calling C<ev_suspend>
886     in your C<SIGTSTP> handler, sending yourself a C<SIGSTOP> and calling
887     C<ev_resume> directly afterwards to resume timer processing.
888    
889     Effectively, all C<ev_timer> watchers will be delayed by the time spend
890     between C<ev_suspend> and C<ev_resume>, and all C<ev_periodic> watchers
891     will be rescheduled (that is, they will lose any events that would have
892 sf-exg 1.298 occurred while suspended).
893 root 1.231
894     After calling C<ev_suspend> you B<must not> call I<any> function on the
895     given loop other than C<ev_resume>, and you B<must not> call C<ev_resume>
896     without a previous call to C<ev_suspend>.
897    
898     Calling C<ev_suspend>/C<ev_resume> has the side effect of updating the
899     event loop time (see C<ev_now_update>).
900    
901 root 1.399 =item bool ev_run (loop, int flags)
902 root 1.1
903     Finally, this is it, the event handler. This function usually is called
904 root 1.268 after you have initialised all your watchers and you want to start
905 root 1.310 handling events. It will ask the operating system for any new events, call
906 root 1.399 the watcher callbacks, and then repeat the whole process indefinitely: This
907 root 1.310 is why event loops are called I<loops>.
908 root 1.1
909 root 1.310 If the flags argument is specified as C<0>, it will keep handling events
910     until either no event watchers are active anymore or C<ev_break> was
911     called.
912 root 1.1
913 root 1.399 The return value is false if there are no more active watchers (which
914     usually means "all jobs done" or "deadlock"), and true in all other cases
915     (which usually means " you should call C<ev_run> again").
916    
917 root 1.310 Please note that an explicit C<ev_break> is usually better than
918 root 1.34 relying on all watchers to be stopped when deciding when a program has
919 root 1.183 finished (especially in interactive programs), but having a program
920     that automatically loops as long as it has to and no longer by virtue
921     of relying on its watchers stopping correctly, that is truly a thing of
922     beauty.
923 root 1.34
924 root 1.399 This function is I<mostly> exception-safe - you can break out of a
925     C<ev_run> call by calling C<longjmp> in a callback, throwing a C++
926 root 1.343 exception and so on. This does not decrement the C<ev_depth> value, nor
927     will it clear any outstanding C<EVBREAK_ONE> breaks.
928    
929 root 1.310 A flags value of C<EVRUN_NOWAIT> will look for new events, will handle
930     those events and any already outstanding ones, but will not wait and
931     block your process in case there are no events and will return after one
932     iteration of the loop. This is sometimes useful to poll and handle new
933     events while doing lengthy calculations, to keep the program responsive.
934 root 1.1
935 root 1.310 A flags value of C<EVRUN_ONCE> will look for new events (waiting if
936 root 1.183 necessary) and will handle those and any already outstanding ones. It
937     will block your process until at least one new event arrives (which could
938 root 1.208 be an event internal to libev itself, so there is no guarantee that a
939 root 1.183 user-registered callback will be called), and will return after one
940     iteration of the loop.
941    
942     This is useful if you are waiting for some external event in conjunction
943     with something not expressible using other libev watchers (i.e. "roll your
944 root 1.310 own C<ev_run>"). However, a pair of C<ev_prepare>/C<ev_check> watchers is
945 root 1.33 usually a better approach for this kind of thing.
946    
947 root 1.369 Here are the gory details of what C<ev_run> does (this is for your
948     understanding, not a guarantee that things will work exactly like this in
949     future versions):
950 root 1.33
951 root 1.310 - Increment loop depth.
952     - Reset the ev_break status.
953 root 1.77 - Before the first iteration, call any pending watchers.
954 root 1.310 LOOP:
955     - If EVFLAG_FORKCHECK was used, check for a fork.
956 root 1.171 - If a fork was detected (by any means), queue and call all fork watchers.
957 root 1.113 - Queue and call all prepare watchers.
958 root 1.310 - If ev_break was called, goto FINISH.
959 root 1.171 - If we have been forked, detach and recreate the kernel state
960     as to not disturb the other process.
961 root 1.33 - Update the kernel state with all outstanding changes.
962 root 1.171 - Update the "event loop time" (ev_now ()).
963 root 1.113 - Calculate for how long to sleep or block, if at all
964 root 1.310 (active idle watchers, EVRUN_NOWAIT or not having
965 root 1.113 any active watchers at all will result in not sleeping).
966     - Sleep if the I/O and timer collect interval say so.
967 root 1.310 - Increment loop iteration counter.
968 root 1.33 - Block the process, waiting for any events.
969     - Queue all outstanding I/O (fd) events.
970 root 1.171 - Update the "event loop time" (ev_now ()), and do time jump adjustments.
971 root 1.183 - Queue all expired timers.
972     - Queue all expired periodics.
973 root 1.310 - Queue all idle watchers with priority higher than that of pending events.
974 root 1.33 - Queue all check watchers.
975     - Call all queued watchers in reverse order (i.e. check watchers first).
976 root 1.467 Signals, async and child watchers are implemented as I/O watchers, and
977     will be handled here by queueing them when their watcher gets executed.
978 root 1.310 - If ev_break has been called, or EVRUN_ONCE or EVRUN_NOWAIT
979     were used, or there are no active watchers, goto FINISH, otherwise
980     continue with step LOOP.
981     FINISH:
982     - Reset the ev_break status iff it was EVBREAK_ONE.
983     - Decrement the loop depth.
984     - Return.
985 root 1.27
986 root 1.114 Example: Queue some jobs and then loop until no events are outstanding
987 root 1.34 anymore.
988    
989     ... queue jobs here, make sure they register event watchers as long
990     ... as they still have work to do (even an idle watcher will do..)
991 root 1.310 ev_run (my_loop, 0);
992 root 1.362 ... jobs done or somebody called break. yeah!
993 root 1.34
994 root 1.310 =item ev_break (loop, how)
995 root 1.1
996 root 1.310 Can be used to make a call to C<ev_run> return early (but only after it
997 root 1.9 has processed all outstanding events). The C<how> argument must be either
998 root 1.310 C<EVBREAK_ONE>, which will make the innermost C<ev_run> call return, or
999     C<EVBREAK_ALL>, which will make all nested C<ev_run> calls return.
1000 root 1.1
1001 root 1.343 This "break state" will be cleared on the next call to C<ev_run>.
1002 root 1.115
1003 root 1.343 It is safe to call C<ev_break> from outside any C<ev_run> calls, too, in
1004     which case it will have no effect.
1005 root 1.194
1006 root 1.1 =item ev_ref (loop)
1007    
1008     =item ev_unref (loop)
1009    
1010 root 1.9 Ref/unref can be used to add or remove a reference count on the event
1011     loop: Every watcher keeps one reference, and as long as the reference
1012 root 1.310 count is nonzero, C<ev_run> will not return on its own.
1013 root 1.183
1014 root 1.276 This is useful when you have a watcher that you never intend to
1015 root 1.310 unregister, but that nevertheless should not keep C<ev_run> from
1016 root 1.276 returning. In such a case, call C<ev_unref> after starting, and C<ev_ref>
1017     before stopping it.
1018 root 1.183
1019 root 1.229 As an example, libev itself uses this for its internal signal pipe: It
1020 root 1.310 is not visible to the libev user and should not keep C<ev_run> from
1021 root 1.229 exiting if no event watchers registered by it are active. It is also an
1022     excellent way to do this for generic recurring timers or from within
1023     third-party libraries. Just remember to I<unref after start> and I<ref
1024     before stop> (but only if the watcher wasn't active before, or was active
1025     before, respectively. Note also that libev might stop watchers itself
1026     (e.g. non-repeating timers) in which case you have to C<ev_ref>
1027     in the callback).
1028 root 1.1
1029 root 1.310 Example: Create a signal watcher, but keep it from keeping C<ev_run>
1030 root 1.34 running when nothing else is active.
1031    
1032 root 1.198 ev_signal exitsig;
1033 root 1.164 ev_signal_init (&exitsig, sig_cb, SIGINT);
1034     ev_signal_start (loop, &exitsig);
1035 sf-exg 1.348 ev_unref (loop);
1036 root 1.34
1037 root 1.54 Example: For some weird reason, unregister the above signal handler again.
1038 root 1.34
1039 root 1.164 ev_ref (loop);
1040     ev_signal_stop (loop, &exitsig);
1041 root 1.34
1042 root 1.97 =item ev_set_io_collect_interval (loop, ev_tstamp interval)
1043    
1044     =item ev_set_timeout_collect_interval (loop, ev_tstamp interval)
1045    
1046     These advanced functions influence the time that libev will spend waiting
1047 root 1.171 for events. Both time intervals are by default C<0>, meaning that libev
1048     will try to invoke timer/periodic callbacks and I/O callbacks with minimum
1049     latency.
1050 root 1.97
1051     Setting these to a higher value (the C<interval> I<must> be >= C<0>)
1052 root 1.171 allows libev to delay invocation of I/O and timer/periodic callbacks
1053     to increase efficiency of loop iterations (or to increase power-saving
1054     opportunities).
1055 root 1.97
1056 root 1.183 The idea is that sometimes your program runs just fast enough to handle
1057     one (or very few) event(s) per loop iteration. While this makes the
1058     program responsive, it also wastes a lot of CPU time to poll for new
1059 root 1.97 events, especially with backends like C<select ()> which have a high
1060     overhead for the actual polling but can deliver many events at once.
1061    
1062     By setting a higher I<io collect interval> you allow libev to spend more
1063     time collecting I/O events, so you can handle more events per iteration,
1064     at the cost of increasing latency. Timeouts (both C<ev_periodic> and
1065 root 1.372 C<ev_timer>) will not be affected. Setting this to a non-null value will
1066 root 1.245 introduce an additional C<ev_sleep ()> call into most loop iterations. The
1067     sleep time ensures that libev will not poll for I/O events more often then
1068 root 1.373 once per this interval, on average (as long as the host time resolution is
1069     good enough).
1070 root 1.97
1071     Likewise, by setting a higher I<timeout collect interval> you allow libev
1072     to spend more time collecting timeouts, at the expense of increased
1073 root 1.183 latency/jitter/inexactness (the watcher callback will be called
1074     later). C<ev_io> watchers will not be affected. Setting this to a non-null
1075     value will not introduce any overhead in libev.
1076 root 1.97
1077 root 1.161 Many (busy) programs can usually benefit by setting the I/O collect
1078 root 1.98 interval to a value near C<0.1> or so, which is often enough for
1079     interactive servers (of course not for games), likewise for timeouts. It
1080     usually doesn't make much sense to set it to a lower value than C<0.01>,
1081 root 1.245 as this approaches the timing granularity of most systems. Note that if
1082     you do transactions with the outside world and you can't increase the
1083     parallelity, then this setting will limit your transaction rate (if you
1084     need to poll once per transaction and the I/O collect interval is 0.01,
1085 sf-exg 1.298 then you can't do more than 100 transactions per second).
1086 root 1.97
1087 root 1.171 Setting the I<timeout collect interval> can improve the opportunity for
1088     saving power, as the program will "bundle" timer callback invocations that
1089     are "near" in time together, by delaying some, thus reducing the number of
1090     times the process sleeps and wakes up again. Another useful technique to
1091     reduce iterations/wake-ups is to use C<ev_periodic> watchers and make sure
1092     they fire on, say, one-second boundaries only.
1093    
1094 root 1.245 Example: we only need 0.1s timeout granularity, and we wish not to poll
1095     more often than 100 times per second:
1096    
1097     ev_set_timeout_collect_interval (EV_DEFAULT_UC_ 0.1);
1098     ev_set_io_collect_interval (EV_DEFAULT_UC_ 0.01);
1099    
1100 root 1.253 =item ev_invoke_pending (loop)
1101    
1102     This call will simply invoke all pending watchers while resetting their
1103 root 1.310 pending state. Normally, C<ev_run> does this automatically when required,
1104 root 1.313 but when overriding the invoke callback this call comes handy. This
1105     function can be invoked from a watcher - this can be useful for example
1106     when you want to do some lengthy calculation and want to pass further
1107     event handling to another thread (you still have to make sure only one
1108     thread executes within C<ev_invoke_pending> or C<ev_run> of course).
1109 root 1.253
1110 root 1.256 =item int ev_pending_count (loop)
1111    
1112     Returns the number of pending watchers - zero indicates that no watchers
1113     are pending.
1114    
1115 root 1.253 =item ev_set_invoke_pending_cb (loop, void (*invoke_pending_cb)(EV_P))
1116    
1117     This overrides the invoke pending functionality of the loop: Instead of
1118 root 1.310 invoking all pending watchers when there are any, C<ev_run> will call
1119 root 1.253 this callback instead. This is useful, for example, when you want to
1120     invoke the actual watchers inside another context (another thread etc.).
1121    
1122     If you want to reset the callback, use C<ev_invoke_pending> as new
1123     callback.
1124    
1125 root 1.401 =item ev_set_loop_release_cb (loop, void (*release)(EV_P) throw (), void (*acquire)(EV_P) throw ())
1126 root 1.253
1127     Sometimes you want to share the same loop between multiple threads. This
1128     can be done relatively simply by putting mutex_lock/unlock calls around
1129     each call to a libev function.
1130    
1131 root 1.310 However, C<ev_run> can run an indefinite time, so it is not feasible
1132     to wait for it to return. One way around this is to wake up the event
1133 root 1.385 loop via C<ev_break> and C<ev_async_send>, another way is to set these
1134 root 1.310 I<release> and I<acquire> callbacks on the loop.
1135 root 1.253
1136     When set, then C<release> will be called just before the thread is
1137     suspended waiting for new events, and C<acquire> is called just
1138     afterwards.
1139    
1140     Ideally, C<release> will just call your mutex_unlock function, and
1141     C<acquire> will just call the mutex_lock function again.
1142    
1143 root 1.254 While event loop modifications are allowed between invocations of
1144     C<release> and C<acquire> (that's their only purpose after all), no
1145     modifications done will affect the event loop, i.e. adding watchers will
1146     have no effect on the set of file descriptors being watched, or the time
1147 root 1.310 waited. Use an C<ev_async> watcher to wake up C<ev_run> when you want it
1148 root 1.254 to take note of any changes you made.
1149    
1150 root 1.310 In theory, threads executing C<ev_run> will be async-cancel safe between
1151 root 1.254 invocations of C<release> and C<acquire>.
1152    
1153     See also the locking example in the C<THREADS> section later in this
1154     document.
1155    
1156 root 1.253 =item ev_set_userdata (loop, void *data)
1157    
1158 root 1.344 =item void *ev_userdata (loop)
1159 root 1.253
1160     Set and retrieve a single C<void *> associated with a loop. When
1161     C<ev_set_userdata> has never been called, then C<ev_userdata> returns
1162 root 1.342 C<0>.
1163 root 1.253
1164     These two functions can be used to associate arbitrary data with a loop,
1165     and are intended solely for the C<invoke_pending_cb>, C<release> and
1166     C<acquire> callbacks described above, but of course can be (ab-)used for
1167     any other purpose as well.
1168    
1169 root 1.309 =item ev_verify (loop)
1170 root 1.159
1171     This function only does something when C<EV_VERIFY> support has been
1172 root 1.200 compiled in, which is the default for non-minimal builds. It tries to go
1173 root 1.183 through all internal structures and checks them for validity. If anything
1174     is found to be inconsistent, it will print an error message to standard
1175     error and call C<abort ()>.
1176 root 1.159
1177     This can be used to catch bugs inside libev itself: under normal
1178     circumstances, this function will never abort as of course libev keeps its
1179     data structures consistent.
1180    
1181 root 1.1 =back
1182    
1183 root 1.42
1184 root 1.1 =head1 ANATOMY OF A WATCHER
1185    
1186 root 1.200 In the following description, uppercase C<TYPE> in names stands for the
1187     watcher type, e.g. C<ev_TYPE_start> can mean C<ev_timer_start> for timer
1188     watchers and C<ev_io_start> for I/O watchers.
1189    
1190 root 1.311 A watcher is an opaque structure that you allocate and register to record
1191     your interest in some event. To make a concrete example, imagine you want
1192     to wait for STDIN to become readable, you would create an C<ev_io> watcher
1193     for that:
1194 root 1.1
1195 root 1.198 static void my_cb (struct ev_loop *loop, ev_io *w, int revents)
1196 root 1.164 {
1197     ev_io_stop (w);
1198 root 1.310 ev_break (loop, EVBREAK_ALL);
1199 root 1.164 }
1200    
1201     struct ev_loop *loop = ev_default_loop (0);
1202 root 1.200
1203 root 1.198 ev_io stdin_watcher;
1204 root 1.200
1205 root 1.164 ev_init (&stdin_watcher, my_cb);
1206     ev_io_set (&stdin_watcher, STDIN_FILENO, EV_READ);
1207     ev_io_start (loop, &stdin_watcher);
1208 root 1.200
1209 root 1.310 ev_run (loop, 0);
1210 root 1.1
1211     As you can see, you are responsible for allocating the memory for your
1212 root 1.200 watcher structures (and it is I<usually> a bad idea to do this on the
1213     stack).
1214    
1215     Each watcher has an associated watcher structure (called C<struct ev_TYPE>
1216     or simply C<ev_TYPE>, as typedefs are provided for all watcher structs).
1217 root 1.1
1218 root 1.311 Each watcher structure must be initialised by a call to C<ev_init (watcher
1219     *, callback)>, which expects a callback to be provided. This callback is
1220     invoked each time the event occurs (or, in the case of I/O watchers, each
1221     time the event loop detects that the file descriptor given is readable
1222     and/or writable).
1223 root 1.1
1224 root 1.200 Each watcher type further has its own C<< ev_TYPE_set (watcher *, ...) >>
1225     macro to configure it, with arguments specific to the watcher type. There
1226     is also a macro to combine initialisation and setting in one call: C<<
1227     ev_TYPE_init (watcher *, callback, ...) >>.
1228 root 1.1
1229     To make the watcher actually watch out for events, you have to start it
1230 root 1.200 with a watcher-specific start function (C<< ev_TYPE_start (loop, watcher
1231 root 1.1 *) >>), and you can stop watching for events at any time by calling the
1232 root 1.200 corresponding stop function (C<< ev_TYPE_stop (loop, watcher *) >>.
1233 root 1.1
1234     As long as your watcher is active (has been started but not stopped) you
1235 root 1.460 must not touch the values stored in it except when explicitly documented
1236     otherwise. Most specifically you must never reinitialise it or call its
1237     C<ev_TYPE_set> macro.
1238 root 1.1
1239     Each and every callback receives the event loop pointer as first, the
1240     registered watcher structure as second, and a bitset of received events as
1241     third argument.
1242    
1243 root 1.14 The received events usually include a single bit per event type received
1244 root 1.1 (you can receive multiple events at the same time). The possible bit masks
1245     are:
1246    
1247     =over 4
1248    
1249 root 1.10 =item C<EV_READ>
1250 root 1.1
1251 root 1.10 =item C<EV_WRITE>
1252 root 1.1
1253 root 1.10 The file descriptor in the C<ev_io> watcher has become readable and/or
1254 root 1.1 writable.
1255    
1256 root 1.289 =item C<EV_TIMER>
1257 root 1.1
1258 root 1.10 The C<ev_timer> watcher has timed out.
1259 root 1.1
1260 root 1.10 =item C<EV_PERIODIC>
1261 root 1.1
1262 root 1.10 The C<ev_periodic> watcher has timed out.
1263 root 1.1
1264 root 1.10 =item C<EV_SIGNAL>
1265 root 1.1
1266 root 1.10 The signal specified in the C<ev_signal> watcher has been received by a thread.
1267 root 1.1
1268 root 1.10 =item C<EV_CHILD>
1269 root 1.1
1270 root 1.10 The pid specified in the C<ev_child> watcher has received a status change.
1271 root 1.1
1272 root 1.48 =item C<EV_STAT>
1273    
1274     The path specified in the C<ev_stat> watcher changed its attributes somehow.
1275    
1276 root 1.10 =item C<EV_IDLE>
1277 root 1.1
1278 root 1.10 The C<ev_idle> watcher has determined that you have nothing better to do.
1279 root 1.1
1280 root 1.10 =item C<EV_PREPARE>
1281 root 1.1
1282 root 1.10 =item C<EV_CHECK>
1283 root 1.1
1284 root 1.405 All C<ev_prepare> watchers are invoked just I<before> C<ev_run> starts to
1285     gather new events, and all C<ev_check> watchers are queued (not invoked)
1286     just after C<ev_run> has gathered them, but before it queues any callbacks
1287     for any received events. That means C<ev_prepare> watchers are the last
1288     watchers invoked before the event loop sleeps or polls for new events, and
1289     C<ev_check> watchers will be invoked before any other watchers of the same
1290     or lower priority within an event loop iteration.
1291    
1292     Callbacks of both watcher types can start and stop as many watchers as
1293     they want, and all of them will be taken into account (for example, a
1294     C<ev_prepare> watcher might start an idle watcher to keep C<ev_run> from
1295     blocking).
1296 root 1.1
1297 root 1.50 =item C<EV_EMBED>
1298    
1299     The embedded event loop specified in the C<ev_embed> watcher needs attention.
1300    
1301     =item C<EV_FORK>
1302    
1303     The event loop has been resumed in the child process after fork (see
1304     C<ev_fork>).
1305    
1306 root 1.324 =item C<EV_CLEANUP>
1307    
1308 sf-exg 1.330 The event loop is about to be destroyed (see C<ev_cleanup>).
1309 root 1.324
1310 root 1.122 =item C<EV_ASYNC>
1311    
1312     The given async watcher has been asynchronously notified (see C<ev_async>).
1313    
1314 root 1.229 =item C<EV_CUSTOM>
1315    
1316     Not ever sent (or otherwise used) by libev itself, but can be freely used
1317     by libev users to signal watchers (e.g. via C<ev_feed_event>).
1318    
1319 root 1.10 =item C<EV_ERROR>
1320 root 1.1
1321 root 1.161 An unspecified error has occurred, the watcher has been stopped. This might
1322 root 1.1 happen because the watcher could not be properly started because libev
1323     ran out of memory, a file descriptor was found to be closed or any other
1324 root 1.197 problem. Libev considers these application bugs.
1325    
1326     You best act on it by reporting the problem and somehow coping with the
1327     watcher being stopped. Note that well-written programs should not receive
1328     an error ever, so when your watcher receives it, this usually indicates a
1329     bug in your program.
1330 root 1.1
1331 root 1.183 Libev will usually signal a few "dummy" events together with an error, for
1332     example it might indicate that a fd is readable or writable, and if your
1333     callbacks is well-written it can just attempt the operation and cope with
1334     the error from read() or write(). This will not work in multi-threaded
1335     programs, though, as the fd could already be closed and reused for another
1336     thing, so beware.
1337 root 1.1
1338     =back
1339    
1340 root 1.42 =head2 GENERIC WATCHER FUNCTIONS
1341 root 1.36
1342     =over 4
1343    
1344     =item C<ev_init> (ev_TYPE *watcher, callback)
1345    
1346     This macro initialises the generic portion of a watcher. The contents
1347     of the watcher object can be arbitrary (so C<malloc> will do). Only
1348     the generic parts of the watcher are initialised, you I<need> to call
1349     the type-specific C<ev_TYPE_set> macro afterwards to initialise the
1350     type-specific parts. For each type there is also a C<ev_TYPE_init> macro
1351     which rolls both calls into one.
1352    
1353     You can reinitialise a watcher at any time as long as it has been stopped
1354     (or never started) and there are no pending events outstanding.
1355    
1356 root 1.198 The callback is always of type C<void (*)(struct ev_loop *loop, ev_TYPE *watcher,
1357 root 1.36 int revents)>.
1358    
1359 root 1.183 Example: Initialise an C<ev_io> watcher in two steps.
1360    
1361     ev_io w;
1362     ev_init (&w, my_cb);
1363     ev_io_set (&w, STDIN_FILENO, EV_READ);
1364    
1365 root 1.274 =item C<ev_TYPE_set> (ev_TYPE *watcher, [args])
1366 root 1.36
1367     This macro initialises the type-specific parts of a watcher. You need to
1368     call C<ev_init> at least once before you call this macro, but you can
1369     call C<ev_TYPE_set> any number of times. You must not, however, call this
1370     macro on a watcher that is active (it can be pending, however, which is a
1371     difference to the C<ev_init> macro).
1372    
1373     Although some watcher types do not have type-specific arguments
1374     (e.g. C<ev_prepare>) you still need to call its C<set> macro.
1375    
1376 root 1.183 See C<ev_init>, above, for an example.
1377    
1378 root 1.36 =item C<ev_TYPE_init> (ev_TYPE *watcher, callback, [args])
1379    
1380 root 1.161 This convenience macro rolls both C<ev_init> and C<ev_TYPE_set> macro
1381     calls into a single call. This is the most convenient method to initialise
1382 root 1.36 a watcher. The same limitations apply, of course.
1383    
1384 root 1.183 Example: Initialise and set an C<ev_io> watcher in one step.
1385    
1386     ev_io_init (&w, my_cb, STDIN_FILENO, EV_READ);
1387    
1388 root 1.274 =item C<ev_TYPE_start> (loop, ev_TYPE *watcher)
1389 root 1.36
1390     Starts (activates) the given watcher. Only active watchers will receive
1391     events. If the watcher is already active nothing will happen.
1392    
1393 root 1.183 Example: Start the C<ev_io> watcher that is being abused as example in this
1394     whole section.
1395    
1396     ev_io_start (EV_DEFAULT_UC, &w);
1397    
1398 root 1.274 =item C<ev_TYPE_stop> (loop, ev_TYPE *watcher)
1399 root 1.36
1400 root 1.195 Stops the given watcher if active, and clears the pending status (whether
1401     the watcher was active or not).
1402    
1403     It is possible that stopped watchers are pending - for example,
1404     non-repeating timers are being stopped when they become pending - but
1405     calling C<ev_TYPE_stop> ensures that the watcher is neither active nor
1406     pending. If you want to free or reuse the memory used by the watcher it is
1407     therefore a good idea to always call its C<ev_TYPE_stop> function.
1408 root 1.36
1409     =item bool ev_is_active (ev_TYPE *watcher)
1410    
1411     Returns a true value iff the watcher is active (i.e. it has been started
1412     and not yet been stopped). As long as a watcher is active you must not modify
1413 root 1.465 it unless documented otherwise.
1414 root 1.36
1415 root 1.469 Obviously, it is safe to call this on an active watcher, or actually any
1416     watcher that is initialised.
1417    
1418 root 1.36 =item bool ev_is_pending (ev_TYPE *watcher)
1419    
1420     Returns a true value iff the watcher is pending, (i.e. it has outstanding
1421     events but its callback has not yet been invoked). As long as a watcher
1422     is pending (but not active) you must not call an init function on it (but
1423 root 1.73 C<ev_TYPE_set> is safe), you must not change its priority, and you must
1424     make sure the watcher is available to libev (e.g. you cannot C<free ()>
1425     it).
1426 root 1.36
1427 root 1.469 It is safe to call this on any watcher in any state as long as it is
1428     initialised.
1429    
1430 root 1.55 =item callback ev_cb (ev_TYPE *watcher)
1431 root 1.36
1432     Returns the callback currently set on the watcher.
1433    
1434 root 1.408 =item ev_set_cb (ev_TYPE *watcher, callback)
1435 root 1.36
1436     Change the callback. You can change the callback at virtually any time
1437     (modulo threads).
1438    
1439 root 1.274 =item ev_set_priority (ev_TYPE *watcher, int priority)
1440 root 1.67
1441     =item int ev_priority (ev_TYPE *watcher)
1442    
1443     Set and query the priority of the watcher. The priority is a small
1444     integer between C<EV_MAXPRI> (default: C<2>) and C<EV_MINPRI>
1445     (default: C<-2>). Pending watchers with higher priority will be invoked
1446     before watchers with lower priority, but priority will not keep watchers
1447     from being executed (except for C<ev_idle> watchers).
1448    
1449     If you need to suppress invocation when higher priority events are pending
1450     you need to look at C<ev_idle> watchers, which provide this functionality.
1451    
1452 root 1.469 You I<must not> change the priority of a watcher as long as it is active
1453     or pending. Reading the priority with C<ev_priority> is fine in any state.
