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8 8
9=head2 EXAMPLE PROGRAM 9=head2 EXAMPLE PROGRAM
10 10
11 // a single header file is required 11 // a single header file is required
12 #include <ev.h> 12 #include <ev.h>
13
14 #include <stdio.h> // for puts
13 15
14 // every watcher type has its own typedef'd struct 16 // every watcher type has its own typedef'd struct
15 // with the name ev_TYPE 17 // with the name ev_TYPE
16 ev_io stdin_watcher; 18 ev_io stdin_watcher;
17 ev_timer timeout_watcher; 19 ev_timer timeout_watcher;
41 43
42 int 44 int
43 main (void) 45 main (void)
44 { 46 {
45 // use the default event loop unless you have special needs 47 // use the default event loop unless you have special needs
46 ev_loop *loop = ev_default_loop (0); 48 struct ev_loop *loop = ev_default_loop (0);
47 49
48 // initialise an io watcher, then start it 50 // initialise an io watcher, then start it
49 // this one will watch for stdin to become readable 51 // this one will watch for stdin to become readable
50 ev_io_init (&stdin_watcher, stdin_cb, /*STDIN_FILENO*/ 0, EV_READ); 52 ev_io_init (&stdin_watcher, stdin_cb, /*STDIN_FILENO*/ 0, EV_READ);
51 ev_io_start (loop, &stdin_watcher); 53 ev_io_start (loop, &stdin_watcher);
60 62
61 // unloop was called, so exit 63 // unloop was called, so exit
62 return 0; 64 return 0;
63 } 65 }
64 66
65=head1 DESCRIPTION 67=head1 ABOUT THIS DOCUMENT
68
69This document documents the libev software package.
66 70
67The newest version of this document is also available as an html-formatted 71The newest version of this document is also available as an html-formatted
68web page you might find easier to navigate when reading it for the first 72web page you might find easier to navigate when reading it for the first
69time: L<http://pod.tst.eu/http://cvs.schmorp.de/libev/ev.pod>. 73time: L<http://pod.tst.eu/http://cvs.schmorp.de/libev/ev.pod>.
74
75While this document tries to be as complete as possible in documenting
76libev, its usage and the rationale behind its design, it is not a tutorial
77on event-based programming, nor will it introduce event-based programming
78with libev.
79
80Familiarity with event based programming techniques in general is assumed
81throughout this document.
82
83=head1 ABOUT LIBEV
70 84
71Libev is an event loop: you register interest in certain events (such as a 85Libev is an event loop: you register interest in certain events (such as a
72file descriptor being readable or a timeout occurring), and it will manage 86file descriptor being readable or a timeout occurring), and it will manage
73these event sources and provide your program with events. 87these event sources and provide your program with events.
74 88
84=head2 FEATURES 98=head2 FEATURES
85 99
86Libev supports C<select>, C<poll>, the Linux-specific C<epoll>, the 100Libev supports C<select>, C<poll>, the Linux-specific C<epoll>, the
87BSD-specific C<kqueue> and the Solaris-specific event port mechanisms 101BSD-specific C<kqueue> and the Solaris-specific event port mechanisms
88for file descriptor events (C<ev_io>), the Linux C<inotify> interface 102for file descriptor events (C<ev_io>), the Linux C<inotify> interface
89(for C<ev_stat>), relative timers (C<ev_timer>), absolute timers 103(for C<ev_stat>), Linux eventfd/signalfd (for faster and cleaner
90with customised rescheduling (C<ev_periodic>), synchronous signals 104inter-thread wakeup (C<ev_async>)/signal handling (C<ev_signal>)) relative
91(C<ev_signal>), process status change events (C<ev_child>), and event 105timers (C<ev_timer>), absolute timers with customised rescheduling
92watchers dealing with the event loop mechanism itself (C<ev_idle>, 106(C<ev_periodic>), synchronous signals (C<ev_signal>), process status
93C<ev_embed>, C<ev_prepare> and C<ev_check> watchers) as well as 107change events (C<ev_child>), and event watchers dealing with the event
94file watchers (C<ev_stat>) and even limited support for fork events 108loop mechanism itself (C<ev_idle>, C<ev_embed>, C<ev_prepare> and
95(C<ev_fork>). 109C<ev_check> watchers) as well as file watchers (C<ev_stat>) and even
110limited support for fork events (C<ev_fork>).
96 111
97It also is quite fast (see this 112It also is quite fast (see this
98L<benchmark|http://libev.schmorp.de/bench.html> comparing it to libevent 113L<benchmark|http://libev.schmorp.de/bench.html> comparing it to libevent
99for example). 114for example).
100 115
103Libev is very configurable. In this manual the default (and most common) 118Libev is very configurable. In this manual the default (and most common)
104configuration will be described, which supports multiple event loops. For 119configuration will be described, which supports multiple event loops. For
105more info about various configuration options please have a look at 120more info about various configuration options please have a look at
106B<EMBED> section in this manual. If libev was configured without support 121B<EMBED> section in this manual. If libev was configured without support
107for multiple event loops, then all functions taking an initial argument of 122for multiple event loops, then all functions taking an initial argument of
108name C<loop> (which is always of type C<ev_loop *>) will not have 123name C<loop> (which is always of type C<struct ev_loop *>) will not have
109this argument. 124this argument.