1454 root 1.73
1455 root 1.233 Setting a priority outside the range of C<EV_MINPRI> to C<EV_MAXPRI> is
1456     fine, as long as you do not mind that the priority value you query might
1457     or might not have been clamped to the valid range.
1458    
1459 root 1.67 The default priority used by watchers when no priority has been set is
1460     always C<0>, which is supposed to not be too high and not be too low :).
1461    
1462 root 1.413 See L</WATCHER PRIORITY MODELS>, below, for a more thorough treatment of
1463 root 1.233 priorities.
1464 root 1.67
1465 root 1.74 =item ev_invoke (loop, ev_TYPE *watcher, int revents)
1466    
1467     Invoke the C<watcher> with the given C<loop> and C<revents>. Neither
1468     C<loop> nor C<revents> need to be valid as long as the watcher callback
1469 root 1.183 can deal with that fact, as both are simply passed through to the
1470     callback.
1471 root 1.74
1472     =item int ev_clear_pending (loop, ev_TYPE *watcher)
1473    
1474 root 1.183 If the watcher is pending, this function clears its pending status and
1475     returns its C<revents> bitset (as if its callback was invoked). If the
1476 root 1.74 watcher isn't pending it does nothing and returns C<0>.
1477    
1478 root 1.183 Sometimes it can be useful to "poll" a watcher instead of waiting for its
1479     callback to be invoked, which can be accomplished with this function.
1480    
1481 root 1.274 =item ev_feed_event (loop, ev_TYPE *watcher, int revents)
1482 root 1.273
1483     Feeds the given event set into the event loop, as if the specified event
1484     had happened for the specified watcher (which must be a pointer to an
1485 root 1.469 initialised but not necessarily started event watcher, though it can be
1486     active). Obviously you must not free the watcher as long as it has pending
1487     events.
1488 root 1.273
1489     Stopping the watcher, letting libev invoke it, or calling
1490     C<ev_clear_pending> will clear the pending event, even if the watcher was
1491     not started in the first place.
1492    
1493     See also C<ev_feed_fd_event> and C<ev_feed_signal_event> for related
1494     functions that do not need a watcher.
1495    
1496 root 1.36 =back
1497    
1498 root 1.413 See also the L</ASSOCIATING CUSTOM DATA WITH A WATCHER> and L</BUILDING YOUR
1499 root 1.357 OWN COMPOSITE WATCHERS> idioms.
1500 root 1.1
1501 root 1.335 =head2 WATCHER STATES
1502    
1503     There are various watcher states mentioned throughout this manual -
1504     active, pending and so on. In this section these states and the rules to
1505     transition between them will be described in more detail - and while these
1506     rules might look complicated, they usually do "the right thing".
1507    
1508     =over 4
1509    
1510 root 1.422 =item initialised
1511 root 1.335
1512 sf-exg 1.374 Before a watcher can be registered with the event loop it has to be
1513 root 1.335 initialised. This can be done with a call to C<ev_TYPE_init>, or calls to
1514     C<ev_init> followed by the watcher-specific C<ev_TYPE_set> function.
1515    
1516 root 1.361 In this state it is simply some block of memory that is suitable for
1517     use in an event loop. It can be moved around, freed, reused etc. at
1518     will - as long as you either keep the memory contents intact, or call
1519     C<ev_TYPE_init> again.
1520 root 1.335
1521     =item started/running/active
1522    
1523     Once a watcher has been started with a call to C<ev_TYPE_start> it becomes
1524     property of the event loop, and is actively waiting for events. While in
1525 root 1.469 this state it cannot be accessed (except in a few documented ways, such as
1526     stoping it), moved, freed or anything else - the only legal thing is to
1527     keep a pointer to it, and call libev functions on it that are documented
1528     to work on active watchers.
1529    
1530     As a rule of thumb, before accessing a member or calling any function on
1531     a watcher, it should be stopped (or freshly initialised). If that is not
1532     convenient, you can check the documentation for that function or member to
1533     see if it is safe to use on an active watcher.
1534 root 1.335
1535     =item pending
1536    
1537     If a watcher is active and libev determines that an event it is interested
1538 root 1.469 in has occurred (such as a timer expiring), it will become pending. It
1539     will stay in this pending state until either it is explicitly stopped or
1540     its callback is about to be invoked, so it is not normally pending inside
1541     the watcher callback.
1542    
1543     Generally, the watcher might or might not be active while it is pending
1544     (for example, an expired non-repeating timer can be pending but no longer
1545     active). If it is pending but not active, it can be freely accessed (e.g.
1546     by calling C<ev_TYPE_set>), but it is still property of the event loop at
1547     this time, so cannot be moved, freed or reused. And if it is active the
1548     rules described in the previous item still apply.
1549 root 1.335
1550 root 1.469 Explicitly stopping a watcher will also clear the pending state
1551     unconditionally, so it is safe to stop a watcher and then free it.
1552 root 1.335
1553     It is also possible to feed an event on a watcher that is not active (e.g.
1554     via C<ev_feed_event>), in which case it becomes pending without being
1555     active.
1556    
1557     =item stopped
1558    
1559     A watcher can be stopped implicitly by libev (in which case it might still
1560     be pending), or explicitly by calling its C<ev_TYPE_stop> function. The
1561     latter will clear any pending state the watcher might be in, regardless
1562     of whether it was active or not, so stopping a watcher explicitly before
1563     freeing it is often a good idea.
1564    
1565     While stopped (and not pending) the watcher is essentially in the
1566 root 1.361 initialised state, that is, it can be reused, moved, modified in any way
1567     you wish (but when you trash the memory block, you need to C<ev_TYPE_init>
1568     it again).
1569 root 1.335
1570     =back
1571    
1572 root 1.233 =head2 WATCHER PRIORITY MODELS
1573    
1574     Many event loops support I<watcher priorities>, which are usually small
1575     integers that influence the ordering of event callback invocation
1576     between watchers in some way, all else being equal.
1577    
1578 root 1.457 In libev, watcher priorities can be set using C<ev_set_priority>. See its
1579 root 1.233 description for the more technical details such as the actual priority
1580     range.
1581    
1582     There are two common ways how these these priorities are being interpreted
1583     by event loops:
1584    
1585     In the more common lock-out model, higher priorities "lock out" invocation
1586     of lower priority watchers, which means as long as higher priority
1587     watchers receive events, lower priority watchers are not being invoked.
1588    
1589     The less common only-for-ordering model uses priorities solely to order
1590     callback invocation within a single event loop iteration: Higher priority
1591     watchers are invoked before lower priority ones, but they all get invoked
1592     before polling for new events.
1593    
1594     Libev uses the second (only-for-ordering) model for all its watchers
1595     except for idle watchers (which use the lock-out model).
1596    
1597     The rationale behind this is that implementing the lock-out model for
1598     watchers is not well supported by most kernel interfaces, and most event
1599     libraries will just poll for the same events again and again as long as
1600     their callbacks have not been executed, which is very inefficient in the
1601     common case of one high-priority watcher locking out a mass of lower
1602     priority ones.
1603    
1604     Static (ordering) priorities are most useful when you have two or more
1605     watchers handling the same resource: a typical usage example is having an
1606     C<ev_io> watcher to receive data, and an associated C<ev_timer> to handle
1607     timeouts. Under load, data might be received while the program handles
1608     other jobs, but since timers normally get invoked first, the timeout
1609     handler will be executed before checking for data. In that case, giving
1610     the timer a lower priority than the I/O watcher ensures that I/O will be
1611     handled first even under adverse conditions (which is usually, but not
1612     always, what you want).
1613    
1614     Since idle watchers use the "lock-out" model, meaning that idle watchers
1615     will only be executed when no same or higher priority watchers have
1616     received events, they can be used to implement the "lock-out" model when
1617     required.
1618    
1619     For example, to emulate how many other event libraries handle priorities,
1620     you can associate an C<ev_idle> watcher to each such watcher, and in
1621     the normal watcher callback, you just start the idle watcher. The real
1622     processing is done in the idle watcher callback. This causes libev to
1623 sf-exg 1.298 continuously poll and process kernel event data for the watcher, but when
1624 root 1.233 the lock-out case is known to be rare (which in turn is rare :), this is
1625     workable.
1626    
1627     Usually, however, the lock-out model implemented that way will perform
1628     miserably under the type of load it was designed to handle. In that case,
1629     it might be preferable to stop the real watcher before starting the
1630     idle watcher, so the kernel will not have to process the event in case
1631     the actual processing will be delayed for considerable time.
1632    
1633     Here is an example of an I/O watcher that should run at a strictly lower
1634     priority than the default, and which should only process data when no
1635     other events are pending:
1636    
1637     ev_idle idle; // actual processing watcher
1638     ev_io io; // actual event watcher
1639    
1640     static void
1641     io_cb (EV_P_ ev_io *w, int revents)
1642     {
1643     // stop the I/O watcher, we received the event, but
1644     // are not yet ready to handle it.
1645     ev_io_stop (EV_A_ w);
1646    
1647 root 1.296 // start the idle watcher to handle the actual event.
1648 root 1.233 // it will not be executed as long as other watchers
1649     // with the default priority are receiving events.
1650     ev_idle_start (EV_A_ &idle);
1651     }
1652    
1653     static void
1654 root 1.242 idle_cb (EV_P_ ev_idle *w, int revents)
1655 root 1.233 {
1656     // actual processing
1657     read (STDIN_FILENO, ...);
1658    
1659     // have to start the I/O watcher again, as
1660     // we have handled the event
1661     ev_io_start (EV_P_ &io);
1662     }
1663    
1664     // initialisation
1665     ev_idle_init (&idle, idle_cb);
1666     ev_io_init (&io, io_cb, STDIN_FILENO, EV_READ);
1667     ev_io_start (EV_DEFAULT_ &io);
1668    
1669     In the "real" world, it might also be beneficial to start a timer, so that
1670     low-priority connections can not be locked out forever under load. This
1671     enables your program to keep a lower latency for important connections
1672     during short periods of high load, while not completely locking out less
1673     important ones.
1674    
1675 root 1.1
1676     =head1 WATCHER TYPES
1677    
1678     This section describes each watcher in detail, but will not repeat
1679 root 1.48 information given in the last section. Any initialisation/set macros,
1680     functions and members specific to the watcher type are explained.
1681    
1682 root 1.459 Most members are additionally marked with either I<[read-only]>, meaning
1683     that, while the watcher is active, you can look at the member and expect
1684     some sensible content, but you must not modify it (you can modify it while
1685     the watcher is stopped to your hearts content), or I<[read-write]>, which
1686 root 1.463 means you can expect it to have some sensible content while the watcher is
1687     active, but you can also modify it (within the same thread as the event
1688     loop, i.e. without creating data races). Modifying it may not do something
1689 root 1.48 sensible or take immediate effect (or do anything at all), but libev will
1690     not crash or malfunction in any way.
1691 root 1.1
1692 root 1.459 In any case, the documentation for each member will explain what the
1693     effects are, and if there are any additional access restrictions.
1694 root 1.34
1695 root 1.42 =head2 C<ev_io> - is this file descriptor readable or writable?
1696 root 1.1
1697 root 1.4 I/O watchers check whether a file descriptor is readable or writable
1698 root 1.42 in each iteration of the event loop, or, more precisely, when reading
1699     would not block the process and writing would at least be able to write
1700     some data. This behaviour is called level-triggering because you keep
1701     receiving events as long as the condition persists. Remember you can stop
1702     the watcher if you don't want to act on the event and neither want to
1703     receive future events.
1704 root 1.1
1705 root 1.23 In general you can register as many read and/or write event watchers per
1706 root 1.8 fd as you want (as long as you don't confuse yourself). Setting all file
1707     descriptors to non-blocking mode is also usually a good idea (but not
1708     required if you know what you are doing).
1709    
1710 root 1.42 Another thing you have to watch out for is that it is quite easy to
1711 root 1.354 receive "spurious" readiness notifications, that is, your callback might
1712 root 1.42 be called with C<EV_READ> but a subsequent C<read>(2) will actually block
1713 root 1.354 because there is no data. It is very easy to get into this situation even
1714     with a relatively standard program structure. Thus it is best to always
1715     use non-blocking I/O: An extra C<read>(2) returning C<EAGAIN> is far
1716     preferable to a program hanging until some data arrives.
1717 root 1.42
1718 root 1.183 If you cannot run the fd in non-blocking mode (for example you should
1719     not play around with an Xlib connection), then you have to separately
1720     re-test whether a file descriptor is really ready with a known-to-be good
1721 root 1.354 interface such as poll (fortunately in the case of Xlib, it already does
1722     this on its own, so its quite safe to use). Some people additionally
1723 root 1.183 use C<SIGALRM> and an interval timer, just to be sure you won't block
1724     indefinitely.
1725    
1726     But really, best use non-blocking mode.
1727 root 1.42
1728 root 1.81 =head3 The special problem of disappearing file descriptors
1729    
1730 root 1.447 Some backends (e.g. kqueue, epoll, linuxaio) need to be told about closing
1731     a file descriptor (either due to calling C<close> explicitly or any other
1732     means, such as C<dup2>). The reason is that you register interest in some
1733     file descriptor, but when it goes away, the operating system will silently
1734     drop this interest. If another file descriptor with the same number then
1735     is registered with libev, there is no efficient way to see that this is,
1736     in fact, a different file descriptor.
1737 root 1.81
1738     To avoid having to explicitly tell libev about such cases, libev follows
1739     the following policy: Each time C<ev_io_set> is being called, libev
1740     will assume that this is potentially a new file descriptor, otherwise
1741     it is assumed that the file descriptor stays the same. That means that
1742     you I<have> to call C<ev_io_set> (or C<ev_io_init>) when you change the
1743     descriptor even if the file descriptor number itself did not change.
1744    
1745     This is how one would do it normally anyway, the important point is that
1746     the libev application should not optimise around libev but should leave
1747     optimisations to libev.
1748    
1749 root 1.95 =head3 The special problem of dup'ed file descriptors
1750 root 1.94
1751     Some backends (e.g. epoll), cannot register events for file descriptors,
1752 root 1.103 but only events for the underlying file descriptions. That means when you
1753 root 1.109 have C<dup ()>'ed file descriptors or weirder constellations, and register
1754     events for them, only one file descriptor might actually receive events.
1755 root 1.94
1756 root 1.103 There is no workaround possible except not registering events
1757     for potentially C<dup ()>'ed file descriptors, or to resort to
1758 root 1.94 C<EVBACKEND_SELECT> or C<EVBACKEND_POLL>.
1759    
1760 root 1.354 =head3 The special problem of files
1761    
1762     Many people try to use C<select> (or libev) on file descriptors
1763     representing files, and expect it to become ready when their program
1764     doesn't block on disk accesses (which can take a long time on their own).
1765    
1766     However, this cannot ever work in the "expected" way - you get a readiness
1767     notification as soon as the kernel knows whether and how much data is
1768     there, and in the case of open files, that's always the case, so you
1769     always get a readiness notification instantly, and your read (or possibly
1770     write) will still block on the disk I/O.
1771    
1772     Another way to view it is that in the case of sockets, pipes, character
1773     devices and so on, there is another party (the sender) that delivers data
1774 sf-exg 1.358 on its own, but in the case of files, there is no such thing: the disk
1775     will not send data on its own, simply because it doesn't know what you
1776 root 1.354 wish to read - you would first have to request some data.
1777    
1778     Since files are typically not-so-well supported by advanced notification
1779     mechanism, libev tries hard to emulate POSIX behaviour with respect
1780     to files, even though you should not use it. The reason for this is
1781     convenience: sometimes you want to watch STDIN or STDOUT, which is
1782     usually a tty, often a pipe, but also sometimes files or special devices
1783     (for example, C<epoll> on Linux works with F</dev/random> but not with
1784     F</dev/urandom>), and even though the file might better be served with
1785     asynchronous I/O instead of with non-blocking I/O, it is still useful when
1786     it "just works" instead of freezing.
1787    
1788     So avoid file descriptors pointing to files when you know it (e.g. use
1789     libeio), but use them when it is convenient, e.g. for STDIN/STDOUT, or
1790     when you rarely read from a file instead of from a socket, and want to
1791     reuse the same code path.
1792    
1793 root 1.94 =head3 The special problem of fork
1794    
1795 root 1.456 Some backends (epoll, kqueue, linuxaio, iouring) do not support C<fork ()>
1796 root 1.447 at all or exhibit useless behaviour. Libev fully supports fork, but needs
1797     to be told about it in the child if you want to continue to use it in the
1798     child.
1799 root 1.94
1800 root 1.354 To support fork in your child processes, you have to call C<ev_loop_fork
1801     ()> after a fork in the child, enable C<EVFLAG_FORKCHECK>, or resort to
1802     C<EVBACKEND_SELECT> or C<EVBACKEND_POLL>.
1803 root 1.94
1804 root 1.138 =head3 The special problem of SIGPIPE
1805    
1806 root 1.183 While not really specific to libev, it is easy to forget about C<SIGPIPE>:
1807 root 1.174 when writing to a pipe whose other end has been closed, your program gets
1808 root 1.183 sent a SIGPIPE, which, by default, aborts your program. For most programs
1809 root 1.174 this is sensible behaviour, for daemons, this is usually undesirable.
1810 root 1.138
1811     So when you encounter spurious, unexplained daemon exits, make sure you
1812     ignore SIGPIPE (and maybe make sure you log the exit status of your daemon
1813     somewhere, as that would have given you a big clue).
1814    
1815 root 1.284 =head3 The special problem of accept()ing when you can't
1816    
1817     Many implementations of the POSIX C<accept> function (for example,
1818 sf-exg 1.292 found in post-2004 Linux) have the peculiar behaviour of not removing a
1819 root 1.284 connection from the pending queue in all error cases.
1820    
1821     For example, larger servers often run out of file descriptors (because
1822     of resource limits), causing C<accept> to fail with C<ENFILE> but not
1823     rejecting the connection, leading to libev signalling readiness on
1824     the next iteration again (the connection still exists after all), and
1825     typically causing the program to loop at 100% CPU usage.
1826    
1827     Unfortunately, the set of errors that cause this issue differs between
1828     operating systems, there is usually little the app can do to remedy the
1829     situation, and no known thread-safe method of removing the connection to
1830     cope with overload is known (to me).
1831    
1832     One of the easiest ways to handle this situation is to just ignore it
1833     - when the program encounters an overload, it will just loop until the
1834     situation is over. While this is a form of busy waiting, no OS offers an
1835     event-based way to handle this situation, so it's the best one can do.
1836    
1837     A better way to handle the situation is to log any errors other than
1838     C<EAGAIN> and C<EWOULDBLOCK>, making sure not to flood the log with such
1839     messages, and continue as usual, which at least gives the user an idea of
1840     what could be wrong ("raise the ulimit!"). For extra points one could stop
1841     the C<ev_io> watcher on the listening fd "for a while", which reduces CPU
1842     usage.
1843    
1844     If your program is single-threaded, then you could also keep a dummy file
1845     descriptor for overload situations (e.g. by opening F</dev/null>), and
1846     when you run into C<ENFILE> or C<EMFILE>, close it, run C<accept>,
1847     close that fd, and create a new dummy fd. This will gracefully refuse
1848     clients under typical overload conditions.
1849    
1850     The last way to handle it is to simply log the error and C<exit>, as
1851     is often done with C<malloc> failures, but this results in an easy
1852     opportunity for a DoS attack.
1853 root 1.81
1854 root 1.82 =head3 Watcher-Specific Functions
1855    
1856 root 1.1 =over 4
1857    
1858     =item ev_io_init (ev_io *, callback, int fd, int events)
1859    
1860     =item ev_io_set (ev_io *, int fd, int events)
1861    
1862 root 1.42 Configures an C<ev_io> watcher. The C<fd> is the file descriptor to
1863 root 1.462 receive events for and C<events> is either C<EV_READ>, C<EV_WRITE>, both
1864     C<EV_READ | EV_WRITE> or C<0>, to express the desire to receive the given
1865     events.
1866    
1867     Note that setting the C<events> to C<0> and starting the watcher is
1868     supported, but not specially optimized - if your program sometimes happens
1869     to generate this combination this is fine, but if it is easy to avoid
1870     starting an io watcher watching for no events you should do so.
1871 root 1.32
1872 root 1.459 =item ev_io_modify (ev_io *, int events)
1873 root 1.48
1874 root 1.464 Similar to C<ev_io_set>, but only changes the requested events. Using this
1875     might be faster with some backends, as libev can assume that the C<fd>
1876     still refers to the same underlying file description, something it cannot
1877     do when using C<ev_io_set>.
1878 root 1.48
1879 root 1.459 =item int fd [no-modify]
1880 root 1.48
1881 root 1.459 The file descriptor being watched. While it can be read at any time, you
1882     must not modify this member even when the watcher is stopped - always use
1883     C<ev_io_set> for that.
1884    
1885     =item int events [no-modify]
1886    
1887 root 1.460 The set of events the fd is being watched for, among other flags. Remember
1888     that this is a bit set - to test for C<EV_READ>, use C<< w->events &
1889     EV_READ >>, and similarly for C<EV_WRITE>.
1890 root 1.459
1891     As with C<fd>, you must not modify this member even when the watcher is
1892     stopped, always use C<ev_io_set> or C<ev_io_modify> for that.
1893 root 1.48
1894 root 1.1 =back
1895    
1896 root 1.111 =head3 Examples
1897    
1898 root 1.54 Example: Call C<stdin_readable_cb> when STDIN_FILENO has become, well
1899 root 1.34 readable, but only once. Since it is likely line-buffered, you could
1900 root 1.54 attempt to read a whole line in the callback.
1901 root 1.34
1902 root 1.164 static void
1903 root 1.198 stdin_readable_cb (struct ev_loop *loop, ev_io *w, int revents)
1904 root 1.164 {
1905     ev_io_stop (loop, w);
1906 root 1.183 .. read from stdin here (or from w->fd) and handle any I/O errors
1907 root 1.164 }
1908    
1909     ...
1910     struct ev_loop *loop = ev_default_init (0);
1911 root 1.198 ev_io stdin_readable;
1912 root 1.164 ev_io_init (&stdin_readable, stdin_readable_cb, STDIN_FILENO, EV_READ);
1913     ev_io_start (loop, &stdin_readable);
1914 root 1.310 ev_run (loop, 0);
1915 root 1.34
1916    
1917 root 1.42 =head2 C<ev_timer> - relative and optionally repeating timeouts
1918 root 1.1
1919     Timer watchers are simple relative timers that generate an event after a
1920     given time, and optionally repeating in regular intervals after that.
1921    
1922     The timers are based on real time, that is, if you register an event that
1923 root 1.161 times out after an hour and you reset your system clock to January last
1924 root 1.183 year, it will still time out after (roughly) one hour. "Roughly" because
1925 root 1.28 detecting time jumps is hard, and some inaccuracies are unavoidable (the
1926 root 1.1 monotonic clock option helps a lot here).
1927    
1928 root 1.183 The callback is guaranteed to be invoked only I<after> its timeout has
1929 root 1.240 passed (not I<at>, so on systems with very low-resolution clocks this
1930 root 1.381 might introduce a small delay, see "the special problem of being too
1931     early", below). If multiple timers become ready during the same loop
1932     iteration then the ones with earlier time-out values are invoked before
1933     ones of the same priority with later time-out values (but this is no
1934     longer true when a callback calls C<ev_run> recursively).
1935 root 1.175
1936 root 1.198 =head3 Be smart about timeouts
1937    
1938 root 1.199 Many real-world problems involve some kind of timeout, usually for error
1939 root 1.198 recovery. A typical example is an HTTP request - if the other side hangs,
1940     you want to raise some error after a while.
1941    
1942 root 1.199 What follows are some ways to handle this problem, from obvious and
1943     inefficient to smart and efficient.
1944 root 1.198
1945 root 1.199 In the following, a 60 second activity timeout is assumed - a timeout that
1946     gets reset to 60 seconds each time there is activity (e.g. each time some
1947     data or other life sign was received).
1948 root 1.198
1949     =over 4
1950    
1951 root 1.199 =item 1. Use a timer and stop, reinitialise and start it on activity.
1952 root 1.198
1953     This is the most obvious, but not the most simple way: In the beginning,
1954     start the watcher:
1955    
1956     ev_timer_init (timer, callback, 60., 0.);
1957     ev_timer_start (loop, timer);
1958    
1959 root 1.199 Then, each time there is some activity, C<ev_timer_stop> it, initialise it
1960     and start it again:
1961 root 1.198
1962     ev_timer_stop (loop, timer);
1963     ev_timer_set (timer, 60., 0.);
1964     ev_timer_start (loop, timer);
1965    
1966 root 1.199 This is relatively simple to implement, but means that each time there is
1967     some activity, libev will first have to remove the timer from its internal
1968     data structure and then add it again. Libev tries to be fast, but it's
1969     still not a constant-time operation.
1970 root 1.198
1971     =item 2. Use a timer and re-start it with C<ev_timer_again> inactivity.
1972    
1973     This is the easiest way, and involves using C<ev_timer_again> instead of
1974     C<ev_timer_start>.
1975    
1976 root 1.199 To implement this, configure an C<ev_timer> with a C<repeat> value
1977     of C<60> and then call C<ev_timer_again> at start and each time you
1978     successfully read or write some data. If you go into an idle state where
1979     you do not expect data to travel on the socket, you can C<ev_timer_stop>
1980     the timer, and C<ev_timer_again> will automatically restart it if need be.
1981    
1982     That means you can ignore both the C<ev_timer_start> function and the
1983     C<after> argument to C<ev_timer_set>, and only ever use the C<repeat>
1984     member and C<ev_timer_again>.
1985 root 1.198
1986     At start:
1987    
1988 root 1.243 ev_init (timer, callback);
1989 root 1.199 timer->repeat = 60.;
1990 root 1.198 ev_timer_again (loop, timer);
1991    
1992 root 1.199 Each time there is some activity:
1993 root 1.198
1994     ev_timer_again (loop, timer);
1995    
1996 root 1.199 It is even possible to change the time-out on the fly, regardless of
1997     whether the watcher is active or not:
1998 root 1.198
1999     timer->repeat = 30.;
2000     ev_timer_again (loop, timer);
2001    
2002     This is slightly more efficient then stopping/starting the timer each time
2003     you want to modify its timeout value, as libev does not have to completely
2004 root 1.199 remove and re-insert the timer from/into its internal data structure.
2005    
2006     It is, however, even simpler than the "obvious" way to do it.
2007 root 1.198
2008     =item 3. Let the timer time out, but then re-arm it as required.
2009    
2010     This method is more tricky, but usually most efficient: Most timeouts are
2011 root 1.199 relatively long compared to the intervals between other activity - in
2012     our example, within 60 seconds, there are usually many I/O events with
2013     associated activity resets.
2014 root 1.198
2015     In this case, it would be more efficient to leave the C<ev_timer> alone,
2016     but remember the time of last activity, and check for a real timeout only
2017     within the callback:
2018    
2019 root 1.387 ev_tstamp timeout = 60.;
2020 root 1.198 ev_tstamp last_activity; // time of last activity
2021 root 1.387 ev_timer timer;
2022 root 1.198
2023     static void
2024     callback (EV_P_ ev_timer *w, int revents)
2025     {
2026 root 1.387 // calculate when the timeout would happen
2027     ev_tstamp after = last_activity - ev_now (EV_A) + timeout;
2028 root 1.198
2029 sf-exg 1.403 // if negative, it means we the timeout already occurred
2030 root 1.387 if (after < 0.)
2031 root 1.198 {
2032 sf-exg 1.298 // timeout occurred, take action
2033 root 1.198 }
2034     else
2035     {
2036 root 1.387 // callback was invoked, but there was some recent
2037 root 1.392 // activity. simply restart the timer to time out
2038 root 1.387 // after "after" seconds, which is the earliest time
2039     // the timeout can occur.
2040     ev_timer_set (w, after, 0.);
2041     ev_timer_start (EV_A_ w);
2042 root 1.198 }
2043     }
2044    
2045 root 1.387 To summarise the callback: first calculate in how many seconds the
2046     timeout will occur (by calculating the absolute time when it would occur,
2047     C<last_activity + timeout>, and subtracting the current time, C<ev_now
2048     (EV_A)> from that).
2049    
2050     If this value is negative, then we are already past the timeout, i.e. we
2051     timed out, and need to do whatever is needed in this case.
2052    
2053     Otherwise, we now the earliest time at which the timeout would trigger,
2054     and simply start the timer with this timeout value.
2055    
2056     In other words, each time the callback is invoked it will check whether
2057 sf-exg 1.403 the timeout occurred. If not, it will simply reschedule itself to check
2058 root 1.387 again at the earliest time it could time out. Rinse. Repeat.
2059 root 1.198
2060 root 1.199 This scheme causes more callback invocations (about one every 60 seconds
2061     minus half the average time between activity), but virtually no calls to
2062     libev to change the timeout.
2063    
2064 root 1.387 To start the machinery, simply initialise the watcher and set
2065     C<last_activity> to the current time (meaning there was some activity just
2066     now), then call the callback, which will "do the right thing" and start
2067     the timer:
2068    
2069     last_activity = ev_now (EV_A);
2070     ev_init (&timer, callback);
2071     callback (EV_A_ &timer, 0);
2072 root 1.198
2073 root 1.387 When there is some activity, simply store the current time in
2074 root 1.199 C<last_activity>, no libev calls at all:
2075 root 1.198
2076 root 1.387 if (activity detected)
2077     last_activity = ev_now (EV_A);
2078    
2079     When your timeout value changes, then the timeout can be changed by simply
2080     providing a new value, stopping the timer and calling the callback, which
2081 sf-exg 1.403 will again do the right thing (for example, time out immediately :).
2082 root 1.387
2083     timeout = new_value;
2084     ev_timer_stop (EV_A_ &timer);
2085     callback (EV_A_ &timer, 0);
2086 root 1.198
2087     This technique is slightly more complex, but in most cases where the
2088     time-out is unlikely to be triggered, much more efficient.
2089    
2090 root 1.200 =item 4. Wee, just use a double-linked list for your timeouts.
2091 root 1.199
2092 root 1.200 If there is not one request, but many thousands (millions...), all
2093     employing some kind of timeout with the same timeout value, then one can
2094     do even better:
2095 root 1.199
2096     When starting the timeout, calculate the timeout value and put the timeout
2097     at the I<end> of the list.
2098    
2099     Then use an C<ev_timer> to fire when the timeout at the I<beginning> of
2100     the list is expected to fire (for example, using the technique #3).
2101    
2102     When there is some activity, remove the timer from the list, recalculate
2103     the timeout, append it to the end of the list again, and make sure to
2104     update the C<ev_timer> if it was taken from the beginning of the list.
2105    
2106     This way, one can manage an unlimited number of timeouts in O(1) time for
2107     starting, stopping and updating the timers, at the expense of a major
2108     complication, and having to use a constant timeout. The constant timeout
2109     ensures that the list stays sorted.
2110    
2111 root 1.198 =back
2112    
2113 root 1.200 So which method the best?
2114 root 1.199
2115 root 1.200 Method #2 is a simple no-brain-required solution that is adequate in most
2116     situations. Method #3 requires a bit more thinking, but handles many cases
2117     better, and isn't very complicated either. In most case, choosing either
2118     one is fine, with #3 being better in typical situations.
2119 root 1.199
2120     Method #1 is almost always a bad idea, and buys you nothing. Method #4 is
2121     rather complicated, but extremely efficient, something that really pays
2122 root 1.200 off after the first million or so of active timers, i.e. it's usually
2123 root 1.199 overkill :)
2124    
2125 root 1.381 =head3 The special problem of being too early
2126    
2127     If you ask a timer to call your callback after three seconds, then
2128     you expect it to be invoked after three seconds - but of course, this
2129     cannot be guaranteed to infinite precision. Less obviously, it cannot be
2130     guaranteed to any precision by libev - imagine somebody suspending the
2131 root 1.386 process with a STOP signal for a few hours for example.
2132 root 1.381
2133     So, libev tries to invoke your callback as soon as possible I<after> the
2134 sf-exg 1.382 delay has occurred, but cannot guarantee this.
2135 root 1.381
2136     A less obvious failure mode is calling your callback too early: many event
2137     loops compare timestamps with a "elapsed delay >= requested delay", but
2138     this can cause your callback to be invoked much earlier than you would
2139     expect.
2140    
2141     To see why, imagine a system with a clock that only offers full second
2142     resolution (think windows if you can't come up with a broken enough OS
2143     yourself). If you schedule a one-second timer at the time 500.9, then the
2144     event loop will schedule your timeout to elapse at a system time of 500
2145     (500.9 truncated to the resolution) + 1, or 501.
2146    
2147     If an event library looks at the timeout 0.1s later, it will see "501 >=
2148     501" and invoke the callback 0.1s after it was started, even though a
2149     one-second delay was requested - this is being "too early", despite best
2150     intentions.
2151    
2152     This is the reason why libev will never invoke the callback if the elapsed
2153     delay equals the requested delay, but only when the elapsed delay is
2154     larger than the requested delay. In the example above, libev would only invoke
2155     the callback at system time 502, or 1.1s after the timer was started.
2156    
2157     So, while libev cannot guarantee that your callback will be invoked
2158     exactly when requested, it I<can> and I<does> guarantee that the requested
2159     delay has actually elapsed, or in other words, it always errs on the "too
2160     late" side of things.
2161    
2162 root 1.175 =head3 The special problem of time updates
2163    
2164 root 1.383 Establishing the current time is a costly operation (it usually takes
2165     at least one system call): EV therefore updates its idea of the current
2166 root 1.310 time only before and after C<ev_run> collects new events, which causes a
2167 root 1.183 growing difference between C<ev_now ()> and C<ev_time ()> when handling
2168     lots of events in one iteration.
2169 root 1.175
2170 root 1.9 The relative timeouts are calculated relative to the C<ev_now ()>
2171     time. This is usually the right thing as this timestamp refers to the time
2172 root 1.28 of the event triggering whatever timeout you are modifying/starting. If
2173 root 1.175 you suspect event processing to be delayed and you I<need> to base the
2174 root 1.434 timeout on the current time, use something like the following to adjust
2175     for it:
2176 root 1.9
2177 root 1.434 ev_timer_set (&timer, after + (ev_time () - ev_now ()), 0.);
2178 root 1.9
2179 root 1.177 If the event loop is suspended for a long time, you can also force an
2180 root 1.176 update of the time returned by C<ev_now ()> by calling C<ev_now_update
2181 root 1.434 ()>, although that will push the event time of all outstanding events
2182     further into the future.
2183 root 1.176
2184 root 1.383 =head3 The special problem of unsynchronised clocks
2185 root 1.381
2186     Modern systems have a variety of clocks - libev itself uses the normal
2187     "wall clock" clock and, if available, the monotonic clock (to avoid time
2188     jumps).
2189    
2190     Neither of these clocks is synchronised with each other or any other clock
2191     on the system, so C<ev_time ()> might return a considerably different time
2192     than C<gettimeofday ()> or C<time ()>. On a GNU/Linux system, for example,
2193     a call to C<gettimeofday> might return a second count that is one higher
2194     than a directly following call to C<time>.
2195    
2196     The moral of this is to only compare libev-related timestamps with
2197     C<ev_time ()> and C<ev_now ()>, at least if you want better precision than
2198 sf-exg 1.382 a second or so.
2199 root 1.381
2200     One more problem arises due to this lack of synchronisation: if libev uses
2201     the system monotonic clock and you compare timestamps from C<ev_time>
2202     or C<ev_now> from when you started your timer and when your callback is
2203     invoked, you will find that sometimes the callback is a bit "early".
2204    
2205     This is because C<ev_timer>s work in real time, not wall clock time, so
2206     libev makes sure your callback is not invoked before the delay happened,
2207     I<measured according to the real time>, not the system clock.
2208    
2209     If your timeouts are based on a physical timescale (e.g. "time out this
2210     connection after 100 seconds") then this shouldn't bother you as it is
2211     exactly the right behaviour.
2212    
2213     If you want to compare wall clock/system timestamps to your timers, then
2214     you need to use C<ev_periodic>s, as these are based on the wall clock
2215     time, where your comparisons will always generate correct results.
2216    
2217 root 1.257 =head3 The special problems of suspended animation
2218    
2219     When you leave the server world it is quite customary to hit machines that
2220     can suspend/hibernate - what happens to the clocks during such a suspend?
2221    
2222     Some quick tests made with a Linux 2.6.28 indicate that a suspend freezes
2223     all processes, while the clocks (C<times>, C<CLOCK_MONOTONIC>) continue
2224     to run until the system is suspended, but they will not advance while the
2225     system is suspended. That means, on resume, it will be as if the program
2226     was frozen for a few seconds, but the suspend time will not be counted
2227     towards C<ev_timer> when a monotonic clock source is used. The real time
2228     clock advanced as expected, but if it is used as sole clocksource, then a
2229     long suspend would be detected as a time jump by libev, and timers would
2230     be adjusted accordingly.
2231    
2232     I would not be surprised to see different behaviour in different between
2233     operating systems, OS versions or even different hardware.
2234    
2235     The other form of suspend (job control, or sending a SIGSTOP) will see a
2236     time jump in the monotonic clocks and the realtime clock. If the program
2237     is suspended for a very long time, and monotonic clock sources are in use,
2238     then you can expect C<ev_timer>s to expire as the full suspension time
2239     will be counted towards the timers. When no monotonic clock source is in
2240     use, then libev will again assume a timejump and adjust accordingly.
2241    
2242     It might be beneficial for this latter case to call C<ev_suspend>
2243     and C<ev_resume> in code that handles C<SIGTSTP>, to at least get
2244     deterministic behaviour in this case (you can do nothing against
2245     C<SIGSTOP>).
2246    
2247 root 1.82 =head3 Watcher-Specific Functions and Data Members
2248    
2249 root 1.1 =over 4
2250    
2251     =item ev_timer_init (ev_timer *, callback, ev_tstamp after, ev_tstamp repeat)
2252    
2253     =item ev_timer_set (ev_timer *, ev_tstamp after, ev_tstamp repeat)
2254    
2255 root 1.443 Configure the timer to trigger after C<after> seconds (fractional and
2256     negative values are supported). If C<repeat> is C<0.>, then it will
2257     automatically be stopped once the timeout is reached. If it is positive,
2258     then the timer will automatically be configured to trigger again C<repeat>
2259     seconds later, again, and again, until stopped manually.
2260 root 1.157
2261     The timer itself will do a best-effort at avoiding drift, that is, if
2262     you configure a timer to trigger every 10 seconds, then it will normally
2263     trigger at exactly 10 second intervals. If, however, your program cannot
2264     keep up with the timer (because it takes longer than those 10 seconds to
2265     do stuff) the timer will not fire more than once per event loop iteration.
2266 root 1.1
2267 root 1.132 =item ev_timer_again (loop, ev_timer *)
2268 root 1.1
2269 root 1.394 This will act as if the timer timed out, and restarts it again if it is
2270     repeating. It basically works like calling C<ev_timer_stop>, updating the
2271     timeout to the C<repeat> value and calling C<ev_timer_start>.
2272 root 1.1
2273 root 1.395 The exact semantics are as in the following rules, all of which will be
2274 root 1.394 applied to the watcher:
2275 root 1.1
2276 root 1.394 =over 4
2277    
2278     =item If the timer is pending, the pending status is always cleared.
2279    
2280     =item If the timer is started but non-repeating, stop it (as if it timed
2281     out, without invoking it).
2282 root 1.61
2283 root 1.394 =item If the timer is repeating, make the C<repeat> value the new timeout
2284     and start the timer, if necessary.
2285    
2286     =back
2287 root 1.1
2288 root 1.413 This sounds a bit complicated, see L</Be smart about timeouts>, above, for a
2289 root 1.198 usage example.
2290 root 1.183
2291 root 1.275 =item ev_tstamp ev_timer_remaining (loop, ev_timer *)
2292 root 1.258
2293     Returns the remaining time until a timer fires. If the timer is active,
2294     then this time is relative to the current event loop time, otherwise it's
2295     the timeout value currently configured.
2296    
2297     That is, after an C<ev_timer_set (w, 5, 7)>, C<ev_timer_remaining> returns
2298 sf-exg 1.280 C<5>. When the timer is started and one second passes, C<ev_timer_remaining>
2299 root 1.258 will return C<4>. When the timer expires and is restarted, it will return
2300     roughly C<7> (likely slightly less as callback invocation takes some time,
2301     too), and so on.
2302    
2303 root 1.48 =item ev_tstamp repeat [read-write]
2304    
2305     The current C<repeat> value. Will be used each time the watcher times out
2306 root 1.183 or C<ev_timer_again> is called, and determines the next timeout (if any),
2307 root 1.48 which is also when any modifications are taken into account.
2308 root 1.1
2309     =back
2310    
2311 root 1.111 =head3 Examples
2312    
2313 root 1.54 Example: Create a timer that fires after 60 seconds.
2314 root 1.34
2315 root 1.164 static void
2316 root 1.198 one_minute_cb (struct ev_loop *loop, ev_timer *w, int revents)
2317 root 1.164 {
2318     .. one minute over, w is actually stopped right here
2319     }
2320    
2321 root 1.198 ev_timer mytimer;
2322 root 1.164 ev_timer_init (&mytimer, one_minute_cb, 60., 0.);
2323     ev_timer_start (loop, &mytimer);
2324 root 1.34
2325 root 1.54 Example: Create a timeout timer that times out after 10 seconds of
2326 root 1.34 inactivity.
2327    
2328 root 1.164 static void
2329 root 1.198 timeout_cb (struct ev_loop *loop, ev_timer *w, int revents)
2330 root 1.164 {
2331     .. ten seconds without any activity
2332     }
2333    
2334 root 1.198 ev_timer mytimer;
2335 root 1.164 ev_timer_init (&mytimer, timeout_cb, 0., 10.); /* note, only repeat used */
2336     ev_timer_again (&mytimer); /* start timer */
2337 root 1.310 ev_run (loop, 0);
2338 root 1.164
2339     // and in some piece of code that gets executed on any "activity":
2340     // reset the timeout to start ticking again at 10 seconds
2341     ev_timer_again (&mytimer);
2342 root 1.34
2343    
2344 root 1.42 =head2 C<ev_periodic> - to cron or not to cron?
2345 root 1.1
2346     Periodic watchers are also timers of a kind, but they are very versatile
2347     (and unfortunately a bit complex).
2348    
2349 root 1.227 Unlike C<ev_timer>, periodic watchers are not based on real time (or
2350     relative time, the physical time that passes) but on wall clock time
2351 root 1.438 (absolute time, the thing you can read on your calendar or clock). The
2352 root 1.227 difference is that wall clock time can run faster or slower than real
2353     time, and time jumps are not uncommon (e.g. when you adjust your
2354     wrist-watch).
2355    
2356     You can tell a periodic watcher to trigger after some specific point
2357     in time: for example, if you tell a periodic watcher to trigger "in 10
2358     seconds" (by specifying e.g. C<ev_now () + 10.>, that is, an absolute time
2359     not a delay) and then reset your system clock to January of the previous
2360     year, then it will take a year or more to trigger the event (unlike an
2361     C<ev_timer>, which would still trigger roughly 10 seconds after starting
2362     it, as it uses a relative timeout).
2363    
2364     C<ev_periodic> watchers can also be used to implement vastly more complex
2365     timers, such as triggering an event on each "midnight, local time", or
2366 root 1.444 other complicated rules. This cannot easily be done with C<ev_timer>
2367     watchers, as those cannot react to time jumps.
2368 root 1.1
2369 root 1.161 As with timers, the callback is guaranteed to be invoked only when the
2370 root 1.230 point in time where it is supposed to trigger has passed. If multiple
2371     timers become ready during the same loop iteration then the ones with
2372     earlier time-out values are invoked before ones with later time-out values
2373 root 1.310 (but this is no longer true when a callback calls C<ev_run> recursively).
2374 root 1.28
2375 root 1.82 =head3 Watcher-Specific Functions and Data Members
2376    
2377 root 1.1 =over 4
2378    
2379 root 1.227 =item ev_periodic_init (ev_periodic *, callback, ev_tstamp offset, ev_tstamp interval, reschedule_cb)
2380 root 1.1
2381 root 1.227 =item ev_periodic_set (ev_periodic *, ev_tstamp offset, ev_tstamp interval, reschedule_cb)
2382 root 1.1
2383 root 1.227 Lots of arguments, let's sort it out... There are basically three modes of
2384 root 1.183 operation, and we will explain them from simplest to most complex:
2385 root 1.1
2386     =over 4
2387    
2388 root 1.227 =item * absolute timer (offset = absolute time, interval = 0, reschedule_cb = 0)
2389 root 1.1
2390 root 1.161 In this configuration the watcher triggers an event after the wall clock
2391 root 1.227 time C<offset> has passed. It will not repeat and will not adjust when a
2392     time jump occurs, that is, if it is to be run at January 1st 2011 then it
2393     will be stopped and invoked when the system clock reaches or surpasses
2394     this point in time.
2395 root 1.1
2396 root 1.227 =item * repeating interval timer (offset = offset within interval, interval > 0, reschedule_cb = 0)
2397 root 1.1
2398     In this mode the watcher will always be scheduled to time out at the next
2399 root 1.227 C<offset + N * interval> time (for some integer N, which can also be
2400     negative) and then repeat, regardless of any time jumps. The C<offset>
2401     argument is merely an offset into the C<interval> periods.
2402 root 1.1
2403 root 1.183 This can be used to create timers that do not drift with respect to the
2404 root 1.227 system clock, for example, here is an C<ev_periodic> that triggers each
2405     hour, on the hour (with respect to UTC):
2406 root 1.1
2407     ev_periodic_set (&periodic, 0., 3600., 0);
2408    
2409     This doesn't mean there will always be 3600 seconds in between triggers,
2410 root 1.161 but only that the callback will be called when the system time shows a
2411 root 1.12 full hour (UTC), or more correctly, when the system time is evenly divisible
2412 root 1.1 by 3600.
2413    
2414     Another way to think about it (for the mathematically inclined) is that
2415 root 1.10 C<ev_periodic> will try to run the callback in this mode at the next possible
2416 root 1.227 time where C<time = offset (mod interval)>, regardless of any time jumps.
2417 root 1.1
2418 root 1.367 The C<interval> I<MUST> be positive, and for numerical stability, the
2419     interval value should be higher than C<1/8192> (which is around 100
2420     microseconds) and C<offset> should be higher than C<0> and should have
2421     at most a similar magnitude as the current time (say, within a factor of
2422     ten). Typical values for offset are, in fact, C<0> or something between
2423     C<0> and C<interval>, which is also the recommended range.
2424 root 1.78
2425 root 1.161 Note also that there is an upper limit to how often a timer can fire (CPU
2426 root 1.158 speed for example), so if C<interval> is very small then timing stability
2427 root 1.161 will of course deteriorate. Libev itself tries to be exact to be about one
2428 root 1.158 millisecond (if the OS supports it and the machine is fast enough).
2429    
2430 root 1.227 =item * manual reschedule mode (offset ignored, interval ignored, reschedule_cb = callback)
2431 root 1.1
2432 root 1.227 In this mode the values for C<interval> and C<offset> are both being
2433 root 1.1 ignored. Instead, each time the periodic watcher gets scheduled, the
2434     reschedule callback will be called with the watcher as first, and the
2435     current time as second argument.
2436    
2437 root 1.227 NOTE: I<This callback MUST NOT stop or destroy any periodic watcher, ever,
2438     or make ANY other event loop modifications whatsoever, unless explicitly
2439     allowed by documentation here>.
2440 root 1.1
2441 root 1.157 If you need to stop it, return C<now + 1e30> (or so, fudge fudge) and stop
2442     it afterwards (e.g. by starting an C<ev_prepare> watcher, which is the
2443     only event loop modification you are allowed to do).
2444    
2445 root 1.198 The callback prototype is C<ev_tstamp (*reschedule_cb)(ev_periodic
2446 root 1.157 *w, ev_tstamp now)>, e.g.:
2447 root 1.1
2448 root 1.198 static ev_tstamp
2449     my_rescheduler (ev_periodic *w, ev_tstamp now)
2450 root 1.1 {
2451     return now + 60.;
2452     }
2453    
2454     It must return the next time to trigger, based on the passed time value
2455     (that is, the lowest time value larger than to the second argument). It
2456     will usually be called just before the callback will be triggered, but
2457     might be called at other times, too.
2458    
2459 root 1.157 NOTE: I<< This callback must always return a time that is higher than or
2460     equal to the passed C<now> value >>.
2461 root 1.18
2462 root 1.1 This can be used to create very complex timers, such as a timer that
2463 root 1.444 triggers on "next midnight, local time". To do this, you would calculate
2464     the next midnight after C<now> and return the timestamp value for
2465     this. Here is a (completely untested, no error checking) example on how to
2466     do this:
2467    
2468     #include <time.h>
2469    
2470     static ev_tstamp
2471     my_rescheduler (ev_periodic *w, ev_tstamp now)
2472     {
2473     time_t tnow = (time_t)now;
2474     struct tm tm;
2475     localtime_r (&tnow, &tm);
2476    
2477     tm.tm_sec = tm.tm_min = tm.tm_hour = 0; // midnight current day
2478     ++tm.tm_mday; // midnight next day
2479    
2480     return mktime (&tm);
2481     }
2482    
2483     Note: this code might run into trouble on days that have more then two
2484     midnights (beginning and end).
2485 root 1.1
2486     =back
2487    
2488     =item ev_periodic_again (loop, ev_periodic *)
2489    
2490     Simply stops and restarts the periodic watcher again. This is only useful
2491     when you changed some parameters or the reschedule callback would return
2492     a different time than the last time it was called (e.g. in a crond like
2493     program when the crontabs have changed).
2494    
2495 root 1.149 =item ev_tstamp ev_periodic_at (ev_periodic *)
2496    
2497 root 1.227 When active, returns the absolute time that the watcher is supposed
2498     to trigger next. This is not the same as the C<offset> argument to
2499     C<ev_periodic_set>, but indeed works even in interval and manual
2500     rescheduling modes.
2501 root 1.149
2502 root 1.78 =item ev_tstamp offset [read-write]
2503    
2504     When repeating, this contains the offset value, otherwise this is the
2505 root 1.227 absolute point in time (the C<offset> value passed to C<ev_periodic_set>,
2506     although libev might modify this value for better numerical stability).
2507 root 1.78
2508     Can be modified any time, but changes only take effect when the periodic
2509     timer fires or C<ev_periodic_again> is being called.
2510    
2511 root 1.48 =item ev_tstamp interval [read-write]
2512    
2513     The current interval value. Can be modified any time, but changes only
2514     take effect when the periodic timer fires or C<ev_periodic_again> is being
2515     called.
2516    
2517 root 1.198 =item ev_tstamp (*reschedule_cb)(ev_periodic *w, ev_tstamp now) [read-write]
2518 root 1.48
2519     The current reschedule callback, or C<0>, if this functionality is
2520     switched off. Can be changed any time, but changes only take effect when
2521     the periodic timer fires or C<ev_periodic_again> is being called.
2522    
2523 root 1.1 =back
2524    
2525 root 1.111 =head3 Examples
2526    
2527 root 1.54 Example: Call a callback every hour, or, more precisely, whenever the
2528 root 1.183 system time is divisible by 3600. The callback invocation times have
2529 root 1.161 potentially a lot of jitter, but good long-term stability.
2530 root 1.34
2531 root 1.164 static void
2532 root 1.301 clock_cb (struct ev_loop *loop, ev_periodic *w, int revents)
2533 root 1.164 {
2534     ... its now a full hour (UTC, or TAI or whatever your clock follows)
2535     }
2536    
2537 root 1.198 ev_periodic hourly_tick;
2538 root 1.164 ev_periodic_init (&hourly_tick, clock_cb, 0., 3600., 0);
2539     ev_periodic_start (loop, &hourly_tick);
2540 root 1.34
2541 root 1.54 Example: The same as above, but use a reschedule callback to do it:
2542 root 1.34
2543 root 1.164 #include <math.h>
2544 root 1.34
2545 root 1.164 static ev_tstamp
2546 root 1.198 my_scheduler_cb (ev_periodic *w, ev_tstamp now)
2547 root 1.164 {
2548 root 1.183 return now + (3600. - fmod (now, 3600.));
2549 root 1.164 }
2550 root 1.34
2551 root 1.164 ev_periodic_init (&hourly_tick, clock_cb, 0., 0., my_scheduler_cb);
2552 root 1.34
2553 root 1.54 Example: Call a callback every hour, starting now:
2554 root 1.34
2555 root 1.198 ev_periodic hourly_tick;
2556 root 1.164 ev_periodic_init (&hourly_tick, clock_cb,
2557     fmod (ev_now (loop), 3600.), 3600., 0);
2558     ev_periodic_start (loop, &hourly_tick);
2559 root 1.432
2560 root 1.34
2561 root 1.42 =head2 C<ev_signal> - signal me when a signal gets signalled!
2562 root 1.1
2563     Signal watchers will trigger an event when the process receives a specific
2564     signal one or more times. Even though signals are very asynchronous, libev
2565 root 1.340 will try its best to deliver signals synchronously, i.e. as part of the
2566 root 1.1 normal event processing, like any other event.
2567    
2568 root 1.260 If you want signals to be delivered truly asynchronously, just use
2569     C<sigaction> as you would do without libev and forget about sharing
2570     the signal. You can even use C<ev_async> from a signal handler to
2571     synchronously wake up an event loop.
2572    
2573     You can configure as many watchers as you like for the same signal, but
2574     only within the same loop, i.e. you can watch for C<SIGINT> in your
2575     default loop and for C<SIGIO> in another loop, but you cannot watch for
2576     C<SIGINT> in both the default loop and another loop at the same time. At
2577     the moment, C<SIGCHLD> is permanently tied to the default loop.
2578    
2579 root 1.431 Only after the first watcher for a signal is started will libev actually
2580     register something with the kernel. It thus coexists with your own signal
2581     handlers as long as you don't register any with libev for the same signal.
2582 root 1.259
2583 root 1.135 If possible and supported, libev will install its handlers with
2584 root 1.259 C<SA_RESTART> (or equivalent) behaviour enabled, so system calls should
2585     not be unduly interrupted. If you have a problem with system calls getting
2586     interrupted by signals you can block all signals in an C<ev_check> watcher
2587     and unblock them in an C<ev_prepare> watcher.
2588 root 1.135
2589 root 1.277 =head3 The special problem of inheritance over fork/execve/pthread_create
2590 root 1.265
2591     Both the signal mask (C<sigprocmask>) and the signal disposition
2592     (C<sigaction>) are unspecified after starting a signal watcher (and after
2593     stopping it again), that is, libev might or might not block the signal,
2594 root 1.360 and might or might not set or restore the installed signal handler (but
2595     see C<EVFLAG_NOSIGMASK>).
2596 root 1.265
2597     While this does not matter for the signal disposition (libev never
2598     sets signals to C<SIG_IGN>, so handlers will be reset to C<SIG_DFL> on
2599     C<execve>), this matters for the signal mask: many programs do not expect
2600 root 1.266 certain signals to be blocked.
2601 root 1.265
2602     This means that before calling C<exec> (from the child) you should reset
2603     the signal mask to whatever "default" you expect (all clear is a good
2604     choice usually).
2605    
2606 root 1.267 The simplest way to ensure that the signal mask is reset in the child is
2607     to install a fork handler with C<pthread_atfork> that resets it. That will
2608     catch fork calls done by libraries (such as the libc) as well.
2609    
2610 root 1.277 In current versions of libev, the signal will not be blocked indefinitely
2611     unless you use the C<signalfd> API (C<EV_SIGNALFD>). While this reduces
2612     the window of opportunity for problems, it will not go away, as libev
2613     I<has> to modify the signal mask, at least temporarily.
2614    
2615 root 1.278 So I can't stress this enough: I<If you do not reset your signal mask when
2616     you expect it to be empty, you have a race condition in your code>. This
2617     is not a libev-specific thing, this is true for most event libraries.
2618 root 1.266
2619 root 1.349 =head3 The special problem of threads signal handling
2620    
2621     POSIX threads has problematic signal handling semantics, specifically,
2622     a lot of functionality (sigfd, sigwait etc.) only really works if all
2623     threads in a process block signals, which is hard to achieve.
2624    
2625     When you want to use sigwait (or mix libev signal handling with your own
2626     for the same signals), you can tackle this problem by globally blocking
2627     all signals before creating any threads (or creating them with a fully set
2628     sigprocmask) and also specifying the C<EVFLAG_NOSIGMASK> when creating
2629     loops. Then designate one thread as "signal receiver thread" which handles
2630     these signals. You can pass on any signals that libev might be interested
2631     in by calling C<ev_feed_signal>.