110 125
111=head2 TIME REPRESENTATION 126=head2 TIME REPRESENTATION
112 127
113Libev represents time as a single floating point number, representing the 128Libev represents time as a single floating point number, representing
114(fractional) number of seconds since the (POSIX) epoch (somewhere near 129the (fractional) number of seconds since the (POSIX) epoch (in practise
115the beginning of 1970, details are complicated, don't ask). This type is 130somewhere near the beginning of 1970, details are complicated, don't
116called C<ev_tstamp>, which is what you should use too. It usually aliases 131ask). This type is called C<ev_tstamp>, which is what you should use
117to the C<double> type in C, and when you need to do any calculations on 132too. It usually aliases to the C<double> type in C. When you need to do
118it, you should treat it as some floating point value. Unlike the name 133any calculations on it, you should treat it as some floating point value.
134
119component C<stamp> might indicate, it is also used for time differences 135Unlike the name component C<stamp> might indicate, it is also used for
120throughout libev. 136time differences (e.g. delays) throughout libev.
121 137
122=head1 ERROR HANDLING 138=head1 ERROR HANDLING
123 139
124Libev knows three classes of errors: operating system errors, usage errors 140Libev knows three classes of errors: operating system errors, usage errors
125and internal errors (bugs). 141and internal errors (bugs).
176as this indicates an incompatible change. Minor versions are usually 192as this indicates an incompatible change. Minor versions are usually
177compatible to older versions, so a larger minor version alone is usually 193compatible to older versions, so a larger minor version alone is usually
178not a problem. 194not a problem.
179 195
180Example: Make sure we haven't accidentally been linked against the wrong 196Example: Make sure we haven't accidentally been linked against the wrong
181version. 197version (note, however, that this will not detect ABI mismatches :).
182 198
183 assert (("libev version mismatch", 199 assert (("libev version mismatch",
184 ev_version_major () == EV_VERSION_MAJOR 200 ev_version_major () == EV_VERSION_MAJOR
185 && ev_version_minor () >= EV_VERSION_MINOR)); 201 && ev_version_minor () >= EV_VERSION_MINOR));
186 202
330useful to try out specific backends to test their performance, or to work 346useful to try out specific backends to test their performance, or to work
331around bugs. 347around bugs.
332 348
333=item C<EVFLAG_FORKCHECK> 349=item C<EVFLAG_FORKCHECK>
334 350
335Instead of calling C<ev_default_fork> or C<ev_loop_fork> manually after 351Instead of calling C<ev_loop_fork> manually after a fork, you can also
336a fork, you can also make libev check for a fork in each iteration by 352make libev check for a fork in each iteration by enabling this flag.
337enabling this flag.
338 353
339This works by calling C<getpid ()> on every iteration of the loop, 354This works by calling C<getpid ()> on every iteration of the loop,
340and thus this might slow down your event loop if you do a lot of loop 355and thus this might slow down your event loop if you do a lot of loop
341iterations and little real work, but is usually not noticeable (on my 356iterations and little real work, but is usually not noticeable (on my
342GNU/Linux system for example, C<getpid> is actually a simple 5-insn sequence 357GNU/Linux system for example, C<getpid> is actually a simple 5-insn sequence
348flag. 363flag.
349 364
350This flag setting cannot be overridden or specified in the C<LIBEV_FLAGS> 365This flag setting cannot be overridden or specified in the C<LIBEV_FLAGS>
351environment variable. 366environment variable.
352 367
368=item C<EVFLAG_NOINOTIFY>
369
370When this flag is specified, then libev will not attempt to use the
371I<inotify> API for it's C<ev_stat> watchers. Apart from debugging and
372testing, this flag can be useful to conserve inotify file descriptors, as
373otherwise each loop using C<ev_stat> watchers consumes one inotify handle.
374
375=item C<EVFLAG_SIGNALFD>
376
377When this flag is specified, then libev will attempt to use the
378I<signalfd> API for it's C<ev_signal> (and C<ev_child>) watchers. This API
379delivers signals synchronously, which makes it both faster and might make
380it possible to get the queued signal data. It can also simplify signal
381handling with threads, as long as you properly block signals in your
382threads that are not interested in handling them.
383
384Signalfd will not be used by default as this changes your signal mask, and
385there are a lot of shoddy libraries and programs (glib's threadpool for
386example) that can't properly initialise their signal masks.
387
353=item C<EVBACKEND_SELECT> (value 1, portable select backend) 388=item C<EVBACKEND_SELECT> (value 1, portable select backend)
354 389
355This is your standard select(2) backend. Not I<completely> standard, as 390This is your standard select(2) backend. Not I<completely> standard, as
356libev tries to roll its own fd_set with no limits on the number of fds, 391libev tries to roll its own fd_set with no limits on the number of fds,
357but if that fails, expect a fairly low limit on the number of fds when 392but if that fails, expect a fairly low limit on the number of fds when
380 415
381This backend maps C<EV_READ> to C<POLLIN | POLLERR | POLLHUP>, and 416This backend maps C<EV_READ> to C<POLLIN | POLLERR | POLLHUP>, and
382C<EV_WRITE> to C<POLLOUT | POLLERR | POLLHUP>. 417C<EV_WRITE> to C<POLLOUT | POLLERR | POLLHUP>.
383 418
384=item C<EVBACKEND_EPOLL> (value 4, Linux) 419=item C<EVBACKEND_EPOLL> (value 4, Linux)
420
421Use the linux-specific epoll(7) interface (for both pre- and post-2.6.9
422kernels).