2632    
2633 root 1.82 =head3 Watcher-Specific Functions and Data Members
2634    
2635 root 1.1 =over 4
2636    
2637     =item ev_signal_init (ev_signal *, callback, int signum)
2638    
2639     =item ev_signal_set (ev_signal *, int signum)
2640    
2641     Configures the watcher to trigger on the given signal number (usually one
2642     of the C<SIGxxx> constants).
2643    
2644 root 1.48 =item int signum [read-only]
2645    
2646     The signal the watcher watches out for.
2647    
2648 root 1.1 =back
2649    
2650 root 1.132 =head3 Examples
2651    
2652 root 1.188 Example: Try to exit cleanly on SIGINT.
2653 root 1.132
2654 root 1.164 static void
2655 root 1.198 sigint_cb (struct ev_loop *loop, ev_signal *w, int revents)
2656 root 1.164 {
2657 root 1.310 ev_break (loop, EVBREAK_ALL);
2658 root 1.164 }
2659    
2660 root 1.198 ev_signal signal_watcher;
2661 root 1.164 ev_signal_init (&signal_watcher, sigint_cb, SIGINT);
2662 root 1.188 ev_signal_start (loop, &signal_watcher);
2663 root 1.132
2664 root 1.35
2665 root 1.42 =head2 C<ev_child> - watch out for process status changes
2666 root 1.1
2667     Child watchers trigger when your process receives a SIGCHLD in response to
2668 root 1.183 some child status changes (most typically when a child of yours dies or
2669     exits). It is permissible to install a child watcher I<after> the child
2670     has been forked (which implies it might have already exited), as long
2671     as the event loop isn't entered (or is continued from a watcher), i.e.,
2672     forking and then immediately registering a watcher for the child is fine,
2673 root 1.244 but forking and registering a watcher a few event loop iterations later or
2674     in the next callback invocation is not.
2675 root 1.134
2676     Only the default event loop is capable of handling signals, and therefore
2677 root 1.161 you can only register child watchers in the default event loop.
2678 root 1.134
2679 root 1.248 Due to some design glitches inside libev, child watchers will always be
2680 root 1.249 handled at maximum priority (their priority is set to C<EV_MAXPRI> by
2681     libev)
2682 root 1.248
2683 root 1.134 =head3 Process Interaction
2684    
2685     Libev grabs C<SIGCHLD> as soon as the default event loop is
2686 root 1.259 initialised. This is necessary to guarantee proper behaviour even if the
2687     first child watcher is started after the child exits. The occurrence
2688 root 1.134 of C<SIGCHLD> is recorded asynchronously, but child reaping is done
2689     synchronously as part of the event loop processing. Libev always reaps all
2690     children, even ones not watched.
2691    
2692     =head3 Overriding the Built-In Processing
2693    
2694     Libev offers no special support for overriding the built-in child
2695     processing, but if your application collides with libev's default child
2696     handler, you can override it easily by installing your own handler for
2697     C<SIGCHLD> after initialising the default loop, and making sure the
2698     default loop never gets destroyed. You are encouraged, however, to use an
2699     event-based approach to child reaping and thus use libev's support for
2700     that, so other libev users can use C<ev_child> watchers freely.
2701 root 1.1
2702 root 1.173 =head3 Stopping the Child Watcher
2703    
2704     Currently, the child watcher never gets stopped, even when the
2705     child terminates, so normally one needs to stop the watcher in the
2706     callback. Future versions of libev might stop the watcher automatically
2707 root 1.259 when a child exit is detected (calling C<ev_child_stop> twice is not a
2708     problem).
2709 root 1.173
2710 root 1.82 =head3 Watcher-Specific Functions and Data Members
2711    
2712 root 1.1 =over 4
2713    
2714 root 1.120 =item ev_child_init (ev_child *, callback, int pid, int trace)
2715 root 1.1
2716 root 1.120 =item ev_child_set (ev_child *, int pid, int trace)
2717 root 1.1
2718     Configures the watcher to wait for status changes of process C<pid> (or
2719     I<any> process if C<pid> is specified as C<0>). The callback can look
2720     at the C<rstatus> member of the C<ev_child> watcher structure to see
2721 root 1.14 the status word (use the macros from C<sys/wait.h> and see your systems
2722     C<waitpid> documentation). The C<rpid> member contains the pid of the
2723 root 1.120 process causing the status change. C<trace> must be either C<0> (only
2724     activate the watcher when the process terminates) or C<1> (additionally
2725     activate the watcher when the process is stopped or continued).
2726 root 1.1
2727 root 1.48 =item int pid [read-only]
2728    
2729     The process id this watcher watches out for, or C<0>, meaning any process id.
2730    
2731     =item int rpid [read-write]
2732    
2733     The process id that detected a status change.
2734    
2735     =item int rstatus [read-write]
2736    
2737     The process exit/trace status caused by C<rpid> (see your systems
2738     C<waitpid> and C<sys/wait.h> documentation for details).
2739    
2740 root 1.1 =back
2741    
2742 root 1.134 =head3 Examples
2743    
2744     Example: C<fork()> a new process and install a child handler to wait for
2745     its completion.
2746    
2747 root 1.164 ev_child cw;
2748    
2749     static void
2750 root 1.198 child_cb (EV_P_ ev_child *w, int revents)
2751 root 1.164 {
2752     ev_child_stop (EV_A_ w);
2753     printf ("process %d exited with status %x\n", w->rpid, w->rstatus);
2754     }
2755    
2756     pid_t pid = fork ();
2757 root 1.134
2758 root 1.164 if (pid < 0)
2759     // error
2760     else if (pid == 0)
2761     {
2762     // the forked child executes here
2763     exit (1);
2764     }
2765     else
2766     {
2767     ev_child_init (&cw, child_cb, pid, 0);
2768     ev_child_start (EV_DEFAULT_ &cw);
2769     }
2770 root 1.134
2771 root 1.34
2772 root 1.48 =head2 C<ev_stat> - did the file attributes just change?
2773    
2774 root 1.161 This watches a file system path for attribute changes. That is, it calls
2775 root 1.207 C<stat> on that path in regular intervals (or when the OS says it changed)
2776 root 1.425 and sees if it changed compared to the last time, invoking the callback
2777     if it did. Starting the watcher C<stat>'s the file, so only changes that
2778     happen after the watcher has been started will be reported.
2779 root 1.48
2780     The path does not need to exist: changing from "path exists" to "path does
2781 root 1.211 not exist" is a status change like any other. The condition "path does not
2782     exist" (or more correctly "path cannot be stat'ed") is signified by the
2783     C<st_nlink> field being zero (which is otherwise always forced to be at
2784     least one) and all the other fields of the stat buffer having unspecified
2785     contents.
2786 root 1.48
2787 root 1.207 The path I<must not> end in a slash or contain special components such as
2788     C<.> or C<..>. The path I<should> be absolute: If it is relative and
2789     your working directory changes, then the behaviour is undefined.
2790    
2791     Since there is no portable change notification interface available, the
2792     portable implementation simply calls C<stat(2)> regularly on the path
2793     to see if it changed somehow. You can specify a recommended polling
2794     interval for this case. If you specify a polling interval of C<0> (highly
2795     recommended!) then a I<suitable, unspecified default> value will be used
2796     (which you can expect to be around five seconds, although this might
2797     change dynamically). Libev will also impose a minimum interval which is
2798 root 1.208 currently around C<0.1>, but that's usually overkill.
2799 root 1.48
2800     This watcher type is not meant for massive numbers of stat watchers,
2801     as even with OS-supported change notifications, this can be
2802     resource-intensive.
2803    
2804 root 1.183 At the time of this writing, the only OS-specific interface implemented
2805 root 1.211 is the Linux inotify interface (implementing kqueue support is left as an
2806     exercise for the reader. Note, however, that the author sees no way of
2807     implementing C<ev_stat> semantics with kqueue, except as a hint).
2808 root 1.48
2809 root 1.137 =head3 ABI Issues (Largefile Support)
2810    
2811     Libev by default (unless the user overrides this) uses the default
2812 root 1.169 compilation environment, which means that on systems with large file
2813     support disabled by default, you get the 32 bit version of the stat
2814 root 1.137 structure. When using the library from programs that change the ABI to
2815     use 64 bit file offsets the programs will fail. In that case you have to
2816     compile libev with the same flags to get binary compatibility. This is
2817     obviously the case with any flags that change the ABI, but the problem is
2818 root 1.207 most noticeably displayed with ev_stat and large file support.
2819 root 1.169
2820     The solution for this is to lobby your distribution maker to make large
2821     file interfaces available by default (as e.g. FreeBSD does) and not
2822     optional. Libev cannot simply switch on large file support because it has
2823     to exchange stat structures with application programs compiled using the
2824     default compilation environment.
2825 root 1.137
2826 root 1.183 =head3 Inotify and Kqueue
2827 root 1.108
2828 root 1.211 When C<inotify (7)> support has been compiled into libev and present at
2829     runtime, it will be used to speed up change detection where possible. The
2830     inotify descriptor will be created lazily when the first C<ev_stat>
2831     watcher is being started.
2832 root 1.108
2833 root 1.147 Inotify presence does not change the semantics of C<ev_stat> watchers
2834 root 1.108 except that changes might be detected earlier, and in some cases, to avoid
2835 root 1.147 making regular C<stat> calls. Even in the presence of inotify support
2836 root 1.183 there are many cases where libev has to resort to regular C<stat> polling,
2837 root 1.211 but as long as kernel 2.6.25 or newer is used (2.6.24 and older have too
2838     many bugs), the path exists (i.e. stat succeeds), and the path resides on
2839     a local filesystem (libev currently assumes only ext2/3, jfs, reiserfs and
2840     xfs are fully working) libev usually gets away without polling.
2841 root 1.108
2842 root 1.183 There is no support for kqueue, as apparently it cannot be used to
2843 root 1.108 implement this functionality, due to the requirement of having a file
2844 root 1.183 descriptor open on the object at all times, and detecting renames, unlinks
2845     etc. is difficult.
2846 root 1.108
2847 root 1.212 =head3 C<stat ()> is a synchronous operation
2848    
2849     Libev doesn't normally do any kind of I/O itself, and so is not blocking
2850     the process. The exception are C<ev_stat> watchers - those call C<stat
2851     ()>, which is a synchronous operation.
2852    
2853     For local paths, this usually doesn't matter: unless the system is very
2854     busy or the intervals between stat's are large, a stat call will be fast,
2855 root 1.222 as the path data is usually in memory already (except when starting the
2856 root 1.212 watcher).
2857    
2858     For networked file systems, calling C<stat ()> can block an indefinite
2859     time due to network issues, and even under good conditions, a stat call
2860     often takes multiple milliseconds.
2861    
2862     Therefore, it is best to avoid using C<ev_stat> watchers on networked
2863     paths, although this is fully supported by libev.
2864    
2865 root 1.107 =head3 The special problem of stat time resolution
2866    
2867 root 1.207 The C<stat ()> system call only supports full-second resolution portably,
2868     and even on systems where the resolution is higher, most file systems
2869     still only support whole seconds.
2870 root 1.107
2871 root 1.150 That means that, if the time is the only thing that changes, you can
2872     easily miss updates: on the first update, C<ev_stat> detects a change and
2873     calls your callback, which does something. When there is another update
2874 root 1.183 within the same second, C<ev_stat> will be unable to detect unless the
2875     stat data does change in other ways (e.g. file size).
2876 root 1.150
2877     The solution to this is to delay acting on a change for slightly more
2878 root 1.155 than a second (or till slightly after the next full second boundary), using
2879 root 1.150 a roughly one-second-delay C<ev_timer> (e.g. C<ev_timer_set (w, 0., 1.02);
2880     ev_timer_again (loop, w)>).
2881    
2882     The C<.02> offset is added to work around small timing inconsistencies
2883     of some operating systems (where the second counter of the current time
2884     might be be delayed. One such system is the Linux kernel, where a call to
2885     C<gettimeofday> might return a timestamp with a full second later than
2886     a subsequent C<time> call - if the equivalent of C<time ()> is used to
2887     update file times then there will be a small window where the kernel uses
2888     the previous second to update file times but libev might already execute
2889     the timer callback).
2890 root 1.107
2891 root 1.82 =head3 Watcher-Specific Functions and Data Members
2892    
2893 root 1.48 =over 4
2894    
2895     =item ev_stat_init (ev_stat *, callback, const char *path, ev_tstamp interval)
2896    
2897     =item ev_stat_set (ev_stat *, const char *path, ev_tstamp interval)
2898    
2899     Configures the watcher to wait for status changes of the given
2900     C<path>. The C<interval> is a hint on how quickly a change is expected to
2901     be detected and should normally be specified as C<0> to let libev choose
2902     a suitable value. The memory pointed to by C<path> must point to the same
2903     path for as long as the watcher is active.
2904    
2905 root 1.183 The callback will receive an C<EV_STAT> event when a change was detected,
2906     relative to the attributes at the time the watcher was started (or the
2907     last change was detected).
2908 root 1.48
2909 root 1.132 =item ev_stat_stat (loop, ev_stat *)
2910 root 1.48
2911     Updates the stat buffer immediately with new values. If you change the
2912 root 1.150 watched path in your callback, you could call this function to avoid
2913     detecting this change (while introducing a race condition if you are not
2914     the only one changing the path). Can also be useful simply to find out the
2915     new values.
2916 root 1.48
2917     =item ev_statdata attr [read-only]
2918    
2919 root 1.150 The most-recently detected attributes of the file. Although the type is
2920 root 1.48 C<ev_statdata>, this is usually the (or one of the) C<struct stat> types
2921 root 1.150 suitable for your system, but you can only rely on the POSIX-standardised
2922     members to be present. If the C<st_nlink> member is C<0>, then there was
2923     some error while C<stat>ing the file.
2924 root 1.48
2925     =item ev_statdata prev [read-only]
2926    
2927     The previous attributes of the file. The callback gets invoked whenever
2928 root 1.150 C<prev> != C<attr>, or, more precisely, one or more of these members
2929     differ: C<st_dev>, C<st_ino>, C<st_mode>, C<st_nlink>, C<st_uid>,
2930     C<st_gid>, C<st_rdev>, C<st_size>, C<st_atime>, C<st_mtime>, C<st_ctime>.
2931 root 1.48
2932     =item ev_tstamp interval [read-only]
2933    
2934     The specified interval.
2935    
2936     =item const char *path [read-only]
2937    
2938 root 1.161 The file system path that is being watched.
2939 root 1.48
2940     =back
2941    
2942 root 1.108 =head3 Examples
2943    
2944 root 1.48 Example: Watch C</etc/passwd> for attribute changes.
2945    
2946 root 1.164 static void
2947     passwd_cb (struct ev_loop *loop, ev_stat *w, int revents)
2948     {
2949     /* /etc/passwd changed in some way */
2950     if (w->attr.st_nlink)
2951     {
2952     printf ("passwd current size %ld\n", (long)w->attr.st_size);
2953     printf ("passwd current atime %ld\n", (long)w->attr.st_mtime);
2954     printf ("passwd current mtime %ld\n", (long)w->attr.st_mtime);
2955     }
2956     else
2957     /* you shalt not abuse printf for puts */
2958     puts ("wow, /etc/passwd is not there, expect problems. "
2959     "if this is windows, they already arrived\n");
2960     }
2961 root 1.48
2962 root 1.164 ...
2963     ev_stat passwd;
2964 root 1.48
2965 root 1.164 ev_stat_init (&passwd, passwd_cb, "/etc/passwd", 0.);
2966     ev_stat_start (loop, &passwd);
2967 root 1.107
2968     Example: Like above, but additionally use a one-second delay so we do not
2969     miss updates (however, frequent updates will delay processing, too, so
2970     one might do the work both on C<ev_stat> callback invocation I<and> on
2971     C<ev_timer> callback invocation).
2972    
2973 root 1.164 static ev_stat passwd;
2974     static ev_timer timer;
2975 root 1.107
2976 root 1.164 static void
2977     timer_cb (EV_P_ ev_timer *w, int revents)
2978     {
2979     ev_timer_stop (EV_A_ w);
2980    
2981     /* now it's one second after the most recent passwd change */
2982     }
2983    
2984     static void
2985     stat_cb (EV_P_ ev_stat *w, int revents)
2986     {
2987     /* reset the one-second timer */
2988     ev_timer_again (EV_A_ &timer);
2989     }
2990    
2991     ...
2992     ev_stat_init (&passwd, stat_cb, "/etc/passwd", 0.);
2993     ev_stat_start (loop, &passwd);
2994     ev_timer_init (&timer, timer_cb, 0., 1.02);
2995 root 1.48
2996    
2997 root 1.42 =head2 C<ev_idle> - when you've got nothing better to do...
2998 root 1.1
2999 root 1.67 Idle watchers trigger events when no other events of the same or higher
3000 root 1.183 priority are pending (prepare, check and other idle watchers do not count
3001     as receiving "events").
3002 root 1.67
3003     That is, as long as your process is busy handling sockets or timeouts
3004     (or even signals, imagine) of the same or higher priority it will not be
3005     triggered. But when your process is idle (or only lower-priority watchers
3006     are pending), the idle watchers are being called once per event loop
3007     iteration - until stopped, that is, or your process receives more events
3008     and becomes busy again with higher priority stuff.
3009 root 1.1
3010     The most noteworthy effect is that as long as any idle watchers are
3011     active, the process will not block when waiting for new events.
3012    
3013     Apart from keeping your process non-blocking (which is a useful
3014     effect on its own sometimes), idle watchers are a good place to do
3015     "pseudo-background processing", or delay processing stuff to after the
3016     event loop has handled all outstanding events.
3017    
3018 root 1.406 =head3 Abusing an C<ev_idle> watcher for its side-effect
3019    
3020     As long as there is at least one active idle watcher, libev will never
3021     sleep unnecessarily. Or in other words, it will loop as fast as possible.
3022     For this to work, the idle watcher doesn't need to be invoked at all - the
3023     lowest priority will do.
3024    
3025     This mode of operation can be useful together with an C<ev_check> watcher,
3026     to do something on each event loop iteration - for example to balance load
3027     between different connections.
3028    
3029 root 1.415 See L</Abusing an ev_check watcher for its side-effect> for a longer
3030 root 1.406 example.
3031    
3032 root 1.82 =head3 Watcher-Specific Functions and Data Members
3033    
3034 root 1.1 =over 4
3035    
3036 root 1.226 =item ev_idle_init (ev_idle *, callback)
3037 root 1.1
3038     Initialises and configures the idle watcher - it has no parameters of any
3039     kind. There is a C<ev_idle_set> macro, but using it is utterly pointless,
3040     believe me.
3041    
3042     =back
3043    
3044 root 1.111 =head3 Examples
3045    
3046 root 1.54 Example: Dynamically allocate an C<ev_idle> watcher, start it, and in the
3047     callback, free it. Also, use no error checking, as usual.
3048 root 1.34
3049 root 1.164 static void
3050 root 1.198 idle_cb (struct ev_loop *loop, ev_idle *w, int revents)
3051 root 1.164 {
3052 root 1.407 // stop the watcher
3053     ev_idle_stop (loop, w);
3054    
3055     // now we can free it
3056 root 1.164 free (w);
3057 root 1.407
3058 root 1.164 // now do something you wanted to do when the program has
3059     // no longer anything immediate to do.
3060     }
3061    
3062 root 1.198 ev_idle *idle_watcher = malloc (sizeof (ev_idle));
3063 root 1.164 ev_idle_init (idle_watcher, idle_cb);
3064 root 1.242 ev_idle_start (loop, idle_watcher);
3065 root 1.34
3066    
3067 root 1.42 =head2 C<ev_prepare> and C<ev_check> - customise your event loop!
3068 root 1.1
3069 root 1.406 Prepare and check watchers are often (but not always) used in pairs:
3070 root 1.20 prepare watchers get invoked before the process blocks and check watchers
3071 root 1.14 afterwards.
3072 root 1.1
3073 root 1.433 You I<must not> call C<ev_run> (or similar functions that enter the
3074     current event loop) or C<ev_loop_fork> from either C<ev_prepare> or
3075     C<ev_check> watchers. Other loops than the current one are fine,
3076     however. The rationale behind this is that you do not need to check
3077     for recursion in those watchers, i.e. the sequence will always be
3078     C<ev_prepare>, blocking, C<ev_check> so if you have one watcher of each
3079     kind they will always be called in pairs bracketing the blocking call.
3080 root 1.45
3081 root 1.35 Their main purpose is to integrate other event mechanisms into libev and
3082 root 1.183 their use is somewhat advanced. They could be used, for example, to track
3083 root 1.35 variable changes, implement your own watchers, integrate net-snmp or a
3084 root 1.45 coroutine library and lots more. They are also occasionally useful if
3085     you cache some data and want to flush it before blocking (for example,
3086     in X programs you might want to do an C<XFlush ()> in an C<ev_prepare>
3087     watcher).
3088 root 1.1
3089 root 1.183 This is done by examining in each prepare call which file descriptors
3090     need to be watched by the other library, registering C<ev_io> watchers
3091     for them and starting an C<ev_timer> watcher for any timeouts (many
3092     libraries provide exactly this functionality). Then, in the check watcher,
3093     you check for any events that occurred (by checking the pending status
3094     of all watchers and stopping them) and call back into the library. The
3095     I/O and timer callbacks will never actually be called (but must be valid
3096     nevertheless, because you never know, you know?).
3097 root 1.1
3098 root 1.14 As another example, the Perl Coro module uses these hooks to integrate
3099 root 1.1 coroutines into libev programs, by yielding to other active coroutines
3100     during each prepare and only letting the process block if no coroutines
3101 root 1.20 are ready to run (it's actually more complicated: it only runs coroutines
3102     with priority higher than or equal to the event loop and one coroutine
3103     of lower priority, but only once, using idle watchers to keep the event
3104     loop from blocking if lower-priority coroutines are active, thus mapping
3105     low-priority coroutines to idle/background tasks).
3106 root 1.1
3107 root 1.406 When used for this purpose, it is recommended to give C<ev_check> watchers
3108     highest (C<EV_MAXPRI>) priority, to ensure that they are being run before
3109     any other watchers after the poll (this doesn't matter for C<ev_prepare>
3110     watchers).
3111 root 1.183
3112     Also, C<ev_check> watchers (and C<ev_prepare> watchers, too) should not
3113     activate ("feed") events into libev. While libev fully supports this, they
3114     might get executed before other C<ev_check> watchers did their job. As
3115     C<ev_check> watchers are often used to embed other (non-libev) event
3116     loops those other event loops might be in an unusable state until their
3117     C<ev_check> watcher ran (always remind yourself to coexist peacefully with
3118     others).
3119 root 1.77
3120 root 1.406 =head3 Abusing an C<ev_check> watcher for its side-effect
3121    
3122     C<ev_check> (and less often also C<ev_prepare>) watchers can also be
3123     useful because they are called once per event loop iteration. For
3124     example, if you want to handle a large number of connections fairly, you
3125     normally only do a bit of work for each active connection, and if there
3126     is more work to do, you wait for the next event loop iteration, so other
3127     connections have a chance of making progress.
3128    
3129     Using an C<ev_check> watcher is almost enough: it will be called on the
3130     next event loop iteration. However, that isn't as soon as possible -
3131     without external events, your C<ev_check> watcher will not be invoked.
3132    
3133     This is where C<ev_idle> watchers come in handy - all you need is a
3134     single global idle watcher that is active as long as you have one active
3135     C<ev_check> watcher. The C<ev_idle> watcher makes sure the event loop
3136     will not sleep, and the C<ev_check> watcher makes sure a callback gets
3137     invoked. Neither watcher alone can do that.
3138    
3139 root 1.82 =head3 Watcher-Specific Functions and Data Members
3140    
3141 root 1.1 =over 4
3142    
3143     =item ev_prepare_init (ev_prepare *, callback)
3144    
3145     =item ev_check_init (ev_check *, callback)
3146    
3147     Initialises and configures the prepare or check watcher - they have no
3148     parameters of any kind. There are C<ev_prepare_set> and C<ev_check_set>
3149 root 1.183 macros, but using them is utterly, utterly, utterly and completely
3150     pointless.
3151 root 1.1
3152     =back
3153    
3154 root 1.111 =head3 Examples
3155    
3156 root 1.76 There are a number of principal ways to embed other event loops or modules
3157     into libev. Here are some ideas on how to include libadns into libev
3158     (there is a Perl module named C<EV::ADNS> that does this, which you could
3159 root 1.150 use as a working example. Another Perl module named C<EV::Glib> embeds a
3160     Glib main context into libev, and finally, C<Glib::EV> embeds EV into the
3161     Glib event loop).
3162 root 1.76
3163     Method 1: Add IO watchers and a timeout watcher in a prepare handler,
3164     and in a check watcher, destroy them and call into libadns. What follows
3165     is pseudo-code only of course. This requires you to either use a low
3166     priority for the check watcher or use C<ev_clear_pending> explicitly, as
3167     the callbacks for the IO/timeout watchers might not have been called yet.
3168 root 1.45
3169 root 1.164 static ev_io iow [nfd];
3170     static ev_timer tw;
3171 root 1.45
3172 root 1.164 static void
3173 root 1.198 io_cb (struct ev_loop *loop, ev_io *w, int revents)
3174 root 1.164 {
3175     }
3176 root 1.45
3177 root 1.164 // create io watchers for each fd and a timer before blocking
3178     static void
3179 root 1.198 adns_prepare_cb (struct ev_loop *loop, ev_prepare *w, int revents)
3180 root 1.164 {
3181     int timeout = 3600000;
3182     struct pollfd fds [nfd];
3183     // actual code will need to loop here and realloc etc.
3184     adns_beforepoll (ads, fds, &nfd, &timeout, timeval_from (ev_time ()));
3185    
3186     /* the callback is illegal, but won't be called as we stop during check */
3187 root 1.243 ev_timer_init (&tw, 0, timeout * 1e-3, 0.);
3188 root 1.164 ev_timer_start (loop, &tw);
3189    
3190     // create one ev_io per pollfd
3191     for (int i = 0; i < nfd; ++i)
3192     {
3193     ev_io_init (iow + i, io_cb, fds [i].fd,
3194     ((fds [i].events & POLLIN ? EV_READ : 0)
3195     | (fds [i].events & POLLOUT ? EV_WRITE : 0)));
3196    
3197     fds [i].revents = 0;
3198     ev_io_start (loop, iow + i);
3199     }
3200     }
3201    
3202     // stop all watchers after blocking
3203     static void
3204 root 1.198 adns_check_cb (struct ev_loop *loop, ev_check *w, int revents)
3205 root 1.164 {
3206     ev_timer_stop (loop, &tw);
3207    
3208     for (int i = 0; i < nfd; ++i)
3209     {
3210     // set the relevant poll flags
3211     // could also call adns_processreadable etc. here
3212     struct pollfd *fd = fds + i;
3213     int revents = ev_clear_pending (iow + i);
3214     if (revents & EV_READ ) fd->revents |= fd->events & POLLIN;
3215     if (revents & EV_WRITE) fd->revents |= fd->events & POLLOUT;
3216    
3217     // now stop the watcher
3218     ev_io_stop (loop, iow + i);
3219     }
3220    
3221     adns_afterpoll (adns, fds, nfd, timeval_from (ev_now (loop));
3222     }
3223 root 1.34
3224 root 1.76 Method 2: This would be just like method 1, but you run C<adns_afterpoll>
3225     in the prepare watcher and would dispose of the check watcher.
3226    
3227     Method 3: If the module to be embedded supports explicit event
3228 root 1.161 notification (libadns does), you can also make use of the actual watcher
3229 root 1.76 callbacks, and only destroy/create the watchers in the prepare watcher.
3230    
3231 root 1.164 static void
3232     timer_cb (EV_P_ ev_timer *w, int revents)
3233     {
3234     adns_state ads = (adns_state)w->data;
3235     update_now (EV_A);
3236    
3237     adns_processtimeouts (ads, &tv_now);
3238     }
3239    
3240     static void
3241     io_cb (EV_P_ ev_io *w, int revents)
3242     {
3243     adns_state ads = (adns_state)w->data;
3244     update_now (EV_A);
3245    
3246     if (revents & EV_READ ) adns_processreadable (ads, w->fd, &tv_now);
3247     if (revents & EV_WRITE) adns_processwriteable (ads, w->fd, &tv_now);
3248     }
3249 root 1.76
3250 root 1.164 // do not ever call adns_afterpoll
3251 root 1.76
3252     Method 4: Do not use a prepare or check watcher because the module you
3253 root 1.183 want to embed is not flexible enough to support it. Instead, you can
3254     override their poll function. The drawback with this solution is that the
3255     main loop is now no longer controllable by EV. The C<Glib::EV> module uses
3256     this approach, effectively embedding EV as a client into the horrible
3257     libglib event loop.
3258 root 1.76
3259 root 1.164 static gint
3260     event_poll_func (GPollFD *fds, guint nfds, gint timeout)
3261     {
3262     int got_events = 0;
3263    
3264     for (n = 0; n < nfds; ++n)
3265     // create/start io watcher that sets the relevant bits in fds[n] and increment got_events
3266    
3267     if (timeout >= 0)
3268     // create/start timer
3269    
3270     // poll
3271 root 1.310 ev_run (EV_A_ 0);
3272 root 1.76
3273 root 1.164 // stop timer again
3274     if (timeout >= 0)
3275     ev_timer_stop (EV_A_ &to);
3276    
3277     // stop io watchers again - their callbacks should have set
3278     for (n = 0; n < nfds; ++n)
3279     ev_io_stop (EV_A_ iow [n]);
3280    
3281     return got_events;
3282     }
3283 root 1.76
3284 root 1.34
3285 root 1.42 =head2 C<ev_embed> - when one backend isn't enough...
3286 root 1.35
3287     This is a rather advanced watcher type that lets you embed one event loop
3288 root 1.36 into another (currently only C<ev_io> events are supported in the embedded
3289     loop, other types of watchers might be handled in a delayed or incorrect
3290 root 1.100 fashion and must not be used).
3291 root 1.35
3292     There are primarily two reasons you would want that: work around bugs and
3293     prioritise I/O.
3294    
3295     As an example for a bug workaround, the kqueue backend might only support
3296     sockets on some platform, so it is unusable as generic backend, but you
3297     still want to make use of it because you have many sockets and it scales
3298 root 1.183 so nicely. In this case, you would create a kqueue-based loop and embed
3299     it into your default loop (which might use e.g. poll). Overall operation
3300     will be a bit slower because first libev has to call C<poll> and then
3301     C<kevent>, but at least you can use both mechanisms for what they are
3302     best: C<kqueue> for scalable sockets and C<poll> if you want it to work :)
3303    
3304     As for prioritising I/O: under rare circumstances you have the case where
3305     some fds have to be watched and handled very quickly (with low latency),
3306     and even priorities and idle watchers might have too much overhead. In
3307     this case you would put all the high priority stuff in one loop and all
3308     the rest in a second one, and embed the second one in the first.
3309 root 1.35
3310 root 1.223 As long as the watcher is active, the callback will be invoked every
3311     time there might be events pending in the embedded loop. The callback
3312     must then call C<ev_embed_sweep (mainloop, watcher)> to make a single
3313     sweep and invoke their callbacks (the callback doesn't need to invoke the
3314     C<ev_embed_sweep> function directly, it could also start an idle watcher
3315     to give the embedded loop strictly lower priority for example).
3316    
3317     You can also set the callback to C<0>, in which case the embed watcher
3318     will automatically execute the embedded loop sweep whenever necessary.
3319    
3320     Fork detection will be handled transparently while the C<ev_embed> watcher
3321     is active, i.e., the embedded loop will automatically be forked when the
3322     embedding loop forks. In other cases, the user is responsible for calling
3323     C<ev_loop_fork> on the embedded loop.
3324 root 1.35
3325 root 1.184 Unfortunately, not all backends are embeddable: only the ones returned by
3326 root 1.35 C<ev_embeddable_backends> are, which, unfortunately, does not include any
3327     portable one.
3328    
3329     So when you want to use this feature you will always have to be prepared
3330     that you cannot get an embeddable loop. The recommended way to get around
3331     this is to have a separate variables for your embeddable loop, try to
3332 root 1.111 create it, and if that fails, use the normal loop for everything.
3333 root 1.35
3334 root 1.187 =head3 C<ev_embed> and fork
3335    
3336     While the C<ev_embed> watcher is running, forks in the embedding loop will
3337     automatically be applied to the embedded loop as well, so no special
3338     fork handling is required in that case. When the watcher is not running,
3339     however, it is still the task of the libev user to call C<ev_loop_fork ()>
3340     as applicable.
3341    
3342 root 1.82 =head3 Watcher-Specific Functions and Data Members
3343    
3344 root 1.35 =over 4
3345    
3346 root 1.36 =item ev_embed_init (ev_embed *, callback, struct ev_loop *embedded_loop)
3347    
3348 root 1.424 =item ev_embed_set (ev_embed *, struct ev_loop *embedded_loop)
3349 root 1.36
3350     Configures the watcher to embed the given loop, which must be
3351     embeddable. If the callback is C<0>, then C<ev_embed_sweep> will be
3352     invoked automatically, otherwise it is the responsibility of the callback
3353     to invoke it (it will continue to be called until the sweep has been done,
3354 root 1.161 if you do not want that, you need to temporarily stop the embed watcher).
3355 root 1.35
3356 root 1.36 =item ev_embed_sweep (loop, ev_embed *)
3357 root 1.35
3358 root 1.36 Make a single, non-blocking sweep over the embedded loop. This works
3359 root 1.310 similarly to C<ev_run (embedded_loop, EVRUN_NOWAIT)>, but in the most
3360 root 1.161 appropriate way for embedded loops.
3361 root 1.35
3362 root 1.91 =item struct ev_loop *other [read-only]
3363 root 1.48
3364     The embedded event loop.
3365    
3366 root 1.35 =back
3367    
3368 root 1.111 =head3 Examples
3369    
3370     Example: Try to get an embeddable event loop and embed it into the default
3371     event loop. If that is not possible, use the default loop. The default
3372 root 1.161 loop is stored in C<loop_hi>, while the embeddable loop is stored in
3373     C<loop_lo> (which is C<loop_hi> in the case no embeddable loop can be
3374 root 1.111 used).
3375    
3376 root 1.164 struct ev_loop *loop_hi = ev_default_init (0);
3377     struct ev_loop *loop_lo = 0;
3378 root 1.198 ev_embed embed;
3379 root 1.432
3380 root 1.164 // see if there is a chance of getting one that works
3381     // (remember that a flags value of 0 means autodetection)
3382     loop_lo = ev_embeddable_backends () & ev_recommended_backends ()
3383     ? ev_loop_new (ev_embeddable_backends () & ev_recommended_backends ())
3384     : 0;
3385    
3386     // if we got one, then embed it, otherwise default to loop_hi
3387     if (loop_lo)
3388     {
3389     ev_embed_init (&embed, 0, loop_lo);
3390     ev_embed_start (loop_hi, &embed);
3391     }
3392     else
3393     loop_lo = loop_hi;
3394 root 1.111
3395     Example: Check if kqueue is available but not recommended and create
3396     a kqueue backend for use with sockets (which usually work with any
3397     kqueue implementation). Store the kqueue/socket-only event loop in
3398     C<loop_socket>. (One might optionally use C<EVFLAG_NOENV>, too).
3399    
3400 root 1.164 struct ev_loop *loop = ev_default_init (0);
3401     struct ev_loop *loop_socket = 0;
3402 root 1.198 ev_embed embed;
3403 root 1.432
3404 root 1.164 if (ev_supported_backends () & ~ev_recommended_backends () & EVBACKEND_KQUEUE)
3405     if ((loop_socket = ev_loop_new (EVBACKEND_KQUEUE))
3406     {
3407     ev_embed_init (&embed, 0, loop_socket);
3408     ev_embed_start (loop, &embed);
3409     }
3410 root 1.111
3411 root 1.164 if (!loop_socket)
3412     loop_socket = loop;
3413 root 1.111
3414 root 1.164 // now use loop_socket for all sockets, and loop for everything else
3415 root 1.111
3416 root 1.35
3417 root 1.50 =head2 C<ev_fork> - the audacity to resume the event loop after a fork
3418    
3419     Fork watchers are called when a C<fork ()> was detected (usually because
3420     whoever is a good citizen cared to tell libev about it by calling
3421 root 1.421 C<ev_loop_fork>). The invocation is done before the event loop blocks next
3422     and before C<ev_check> watchers are being called, and only in the child
3423     after the fork. If whoever good citizen calling C<ev_default_fork> cheats
3424     and calls it in the wrong process, the fork handlers will be invoked, too,
3425     of course.
3426 root 1.50
3427 root 1.238 =head3 The special problem of life after fork - how is it possible?
3428    
3429 root 1.433 Most uses of C<fork ()> consist of forking, then some simple calls to set
3430 root 1.238 up/change the process environment, followed by a call to C<exec()>. This
3431     sequence should be handled by libev without any problems.
3432    
3433     This changes when the application actually wants to do event handling
3434     in the child, or both parent in child, in effect "continuing" after the
3435     fork.
3436    
3437     The default mode of operation (for libev, with application help to detect
3438     forks) is to duplicate all the state in the child, as would be expected
3439     when I<either> the parent I<or> the child process continues.
3440    
3441     When both processes want to continue using libev, then this is usually the
3442     wrong result. In that case, usually one process (typically the parent) is
3443     supposed to continue with all watchers in place as before, while the other
3444     process typically wants to start fresh, i.e. without any active watchers.
3445    
3446     The cleanest and most efficient way to achieve that with libev is to
3447     simply create a new event loop, which of course will be "empty", and
3448     use that for new watchers. This has the advantage of not touching more
3449     memory than necessary, and thus avoiding the copy-on-write, and the
3450     disadvantage of having to use multiple event loops (which do not support
3451     signal watchers).
3452    
3453     When this is not possible, or you want to use the default loop for
3454     other reasons, then in the process that wants to start "fresh", call
3455 root 1.322 C<ev_loop_destroy (EV_DEFAULT)> followed by C<ev_default_loop (...)>.
3456     Destroying the default loop will "orphan" (not stop) all registered
3457     watchers, so you have to be careful not to execute code that modifies
3458     those watchers. Note also that in that case, you have to re-register any
3459     signal watchers.
3460 root 1.238
3461 root 1.83 =head3 Watcher-Specific Functions and Data Members
3462    
3463 root 1.50 =over 4
3464    
3465 root 1.325 =item ev_fork_init (ev_fork *, callback)
3466 root 1.50
3467     Initialises and configures the fork watcher - it has no parameters of any
3468     kind. There is a C<ev_fork_set> macro, but using it is utterly pointless,
3469 root 1.329 really.
3470 root 1.50
3471     =back
3472    
3473    
3474 root 1.324 =head2 C<ev_cleanup> - even the best things end
3475    
3476 root 1.328 Cleanup watchers are called just before the event loop is being destroyed
3477     by a call to C<ev_loop_destroy>.
3478 root 1.324
3479     While there is no guarantee that the event loop gets destroyed, cleanup
3480 root 1.326 watchers provide a convenient method to install cleanup hooks for your
3481 root 1.324 program, worker threads and so on - you just to make sure to destroy the
3482     loop when you want them to be invoked.
3483    
3484 root 1.327 Cleanup watchers are invoked in the same way as any other watcher. Unlike
3485     all other watchers, they do not keep a reference to the event loop (which
3486     makes a lot of sense if you think about it). Like all other watchers, you
3487     can call libev functions in the callback, except C<ev_cleanup_start>.
3488    
3489 root 1.324 =head3 Watcher-Specific Functions and Data Members
3490    
3491     =over 4
3492    
3493 root 1.325 =item ev_cleanup_init (ev_cleanup *, callback)
3494 root 1.324
3495     Initialises and configures the cleanup watcher - it has no parameters of
3496     any kind. There is a C<ev_cleanup_set> macro, but using it is utterly
3497 root 1.329 pointless, I assure you.
3498 root 1.324
3499     =back
3500    
3501     Example: Register an atexit handler to destroy the default loop, so any
3502     cleanup functions are called.
3503    
3504     static void
3505     program_exits (void)
3506     {
3507     ev_loop_destroy (EV_DEFAULT_UC);
3508     }
3509    
3510     ...
3511     atexit (program_exits);
3512    
3513    
3514 root 1.302 =head2 C<ev_async> - how to wake up an event loop
3515 root 1.122
3516 root 1.363 In general, you cannot use an C<ev_loop> from multiple threads or other
3517 root 1.122 asynchronous sources such as signal handlers (as opposed to multiple event
3518     loops - those are of course safe to use in different threads).
3519    
3520 root 1.302 Sometimes, however, you need to wake up an event loop you do not control,
3521     for example because it belongs to another thread. This is what C<ev_async>
3522     watchers do: as long as the C<ev_async> watcher is active, you can signal
3523     it by calling C<ev_async_send>, which is thread- and signal safe.
3524 root 1.122
3525     This functionality is very similar to C<ev_signal> watchers, as signals,
3526     too, are asynchronous in nature, and signals, too, will be compressed
3527     (i.e. the number of callback invocations may be less than the number of
3528 root 1.404 C<ev_async_send> calls). In fact, you could use signal watchers as a kind
3529 root 1.349 of "global async watchers" by using a watcher on an otherwise unused
3530     signal, and C<ev_feed_signal> to signal this watcher from another thread,
3531     even without knowing which loop owns the signal.
3532 root 1.122
3533 root 1.124 =head3 Queueing
3534    
3535     C<ev_async> does not support queueing of data in any way. The reason
3536     is that the author does not know of a simple (or any) algorithm for a
3537     multiple-writer-single-reader queue that works in all cases and doesn't
3538 root 1.274 need elaborate support such as pthreads or unportable memory access
3539     semantics.
3540 root 1.124
3541     That means that if you want to queue data, you have to provide your own
3542 root 1.184 queue. But at least I can tell you how to implement locking around your
3543 root 1.130 queue:
3544 root 1.124
3545     =over 4
3546    
3547     =item queueing from a signal handler context
3548    
3549     To implement race-free queueing, you simply add to the queue in the signal
3550 root 1.191 handler but you block the signal handler in the watcher callback. Here is
3551     an example that does that for some fictitious SIGUSR1 handler:
3552 root 1.124
3553     static ev_async mysig;
3554    
3555     static void
3556     sigusr1_handler (void)
3557     {
3558     sometype data;
3559    
3560     // no locking etc.
3561     queue_put (data);
3562 root 1.133 ev_async_send (EV_DEFAULT_ &mysig);
3563 root 1.124 }
3564    
3565     static void
3566     mysig_cb (EV_P_ ev_async *w, int revents)
3567     {
3568     sometype data;
3569     sigset_t block, prev;
3570    
3571     sigemptyset (&block);
3572     sigaddset (&block, SIGUSR1);
3573     sigprocmask (SIG_BLOCK, &block, &prev);
3574    
3575     while (queue_get (&data))
3576     process (data);
3577    
3578     if (sigismember (&prev, SIGUSR1)
3579     sigprocmask (SIG_UNBLOCK, &block, 0);
3580     }
3581    
3582     (Note: pthreads in theory requires you to use C<pthread_setmask>
3583     instead of C<sigprocmask> when you use threads, but libev doesn't do it
3584     either...).
3585    
3586     =item queueing from a thread context
3587    
3588     The strategy for threads is different, as you cannot (easily) block
3589     threads but you can easily preempt them, so to queue safely you need to
3590 root 1.130 employ a traditional mutex lock, such as in this pthread example:
3591 root 1.124
3592     static ev_async mysig;
3593     static pthread_mutex_t mymutex = PTHREAD_MUTEX_INITIALIZER;
3594    
3595     static void
3596     otherthread (void)
3597     {
3598     // only need to lock the actual queueing operation
3599     pthread_mutex_lock (&mymutex);
3600     queue_put (data);
3601     pthread_mutex_unlock (&mymutex);
3602    
3603 root 1.133 ev_async_send (EV_DEFAULT_ &mysig);
3604 root 1.124 }
3605    
3606     static void
3607     mysig_cb (EV_P_ ev_async *w, int revents)
3608     {
3609     pthread_mutex_lock (&mymutex);
3610    
3611     while (queue_get (&data))
3612     process (data);
3613    
3614     pthread_mutex_unlock (&mymutex);
3615     }
3616    
3617     =back
3618    
3619    
3620 root 1.122 =head3 Watcher-Specific Functions and Data Members
3621    
3622     =over 4
3623    
3624     =item ev_async_init (ev_async *, callback)
3625    
3626     Initialises and configures the async watcher - it has no parameters of any
3627 root 1.208 kind. There is a C<ev_async_set> macro, but using it is utterly pointless,
3628 root 1.184 trust me.
3629 root 1.122
3630     =item ev_async_send (loop, ev_async *)
3631    
3632     Sends/signals/activates the given C<ev_async> watcher, that is, feeds
3633 sf-exg 1.364 an C<EV_ASYNC> event on the watcher into the event loop, and instantly
3634 root 1.363 returns.
3635    
3636     Unlike C<ev_feed_event>, this call is safe to do from other threads,
3637     signal or similar contexts (see the discussion of C<EV_ATOMIC_T> in the
3638     embedding section below on what exactly this means).
3639 root 1.122
3640 root 1.227 Note that, as with other watchers in libev, multiple events might get
3641 root 1.375 compressed into a single callback invocation (another way to look at
3642     this is that C<ev_async> watchers are level-triggered: they are set on
3643     C<ev_async_send>, reset when the event loop detects that).
3644    
3645     This call incurs the overhead of at most one extra system call per event
3646     loop iteration, if the event loop is blocked, and no syscall at all if
3647     the event loop (or your program) is processing events. That means that
3648     repeated calls are basically free (there is no need to avoid calls for
3649     performance reasons) and that the overhead becomes smaller (typically
3650     zero) under load.
3651 root 1.122
3652 root 1.140 =item bool = ev_async_pending (ev_async *)
3653    
3654     Returns a non-zero value when C<ev_async_send> has been called on the
3655     watcher but the event has not yet been processed (or even noted) by the
3656     event loop.
3657    
3658     C<ev_async_send> sets a flag in the watcher and wakes up the loop. When
3659     the loop iterates next and checks for the watcher to have become active,
3660     it will reset the flag again. C<ev_async_pending> can be used to very
3661 root 1.161 quickly check whether invoking the loop might be a good idea.
3662 root 1.140
3663 root 1.227 Not that this does I<not> check whether the watcher itself is pending,
3664     only whether it has been requested to make this watcher pending: there
3665     is a time window between the event loop checking and resetting the async
3666     notification, and the callback being invoked.
3667 root 1.140
3668 root 1.122 =back
3669    
3670    
3671 root 1.1 =head1 OTHER FUNCTIONS
3672    
3673 root 1.14 There are some other functions of possible interest. Described. Here. Now.
3674 root 1.1
3675     =over 4
3676    
3677 root 1.442 =item ev_once (loop, int fd, int events, ev_tstamp timeout, callback, arg)
3678 root 1.1
3679     This function combines a simple timer and an I/O watcher, calls your
3680 root 1.192 callback on whichever event happens first and automatically stops both
3681 root 1.1 watchers. This is useful if you want to wait for a single event on an fd
3682 root 1.22 or timeout without having to allocate/configure/start/stop/free one or
3683 root 1.1 more watchers yourself.
3684    
3685 root 1.192 If C<fd> is less than 0, then no I/O watcher will be started and the
3686     C<events> argument is being ignored. Otherwise, an C<ev_io> watcher for
3687     the given C<fd> and C<events> set will be created and started.
3688 root 1.1
3689     If C<timeout> is less than 0, then no timeout watcher will be
3690 root 1.14 started. Otherwise an C<ev_timer> watcher with after = C<timeout> (and
3691 root 1.193 repeat = 0) will be started. C<0> is a valid timeout.
3692 root 1.14
3693 root 1.289 The callback has the type C<void (*cb)(int revents, void *arg)> and is
3694 root 1.21 passed an C<revents> set like normal event callbacks (a combination of
3695 root 1.289 C<EV_ERROR>, C<EV_READ>, C<EV_WRITE> or C<EV_TIMER>) and the C<arg>
3696 root 1.193 value passed to C<ev_once>. Note that it is possible to receive I<both>
3697     a timeout and an io event at the same time - you probably should give io
3698     events precedence.
3699    
3700     Example: wait up to ten seconds for data to appear on STDIN_FILENO.
3701 root 1.1
3702 root 1.164 static void stdin_ready (int revents, void *arg)
3703     {
3704 root 1.193 if (revents & EV_READ)
3705     /* stdin might have data for us, joy! */;
3706 root 1.289 else if (revents & EV_TIMER)
3707 root 1.164 /* doh, nothing entered */;
3708     }
3709 root 1.1
3710 root 1.164 ev_once (STDIN_FILENO, EV_READ, 10., stdin_ready, 0);
3711 root 1.1
3712 root 1.274 =item ev_feed_fd_event (loop, int fd, int revents)
3713 root 1.1
3714 root 1.14 Feed an event on the given fd, as if a file descriptor backend detected
3715 root 1.386 the given events.
3716 root 1.1
3717 root 1.274 =item ev_feed_signal_event (loop, int signum)
3718 root 1.1
3719 root 1.349 Feed an event as if the given signal occurred. See also C<ev_feed_signal>,
3720     which is async-safe.
3721 root 1.1
3722     =back
3723    
3724 root 1.34
3725 root 1.345 =head1 COMMON OR USEFUL IDIOMS (OR BOTH)
3726    
3727     This section explains some common idioms that are not immediately
3728     obvious. Note that examples are sprinkled over the whole manual, and this
3729     section only contains stuff that wouldn't fit anywhere else.
3730    
3731 root 1.357 =head2 ASSOCIATING CUSTOM DATA WITH A WATCHER
3732    
3733     Each watcher has, by default, a C<void *data> member that you can read
3734     or modify at any time: libev will completely ignore it. This can be used
3735     to associate arbitrary data with your watcher. If you need more data and
3736     don't want to allocate memory separately and store a pointer to it in that
3737     data member, you can also "subclass" the watcher type and provide your own
3738     data:
3739    
3740     struct my_io
3741     {
3742     ev_io io;
3743     int otherfd;
3744     void *somedata;
3745     struct whatever *mostinteresting;
3746     };
3747    
3748     ...
3749     struct my_io w;
3750     ev_io_init (&w.io, my_cb, fd, EV_READ);
3751    
3752     And since your callback will be called with a pointer to the watcher, you
3753     can cast it back to your own type:
3754    
3755     static void my_cb (struct ev_loop *loop, ev_io *w_, int revents)
3756     {
3757     struct my_io *w = (struct my_io *)w_;
3758     ...
3759     }
3760    
3761     More interesting and less C-conformant ways of casting your callback
3762     function type instead have been omitted.
3763    
3764     =head2 BUILDING YOUR OWN COMPOSITE WATCHERS
3765    
3766     Another common scenario is to use some data structure with multiple
3767     embedded watchers, in effect creating your own watcher that combines
3768     multiple libev event sources into one "super-watcher":
3769    
3770     struct my_biggy
3771     {
3772     int some_data;
3773     ev_timer t1;
3774     ev_timer t2;
3775     }
3776    
3777     In this case getting the pointer to C<my_biggy> is a bit more
3778     complicated: Either you store the address of your C<my_biggy> struct in
3779     the C<data> member of the watcher (for woozies or C++ coders), or you need
3780     to use some pointer arithmetic using C<offsetof> inside your watchers (for
3781     real programmers):
3782    
3783     #include <stddef.h>
3784    
3785     static void
3786     t1_cb (EV_P_ ev_timer *w, int revents)
3787     {
3788     struct my_biggy big = (struct my_biggy *)
3789     (((char *)w) - offsetof (struct my_biggy, t1));
3790     }
3791    
3792     static void
3793     t2_cb (EV_P_ ev_timer *w, int revents)
3794     {
3795     struct my_biggy big = (struct my_biggy *)
3796     (((char *)w) - offsetof (struct my_biggy, t2));
3797     }
3798    
3799 root 1.387 =head2 AVOIDING FINISHING BEFORE RETURNING
3800    
3801     Often you have structures like this in event-based programs:
3802    
3803     callback ()
3804     {
3805     free (request);
3806     }
3807    
3808     request = start_new_request (..., callback);
3809    
3810     The intent is to start some "lengthy" operation. The C<request> could be
3811     used to cancel the operation, or do other things with it.
3812    
3813     It's not uncommon to have code paths in C<start_new_request> that
3814     immediately invoke the callback, for example, to report errors. Or you add
3815     some caching layer that finds that it can skip the lengthy aspects of the
3816     operation and simply invoke the callback with the result.
3817    
3818     The problem here is that this will happen I<before> C<start_new_request>
3819     has returned, so C<request> is not set.
3820    
3821     Even if you pass the request by some safer means to the callback, you
3822     might want to do something to the request after starting it, such as
3823     canceling it, which probably isn't working so well when the callback has
3824     already been invoked.
3825    
3826     A common way around all these issues is to make sure that
3827     C<start_new_request> I<always> returns before the callback is invoked. If
3828     C<start_new_request> immediately knows the result, it can artificially
3829 root 1.423 delay invoking the callback by using a C<prepare> or C<idle> watcher for
3830     example, or more sneakily, by reusing an existing (stopped) watcher and
3831     pushing it into the pending queue:
3832 root 1.387
3833     ev_set_cb (watcher, callback);
3834     ev_feed_event (EV_A_ watcher, 0);
3835    
3836     This way, C<start_new_request> can safely return before the callback is
3837     invoked, while not delaying callback invocation too much.
3838    
3839 root 1.355 =head2 MODEL/NESTED EVENT LOOP INVOCATIONS AND EXIT CONDITIONS
3840 root 1.345
3841     Often (especially in GUI toolkits) there are places where you have
3842     I<modal> interaction, which is most easily implemented by recursively
3843     invoking C<ev_run>.
3844    
3845     This brings the problem of exiting - a callback might want to finish the
3846     main C<ev_run> call, but not the nested one (e.g. user clicked "Quit", but
3847     a modal "Are you sure?" dialog is still waiting), or just the nested one
3848     and not the main one (e.g. user clocked "Ok" in a modal dialog), or some
3849 root 1.423 other combination: In these cases, a simple C<ev_break> will not work.
3850 root 1.345
3851     The solution is to maintain "break this loop" variable for each C<ev_run>
3852     invocation, and use a loop around C<ev_run> until the condition is
3853     triggered, using C<EVRUN_ONCE>:
3854    
3855     // main loop
3856     int exit_main_loop = 0;
3857    
3858     while (!exit_main_loop)
3859     ev_run (EV_DEFAULT_ EVRUN_ONCE);
3860    
3861 sf-exg 1.389 // in a modal watcher
3862 root 1.345 int exit_nested_loop = 0;
3863    
3864     while (!exit_nested_loop)
3865     ev_run (EV_A_ EVRUN_ONCE);
3866    
3867     To exit from any of these loops, just set the corresponding exit variable:
3868    
3869     // exit modal loop
3870     exit_nested_loop = 1;
3871    
3872     // exit main program, after modal loop is finished
3873     exit_main_loop = 1;
3874    
3875     // exit both
3876     exit_main_loop = exit_nested_loop = 1;
3877    
3878 root 1.355 =head2 THREAD LOCKING EXAMPLE
3879 root 1.354
3880     Here is a fictitious example of how to run an event loop in a different
3881 root 1.359 thread from where callbacks are being invoked and watchers are
3882 root 1.354 created/added/removed.
3883    
3884     For a real-world example, see the C<EV::Loop::Async> perl module,
3885     which uses exactly this technique (which is suited for many high-level
3886     languages).
3887    
3888     The example uses a pthread mutex to protect the loop data, a condition
3889     variable to wait for callback invocations, an async watcher to notify the
3890     event loop thread and an unspecified mechanism to wake up the main thread.
3891    
3892     First, you need to associate some data with the event loop:
3893    
3894     typedef struct {
3895 root 1.466 pthread_mutex_t lock; /* global loop lock */
3896     pthread_t tid;
3897     pthread_cond_t invoke_cv;
3898 root 1.354 ev_async async_w;
3899     } userdata;
3900    
3901     void prepare_loop (EV_P)
3902     {
3903     // for simplicity, we use a static userdata struct.