385 423
386For few fds, this backend is a bit little slower than poll and select, 424For few fds, this backend is a bit little slower than poll and select,
387but it scales phenomenally better. While poll and select usually scale 425but it scales phenomenally better. While poll and select usually scale
388like O(total_fds) where n is the total number of fds (or the highest fd), 426like O(total_fds) where n is the total number of fds (or the highest fd),
389epoll scales either O(1) or O(active_fds). 427epoll scales either O(1) or O(active_fds).
418starting a watcher (without re-setting it) also usually doesn't cause 456starting a watcher (without re-setting it) also usually doesn't cause
419extra overhead. A fork can both result in spurious notifications as well 457extra overhead. A fork can both result in spurious notifications as well
420as in libev having to destroy and recreate the epoll object, which can 458as in libev having to destroy and recreate the epoll object, which can
421take considerable time and thus should be avoided. 459take considerable time and thus should be avoided.
422 460
423All this means that, in practise, C<EVBACKEND_SELECT> can be as fast or 461All this means that, in practice, C<EVBACKEND_SELECT> can be as fast or
424faster then epoll for maybe up to a hundred file descriptors, depending on 462faster than epoll for maybe up to a hundred file descriptors, depending on
425the usage. So sad. 463the usage. So sad.
426 464
427While nominally embeddable in other event loops, this feature is broken in 465While nominally embeddable in other event loops, this feature is broken in
428all kernel versions tested so far. 466all kernel versions tested so far.
429 467
458 496
459While nominally embeddable in other event loops, this doesn't work 497While nominally embeddable in other event loops, this doesn't work
460everywhere, so you might need to test for this. And since it is broken 498everywhere, so you might need to test for this. And since it is broken
461almost everywhere, you should only use it when you have a lot of sockets 499almost everywhere, you should only use it when you have a lot of sockets
462(for which it usually works), by embedding it into another event loop 500(for which it usually works), by embedding it into another event loop
463(e.g. C<EVBACKEND_SELECT> or C<EVBACKEND_POLL>) and, did I mention it, 501(e.g. C<EVBACKEND_SELECT> or C<EVBACKEND_POLL> (but C<poll> is of course
464using it only for sockets. 502also broken on OS X)) and, did I mention it, using it only for sockets.
465 503
466This backend maps C<EV_READ> into an C<EVFILT_READ> kevent with 504This backend maps C<EV_READ> into an C<EVFILT_READ> kevent with
467C<NOTE_EOF>, and C<EV_WRITE> into an C<EVFILT_WRITE> kevent with 505C<NOTE_EOF>, and C<EV_WRITE> into an C<EVFILT_WRITE> kevent with
468C<NOTE_EOF>. 506C<NOTE_EOF>.
469 507
504 542
505It is definitely not recommended to use this flag. 543It is definitely not recommended to use this flag.
506 544
507=back 545=back
508 546
509If one or more of these are or'ed into the flags value, then only these 547If one or more of the backend flags are or'ed into the flags value,
510backends will be tried (in the reverse order as listed here). If none are 548then only these backends will be tried (in the reverse order as listed
511specified, all backends in C<ev_recommended_backends ()> will be tried. 549here). If none are specified, all backends in C<ev_recommended_backends
550()> will be tried.
512 551
513Example: This is the most typical usage. 552Example: This is the most typical usage.
514 553
515 if (!ev_default_loop (0)) 554 if (!ev_default_loop (0))
516 fatal ("could not initialise libev, bad $LIBEV_FLAGS in environment?"); 555 fatal ("could not initialise libev, bad $LIBEV_FLAGS in environment?");
528 ev_default_loop (ev_recommended_backends () | EVBACKEND_KQUEUE); 567 ev_default_loop (ev_recommended_backends () | EVBACKEND_KQUEUE);
529 568
530=item struct ev_loop *ev_loop_new (unsigned int flags) 569=item struct ev_loop *ev_loop_new (unsigned int flags)
531 570
532Similar to C<ev_default_loop>, but always creates a new event loop that is 571Similar to C<ev_default_loop>, but always creates a new event loop that is
533always distinct from the default loop. Unlike the default loop, it cannot 572always distinct from the default loop.
534handle signal and child watchers, and attempts to do so will be greeted by
535undefined behaviour (or a failed assertion if assertions are enabled).
536 573
537Note that this function I<is> thread-safe, and the recommended way to use 574Note that this function I<is> thread-safe, and one common way to use
538libev with threads is indeed to create one loop per thread, and using the 575libev with threads is indeed to create one loop per thread, and using the
539default loop in the "main" or "initial" thread. 576default loop in the "main" or "initial" thread.
540 577
541Example: Try to create a event loop that uses epoll and nothing else. 578Example: Try to create a event loop that uses epoll and nothing else.
542 579
544 if (!epoller) 581 if (!epoller)
545 fatal ("no epoll found here, maybe it hides under your chair"); 582 fatal ("no epoll found here, maybe it hides under your chair");
546 583
547=item ev_default_destroy () 584=item ev_default_destroy ()
548 585
549Destroys the default loop again (frees all memory and kernel state 586Destroys the default loop (frees all memory and kernel state etc.). None
550etc.). None of the active event watchers will be stopped in the normal 587of the active event watchers will be stopped in the normal sense, so
551sense, so e.g. C<ev_is_active> might still return true. It is your 588e.g. C<ev_is_active> might still return true. It is your responsibility to
552responsibility to either stop all watchers cleanly yourself I<before> 589either stop all watchers cleanly yourself I<before> calling this function,
553calling this function, or cope with the fact afterwards (which is usually 590or cope with the fact afterwards (which is usually the easiest thing, you
554the easiest thing, you can just ignore the watchers and/or C<free ()> them 591can just ignore the watchers and/or C<free ()> them for example).