3904     static userdata u;
3905    
3906 root 1.466 ev_async_init (&u.async_w, async_cb);
3907     ev_async_start (EV_A_ &u.async_w);
3908 root 1.354
3909 root 1.466 pthread_mutex_init (&u.lock, 0);
3910     pthread_cond_init (&u.invoke_cv, 0);
3911 root 1.354
3912     // now associate this with the loop
3913 root 1.466 ev_set_userdata (EV_A_ &u);
3914 root 1.354 ev_set_invoke_pending_cb (EV_A_ l_invoke);
3915     ev_set_loop_release_cb (EV_A_ l_release, l_acquire);
3916    
3917 root 1.362 // then create the thread running ev_run
3918 root 1.466 pthread_create (&u.tid, 0, l_run, EV_A);
3919 root 1.354 }
3920    
3921     The callback for the C<ev_async> watcher does nothing: the watcher is used
3922     solely to wake up the event loop so it takes notice of any new watchers
3923     that might have been added:
3924    
3925     static void
3926     async_cb (EV_P_ ev_async *w, int revents)
3927     {
3928     // just used for the side effects
3929     }
3930    
3931     The C<l_release> and C<l_acquire> callbacks simply unlock/lock the mutex
3932     protecting the loop data, respectively.
3933    
3934     static void
3935     l_release (EV_P)
3936     {
3937     userdata *u = ev_userdata (EV_A);
3938     pthread_mutex_unlock (&u->lock);
3939     }
3940    
3941     static void
3942     l_acquire (EV_P)
3943     {
3944     userdata *u = ev_userdata (EV_A);
3945     pthread_mutex_lock (&u->lock);
3946     }
3947    
3948     The event loop thread first acquires the mutex, and then jumps straight
3949     into C<ev_run>:
3950    
3951     void *
3952     l_run (void *thr_arg)
3953     {
3954     struct ev_loop *loop = (struct ev_loop *)thr_arg;
3955    
3956     l_acquire (EV_A);
3957     pthread_setcanceltype (PTHREAD_CANCEL_ASYNCHRONOUS, 0);
3958     ev_run (EV_A_ 0);
3959     l_release (EV_A);
3960    
3961     return 0;
3962     }
3963    
3964     Instead of invoking all pending watchers, the C<l_invoke> callback will
3965     signal the main thread via some unspecified mechanism (signals? pipe
3966     writes? C<Async::Interrupt>?) and then waits until all pending watchers
3967     have been called (in a while loop because a) spurious wakeups are possible
3968     and b) skipping inter-thread-communication when there are no pending
3969     watchers is very beneficial):
3970    
3971     static void
3972     l_invoke (EV_P)
3973     {
3974     userdata *u = ev_userdata (EV_A);
3975    
3976     while (ev_pending_count (EV_A))
3977     {
3978     wake_up_other_thread_in_some_magic_or_not_so_magic_way ();
3979     pthread_cond_wait (&u->invoke_cv, &u->lock);
3980     }
3981     }
3982    
3983     Now, whenever the main thread gets told to invoke pending watchers, it
3984     will grab the lock, call C<ev_invoke_pending> and then signal the loop
3985     thread to continue:
3986    
3987     static void
3988     real_invoke_pending (EV_P)
3989     {
3990     userdata *u = ev_userdata (EV_A);
3991    
3992     pthread_mutex_lock (&u->lock);
3993     ev_invoke_pending (EV_A);
3994     pthread_cond_signal (&u->invoke_cv);
3995     pthread_mutex_unlock (&u->lock);
3996     }
3997    
3998     Whenever you want to start/stop a watcher or do other modifications to an
3999     event loop, you will now have to lock:
4000    
4001     ev_timer timeout_watcher;
4002     userdata *u = ev_userdata (EV_A);
4003    
4004     ev_timer_init (&timeout_watcher, timeout_cb, 5.5, 0.);
4005    
4006     pthread_mutex_lock (&u->lock);
4007     ev_timer_start (EV_A_ &timeout_watcher);
4008     ev_async_send (EV_A_ &u->async_w);
4009     pthread_mutex_unlock (&u->lock);
4010    
4011     Note that sending the C<ev_async> watcher is required because otherwise
4012     an event loop currently blocking in the kernel will have no knowledge
4013     about the newly added timer. By waking up the loop it will pick up any new
4014     watchers in the next event loop iteration.
4015    
4016 root 1.357 =head2 THREADS, COROUTINES, CONTINUATIONS, QUEUES... INSTEAD OF CALLBACKS
4017    
4018     While the overhead of a callback that e.g. schedules a thread is small, it
4019     is still an overhead. If you embed libev, and your main usage is with some
4020     kind of threads or coroutines, you might want to customise libev so that
4021     doesn't need callbacks anymore.
4022    
4023     Imagine you have coroutines that you can switch to using a function
4024     C<switch_to (coro)>, that libev runs in a coroutine called C<libev_coro>
4025     and that due to some magic, the currently active coroutine is stored in a
4026     global called C<current_coro>. Then you can build your own "wait for libev
4027     event" primitive by changing C<EV_CB_DECLARE> and C<EV_CB_INVOKE> (note
4028     the differing C<;> conventions):
4029    
4030     #define EV_CB_DECLARE(type) struct my_coro *cb;
4031     #define EV_CB_INVOKE(watcher) switch_to ((watcher)->cb)
4032    
4033     That means instead of having a C callback function, you store the
4034     coroutine to switch to in each watcher, and instead of having libev call
4035     your callback, you instead have it switch to that coroutine.
4036    
4037     A coroutine might now wait for an event with a function called
4038     C<wait_for_event>. (the watcher needs to be started, as always, but it doesn't
4039     matter when, or whether the watcher is active or not when this function is
4040     called):
4041    
4042     void
4043     wait_for_event (ev_watcher *w)
4044     {
4045 root 1.409 ev_set_cb (w, current_coro);
4046 root 1.357 switch_to (libev_coro);
4047     }
4048    
4049     That basically suspends the coroutine inside C<wait_for_event> and
4050     continues the libev coroutine, which, when appropriate, switches back to
4051 root 1.390 this or any other coroutine.
4052 root 1.357
4053     You can do similar tricks if you have, say, threads with an event queue -
4054     instead of storing a coroutine, you store the queue object and instead of
4055     switching to a coroutine, you push the watcher onto the queue and notify
4056     any waiters.
4057    
4058 root 1.413 To embed libev, see L</EMBEDDING>, but in short, it's easiest to create two
4059 root 1.357 files, F<my_ev.h> and F<my_ev.c> that include the respective libev files:
4060    
4061     // my_ev.h
4062     #define EV_CB_DECLARE(type) struct my_coro *cb;
4063 root 1.435 #define EV_CB_INVOKE(watcher) switch_to ((watcher)->cb)
4064 root 1.357 #include "../libev/ev.h"
4065    
4066     // my_ev.c
4067     #define EV_H "my_ev.h"
4068     #include "../libev/ev.c"
4069    
4070     And then use F<my_ev.h> when you would normally use F<ev.h>, and compile
4071     F<my_ev.c> into your project. When properly specifying include paths, you
4072     can even use F<ev.h> as header file name directly.
4073    
4074 root 1.345
4075 root 1.20 =head1 LIBEVENT EMULATION
4076    
4077 root 1.24 Libev offers a compatibility emulation layer for libevent. It cannot
4078     emulate the internals of libevent, so here are some usage hints:
4079    
4080     =over 4
4081    
4082 root 1.345 =item * Only the libevent-1.4.1-beta API is being emulated.
4083    
4084     This was the newest libevent version available when libev was implemented,
4085 sf-exg 1.347 and is still mostly unchanged in 2010.
4086 root 1.345
4087 root 1.24 =item * Use it by including <event.h>, as usual.
4088    
4089     =item * The following members are fully supported: ev_base, ev_callback,
4090     ev_arg, ev_fd, ev_res, ev_events.
4091    
4092     =item * Avoid using ev_flags and the EVLIST_*-macros, while it is
4093     maintained by libev, it does not work exactly the same way as in libevent (consider
4094     it a private API).
4095    
4096     =item * Priorities are not currently supported. Initialising priorities
4097     will fail and all watchers will have the same priority, even though there
4098     is an ev_pri field.
4099    
4100 root 1.146 =item * In libevent, the last base created gets the signals, in libev, the
4101 root 1.341 base that registered the signal gets the signals.
4102 root 1.146
4103 root 1.24 =item * Other members are not supported.
4104    
4105     =item * The libev emulation is I<not> ABI compatible to libevent, you need
4106     to use the libev header file and library.
4107    
4108     =back
4109 root 1.20
4110     =head1 C++ SUPPORT
4111    
4112 root 1.401 =head2 C API
4113    
4114     The normal C API should work fine when used from C++: both ev.h and the
4115     libev sources can be compiled as C++. Therefore, code that uses the C API
4116     will work fine.
4117    
4118     Proper exception specifications might have to be added to callbacks passed
4119 root 1.445 to libev: exceptions may be thrown only from watcher callbacks, all other
4120     callbacks (allocator, syserr, loop acquire/release and periodic reschedule
4121     callbacks) must not throw exceptions, and might need a C<noexcept>
4122     specification. If you have code that needs to be compiled as both C and
4123     C++ you can use the C<EV_NOEXCEPT> macro for this:
4124 root 1.401
4125     static void
4126 root 1.445 fatal_error (const char *msg) EV_NOEXCEPT
4127 root 1.401 {
4128     perror (msg);
4129     abort ();
4130     }
4131    
4132     ...
4133     ev_set_syserr_cb (fatal_error);
4134    
4135     The only API functions that can currently throw exceptions are C<ev_run>,
4136 sf-exg 1.403 C<ev_invoke>, C<ev_invoke_pending> and C<ev_loop_destroy> (the latter
4137 root 1.402 because it runs cleanup watchers).
4138 root 1.401
4139     Throwing exceptions in watcher callbacks is only supported if libev itself
4140     is compiled with a C++ compiler or your C and C++ environments allow
4141     throwing exceptions through C libraries (most do).
4142    
4143     =head2 C++ API
4144    
4145 root 1.38 Libev comes with some simplistic wrapper classes for C++ that mainly allow
4146 root 1.161 you to use some convenience methods to start/stop watchers and also change
4147 root 1.38 the callback model to a model using method callbacks on objects.
4148    
4149     To use it,
4150 root 1.428
4151 root 1.164 #include <ev++.h>
4152 root 1.38
4153 root 1.71 This automatically includes F<ev.h> and puts all of its definitions (many
4154     of them macros) into the global namespace. All C++ specific things are
4155     put into the C<ev> namespace. It should support all the same embedding
4156     options as F<ev.h>, most notably C<EV_MULTIPLICITY>.
4157    
4158 root 1.72 Care has been taken to keep the overhead low. The only data member the C++
4159     classes add (compared to plain C-style watchers) is the event loop pointer
4160     that the watcher is associated with (or no additional members at all if
4161     you disable C<EV_MULTIPLICITY> when embedding libev).
4162 root 1.71
4163 root 1.346 Currently, functions, static and non-static member functions and classes
4164     with C<operator ()> can be used as callbacks. Other types should be easy
4165     to add as long as they only need one additional pointer for context. If
4166     you need support for other types of functors please contact the author
4167     (preferably after implementing it).
4168 root 1.38
4169 root 1.397 For all this to work, your C++ compiler either has to use the same calling
4170     conventions as your C compiler (for static member functions), or you have
4171     to embed libev and compile libev itself as C++.
4172    
4173 root 1.38 Here is a list of things available in the C<ev> namespace:
4174    
4175     =over 4
4176    
4177     =item C<ev::READ>, C<ev::WRITE> etc.
4178    
4179     These are just enum values with the same values as the C<EV_READ> etc.
4180     macros from F<ev.h>.
4181    
4182     =item C<ev::tstamp>, C<ev::now>
4183    
4184     Aliases to the same types/functions as with the C<ev_> prefix.
4185    
4186     =item C<ev::io>, C<ev::timer>, C<ev::periodic>, C<ev::idle>, C<ev::sig> etc.
4187    
4188     For each C<ev_TYPE> watcher in F<ev.h> there is a corresponding class of
4189     the same name in the C<ev> namespace, with the exception of C<ev_signal>
4190     which is called C<ev::sig> to avoid clashes with the C<signal> macro
4191 root 1.391 defined by many implementations.
4192 root 1.38
4193     All of those classes have these methods:
4194    
4195     =over 4
4196    
4197 root 1.71 =item ev::TYPE::TYPE ()
4198 root 1.38
4199 root 1.274 =item ev::TYPE::TYPE (loop)
4200 root 1.38
4201     =item ev::TYPE::~TYPE
4202    
4203 root 1.71 The constructor (optionally) takes an event loop to associate the watcher
4204     with. If it is omitted, it will use C<EV_DEFAULT>.
4205    
4206     The constructor calls C<ev_init> for you, which means you have to call the
4207     C<set> method before starting it.
4208    
4209     It will not set a callback, however: You have to call the templated C<set>
4210     method to set a callback before you can start the watcher.
4211    
4212     (The reason why you have to use a method is a limitation in C++ which does
4213     not allow explicit template arguments for constructors).
4214 root 1.38
4215     The destructor automatically stops the watcher if it is active.
4216    
4217 root 1.71 =item w->set<class, &class::method> (object *)
4218    
4219     This method sets the callback method to call. The method has to have a
4220     signature of C<void (*)(ev_TYPE &, int)>, it receives the watcher as
4221     first argument and the C<revents> as second. The object must be given as
4222     parameter and is stored in the C<data> member of the watcher.
4223    
4224     This method synthesizes efficient thunking code to call your method from
4225     the C callback that libev requires. If your compiler can inline your
4226     callback (i.e. it is visible to it at the place of the C<set> call and
4227     your compiler is good :), then the method will be fully inlined into the
4228     thunking function, making it as fast as a direct C callback.
4229    
4230     Example: simple class declaration and watcher initialisation
4231    
4232 root 1.164 struct myclass
4233     {
4234     void io_cb (ev::io &w, int revents) { }
4235     }
4236    
4237     myclass obj;
4238     ev::io iow;
4239     iow.set <myclass, &myclass::io_cb> (&obj);
4240 root 1.71
4241 root 1.221 =item w->set (object *)
4242    
4243     This is a variation of a method callback - leaving out the method to call
4244     will default the method to C<operator ()>, which makes it possible to use
4245     functor objects without having to manually specify the C<operator ()> all
4246     the time. Incidentally, you can then also leave out the template argument
4247     list.
4248    
4249     The C<operator ()> method prototype must be C<void operator ()(watcher &w,
4250     int revents)>.
4251    
4252     See the method-C<set> above for more details.
4253    
4254     Example: use a functor object as callback.
4255    
4256     struct myfunctor
4257     {
4258     void operator() (ev::io &w, int revents)
4259     {
4260     ...
4261     }
4262     }
4263 root 1.432
4264 root 1.221 myfunctor f;
4265    
4266     ev::io w;
4267     w.set (&f);
4268    
4269 root 1.75 =item w->set<function> (void *data = 0)
4270 root 1.71
4271     Also sets a callback, but uses a static method or plain function as
4272     callback. The optional C<data> argument will be stored in the watcher's
4273     C<data> member and is free for you to use.
4274    
4275 root 1.75 The prototype of the C<function> must be C<void (*)(ev::TYPE &w, int)>.
4276    
4277 root 1.71 See the method-C<set> above for more details.
4278    
4279 root 1.184 Example: Use a plain function as callback.
4280 root 1.75
4281 root 1.164 static void io_cb (ev::io &w, int revents) { }
4282     iow.set <io_cb> ();
4283 root 1.75
4284 root 1.274 =item w->set (loop)
4285 root 1.38
4286     Associates a different C<struct ev_loop> with this watcher. You can only
4287     do this when the watcher is inactive (and not pending either).
4288    
4289 root 1.161 =item w->set ([arguments])
4290 root 1.38
4291 root 1.419 Basically the same as C<ev_TYPE_set> (except for C<ev::embed> watchers>),
4292     with the same arguments. Either this method or a suitable start method
4293     must be called at least once. Unlike the C counterpart, an active watcher
4294     gets automatically stopped and restarted when reconfiguring it with this
4295     method.
4296    
4297     For C<ev::embed> watchers this method is called C<set_embed>, to avoid
4298     clashing with the C<set (loop)> method.
4299 root 1.38
4300 root 1.461 For C<ev::io> watchers there is an additional C<set> method that acepts a
4301 sf-exg 1.468 new event mask only, and internally calls C<ev_io_modify>.
4302 root 1.461
4303 root 1.38 =item w->start ()
4304    
4305 root 1.71 Starts the watcher. Note that there is no C<loop> argument, as the
4306     constructor already stores the event loop.
4307 root 1.38
4308 root 1.307 =item w->start ([arguments])
4309    
4310     Instead of calling C<set> and C<start> methods separately, it is often
4311     convenient to wrap them in one call. Uses the same type of arguments as
4312     the configure C<set> method of the watcher.
4313    
4314 root 1.38 =item w->stop ()
4315    
4316     Stops the watcher if it is active. Again, no C<loop> argument.
4317    
4318 root 1.84 =item w->again () (C<ev::timer>, C<ev::periodic> only)
4319 root 1.38
4320     For C<ev::timer> and C<ev::periodic>, this invokes the corresponding
4321     C<ev_TYPE_again> function.
4322    
4323 root 1.84 =item w->sweep () (C<ev::embed> only)
4324 root 1.38
4325     Invokes C<ev_embed_sweep>.
4326    
4327 root 1.84 =item w->update () (C<ev::stat> only)
4328 root 1.49
4329     Invokes C<ev_stat_stat>.
4330    
4331 root 1.38 =back
4332    
4333     =back
4334    
4335 root 1.307 Example: Define a class with two I/O and idle watchers, start the I/O
4336     watchers in the constructor.
4337 root 1.38
4338 root 1.164 class myclass
4339     {
4340 root 1.184 ev::io io ; void io_cb (ev::io &w, int revents);
4341 root 1.377 ev::io io2 ; void io2_cb (ev::io &w, int revents);
4342 root 1.184 ev::idle idle; void idle_cb (ev::idle &w, int revents);
4343 root 1.164
4344     myclass (int fd)
4345     {
4346     io .set <myclass, &myclass::io_cb > (this);
4347 root 1.307 io2 .set <myclass, &myclass::io2_cb > (this);
4348 root 1.164 idle.set <myclass, &myclass::idle_cb> (this);
4349    
4350 root 1.307 io.set (fd, ev::WRITE); // configure the watcher
4351     io.start (); // start it whenever convenient
4352    
4353     io2.start (fd, ev::READ); // set + start in one call
4354 root 1.164 }
4355     };
4356 root 1.20
4357 root 1.50
4358 root 1.136 =head1 OTHER LANGUAGE BINDINGS
4359    
4360     Libev does not offer other language bindings itself, but bindings for a
4361 root 1.161 number of languages exist in the form of third-party packages. If you know
4362 root 1.136 any interesting language binding in addition to the ones listed here, drop
4363     me a note.
4364    
4365     =over 4
4366    
4367     =item Perl
4368    
4369     The EV module implements the full libev API and is actually used to test
4370     libev. EV is developed together with libev. Apart from the EV core module,
4371     there are additional modules that implement libev-compatible interfaces
4372 root 1.184 to C<libadns> (C<EV::ADNS>, but C<AnyEvent::DNS> is preferred nowadays),
4373     C<Net::SNMP> (C<Net::SNMP::EV>) and the C<libglib> event core (C<Glib::EV>
4374     and C<EV::Glib>).
4375 root 1.136
4376 root 1.166 It can be found and installed via CPAN, its homepage is at
4377 root 1.136 L<http://software.schmorp.de/pkg/EV>.
4378    
4379 root 1.166 =item Python
4380    
4381     Python bindings can be found at L<http://code.google.com/p/pyev/>. It
4382 root 1.228 seems to be quite complete and well-documented.
4383 root 1.166
4384 root 1.136 =item Ruby
4385    
4386     Tony Arcieri has written a ruby extension that offers access to a subset
4387 root 1.161 of the libev API and adds file handle abstractions, asynchronous DNS and
4388 root 1.136 more on top of it. It can be found via gem servers. Its homepage is at
4389     L<http://rev.rubyforge.org/>.
4390    
4391 root 1.218 Roger Pack reports that using the link order C<-lws2_32 -lmsvcrt-ruby-190>
4392     makes rev work even on mingw.
4393    
4394 root 1.228 =item Haskell
4395    
4396     A haskell binding to libev is available at
4397     L<http://hackage.haskell.org/cgi-bin/hackage-scripts/package/hlibev>.
4398    
4399 root 1.136 =item D
4400    
4401     Leandro Lucarella has written a D language binding (F<ev.d>) for libev, to
4402 sf-exg 1.378 be found at L<http://www.llucax.com.ar/proj/ev.d/index.html>.
4403 root 1.136
4404 root 1.201 =item Ocaml
4405    
4406     Erkki Seppala has written Ocaml bindings for libev, to be found at
4407     L<http://modeemi.cs.tut.fi/~flux/software/ocaml-ev/>.
4408    
4409 root 1.263 =item Lua
4410    
4411 root 1.279 Brian Maher has written a partial interface to libev for lua (at the
4412     time of this writing, only C<ev_io> and C<ev_timer>), to be found at
4413 root 1.263 L<http://github.com/brimworks/lua-ev>.
4414    
4415 root 1.416 =item Javascript
4416    
4417     Node.js (L<http://nodejs.org>) uses libev as the underlying event library.
4418    
4419     =item Others
4420    
4421     There are others, and I stopped counting.
4422    
4423 root 1.136 =back
4424    
4425    
4426 root 1.50 =head1 MACRO MAGIC
4427    
4428 root 1.161 Libev can be compiled with a variety of options, the most fundamental
4429 root 1.84 of which is C<EV_MULTIPLICITY>. This option determines whether (most)
4430     functions and callbacks have an initial C<struct ev_loop *> argument.
4431 root 1.50
4432     To make it easier to write programs that cope with either variant, the
4433     following macros are defined:
4434    
4435     =over 4
4436    
4437     =item C<EV_A>, C<EV_A_>
4438    
4439     This provides the loop I<argument> for functions, if one is required ("ev
4440     loop argument"). The C<EV_A> form is used when this is the sole argument,
4441     C<EV_A_> is used when other arguments are following. Example:
4442    
4443 root 1.164 ev_unref (EV_A);
4444     ev_timer_add (EV_A_ watcher);
4445 root 1.310 ev_run (EV_A_ 0);
4446 root 1.50
4447     It assumes the variable C<loop> of type C<struct ev_loop *> is in scope,
4448     which is often provided by the following macro.
4449    
4450     =item C<EV_P>, C<EV_P_>
4451    
4452     This provides the loop I<parameter> for functions, if one is required ("ev
4453     loop parameter"). The C<EV_P> form is used when this is the sole parameter,
4454     C<EV_P_> is used when other parameters are following. Example:
4455    
4456 root 1.164 // this is how ev_unref is being declared
4457     static void ev_unref (EV_P);
4458 root 1.50
4459 root 1.164 // this is how you can declare your typical callback
4460     static void cb (EV_P_ ev_timer *w, int revents)
4461 root 1.50
4462     It declares a parameter C<loop> of type C<struct ev_loop *>, quite
4463     suitable for use with C<EV_A>.
4464    
4465     =item C<EV_DEFAULT>, C<EV_DEFAULT_>
4466    
4467     Similar to the other two macros, this gives you the value of the default
4468 root 1.380 loop, if multiple loops are supported ("ev loop default"). The default loop
4469     will be initialised if it isn't already initialised.
4470    
4471     For non-multiplicity builds, these macros do nothing, so you always have
4472     to initialise the loop somewhere.
4473 root 1.50
4474 root 1.143 =item C<EV_DEFAULT_UC>, C<EV_DEFAULT_UC_>
4475    
4476     Usage identical to C<EV_DEFAULT> and C<EV_DEFAULT_>, but requires that the
4477     default loop has been initialised (C<UC> == unchecked). Their behaviour
4478     is undefined when the default loop has not been initialised by a previous
4479     execution of C<EV_DEFAULT>, C<EV_DEFAULT_> or C<ev_default_init (...)>.
4480    
4481     It is often prudent to use C<EV_DEFAULT> when initialising the first
4482     watcher in a function but use C<EV_DEFAULT_UC> afterwards.
4483    
4484 root 1.50 =back
4485    
4486 root 1.63 Example: Declare and initialise a check watcher, utilising the above
4487 root 1.68 macros so it will work regardless of whether multiple loops are supported
4488 root 1.63 or not.
4489 root 1.50
4490 root 1.164 static void
4491     check_cb (EV_P_ ev_timer *w, int revents)
4492     {
4493     ev_check_stop (EV_A_ w);
4494     }
4495    
4496     ev_check check;
4497     ev_check_init (&check, check_cb);
4498     ev_check_start (EV_DEFAULT_ &check);
4499 root 1.310 ev_run (EV_DEFAULT_ 0);
4500 root 1.50
4501 root 1.39 =head1 EMBEDDING
4502    
4503     Libev can (and often is) directly embedded into host
4504     applications. Examples of applications that embed it include the Deliantra
4505     Game Server, the EV perl module, the GNU Virtual Private Ethernet (gvpe)
4506     and rxvt-unicode.
4507    
4508 root 1.91 The goal is to enable you to just copy the necessary files into your
4509 root 1.39 source directory without having to change even a single line in them, so
4510     you can easily upgrade by simply copying (or having a checked-out copy of
4511     libev somewhere in your source tree).
4512    
4513     =head2 FILESETS
4514    
4515     Depending on what features you need you need to include one or more sets of files
4516 root 1.161 in your application.
4517 root 1.39
4518     =head3 CORE EVENT LOOP
4519    
4520     To include only the libev core (all the C<ev_*> functions), with manual
4521     configuration (no autoconf):
4522    
4523 root 1.164 #define EV_STANDALONE 1
4524     #include "ev.c"
4525 root 1.39
4526     This will automatically include F<ev.h>, too, and should be done in a
4527     single C source file only to provide the function implementations. To use
4528     it, do the same for F<ev.h> in all files wishing to use this API (best
4529     done by writing a wrapper around F<ev.h> that you can include instead and
4530     where you can put other configuration options):
4531    
4532 root 1.164 #define EV_STANDALONE 1
4533     #include "ev.h"
4534 root 1.39
4535     Both header files and implementation files can be compiled with a C++
4536 root 1.208 compiler (at least, that's a stated goal, and breakage will be treated
4537 root 1.39 as a bug).
4538    
4539     You need the following files in your source tree, or in a directory
4540     in your include path (e.g. in libev/ when using -Ilibev):
4541    
4542 root 1.164 ev.h
4543     ev.c
4544     ev_vars.h
4545     ev_wrap.h
4546    
4547     ev_win32.c required on win32 platforms only
4548    
4549 root 1.440 ev_select.c only when select backend is enabled
4550     ev_poll.c only when poll backend is enabled
4551     ev_epoll.c only when the epoll backend is enabled
4552 root 1.447 ev_linuxaio.c only when the linux aio backend is enabled
4553 root 1.456 ev_iouring.c only when the linux io_uring backend is enabled
4554 root 1.440 ev_kqueue.c only when the kqueue backend is enabled
4555     ev_port.c only when the solaris port backend is enabled
4556 root 1.39
4557     F<ev.c> includes the backend files directly when enabled, so you only need
4558 root 1.43 to compile this single file.
4559 root 1.39
4560     =head3 LIBEVENT COMPATIBILITY API
4561    
4562     To include the libevent compatibility API, also include:
4563    
4564 root 1.164 #include "event.c"
4565 root 1.39
4566     in the file including F<ev.c>, and:
4567    
4568 root 1.164 #include "event.h"
4569 root 1.39
4570     in the files that want to use the libevent API. This also includes F<ev.h>.
4571    
4572     You need the following additional files for this:
4573    
4574 root 1.164 event.h
4575     event.c
4576 root 1.39
4577     =head3 AUTOCONF SUPPORT
4578    
4579 root 1.161 Instead of using C<EV_STANDALONE=1> and providing your configuration in
4580 root 1.39 whatever way you want, you can also C<m4_include([libev.m4])> in your
4581 root 1.43 F<configure.ac> and leave C<EV_STANDALONE> undefined. F<ev.c> will then
4582     include F<config.h> and configure itself accordingly.