555for example).
556 592
557Note that certain global state, such as signal state (and installed signal 593Note that certain global state, such as signal state (and installed signal
558handlers), will not be freed by this function, and related watchers (such 594handlers), will not be freed by this function, and related watchers (such
559as signal and child watchers) would need to be stopped manually. 595as signal and child watchers) would need to be stopped manually.
560 596
561In general it is not advisable to call this function except in the 597In general it is not advisable to call this function except in the
562rare occasion where you really need to free e.g. the signal handling 598rare occasion where you really need to free e.g. the signal handling
563pipe fds. If you need dynamically allocated loops it is better to use 599pipe fds. If you need dynamically allocated loops it is better to use
564C<ev_loop_new> and C<ev_loop_destroy>). 600C<ev_loop_new> and C<ev_loop_destroy>.
565 601
566=item ev_loop_destroy (loop) 602=item ev_loop_destroy (loop)
567 603
568Like C<ev_default_destroy>, but destroys an event loop created by an 604Like C<ev_default_destroy>, but destroys an event loop created by an
569earlier call to C<ev_loop_new>. 605earlier call to C<ev_loop_new>.
575name, you can call it anytime, but it makes most sense after forking, in 611name, you can call it anytime, but it makes most sense after forking, in
576the child process (or both child and parent, but that again makes little 612the child process (or both child and parent, but that again makes little
577sense). You I<must> call it in the child before using any of the libev 613sense). You I<must> call it in the child before using any of the libev
578functions, and it will only take effect at the next C<ev_loop> iteration. 614functions, and it will only take effect at the next C<ev_loop> iteration.
579 615
616Again, you I<have> to call it on I<any> loop that you want to re-use after
617a fork, I<even if you do not plan to use the loop in the parent>. This is
618because some kernel interfaces *cough* I<kqueue> *cough* do funny things
619during fork.
620
580On the other hand, you only need to call this function in the child 621On the other hand, you only need to call this function in the child
581process if and only if you want to use the event library in the child. If 622process if and only if you want to use the event loop in the child. If you
582you just fork+exec, you don't have to call it at all. 623just fork+exec or create a new loop in the child, you don't have to call
624it at all.
583 625
584The function itself is quite fast and it's usually not a problem to call 626The function itself is quite fast and it's usually not a problem to call
585it just in case after a fork. To make this easy, the function will fit in 627it just in case after a fork. To make this easy, the function will fit in
586quite nicely into a call to C<pthread_atfork>: 628quite nicely into a call to C<pthread_atfork>:
587 629
589 631
590=item ev_loop_fork (loop) 632=item ev_loop_fork (loop)
591 633
592Like C<ev_default_fork>, but acts on an event loop created by 634Like C<ev_default_fork>, but acts on an event loop created by
593C<ev_loop_new>. Yes, you have to call this on every allocated event loop 635C<ev_loop_new>. Yes, you have to call this on every allocated event loop
594after fork that you want to re-use in the child, and how you do this is 636after fork that you want to re-use in the child, and how you keep track of
595entirely your own problem. 637them is entirely your own problem.
596 638
597=item int ev_is_default_loop (loop) 639=item int ev_is_default_loop (loop)
598 640
599Returns true when the given loop is, in fact, the default loop, and false 641Returns true when the given loop is, in fact, the default loop, and false
600otherwise. 642otherwise.
601 643
602=item unsigned int ev_loop_count (loop) 644=item unsigned int ev_iteration (loop)
603 645
604Returns the count of loop iterations for the loop, which is identical to 646Returns the current iteration count for the loop, which is identical to
605the number of times libev did poll for new events. It starts at C<0> and 647the number of times libev did poll for new events. It starts at C<0> and
606happily wraps around with enough iterations. 648happily wraps around with enough iterations.
607 649
608This value can sometimes be useful as a generation counter of sorts (it 650This value can sometimes be useful as a generation counter of sorts (it
609"ticks" the number of loop iterations), as it roughly corresponds with 651"ticks" the number of loop iterations), as it roughly corresponds with
610C<ev_prepare> and C<ev_check> calls. 652C<ev_prepare> and C<ev_check> calls - and is incremented between the
653prepare and check phases.
654
655=item unsigned int ev_depth (loop)
656
657Returns the number of times C<ev_loop> was entered minus the number of
658times C<ev_loop> was exited, in other words, the recursion depth.
659
660Outside C<ev_loop>, this number is zero. In a callback, this number is
661C<1>, unless C<ev_loop> was invoked recursively (or from another thread),
662in which case it is higher.
663
664Leaving C<ev_loop> abnormally (setjmp/longjmp, cancelling the thread
665etc.), doesn't count as "exit" - consider this as a hint to avoid such
666ungentleman behaviour unless it's really convenient.
611 667
612=item unsigned int ev_backend (loop) 668=item unsigned int ev_backend (loop)
613 669
614Returns one of the C<EVBACKEND_*> flags indicating the event backend in 670Returns one of the C<EVBACKEND_*> flags indicating the event backend in
615use. 671use.
630 686
631This function is rarely useful, but when some event callback runs for a 687This function is rarely useful, but when some event callback runs for a
632very long time without entering the event loop, updating libev's idea of 688very long time without entering the event loop, updating libev's idea of
633the current time is a good idea. 689the current time is a good idea.
634 690
635See also "The special problem of time updates" in the C<ev_timer> section. 691See also L<The special problem of time updates> in the C<ev_timer> section.
692
693=item ev_suspend (loop)
694
695=item ev_resume (loop)
696
697These two functions suspend and resume a loop, for use when the loop is
698not used for a while and timeouts should not be processed.
699
700A typical use case would be an interactive program such as a game: When
701the user presses C<^Z> to suspend the game and resumes it an hour later it
702would be best to handle timeouts as if no time had actually passed while
703the program was suspended. This can be achieved by calling C<ev_suspend>
704in your C<SIGTSTP> handler, sending yourself a C<SIGSTOP> and calling
705C<ev_resume> directly afterwards to resume timer processing.
706
707Effectively, all C<ev_timer> watchers will be delayed by the time spend
708between C<ev_suspend> and C<ev_resume>, and all C<ev_periodic> watchers
709will be rescheduled (that is, they will lose any events that would have
710occurred while suspended).
711
712After calling C<ev_suspend> you B<must not> call I<any> function on the
713given loop other than C<ev_resume>, and you B<must not> call C<ev_resume>
714without a previous call to C<ev_suspend>.
715
716Calling C<ev_suspend>/C<ev_resume> has the side effect of updating the
717event loop time (see C<ev_now_update>).
636 718
637=item ev_loop (loop, int flags) 719=item ev_loop (loop, int flags)
638 720
639Finally, this is it, the event handler. This function usually is called 721Finally, this is it, the event handler. This function usually is called
640after you initialised all your watchers and you want to start handling 722after you have initialised all your watchers and you want to start
641events. 723handling events.
642 724
643If the flags argument is specified as C<0>, it will not return until 725If the flags argument is specified as C<0>, it will not return until
644either no event watchers are active anymore or C<ev_unloop> was called. 726either no event watchers are active anymore or C<ev_unloop> was called.
645 727
646Please note that an explicit C<ev_unloop> is usually better than 728Please note that an explicit C<ev_unloop> is usually better than
710C<EVUNLOOP_ONE>, which will make the innermost C<ev_loop> call return, or 792C<EVUNLOOP_ONE>, which will make the innermost C<ev_loop> call return, or
711C<EVUNLOOP_ALL>, which will make all nested C<ev_loop> calls return. 793C<EVUNLOOP_ALL>, which will make all nested C<ev_loop> calls return.
712 794
713This "unloop state" will be cleared when entering C<ev_loop> again. 795This "unloop state" will be cleared when entering C<ev_loop> again.
714 796
715It is safe to call C<ev_unloop> from otuside any C<ev_loop> calls. 797It is safe to call C<ev_unloop> from outside any C<ev_loop> calls.
716 798
717=item ev_ref (loop) 799=item ev_ref (loop)
718 800
719=item ev_unref (loop) 801=item ev_unref (loop)
720 802
721Ref/unref can be used to add or remove a reference count on the event 803Ref/unref can be used to add or remove a reference count on the event
722loop: Every watcher keeps one reference, and as long as the reference 804loop: Every watcher keeps one reference, and as long as the reference
723count is nonzero, C<ev_loop> will not return on its own. 805count is nonzero, C<ev_loop> will not return on its own.
724 806
725If you have a watcher you never unregister that should not keep C<ev_loop> 807This is useful when you have a watcher that you never intend to
726from returning, call ev_unref() after starting, and ev_ref() before 808unregister, but that nevertheless should not keep C<ev_loop> from
809returning. In such a case, call C<ev_unref> after starting, and C<ev_ref>
727stopping it. 810before stopping it.
728 811
729As an example, libev itself uses this for its internal signal pipe: It is 812As an example, libev itself uses this for its internal signal pipe: It
730not visible to the libev user and should not keep C<ev_loop> from exiting 813is not visible to the libev user and should not keep C<ev_loop> from
731if no event watchers registered by it are active. It is also an excellent 814exiting if no event watchers registered by it are active. It is also an
732way to do this for generic recurring timers or from within third-party 815excellent way to do this for generic recurring timers or from within
733libraries. Just remember to I<unref after start> and I<ref before stop> 816third-party libraries. Just remember to I<unref after start> and I<ref
734(but only if the watcher wasn't active before, or was active before, 817before stop> (but only if the watcher wasn't active before, or was active
735respectively). 818before, respectively. Note also that libev might stop watchers itself
819(e.g. non-repeating timers) in which case you have to C<ev_ref>
820in the callback).
736 821
737Example: Create a signal watcher, but keep it from keeping C<ev_loop> 822Example: Create a signal watcher, but keep it from keeping C<ev_loop>
738running when nothing else is active. 823running when nothing else is active.
739 824
740 ev_signal exitsig; 825 ev_signal exitsig;
769 854
770By setting a higher I<io collect interval> you allow libev to spend more 855By setting a higher I<io collect interval> you allow libev to spend more
771time collecting I/O events, so you can handle more events per iteration, 856time collecting I/O events, so you can handle more events per iteration,
772at the cost of increasing latency. Timeouts (both C<ev_periodic> and 857at the cost of increasing latency. Timeouts (both C<ev_periodic> and
773C<ev_timer>) will be not affected. Setting this to a non-null value will 858C<ev_timer>) will be not affected. Setting this to a non-null value will
774introduce an additional C<ev_sleep ()> call into most loop iterations. 859introduce an additional C<ev_sleep ()> call into most loop iterations. The
860sleep time ensures that libev will not poll for I/O events more often then
861once per this interval, on average.