4583 root 1.39
4584     For this of course you need the m4 file:
4585    
4586 root 1.164 libev.m4
4587 root 1.39
4588     =head2 PREPROCESSOR SYMBOLS/MACROS
4589    
4590 root 1.142 Libev can be configured via a variety of preprocessor symbols you have to
4591 root 1.281 define before including (or compiling) any of its files. The default in
4592     the absence of autoconf is documented for every option.
4593    
4594     Symbols marked with "(h)" do not change the ABI, and can have different
4595     values when compiling libev vs. including F<ev.h>, so it is permissible
4596 sf-exg 1.292 to redefine them before including F<ev.h> without breaking compatibility
4597 root 1.281 to a compiled library. All other symbols change the ABI, which means all
4598     users of libev and the libev code itself must be compiled with compatible
4599     settings.
4600 root 1.39
4601     =over 4
4602    
4603 root 1.310 =item EV_COMPAT3 (h)
4604    
4605     Backwards compatibility is a major concern for libev. This is why this
4606     release of libev comes with wrappers for the functions and symbols that
4607     have been renamed between libev version 3 and 4.
4608    
4609     You can disable these wrappers (to test compatibility with future
4610     versions) by defining C<EV_COMPAT3> to C<0> when compiling your
4611     sources. This has the additional advantage that you can drop the C<struct>
4612     from C<struct ev_loop> declarations, as libev will provide an C<ev_loop>
4613     typedef in that case.
4614    
4615     In some future version, the default for C<EV_COMPAT3> will become C<0>,
4616     and in some even more future version the compatibility code will be
4617     removed completely.
4618    
4619 root 1.281 =item EV_STANDALONE (h)
4620 root 1.39
4621     Must always be C<1> if you do not use autoconf configuration, which
4622     keeps libev from including F<config.h>, and it also defines dummy
4623     implementations for some libevent functions (such as logging, which is not
4624     supported). It will also not define any of the structs usually found in
4625     F<event.h> that are not directly supported by the libev core alone.
4626    
4627 root 1.262 In standalone mode, libev will still try to automatically deduce the
4628 root 1.218 configuration, but has to be more conservative.
4629    
4630 root 1.367 =item EV_USE_FLOOR
4631    
4632     If defined to be C<1>, libev will use the C<floor ()> function for its
4633     periodic reschedule calculations, otherwise libev will fall back on a
4634     portable (slower) implementation. If you enable this, you usually have to
4635     link against libm or something equivalent. Enabling this when the C<floor>
4636     function is not available will fail, so the safe default is to not enable
4637     this.
4638    
4639 root 1.39 =item EV_USE_MONOTONIC
4640    
4641     If defined to be C<1>, libev will try to detect the availability of the
4642 root 1.218 monotonic clock option at both compile time and runtime. Otherwise no
4643     use of the monotonic clock option will be attempted. If you enable this,
4644     you usually have to link against librt or something similar. Enabling it
4645     when the functionality isn't available is safe, though, although you have
4646 root 1.39 to make sure you link against any libraries where the C<clock_gettime>
4647 root 1.218 function is hiding in (often F<-lrt>). See also C<EV_USE_CLOCK_SYSCALL>.
4648 root 1.39
4649     =item EV_USE_REALTIME
4650    
4651     If defined to be C<1>, libev will try to detect the availability of the
4652 root 1.224 real-time clock option at compile time (and assume its availability
4653     at runtime if successful). Otherwise no use of the real-time clock
4654     option will be attempted. This effectively replaces C<gettimeofday>
4655     by C<clock_get (CLOCK_REALTIME, ...)> and will not normally affect
4656     correctness. See the note about libraries in the description of
4657     C<EV_USE_MONOTONIC>, though. Defaults to the opposite value of
4658     C<EV_USE_CLOCK_SYSCALL>.
4659 root 1.39
4660 root 1.218 =item EV_USE_CLOCK_SYSCALL
4661    
4662     If defined to be C<1>, libev will try to use a direct syscall instead
4663     of calling the system-provided C<clock_gettime> function. This option
4664     exists because on GNU/Linux, C<clock_gettime> is in C<librt>, but C<librt>
4665     unconditionally pulls in C<libpthread>, slowing down single-threaded
4666 root 1.219 programs needlessly. Using a direct syscall is slightly slower (in
4667     theory), because no optimised vdso implementation can be used, but avoids
4668     the pthread dependency. Defaults to C<1> on GNU/Linux with glibc 2.x or
4669     higher, as it simplifies linking (no need for C<-lrt>).
4670 root 1.218
4671 root 1.97 =item EV_USE_NANOSLEEP
4672    
4673     If defined to be C<1>, libev will assume that C<nanosleep ()> is available
4674     and will use it for delays. Otherwise it will use C<select ()>.
4675    
4676 root 1.142 =item EV_USE_EVENTFD
4677    
4678     If defined to be C<1>, then libev will assume that C<eventfd ()> is
4679     available and will probe for kernel support at runtime. This will improve
4680     C<ev_signal> and C<ev_async> performance and reduce resource consumption.
4681     If undefined, it will be enabled if the headers indicate GNU/Linux + Glibc
4682     2.7 or newer, otherwise disabled.
4683    
4684 root 1.458 =item EV_USE_SIGNALFD
4685    
4686     If defined to be C<1>, then libev will assume that C<signalfd ()> is
4687     available and will probe for kernel support at runtime. This enables
4688     the use of EVFLAG_SIGNALFD for faster and simpler signal handling. If
4689     undefined, it will be enabled if the headers indicate GNU/Linux + Glibc
4690     2.7 or newer, otherwise disabled.
4691    
4692     =item EV_USE_TIMERFD
4693    
4694     If defined to be C<1>, then libev will assume that C<timerfd ()> is
4695     available and will probe for kernel support at runtime. This allows
4696     libev to detect time jumps accurately. If undefined, it will be enabled
4697     if the headers indicate GNU/Linux + Glibc 2.8 or newer and define
4698     C<TFD_TIMER_CANCEL_ON_SET>, otherwise disabled.
4699    
4700     =item EV_USE_EVENTFD
4701    
4702     If defined to be C<1>, then libev will assume that C<eventfd ()> is
4703     available and will probe for kernel support at runtime. This will improve
4704     C<ev_signal> and C<ev_async> performance and reduce resource consumption.
4705     If undefined, it will be enabled if the headers indicate GNU/Linux + Glibc
4706     2.7 or newer, otherwise disabled.
4707    
4708 root 1.39 =item EV_USE_SELECT
4709    
4710     If undefined or defined to be C<1>, libev will compile in support for the
4711 root 1.161 C<select>(2) backend. No attempt at auto-detection will be done: if no
4712 root 1.39 other method takes over, select will be it. Otherwise the select backend
4713     will not be compiled in.
4714    
4715     =item EV_SELECT_USE_FD_SET
4716    
4717     If defined to C<1>, then the select backend will use the system C<fd_set>
4718     structure. This is useful if libev doesn't compile due to a missing
4719 root 1.218 C<NFDBITS> or C<fd_mask> definition or it mis-guesses the bitset layout
4720     on exotic systems. This usually limits the range of file descriptors to
4721     some low limit such as 1024 or might have other limitations (winsocket
4722     only allows 64 sockets). The C<FD_SETSIZE> macro, set before compilation,
4723     configures the maximum size of the C<fd_set>.
4724 root 1.39
4725     =item EV_SELECT_IS_WINSOCKET
4726    
4727     When defined to C<1>, the select backend will assume that
4728     select/socket/connect etc. don't understand file descriptors but
4729     wants osf handles on win32 (this is the case when the select to
4730     be used is the winsock select). This means that it will call
4731     C<_get_osfhandle> on the fd to convert it to an OS handle. Otherwise,
4732     it is assumed that all these functions actually work on fds, even
4733     on win32. Should not be defined on non-win32 platforms.
4734    
4735 root 1.264 =item EV_FD_TO_WIN32_HANDLE(fd)
4736 root 1.112
4737     If C<EV_SELECT_IS_WINSOCKET> is enabled, then libev needs a way to map
4738     file descriptors to socket handles. When not defining this symbol (the
4739     default), then libev will call C<_get_osfhandle>, which is usually
4740     correct. In some cases, programs use their own file descriptor management,
4741     in which case they can provide this function to map fds to socket handles.
4742    
4743 root 1.264 =item EV_WIN32_HANDLE_TO_FD(handle)
4744    
4745     If C<EV_SELECT_IS_WINSOCKET> then libev maps handles to file descriptors
4746     using the standard C<_open_osfhandle> function. For programs implementing
4747     their own fd to handle mapping, overwriting this function makes it easier
4748     to do so. This can be done by defining this macro to an appropriate value.
4749    
4750     =item EV_WIN32_CLOSE_FD(fd)
4751    
4752     If programs implement their own fd to handle mapping on win32, then this
4753     macro can be used to override the C<close> function, useful to unregister
4754     file descriptors again. Note that the replacement function has to close
4755     the underlying OS handle.
4756    
4757 root 1.417 =item EV_USE_WSASOCKET
4758    
4759     If defined to be C<1>, libev will use C<WSASocket> to create its internal
4760     communication socket, which works better in some environments. Otherwise,
4761     the normal C<socket> function will be used, which works better in other
4762 sf-exg 1.418 environments.
4763 root 1.417
4764 root 1.39 =item EV_USE_POLL
4765    
4766     If defined to be C<1>, libev will compile in support for the C<poll>(2)
4767     backend. Otherwise it will be enabled on non-win32 platforms. It
4768     takes precedence over select.
4769    
4770     =item EV_USE_EPOLL
4771    
4772     If defined to be C<1>, libev will compile in support for the Linux
4773     C<epoll>(7) backend. Its availability will be detected at runtime,
4774 root 1.142 otherwise another method will be used as fallback. This is the preferred
4775     backend for GNU/Linux systems. If undefined, it will be enabled if the
4776     headers indicate GNU/Linux + Glibc 2.4 or newer, otherwise disabled.
4777 root 1.39
4778 root 1.447 =item EV_USE_LINUXAIO
4779    
4780 root 1.456 If defined to be C<1>, libev will compile in support for the Linux aio
4781     backend (C<EV_USE_EPOLL> must also be enabled). If undefined, it will be
4782     enabled on linux, otherwise disabled.
4783    
4784     =item EV_USE_IOURING
4785    
4786 root 1.447 If defined to be C<1>, libev will compile in support for the Linux
4787 root 1.470 io_uring backend (C<EV_USE_EPOLL> must also be enabled). Note thet epoll
4788     take precedence because it is faster, so it has to be requested explicitly
4789     currently. If undefined, it will be enabled on linux, otherwise disabled.
4790 root 1.447
4791 root 1.39 =item EV_USE_KQUEUE
4792    
4793     If defined to be C<1>, libev will compile in support for the BSD style
4794     C<kqueue>(2) backend. Its actual availability will be detected at runtime,
4795     otherwise another method will be used as fallback. This is the preferred
4796     backend for BSD and BSD-like systems, although on most BSDs kqueue only
4797     supports some types of fds correctly (the only platform we found that
4798     supports ptys for example was NetBSD), so kqueue might be compiled in, but
4799     not be used unless explicitly requested. The best way to use it is to find
4800 root 1.41 out whether kqueue supports your type of fd properly and use an embedded
4801 root 1.39 kqueue loop.
4802    
4803     =item EV_USE_PORT
4804    
4805     If defined to be C<1>, libev will compile in support for the Solaris
4806     10 port style backend. Its availability will be detected at runtime,
4807     otherwise another method will be used as fallback. This is the preferred
4808     backend for Solaris 10 systems.
4809    
4810     =item EV_USE_DEVPOLL
4811    
4812 root 1.161 Reserved for future expansion, works like the USE symbols above.
4813 root 1.39
4814 root 1.56 =item EV_USE_INOTIFY
4815    
4816     If defined to be C<1>, libev will compile in support for the Linux inotify
4817     interface to speed up C<ev_stat> watchers. Its actual availability will
4818 root 1.142 be detected at runtime. If undefined, it will be enabled if the headers
4819     indicate GNU/Linux + Glibc 2.4 or newer, otherwise disabled.
4820 root 1.56
4821 root 1.396 =item EV_NO_SMP
4822    
4823     If defined to be C<1>, libev will assume that memory is always coherent
4824     between threads, that is, threads can be used, but threads never run on
4825     different cpus (or different cpu cores). This reduces dependencies
4826     and makes libev faster.
4827    
4828     =item EV_NO_THREADS
4829    
4830 root 1.426 If defined to be C<1>, libev will assume that it will never be called from
4831     different threads (that includes signal handlers), which is a stronger
4832     assumption than C<EV_NO_SMP>, above. This reduces dependencies and makes
4833     libev faster.
4834 root 1.396
4835 root 1.123 =item EV_ATOMIC_T
4836    
4837     Libev requires an integer type (suitable for storing C<0> or C<1>) whose
4838 root 1.420 access is atomic with respect to other threads or signal contexts. No
4839     such type is easily found in the C language, so you can provide your own
4840     type that you know is safe for your purposes. It is used both for signal
4841     handler "locking" as well as for signal and thread safety in C<ev_async>
4842     watchers.
4843 root 1.123
4844 root 1.161 In the absence of this define, libev will use C<sig_atomic_t volatile>
4845 root 1.420 (from F<signal.h>), which is usually good enough on most platforms.
4846 root 1.123
4847 root 1.281 =item EV_H (h)
4848 root 1.39
4849     The name of the F<ev.h> header file used to include it. The default if
4850 root 1.118 undefined is C<"ev.h"> in F<event.h>, F<ev.c> and F<ev++.h>. This can be
4851     used to virtually rename the F<ev.h> header file in case of conflicts.
4852 root 1.39
4853 root 1.281 =item EV_CONFIG_H (h)
4854 root 1.39
4855     If C<EV_STANDALONE> isn't C<1>, this variable can be used to override
4856     F<ev.c>'s idea of where to find the F<config.h> file, similarly to
4857     C<EV_H>, above.
4858    
4859 root 1.281 =item EV_EVENT_H (h)
4860 root 1.39
4861     Similarly to C<EV_H>, this macro can be used to override F<event.c>'s idea
4862 root 1.118 of how the F<event.h> header can be found, the default is C<"event.h">.
4863 root 1.39
4864 root 1.281 =item EV_PROTOTYPES (h)
4865 root 1.39
4866     If defined to be C<0>, then F<ev.h> will not define any function
4867     prototypes, but still define all the structs and other symbols. This is
4868     occasionally useful if you want to provide your own wrapper functions
4869     around libev functions.
4870    
4871     =item EV_MULTIPLICITY
4872    
4873     If undefined or defined to C<1>, then all event-loop-specific functions
4874     will have the C<struct ev_loop *> as first argument, and you can create
4875     additional independent event loops. Otherwise there will be no support
4876     for multiple event loops and there is no first event loop pointer
4877     argument. Instead, all functions act on the single default loop.
4878    
4879 root 1.380 Note that C<EV_DEFAULT> and C<EV_DEFAULT_> will no longer provide a
4880     default loop when multiplicity is switched off - you always have to
4881     initialise the loop manually in this case.
4882    
4883 root 1.69 =item EV_MINPRI
4884    
4885     =item EV_MAXPRI
4886    
4887     The range of allowed priorities. C<EV_MINPRI> must be smaller or equal to
4888     C<EV_MAXPRI>, but otherwise there are no non-obvious limitations. You can
4889     provide for more priorities by overriding those symbols (usually defined
4890     to be C<-2> and C<2>, respectively).
4891    
4892     When doing priority-based operations, libev usually has to linearly search
4893     all the priorities, so having many of them (hundreds) uses a lot of space
4894     and time, so using the defaults of five priorities (-2 .. +2) is usually
4895     fine.
4896    
4897 root 1.184 If your embedding application does not need any priorities, defining these
4898     both to C<0> will save some memory and CPU.
4899 root 1.69
4900 root 1.283 =item EV_PERIODIC_ENABLE, EV_IDLE_ENABLE, EV_EMBED_ENABLE, EV_STAT_ENABLE,
4901     EV_PREPARE_ENABLE, EV_CHECK_ENABLE, EV_FORK_ENABLE, EV_SIGNAL_ENABLE,
4902     EV_ASYNC_ENABLE, EV_CHILD_ENABLE.
4903    
4904     If undefined or defined to be C<1> (and the platform supports it), then
4905     the respective watcher type is supported. If defined to be C<0>, then it
4906 sf-exg 1.299 is not. Disabling watcher types mainly saves code size.
4907 root 1.282
4908 root 1.285 =item EV_FEATURES
4909 root 1.47
4910     If you need to shave off some kilobytes of code at the expense of some
4911 root 1.285 speed (but with the full API), you can define this symbol to request
4912     certain subsets of functionality. The default is to enable all features
4913     that can be enabled on the platform.
4914    
4915     A typical way to use this symbol is to define it to C<0> (or to a bitset
4916     with some broad features you want) and then selectively re-enable
4917     additional parts you want, for example if you want everything minimal,
4918     but multiple event loop support, async and child watchers and the poll
4919     backend, use this:
4920    
4921     #define EV_FEATURES 0
4922     #define EV_MULTIPLICITY 1
4923     #define EV_USE_POLL 1
4924     #define EV_CHILD_ENABLE 1
4925     #define EV_ASYNC_ENABLE 1
4926    
4927     The actual value is a bitset, it can be a combination of the following
4928 root 1.400 values (by default, all of these are enabled):
4929 root 1.285
4930     =over 4
4931    
4932     =item C<1> - faster/larger code
4933    
4934     Use larger code to speed up some operations.
4935    
4936 sf-exg 1.299 Currently this is used to override some inlining decisions (enlarging the
4937     code size by roughly 30% on amd64).
4938 root 1.285
4939 root 1.286 When optimising for size, use of compiler flags such as C<-Os> with
4940 sf-exg 1.299 gcc is recommended, as well as C<-DNDEBUG>, as libev contains a number of
4941 root 1.286 assertions.
4942 root 1.285
4943 root 1.400 The default is off when C<__OPTIMIZE_SIZE__> is defined by your compiler
4944     (e.g. gcc with C<-Os>).
4945    
4946 root 1.285 =item C<2> - faster/larger data structures
4947    
4948     Replaces the small 2-heap for timer management by a faster 4-heap, larger
4949 sf-exg 1.299 hash table sizes and so on. This will usually further increase code size
4950 root 1.285 and can additionally have an effect on the size of data structures at
4951     runtime.
4952    
4953 root 1.400 The default is off when C<__OPTIMIZE_SIZE__> is defined by your compiler
4954     (e.g. gcc with C<-Os>).
4955    
4956 root 1.285 =item C<4> - full API configuration
4957    
4958     This enables priorities (sets C<EV_MAXPRI>=2 and C<EV_MINPRI>=-2), and
4959     enables multiplicity (C<EV_MULTIPLICITY>=1).
4960    
4961 root 1.287 =item C<8> - full API
4962    
4963     This enables a lot of the "lesser used" API functions. See C<ev.h> for
4964     details on which parts of the API are still available without this
4965 root 1.285 feature, and do not complain if this subset changes over time.
4966    
4967 root 1.287 =item C<16> - enable all optional watcher types
4968 root 1.285
4969     Enables all optional watcher types. If you want to selectively enable
4970     only some watcher types other than I/O and timers (e.g. prepare,
4971     embed, async, child...) you can enable them manually by defining
4972     C<EV_watchertype_ENABLE> to C<1> instead.
4973    
4974 root 1.287 =item C<32> - enable all backends
4975 root 1.285
4976     This enables all backends - without this feature, you need to enable at
4977     least one backend manually (C<EV_USE_SELECT> is a good choice).
4978    
4979 root 1.287 =item C<64> - enable OS-specific "helper" APIs
4980 root 1.285
4981     Enable inotify, eventfd, signalfd and similar OS-specific helper APIs by
4982     default.
4983    
4984     =back
4985    
4986     Compiling with C<gcc -Os -DEV_STANDALONE -DEV_USE_EPOLL=1 -DEV_FEATURES=0>
4987 root 1.288 reduces the compiled size of libev from 24.7Kb code/2.8Kb data to 6.5Kb
4988     code/0.3Kb data on my GNU/Linux amd64 system, while still giving you I/O
4989     watchers, timers and monotonic clock support.
4990 root 1.285
4991     With an intelligent-enough linker (gcc+binutils are intelligent enough
4992     when you use C<-Wl,--gc-sections -ffunction-sections>) functions unused by
4993     your program might be left out as well - a binary starting a timer and an
4994     I/O watcher then might come out at only 5Kb.
4995 root 1.282
4996 root 1.388 =item EV_API_STATIC
4997    
4998     If this symbol is defined (by default it is not), then all identifiers
4999     will have static linkage. This means that libev will not export any
5000     identifiers, and you cannot link against libev anymore. This can be useful
5001     when you embed libev, only want to use libev functions in a single file,
5002     and do not want its identifiers to be visible.
5003    
5004     To use this, define C<EV_API_STATIC> and include F<ev.c> in the file that
5005     wants to use libev.
5006    
5007 root 1.393 This option only works when libev is compiled with a C compiler, as C++
5008     doesn't support the required declaration syntax.
5009    
5010 root 1.281 =item EV_AVOID_STDIO
5011    
5012     If this is set to C<1> at compiletime, then libev will avoid using stdio
5013 sf-exg 1.299 functions (printf, scanf, perror etc.). This will increase the code size
5014 root 1.281 somewhat, but if your program doesn't otherwise depend on stdio and your
5015     libc allows it, this avoids linking in the stdio library which is quite
5016     big.
5017    
5018     Note that error messages might become less precise when this option is
5019     enabled.
5020    
5021 root 1.260 =item EV_NSIG
5022    
5023     The highest supported signal number, +1 (or, the number of
5024     signals): Normally, libev tries to deduce the maximum number of signals
5025     automatically, but sometimes this fails, in which case it can be
5026     specified. Also, using a lower number than detected (C<32> should be
5027 sf-exg 1.298 good for about any system in existence) can save some memory, as libev
5028 root 1.260 statically allocates some 12-24 bytes per signal number.
5029    
5030 root 1.51 =item EV_PID_HASHSIZE
5031    
5032     C<ev_child> watchers use a small hash table to distribute workload by
5033 root 1.285 pid. The default size is C<16> (or C<1> with C<EV_FEATURES> disabled),
5034     usually more than enough. If you need to manage thousands of children you
5035     might want to increase this value (I<must> be a power of two).
5036 root 1.56
5037     =item EV_INOTIFY_HASHSIZE
5038    
5039 root 1.104 C<ev_stat> watchers use a small hash table to distribute workload by
5040 root 1.285 inotify watch id. The default size is C<16> (or C<1> with C<EV_FEATURES>
5041     disabled), usually more than enough. If you need to manage thousands of
5042     C<ev_stat> watchers you might want to increase this value (I<must> be a
5043     power of two).
5044 root 1.51
5045 root 1.153 =item EV_USE_4HEAP
5046    
5047     Heaps are not very cache-efficient. To improve the cache-efficiency of the
5048 root 1.184 timer and periodics heaps, libev uses a 4-heap when this symbol is defined
5049     to C<1>. The 4-heap uses more complicated (longer) code but has noticeably
5050     faster performance with many (thousands) of watchers.
5051 root 1.153
5052 root 1.285 The default is C<1>, unless C<EV_FEATURES> overrides it, in which case it
5053     will be C<0>.
5054 root 1.153
5055     =item EV_HEAP_CACHE_AT
5056    
5057     Heaps are not very cache-efficient. To improve the cache-efficiency of the
5058 root 1.184 timer and periodics heaps, libev can cache the timestamp (I<at>) within
5059 root 1.153 the heap structure (selected by defining C<EV_HEAP_CACHE_AT> to C<1>),
5060     which uses 8-12 bytes more per watcher and a few hundred bytes more code,
5061 root 1.155 but avoids random read accesses on heap changes. This improves performance
5062 root 1.184 noticeably with many (hundreds) of watchers.
5063 root 1.153
5064 root 1.285 The default is C<1>, unless C<EV_FEATURES> overrides it, in which case it
5065     will be C<0>.
5066 root 1.153
5067 root 1.159 =item EV_VERIFY
5068    
5069 root 1.309 Controls how much internal verification (see C<ev_verify ()>) will
5070 root 1.159 be done: If set to C<0>, no internal verification code will be compiled
5071     in. If set to C<1>, then verification code will be compiled in, but not
5072     called. If set to C<2>, then the internal verification code will be
5073     called once per loop, which can slow down libev. If set to C<3>, then the
5074     verification code will be called very frequently, which will slow down
5075     libev considerably.
5076    
5077 root 1.455 Verification errors are reported via C's C<assert> mechanism, so if you
5078     disable that (e.g. by defining C<NDEBUG>) then no errors will be reported.
5079    
5080 root 1.285 The default is C<1>, unless C<EV_FEATURES> overrides it, in which case it
5081     will be C<0>.
5082 root 1.159
5083 root 1.39 =item EV_COMMON
5084    
5085     By default, all watchers have a C<void *data> member. By redefining
5086 sf-exg 1.300 this macro to something else you can include more and other types of
5087 root 1.39 members. You have to define it each time you include one of the files,
5088     though, and it must be identical each time.
5089    
5090     For example, the perl EV module uses something like this:
5091    
5092 root 1.164 #define EV_COMMON \
5093     SV *self; /* contains this struct */ \
5094     SV *cb_sv, *fh /* note no trailing ";" */
5095 root 1.39
5096 root 1.44 =item EV_CB_DECLARE (type)
5097 root 1.39
5098 root 1.44 =item EV_CB_INVOKE (watcher, revents)
5099 root 1.39
5100 root 1.44 =item ev_set_cb (ev, cb)
5101 root 1.39
5102     Can be used to change the callback member declaration in each watcher,
5103     and the way callbacks are invoked and set. Must expand to a struct member
5104 root 1.93 definition and a statement, respectively. See the F<ev.h> header file for
5105 root 1.39 their default definitions. One possible use for overriding these is to
5106 root 1.44 avoid the C<struct ev_loop *> as first argument in all cases, or to use
5107     method calls instead of plain function calls in C++.
5108 root 1.39
5109 root 1.185 =back
5110    
5111 root 1.89 =head2 EXPORTED API SYMBOLS
5112    
5113 root 1.161 If you need to re-export the API (e.g. via a DLL) and you need a list of
5114 root 1.89 exported symbols, you can use the provided F<Symbol.*> files which list
5115     all public symbols, one per line:
5116    
5117 root 1.164 Symbols.ev for libev proper
5118     Symbols.event for the libevent emulation
5119 root 1.89
5120     This can also be used to rename all public symbols to avoid clashes with
5121     multiple versions of libev linked together (which is obviously bad in
5122 root 1.161 itself, but sometimes it is inconvenient to avoid this).
5123 root 1.89
5124 root 1.92 A sed command like this will create wrapper C<#define>'s that you need to
5125 root 1.89 include before including F<ev.h>:
5126    
5127     <Symbols.ev sed -e "s/.*/#define & myprefix_&/" >wrap.h
5128    
5129     This would create a file F<wrap.h> which essentially looks like this:
5130    
5131     #define ev_backend myprefix_ev_backend
5132     #define ev_check_start myprefix_ev_check_start
5133     #define ev_check_stop myprefix_ev_check_stop
5134     ...
5135    
5136 root 1.39 =head2 EXAMPLES
5137    
5138     For a real-world example of a program the includes libev
5139     verbatim, you can have a look at the EV perl module
5140     (L<http://software.schmorp.de/pkg/EV.html>). It has the libev files in
5141     the F<libev/> subdirectory and includes them in the F<EV/EVAPI.h> (public
5142     interface) and F<EV.xs> (implementation) files. Only the F<EV.xs> file
5143     will be compiled. It is pretty complex because it provides its own header
5144     file.