775 862
776Likewise, by setting a higher I<timeout collect interval> you allow libev 863Likewise, by setting a higher I<timeout collect interval> you allow libev
777to spend more time collecting timeouts, at the expense of increased 864to spend more time collecting timeouts, at the expense of increased
778latency/jitter/inexactness (the watcher callback will be called 865latency/jitter/inexactness (the watcher callback will be called
779later). C<ev_io> watchers will not be affected. Setting this to a non-null 866later). C<ev_io> watchers will not be affected. Setting this to a non-null
781 868
782Many (busy) programs can usually benefit by setting the I/O collect 869Many (busy) programs can usually benefit by setting the I/O collect
783interval to a value near C<0.1> or so, which is often enough for 870interval to a value near C<0.1> or so, which is often enough for
784interactive servers (of course not for games), likewise for timeouts. It 871interactive servers (of course not for games), likewise for timeouts. It
785usually doesn't make much sense to set it to a lower value than C<0.01>, 872usually doesn't make much sense to set it to a lower value than C<0.01>,
786as this approaches the timing granularity of most systems. 873as this approaches the timing granularity of most systems. Note that if
874you do transactions with the outside world and you can't increase the
875parallelity, then this setting will limit your transaction rate (if you
876need to poll once per transaction and the I/O collect interval is 0.01,
877then you can't do more than 100 transactions per second).
787 878
788Setting the I<timeout collect interval> can improve the opportunity for 879Setting the I<timeout collect interval> can improve the opportunity for
789saving power, as the program will "bundle" timer callback invocations that 880saving power, as the program will "bundle" timer callback invocations that
790are "near" in time together, by delaying some, thus reducing the number of 881are "near" in time together, by delaying some, thus reducing the number of
791times the process sleeps and wakes up again. Another useful technique to 882times the process sleeps and wakes up again. Another useful technique to
792reduce iterations/wake-ups is to use C<ev_periodic> watchers and make sure 883reduce iterations/wake-ups is to use C<ev_periodic> watchers and make sure
793they fire on, say, one-second boundaries only. 884they fire on, say, one-second boundaries only.
794 885
886Example: we only need 0.1s timeout granularity, and we wish not to poll
887more often than 100 times per second:
888
889 ev_set_timeout_collect_interval (EV_DEFAULT_UC_ 0.1);
890 ev_set_io_collect_interval (EV_DEFAULT_UC_ 0.01);
891
892=item ev_invoke_pending (loop)
893
894This call will simply invoke all pending watchers while resetting their
895pending state. Normally, C<ev_loop> does this automatically when required,
896but when overriding the invoke callback this call comes handy.
897
898=item int ev_pending_count (loop)
899
900Returns the number of pending watchers - zero indicates that no watchers
901are pending.
902
903=item ev_set_invoke_pending_cb (loop, void (*invoke_pending_cb)(EV_P))
904
905This overrides the invoke pending functionality of the loop: Instead of
906invoking all pending watchers when there are any, C<ev_loop> will call
907this callback instead. This is useful, for example, when you want to
908invoke the actual watchers inside another context (another thread etc.).
909
910If you want to reset the callback, use C<ev_invoke_pending> as new
911callback.
912
913=item ev_set_loop_release_cb (loop, void (*release)(EV_P), void (*acquire)(EV_P))
914
915Sometimes you want to share the same loop between multiple threads. This
916can be done relatively simply by putting mutex_lock/unlock calls around
917each call to a libev function.
918
919However, C<ev_loop> can run an indefinite time, so it is not feasible to
920wait for it to return. One way around this is to wake up the loop via
921C<ev_unloop> and C<av_async_send>, another way is to set these I<release>
922and I<acquire> callbacks on the loop.
923
924When set, then C<release> will be called just before the thread is
925suspended waiting for new events, and C<acquire> is called just
926afterwards.
927
928Ideally, C<release> will just call your mutex_unlock function, and
929C<acquire> will just call the mutex_lock function again.
930
931While event loop modifications are allowed between invocations of
932C<release> and C<acquire> (that's their only purpose after all), no
933modifications done will affect the event loop, i.e. adding watchers will
934have no effect on the set of file descriptors being watched, or the time
935waited. Use an C<ev_async> watcher to wake up C<ev_loop> when you want it
936to take note of any changes you made.
937
938In theory, threads executing C<ev_loop> will be async-cancel safe between
939invocations of C<release> and C<acquire>.
940
941See also the locking example in the C<THREADS> section later in this
942document.
943
944=item ev_set_userdata (loop, void *data)
945
946=item ev_userdata (loop)
947
948Set and retrieve a single C<void *> associated with a loop. When
949C<ev_set_userdata> has never been called, then C<ev_userdata> returns
950C<0.>
951
952These two functions can be used to associate arbitrary data with a loop,
953and are intended solely for the C<invoke_pending_cb>, C<release> and
954C<acquire> callbacks described above, but of course can be (ab-)used for
955any other purpose as well.
956
795=item ev_loop_verify (loop) 957=item ev_loop_verify (loop)
796 958
797This function only does something when C<EV_VERIFY> support has been 959This function only does something when C<EV_VERIFY> support has been
798compiled in, which is the default for non-minimal builds. It tries to go 960compiled in, which is the default for non-minimal builds. It tries to go
799through all internal structures and checks them for validity. If anything 961through all internal structures and checks them for validity. If anything
875=item C<EV_WRITE> 1037=item C<EV_WRITE>
876 1038
877The file descriptor in the C<ev_io> watcher has become readable and/or 1039The file descriptor in the C<ev_io> watcher has become readable and/or
878writable. 1040writable.