5145    
5146     The usage in rxvt-unicode is simpler. It has a F<ev_cpp.h> header file
5147 root 1.63 that everybody includes and which overrides some configure choices:
5148 root 1.39
5149 root 1.287 #define EV_FEATURES 8
5150 root 1.285 #define EV_USE_SELECT 1
5151 root 1.287 #define EV_PREPARE_ENABLE 1
5152     #define EV_IDLE_ENABLE 1
5153     #define EV_SIGNAL_ENABLE 1
5154     #define EV_CHILD_ENABLE 1
5155     #define EV_USE_STDEXCEPT 0
5156 root 1.164 #define EV_CONFIG_H <config.h>
5157 root 1.39
5158 root 1.164 #include "ev++.h"
5159 root 1.39
5160     And a F<ev_cpp.C> implementation file that contains libev proper and is compiled:
5161    
5162 root 1.164 #include "ev_cpp.h"
5163     #include "ev.c"
5164 root 1.39
5165 root 1.356 =head1 INTERACTION WITH OTHER PROGRAMS, LIBRARIES OR THE ENVIRONMENT
5166 root 1.46
5167 root 1.189 =head2 THREADS AND COROUTINES
5168 root 1.144
5169 root 1.189 =head3 THREADS
5170 root 1.144
5171 root 1.186 All libev functions are reentrant and thread-safe unless explicitly
5172 root 1.191 documented otherwise, but libev implements no locking itself. This means
5173     that you can use as many loops as you want in parallel, as long as there
5174     are no concurrent calls into any libev function with the same loop
5175     parameter (C<ev_default_*> calls have an implicit default loop parameter,
5176     of course): libev guarantees that different event loops share no data
5177 root 1.186 structures that need any locking.
5178 root 1.180
5179     Or to put it differently: calls with different loop parameters can be done
5180     concurrently from multiple threads, calls with the same loop parameter
5181     must be done serially (but can be done from different threads, as long as
5182     only one thread ever is inside a call at any point in time, e.g. by using
5183     a mutex per loop).
5184    
5185     Specifically to support threads (and signal handlers), libev implements
5186     so-called C<ev_async> watchers, which allow some limited form of
5187 root 1.186 concurrency on the same event loop, namely waking it up "from the
5188     outside".
5189 root 1.144
5190 root 1.170 If you want to know which design (one loop, locking, or multiple loops
5191     without or something else still) is best for your problem, then I cannot
5192 root 1.186 help you, but here is some generic advice:
5193 root 1.144
5194     =over 4
5195    
5196     =item * most applications have a main thread: use the default libev loop
5197 root 1.161 in that thread, or create a separate thread running only the default loop.
5198 root 1.144
5199     This helps integrating other libraries or software modules that use libev
5200     themselves and don't care/know about threading.
5201    
5202     =item * one loop per thread is usually a good model.
5203    
5204     Doing this is almost never wrong, sometimes a better-performance model
5205     exists, but it is always a good start.
5206    
5207     =item * other models exist, such as the leader/follower pattern, where one
5208 root 1.161 loop is handed through multiple threads in a kind of round-robin fashion.
5209 root 1.144
5210 root 1.161 Choosing a model is hard - look around, learn, know that usually you can do
5211 root 1.144 better than you currently do :-)
5212    
5213     =item * often you need to talk to some other thread which blocks in the
5214 root 1.182 event loop.
5215 root 1.144
5216 root 1.182 C<ev_async> watchers can be used to wake them up from other threads safely
5217     (or from signal contexts...).
5218    
5219     An example use would be to communicate signals or other events that only
5220     work in the default loop by registering the signal watcher with the
5221     default loop and triggering an C<ev_async> watcher from the default loop
5222     watcher callback into the event loop interested in the signal.
5223 root 1.180
5224 root 1.144 =back
5225    
5226 root 1.413 See also L</THREAD LOCKING EXAMPLE>.
5227 root 1.254
5228 root 1.189 =head3 COROUTINES
5229 root 1.144
5230 root 1.191 Libev is very accommodating to coroutines ("cooperative threads"):
5231     libev fully supports nesting calls to its functions from different
5232 root 1.310 coroutines (e.g. you can call C<ev_run> on the same loop from two
5233 root 1.255 different coroutines, and switch freely between both coroutines running
5234     the loop, as long as you don't confuse yourself). The only exception is
5235     that you must not do this from C<ev_periodic> reschedule callbacks.
5236 root 1.144
5237 root 1.181 Care has been taken to ensure that libev does not keep local state inside
5238 root 1.310 C<ev_run>, and other calls do not usually allow for coroutine switches as
5239 root 1.208 they do not call any callbacks.
5240 root 1.144
5241 root 1.189 =head2 COMPILER WARNINGS
5242    
5243     Depending on your compiler and compiler settings, you might get no or a
5244     lot of warnings when compiling libev code. Some people are apparently
5245     scared by this.
5246    
5247     However, these are unavoidable for many reasons. For one, each compiler
5248     has different warnings, and each user has different tastes regarding
5249     warning options. "Warn-free" code therefore cannot be a goal except when
5250     targeting a specific compiler and compiler-version.
5251    
5252     Another reason is that some compiler warnings require elaborate
5253     workarounds, or other changes to the code that make it less clear and less
5254     maintainable.
5255    
5256     And of course, some compiler warnings are just plain stupid, or simply
5257     wrong (because they don't actually warn about the condition their message
5258     seems to warn about). For example, certain older gcc versions had some
5259 sf-exg 1.300 warnings that resulted in an extreme number of false positives. These have
5260 root 1.189 been fixed, but some people still insist on making code warn-free with
5261     such buggy versions.
5262    
5263     While libev is written to generate as few warnings as possible,
5264     "warn-free" code is not a goal, and it is recommended not to build libev
5265     with any compiler warnings enabled unless you are prepared to cope with
5266     them (e.g. by ignoring them). Remember that warnings are just that:
5267     warnings, not errors, or proof of bugs.
5268    
5269    
5270 root 1.190 =head2 VALGRIND
5271 root 1.189
5272     Valgrind has a special section here because it is a popular tool that is
5273     highly useful. Unfortunately, valgrind reports are very hard to interpret.
5274    
5275     If you think you found a bug (memory leak, uninitialised data access etc.)
5276     in libev, then check twice: If valgrind reports something like:
5277    
5278     ==2274== definitely lost: 0 bytes in 0 blocks.
5279     ==2274== possibly lost: 0 bytes in 0 blocks.
5280     ==2274== still reachable: 256 bytes in 1 blocks.
5281    
5282     Then there is no memory leak, just as memory accounted to global variables
5283 root 1.208 is not a memleak - the memory is still being referenced, and didn't leak.
5284 root 1.189
5285     Similarly, under some circumstances, valgrind might report kernel bugs
5286     as if it were a bug in libev (e.g. in realloc or in the poll backend,
5287     although an acceptable workaround has been found here), or it might be
5288     confused.
5289    
5290     Keep in mind that valgrind is a very good tool, but only a tool. Don't
5291     make it into some kind of religion.
5292    
5293     If you are unsure about something, feel free to contact the mailing list
5294     with the full valgrind report and an explanation on why you think this
5295     is a bug in libev (best check the archives, too :). However, don't be
5296     annoyed when you get a brisk "this is no bug" answer and take the chance
5297     of learning how to interpret valgrind properly.
5298    
5299     If you need, for some reason, empty reports from valgrind for your project
5300     I suggest using suppression lists.
5301    
5302    
5303 root 1.190 =head1 PORTABILITY NOTES
5304 root 1.189
5305 root 1.302 =head2 GNU/LINUX 32 BIT LIMITATIONS
5306    
5307     GNU/Linux is the only common platform that supports 64 bit file/large file
5308 root 1.303 interfaces but I<disables> them by default.
5309 root 1.302
5310     That means that libev compiled in the default environment doesn't support
5311 root 1.303 files larger than 2GiB or so, which mainly affects C<ev_stat> watchers.
5312 root 1.302
5313     Unfortunately, many programs try to work around this GNU/Linux issue
5314     by enabling the large file API, which makes them incompatible with the
5315     standard libev compiled for their system.
5316    
5317     Likewise, libev cannot enable the large file API itself as this would
5318     suddenly make it incompatible to the default compile time environment,
5319     i.e. all programs not using special compile switches.
5320    
5321     =head2 OS/X AND DARWIN BUGS
5322    
5323     The whole thing is a bug if you ask me - basically any system interface
5324 root 1.303 you touch is broken, whether it is locales, poll, kqueue or even the
5325 root 1.302 OpenGL drivers.
5326    
5327 root 1.303 =head3 C<kqueue> is buggy
5328 root 1.302
5329     The kqueue syscall is broken in all known versions - most versions support
5330     only sockets, many support pipes.
5331    
5332 root 1.314 Libev tries to work around this by not using C<kqueue> by default on this
5333     rotten platform, but of course you can still ask for it when creating a
5334     loop - embedding a socket-only kqueue loop into a select-based one is
5335     probably going to work well.
5336 root 1.304
5337 root 1.303 =head3 C<poll> is buggy
5338 root 1.302
5339     Instead of fixing C<kqueue>, Apple replaced their (working) C<poll>
5340     implementation by something calling C<kqueue> internally around the 10.5.6
5341     release, so now C<kqueue> I<and> C<poll> are broken.
5342    
5343 root 1.304 Libev tries to work around this by not using C<poll> by default on
5344     this rotten platform, but of course you can still ask for it when creating
5345     a loop.
5346 root 1.302
5347 root 1.303 =head3 C<select> is buggy
5348 root 1.302
5349     All that's left is C<select>, and of course Apple found a way to fuck this
5350     one up as well: On OS/X, C<select> actively limits the number of file
5351 root 1.305 descriptors you can pass in to 1024 - your program suddenly crashes when
5352 root 1.302 you use more.
5353    
5354     There is an undocumented "workaround" for this - defining
5355     C<_DARWIN_UNLIMITED_SELECT>, which libev tries to use, so select I<should>
5356     work on OS/X.
5357    
5358     =head2 SOLARIS PROBLEMS AND WORKAROUNDS
5359    
5360 root 1.303 =head3 C<errno> reentrancy
5361 root 1.302
5362     The default compile environment on Solaris is unfortunately so
5363     thread-unsafe that you can't even use components/libraries compiled
5364 root 1.314 without C<-D_REENTRANT> in a threaded program, which, of course, isn't
5365     defined by default. A valid, if stupid, implementation choice.
5366 root 1.302
5367     If you want to use libev in threaded environments you have to make sure
5368     it's compiled with C<_REENTRANT> defined.
5369    
5370 root 1.303 =head3 Event port backend
5371 root 1.302
5372 root 1.314 The scalable event interface for Solaris is called "event
5373     ports". Unfortunately, this mechanism is very buggy in all major
5374     releases. If you run into high CPU usage, your program freezes or you get
5375     a large number of spurious wakeups, make sure you have all the relevant
5376     and latest kernel patches applied. No, I don't know which ones, but there
5377     are multiple ones to apply, and afterwards, event ports actually work
5378     great.
5379 root 1.302
5380 root 1.305 If you can't get it to work, you can try running the program by setting
5381     the environment variable C<LIBEV_FLAGS=3> to only allow C<poll> and
5382     C<select> backends.
5383 root 1.302
5384     =head2 AIX POLL BUG
5385    
5386     AIX unfortunately has a broken C<poll.h> header. Libev works around
5387     this by trying to avoid the poll backend altogether (i.e. it's not even
5388     compiled in), which normally isn't a big problem as C<select> works fine
5389 root 1.314 with large bitsets on AIX, and AIX is dead anyway.
5390 root 1.302
5391 root 1.189 =head2 WIN32 PLATFORM LIMITATIONS AND WORKAROUNDS
5392 root 1.112
5393 root 1.303 =head3 General issues
5394    
5395 root 1.112 Win32 doesn't support any of the standards (e.g. POSIX) that libev
5396     requires, and its I/O model is fundamentally incompatible with the POSIX
5397     model. Libev still offers limited functionality on this platform in
5398     the form of the C<EVBACKEND_SELECT> backend, and only supports socket
5399     descriptors. This only applies when using Win32 natively, not when using
5400 root 1.303 e.g. cygwin. Actually, it only applies to the microsofts own compilers,
5401 sf-exg 1.374 as every compiler comes with a slightly differently broken/incompatible
5402 root 1.303 environment.
5403 root 1.112
5404 root 1.150 Lifting these limitations would basically require the full
5405 root 1.303 re-implementation of the I/O system. If you are into this kind of thing,
5406     then note that glib does exactly that for you in a very portable way (note
5407     also that glib is the slowest event library known to man).
5408 root 1.150
5409 root 1.112 There is no supported compilation method available on windows except
5410     embedding it into other applications.
5411    
5412 root 1.241 Sensible signal handling is officially unsupported by Microsoft - libev
5413     tries its best, but under most conditions, signals will simply not work.
5414    
5415 root 1.162 Not a libev limitation but worth mentioning: windows apparently doesn't
5416     accept large writes: instead of resulting in a partial write, windows will
5417     either accept everything or return C<ENOBUFS> if the buffer is too large,
5418     so make sure you only write small amounts into your sockets (less than a
5419 root 1.184 megabyte seems safe, but this apparently depends on the amount of memory
5420 root 1.162 available).
5421    
5422 root 1.150 Due to the many, low, and arbitrary limits on the win32 platform and
5423     the abysmal performance of winsockets, using a large number of sockets
5424     is not recommended (and not reasonable). If your program needs to use
5425     more than a hundred or so sockets, then likely it needs to use a totally
5426 root 1.155 different implementation for windows, as libev offers the POSIX readiness
5427 root 1.150 notification model, which cannot be implemented efficiently on windows
5428 root 1.241 (due to Microsoft monopoly games).
5429 root 1.112
5430 root 1.167 A typical way to use libev under windows is to embed it (see the embedding
5431     section for details) and use the following F<evwrap.h> header file instead
5432     of F<ev.h>:
5433    
5434     #define EV_STANDALONE /* keeps ev from requiring config.h */
5435     #define EV_SELECT_IS_WINSOCKET 1 /* configure libev for windows select */
5436    
5437     #include "ev.h"
5438    
5439     And compile the following F<evwrap.c> file into your project (make sure
5440 root 1.184 you do I<not> compile the F<ev.c> or any other embedded source files!):
5441 root 1.167
5442     #include "evwrap.h"
5443     #include "ev.c"
5444    
5445 root 1.303 =head3 The winsocket C<select> function
5446 root 1.112
5447 root 1.160 The winsocket C<select> function doesn't follow POSIX in that it
5448     requires socket I<handles> and not socket I<file descriptors> (it is
5449     also extremely buggy). This makes select very inefficient, and also
5450 root 1.167 requires a mapping from file descriptors to socket handles (the Microsoft
5451     C runtime provides the function C<_open_osfhandle> for this). See the
5452 root 1.160 discussion of the C<EV_SELECT_USE_FD_SET>, C<EV_SELECT_IS_WINSOCKET> and
5453     C<EV_FD_TO_WIN32_HANDLE> preprocessor symbols for more info.
5454 root 1.112
5455 root 1.161 The configuration for a "naked" win32 using the Microsoft runtime
5456 root 1.112 libraries and raw winsocket select is:
5457    
5458 root 1.164 #define EV_USE_SELECT 1
5459     #define EV_SELECT_IS_WINSOCKET 1 /* forces EV_SELECT_USE_FD_SET, too */
5460 root 1.112
5461     Note that winsockets handling of fd sets is O(n), so you can easily get a
5462     complexity in the O(n²) range when using win32.
5463    
5464 root 1.303 =head3 Limited number of file descriptors
5465 root 1.112
5466 root 1.150 Windows has numerous arbitrary (and low) limits on things.
5467    
5468     Early versions of winsocket's select only supported waiting for a maximum
5469     of C<64> handles (probably owning to the fact that all windows kernels
5470 root 1.161 can only wait for C<64> things at the same time internally; Microsoft
5471 root 1.150 recommends spawning a chain of threads and wait for 63 handles and the
5472 root 1.241 previous thread in each. Sounds great!).
5473 root 1.112
5474     Newer versions support more handles, but you need to define C<FD_SETSIZE>
5475     to some high number (e.g. C<2048>) before compiling the winsocket select
5476 root 1.241 call (which might be in libev or elsewhere, for example, perl and many
5477     other interpreters do their own select emulation on windows).
5478 root 1.112
5479 root 1.161 Another limit is the number of file descriptors in the Microsoft runtime
5480 root 1.241 libraries, which by default is C<64> (there must be a hidden I<64>
5481     fetish or something like this inside Microsoft). You can increase this
5482     by calling C<_setmaxstdio>, which can increase this limit to C<2048>
5483     (another arbitrary limit), but is broken in many versions of the Microsoft
5484     runtime libraries. This might get you to about C<512> or C<2048> sockets
5485     (depending on windows version and/or the phase of the moon). To get more,
5486     you need to wrap all I/O functions and provide your own fd management, but
5487     the cost of calling select (O(n²)) will likely make this unworkable.
5488 root 1.112
5489 root 1.189 =head2 PORTABILITY REQUIREMENTS
5490 root 1.112
5491 root 1.189 In addition to a working ISO-C implementation and of course the
5492     backend-specific APIs, libev relies on a few additional extensions:
5493 root 1.148
5494     =over 4
5495    
5496 root 1.165 =item C<void (*)(ev_watcher_type *, int revents)> must have compatible
5497     calling conventions regardless of C<ev_watcher_type *>.
5498    
5499     Libev assumes not only that all watcher pointers have the same internal
5500     structure (guaranteed by POSIX but not by ISO C for example), but it also
5501     assumes that the same (machine) code can be used to call any watcher
5502     callback: The watcher callbacks have different type signatures, but libev
5503     calls them using an C<ev_watcher *> internally.
5504    
5505 root 1.439 =item null pointers and integer zero are represented by 0 bytes
5506    
5507     Libev uses C<memset> to initialise structs and arrays to C<0> bytes, and
5508     relies on this setting pointers and integers to null.
5509    
5510 root 1.333 =item pointer accesses must be thread-atomic
5511    
5512     Accessing a pointer value must be atomic, it must both be readable and
5513     writable in one piece - this is the case on all current architectures.
5514    
5515 root 1.148 =item C<sig_atomic_t volatile> must be thread-atomic as well
5516    
5517     The type C<sig_atomic_t volatile> (or whatever is defined as
5518 root 1.184 C<EV_ATOMIC_T>) must be atomic with respect to accesses from different
5519 root 1.148 threads. This is not part of the specification for C<sig_atomic_t>, but is
5520     believed to be sufficiently portable.
5521    
5522     =item C<sigprocmask> must work in a threaded environment
5523    
5524     Libev uses C<sigprocmask> to temporarily block signals. This is not
5525     allowed in a threaded program (C<pthread_sigmask> has to be used). Typical
5526     pthread implementations will either allow C<sigprocmask> in the "main
5527     thread" or will block signals process-wide, both behaviours would
5528     be compatible with libev. Interaction between C<sigprocmask> and
5529     C<pthread_sigmask> could complicate things, however.
5530    
5531     The most portable way to handle signals is to block signals in all threads
5532 root 1.421 except the initial one, and run the signal handling loop in the initial
5533     thread as well.
5534 root 1.148
5535 root 1.150 =item C<long> must be large enough for common memory allocation sizes
5536    
5537 root 1.189 To improve portability and simplify its API, libev uses C<long> internally
5538     instead of C<size_t> when allocating its data structures. On non-POSIX
5539     systems (Microsoft...) this might be unexpectedly low, but is still at
5540     least 31 bits everywhere, which is enough for hundreds of millions of
5541     watchers.
5542 root 1.150
5543     =item C<double> must hold a time value in seconds with enough accuracy
5544    
5545 root 1.151 The type C<double> is used to represent timestamps. It is required to
5546 root 1.308 have at least 51 bits of mantissa (and 9 bits of exponent), which is
5547     good enough for at least into the year 4000 with millisecond accuracy
5548     (the design goal for libev). This requirement is overfulfilled by
5549 root 1.376 implementations using IEEE 754, which is basically all existing ones.
5550    
5551     With IEEE 754 doubles, you get microsecond accuracy until at least the
5552 sf-exg 1.382 year 2255 (and millisecond accuracy till the year 287396 - by then, libev
5553 root 1.376 is either obsolete or somebody patched it to use C<long double> or
5554     something like that, just kidding).
5555 root 1.150
5556 root 1.148 =back
5557    
5558     If you know of other additional requirements drop me a note.
5559    
5560    
5561 root 1.191 =head1 ALGORITHMIC COMPLEXITIES
5562    
5563     In this section the complexities of (many of) the algorithms used inside
5564     libev will be documented. For complexity discussions about backends see
5565     the documentation for C<ev_default_init>.
5566    
5567     All of the following are about amortised time: If an array needs to be
5568     extended, libev needs to realloc and move the whole array, but this
5569     happens asymptotically rarer with higher number of elements, so O(1) might
5570     mean that libev does a lengthy realloc operation in rare cases, but on
5571     average it is much faster and asymptotically approaches constant time.
5572    
5573     =over 4
5574    
5575     =item Starting and stopping timer/periodic watchers: O(log skipped_other_timers)
5576    
5577     This means that, when you have a watcher that triggers in one hour and
5578     there are 100 watchers that would trigger before that, then inserting will
5579     have to skip roughly seven (C<ld 100>) of these watchers.
5580    
5581     =item Changing timer/periodic watchers (by autorepeat or calling again): O(log skipped_other_timers)
5582    
5583     That means that changing a timer costs less than removing/adding them,
5584     as only the relative motion in the event queue has to be paid for.
5585    
5586     =item Starting io/check/prepare/idle/signal/child/fork/async watchers: O(1)
5587    
5588     These just add the watcher into an array or at the head of a list.
5589    
5590     =item Stopping check/prepare/idle/fork/async watchers: O(1)
5591    
5592     =item Stopping an io/signal/child watcher: O(number_of_watchers_for_this_(fd/signal/pid % EV_PID_HASHSIZE))
5593    
5594     These watchers are stored in lists, so they need to be walked to find the
5595     correct watcher to remove. The lists are usually short (you don't usually
5596     have many watchers waiting for the same fd or signal: one is typical, two
5597     is rare).
5598    
5599     =item Finding the next timer in each loop iteration: O(1)
5600    
5601     By virtue of using a binary or 4-heap, the next timer is always found at a
5602     fixed position in the storage array.
5603    
5604     =item Each change on a file descriptor per loop iteration: O(number_of_watchers_for_this_fd)
5605    
5606     A change means an I/O watcher gets started or stopped, which requires
5607     libev to recalculate its status (and possibly tell the kernel, depending
5608     on backend and whether C<ev_io_set> was used).
5609    
5610     =item Activating one watcher (putting it into the pending state): O(1)
5611    
5612     =item Priority handling: O(number_of_priorities)
5613    
5614     Priorities are implemented by allocating some space for each
5615     priority. When doing priority-based operations, libev usually has to
5616     linearly search all the priorities, but starting/stopping and activating
5617     watchers becomes O(1) with respect to priority handling.
5618    
5619     =item Sending an ev_async: O(1)
5620    
5621     =item Processing ev_async_send: O(number_of_async_watchers)
5622    
5623     =item Processing signals: O(max_signal_number)
5624    
5625     Sending involves a system call I<iff> there were no other C<ev_async_send>
5626 root 1.375 calls in the current loop iteration and the loop is currently
5627     blocked. Checking for async and signal events involves iterating over all
5628     running async watchers or all signal numbers.
5629 root 1.191
5630     =back
5631    
5632    
5633 root 1.291 =head1 PORTING FROM LIBEV 3.X TO 4.X
5634 root 1.289
5635 root 1.332 The major version 4 introduced some incompatible changes to the API.
5636 root 1.289
5637 root 1.332 At the moment, the C<ev.h> header file provides compatibility definitions
5638     for all changes, so most programs should still compile. The compatibility
5639     layer might be removed in later versions of libev, so better update to the
5640     new API early than late.
5641 root 1.291
5642 root 1.289 =over 4
5643    
5644 root 1.332 =item C<EV_COMPAT3> backwards compatibility mechanism
5645    
5646     The backward compatibility mechanism can be controlled by
5647 root 1.428 C<EV_COMPAT3>. See L</"PREPROCESSOR SYMBOLS/MACROS"> in the L</EMBEDDING>
5648 root 1.332 section.
5649    
5650 root 1.322 =item C<ev_default_destroy> and C<ev_default_fork> have been removed
5651    
5652     These calls can be replaced easily by their C<ev_loop_xxx> counterparts:
5653    
5654 root 1.325 ev_loop_destroy (EV_DEFAULT_UC);
5655 root 1.322 ev_loop_fork (EV_DEFAULT);
5656    
5657 root 1.310 =item function/symbol renames
5658    
5659     A number of functions and symbols have been renamed:
5660    
5661     ev_loop => ev_run
5662     EVLOOP_NONBLOCK => EVRUN_NOWAIT
5663     EVLOOP_ONESHOT => EVRUN_ONCE
5664    
5665     ev_unloop => ev_break
5666     EVUNLOOP_CANCEL => EVBREAK_CANCEL
5667     EVUNLOOP_ONE => EVBREAK_ONE
5668     EVUNLOOP_ALL => EVBREAK_ALL
5669 root 1.291
5670 root 1.310 EV_TIMEOUT => EV_TIMER
5671 root 1.291
5672 root 1.310 ev_loop_count => ev_iteration
5673     ev_loop_depth => ev_depth
5674     ev_loop_verify => ev_verify
5675 root 1.291
5676     Most functions working on C<struct ev_loop> objects don't have an
5677 root 1.310 C<ev_loop_> prefix, so it was removed; C<ev_loop>, C<ev_unloop> and
5678     associated constants have been renamed to not collide with the C<struct
5679     ev_loop> anymore and C<EV_TIMER> now follows the same naming scheme
5680     as all other watcher types. Note that C<ev_loop_fork> is still called
5681     C<ev_loop_fork> because it would otherwise clash with the C<ev_fork>
5682     typedef.
5683    
5684 root 1.289 =item C<EV_MINIMAL> mechanism replaced by C<EV_FEATURES>
5685    
5686     The preprocessor symbol C<EV_MINIMAL> has been replaced by a different
5687     mechanism, C<EV_FEATURES>. Programs using C<EV_MINIMAL> usually compile
5688     and work, but the library code will of course be larger.
5689    
5690     =back
5691    
5692    
5693 root 1.234 =head1 GLOSSARY
5694    
5695     =over 4
5696    
5697     =item active
5698    
5699 root 1.315 A watcher is active as long as it has been started and not yet stopped.
5700 root 1.413 See L</WATCHER STATES> for details.
5701 root 1.234
5702     =item application
5703    
5704     In this document, an application is whatever is using libev.
5705    
5706 root 1.316 =item backend
5707    
5708     The part of the code dealing with the operating system interfaces.
5709    
5710 root 1.234 =item callback
5711    
5712     The address of a function that is called when some event has been
5713     detected. Callbacks are being passed the event loop, the watcher that
5714     received the event, and the actual event bitset.
5715    
5716 root 1.315 =item callback/watcher invocation
5717 root 1.234
5718     The act of calling the callback associated with a watcher.
5719    
5720     =item event
5721    
5722     A change of state of some external event, such as data now being available
5723     for reading on a file descriptor, time having passed or simply not having
5724     any other events happening anymore.
5725    
5726     In libev, events are represented as single bits (such as C<EV_READ> or
5727 root 1.289 C<EV_TIMER>).
5728 root 1.234
5729     =item event library
5730    
5731     A software package implementing an event model and loop.
5732    
5733     =item event loop
5734    
5735     An entity that handles and processes external events and converts them
5736     into callback invocations.
5737    
5738     =item event model
5739    
5740     The model used to describe how an event loop handles and processes
5741     watchers and events.
5742    
5743     =item pending
5744    
5745 root 1.315 A watcher is pending as soon as the corresponding event has been
5746 root 1.413 detected. See L</WATCHER STATES> for details.
5747 root 1.234
5748     =item real time
5749    
5750     The physical time that is observed. It is apparently strictly monotonic :)
5751    
5752     =item wall-clock time
5753    
5754     The time and date as shown on clocks. Unlike real time, it can actually
5755 sf-exg 1.366 be wrong and jump forwards and backwards, e.g. when you adjust your
5756 root 1.234 clock.
5757    
5758     =item watcher
5759    
5760     A data structure that describes interest in certain events. Watchers need
5761     to be started (attached to an event loop) before they can receive events.
5762    
5763     =back
5764    
5765 root 1.1 =head1 AUTHOR
5766    
5767 root 1.333 Marc Lehmann <libev@schmorp.de>, with repeated corrections by Mikael
5768 root 1.365 Magnusson and Emanuele Giaquinta, and minor corrections by many others.
5769 root 1.1