879 1041
880=item C<EV_TIMEOUT> 1042=item C<EV_TIMER>
881 1043
882The C<ev_timer> watcher has timed out. 1044The C<ev_timer> watcher has timed out.
883 1045
884=item C<EV_PERIODIC> 1046=item C<EV_PERIODIC>
885 1047
924 1086
925=item C<EV_ASYNC> 1087=item C<EV_ASYNC>
926 1088
927The given async watcher has been asynchronously notified (see C<ev_async>). 1089The given async watcher has been asynchronously notified (see C<ev_async>).
928 1090
1091=item C<EV_CUSTOM>
1092
1093Not ever sent (or otherwise used) by libev itself, but can be freely used
1094by libev users to signal watchers (e.g. via C<ev_feed_event>).
1095
929=item C<EV_ERROR> 1096=item C<EV_ERROR>
930 1097
931An unspecified error has occurred, the watcher has been stopped. This might 1098An unspecified error has occurred, the watcher has been stopped. This might
932happen because the watcher could not be properly started because libev 1099happen because the watcher could not be properly started because libev
933ran out of memory, a file descriptor was found to be closed or any other 1100ran out of memory, a file descriptor was found to be closed or any other
970 1137
971 ev_io w; 1138 ev_io w;
972 ev_init (&w, my_cb); 1139 ev_init (&w, my_cb);
973 ev_io_set (&w, STDIN_FILENO, EV_READ); 1140 ev_io_set (&w, STDIN_FILENO, EV_READ);
974 1141
975=item C<ev_TYPE_set> (ev_TYPE *, [args]) 1142=item C<ev_TYPE_set> (ev_TYPE *watcher, [args])
976 1143
977This macro initialises the type-specific parts of a watcher. You need to 1144This macro initialises the type-specific parts of a watcher. You need to
978call C<ev_init> at least once before you call this macro, but you can 1145call C<ev_init> at least once before you call this macro, but you can
979call C<ev_TYPE_set> any number of times. You must not, however, call this 1146call C<ev_TYPE_set> any number of times. You must not, however, call this
980macro on a watcher that is active (it can be pending, however, which is a 1147macro on a watcher that is active (it can be pending, however, which is a
993 1160
994Example: Initialise and set an C<ev_io> watcher in one step. 1161Example: Initialise and set an C<ev_io> watcher in one step.
995 1162
996 ev_io_init (&w, my_cb, STDIN_FILENO, EV_READ); 1163 ev_io_init (&w, my_cb, STDIN_FILENO, EV_READ);
997 1164
998=item C<ev_TYPE_start> (loop *, ev_TYPE *watcher) 1165=item C<ev_TYPE_start> (loop, ev_TYPE *watcher)
999 1166
1000Starts (activates) the given watcher. Only active watchers will receive 1167Starts (activates) the given watcher. Only active watchers will receive
1001events. If the watcher is already active nothing will happen. 1168events. If the watcher is already active nothing will happen.
1002 1169
1003Example: Start the C<ev_io> watcher that is being abused as example in this 1170Example: Start the C<ev_io> watcher that is being abused as example in this
1004whole section. 1171whole section.
1005 1172
1006 ev_io_start (EV_DEFAULT_UC, &w); 1173 ev_io_start (EV_DEFAULT_UC, &w);
1007 1174
1008=item C<ev_TYPE_stop> (loop *, ev_TYPE *watcher) 1175=item C<ev_TYPE_stop> (loop, ev_TYPE *watcher)
1009 1176
1010Stops the given watcher if active, and clears the pending status (whether 1177Stops the given watcher if active, and clears the pending status (whether
1011the watcher was active or not). 1178the watcher was active or not).
1012 1179
1013It is possible that stopped watchers are pending - for example, 1180It is possible that stopped watchers are pending - for example,
1038=item ev_cb_set (ev_TYPE *watcher, callback) 1205=item ev_cb_set (ev_TYPE *watcher, callback)
1039 1206
1040Change the callback. You can change the callback at virtually any time 1207Change the callback. You can change the callback at virtually any time
1041(modulo threads). 1208(modulo threads).
1042 1209
1043=item ev_set_priority (ev_TYPE *watcher, priority) 1210=item ev_set_priority (ev_TYPE *watcher, int priority)
1044 1211
1045=item int ev_priority (ev_TYPE *watcher) 1212=item int ev_priority (ev_TYPE *watcher)
1046 1213
1047Set and query the priority of the watcher. The priority is a small 1214Set and query the priority of the watcher. The priority is a small
1048integer between C<EV_MAXPRI> (default: C<2>) and C<EV_MINPRI> 1215integer between C<EV_MAXPRI> (default: C<2>) and C<EV_MINPRI>
1049(default: C<-2>). Pending watchers with higher priority will be invoked 1216(default: C<-2>). Pending watchers with higher priority will be invoked
1050before watchers with lower priority, but priority will not keep watchers 1217before watchers with lower priority, but priority will not keep watchers
1051from being executed (except for C<ev_idle> watchers). 1218from being executed (except for C<ev_idle> watchers).
1052 1219
1053This means that priorities are I<only> used for ordering callback
1054invocation after new events have been received. This is useful, for
1055example, to reduce latency after idling, or more often, to bind two
1056watchers on the same event and make sure one is called first.
1057
1058If you need to suppress invocation when higher priority events are pending 1220If you need to suppress invocation when higher priority events are pending
1059you need to look at C<ev_idle> watchers, which provide this functionality. 1221you need to look at C<ev_idle> watchers, which provide this functionality.
1060 1222
1061You I<must not> change the priority of a watcher as long as it is active or 1223You I<must not> change the priority of a watcher as long as it is active or
1062pending. 1224pending.
1063
1064The default priority used by watchers when no priority has been set is
1065always C<0>, which is supposed to not be too high and not be too low :).
1066 1225
1067Setting a priority outside the range of C<EV_MINPRI> to C<EV_MAXPRI> is 1226Setting a priority outside the range of C<EV_MINPRI> to C<EV_MAXPRI> is
1068fine, as long as you do not mind that the priority value you query might 1227fine, as long as you do not mind that the priority value you query might
1069or might not have been clamped to the valid range. 1228or might not have been clamped to the valid range.
1229
1230The default priority used by watchers when no priority has been set is
1231always C<0>, which is supposed to not be too high and not be too low :).
1232
1233See L<WATCHER PRIORITY MODELS>, below, for a more thorough treatment of
1234priorities.
1070 1235
1071=item ev_invoke (loop, ev_TYPE *watcher, int revents) 1236=item ev_invoke (loop, ev_TYPE *watcher, int revents)
1072 1237
1073Invoke the C<watcher> with the given C<loop> and C<revents>. Neither 1238Invoke the C<watcher> with the given C<loop> and C<revents>. Neither
1074C<loop> nor C<revents> need to be valid as long as the watcher callback 1239C<loop> nor C<revents> need to be valid as long as the watcher callback
1081returns its C<revents> bitset (as if its callback was invoked). If the 1246returns its C<revents> bitset (as if its callback was invoked). If the
1082watcher isn't pending it does nothing and returns C<0>. 1247watcher isn't pending it does nothing and returns C<0>.
1083 1248
1084Sometimes it can be useful to "poll" a watcher instead of waiting for its 1249Sometimes it can be useful to "poll" a watcher instead of waiting for its
1085callback to be invoked, which can be accomplished with this function. 1250callback to be invoked, which can be accomplished with this function.
1251
1252=item ev_feed_event (loop, ev_TYPE *watcher, int revents)
1253
1254Feeds the given event set into the event loop, as if the specified event
1255had happened for the specified watcher (which must be a pointer to an
1256initialised but not necessarily started event watcher). Obviously you must
1257not free the watcher as long as it has pending events.
1258
1259Stopping the watcher, letting libev invoke it, or calling
1260C<ev_clear_pending> will clear the pending event, even if the watcher was
1261not started in the first place.
1262
1263See also C<ev_feed_fd_event> and C<ev_feed_signal_event> for related
1264functions that do not need a watcher.
1086 1265
1087=back 1266=back
1088 1267
1089 1268
1090=head2 ASSOCIATING CUSTOM DATA WITH A WATCHER 1269=head2 ASSOCIATING CUSTOM DATA WITH A WATCHER
1139 #include <stddef.h> 1318 #include <stddef.h>
1140 1319
1141 static void 1320 static void
1142 t1_cb (EV_P_ ev_timer *w, int revents) 1321 t1_cb (EV_P_ ev_timer *w, int revents)
1143 { 1322 {
1144 struct my_biggy big = (struct my_biggy * 1323 struct my_biggy big = (struct my_biggy *)
1145 (((char *)w) - offsetof (struct my_biggy, t1)); 1324 (((char *)w) - offsetof (struct my_biggy, t1));
1146 } 1325 }
1147 1326
1148 static void 1327 static void
1149 t2_cb (EV_P_ ev_timer *w, int revents) 1328 t2_cb (EV_P_ ev_timer *w, int revents)
1150 { 1329 {
1151 struct my_biggy big = (struct my_biggy * 1330 struct my_biggy big = (struct my_biggy *)
1152 (((char *)w) - offsetof (struct my_biggy, t2)); 1331 (((char *)w) - offsetof (struct my_biggy, t2));
1153 } 1332 }
1333
1334=head2 WATCHER PRIORITY MODELS
1335
1336Many event loops support I<watcher priorities>, which are usually small
1337integers that influence the ordering of event callback invocation
1338between watchers in some way, all else being equal.
1339
1340In libev, Watcher priorities can be set using C<ev_set_priority>. See its
1341description for the more technical details such as the actual priority
1342range.
1343
1344There are two common ways how these these priorities are being interpreted
1345by event loops:
1346
1347In the more common lock-out model, higher priorities "lock out" invocation
1348of lower priority watchers, which means as long as higher priority
1349watchers receive events, lower priority watchers are not being invoked.
1350
1351The less common only-for-ordering model uses priorities solely to order
1352callback invocation within a single event loop iteration: Higher priority
1353watchers are invoked before lower priority ones, but they all get invoked
1354before polling for new events.
1355
1356Libev uses the second (only-for-ordering) model for all its watchers
1357except for idle watchers (which use the lock-out model).
1358
1359The rationale behind this is that implementing the lock-out model for
1360watchers is not well supported by most kernel interfaces, and most event
1361libraries will just poll for the same events again and again as long as
1362their callbacks have not been executed, which is very inefficient in the
1363common case of one high-priority watcher locking out a mass of lower
1364priority ones.
1365
1366Static (ordering) priorities are most useful when you have two or more
1367watchers handling the same resource: a typical usage example is having an
1368C<ev_io> watcher to receive data, and an associated C<ev_timer> to handle
1369timeouts. Under load, data might be received while the program handles
1370other jobs, but since timers normally get invoked first, the timeout
1371handler will be executed before checking for data. In that case, giving
1372the timer a lower priority than the I/O watcher ensures that I/O will be
1373handled first even under adverse conditions (which is usually, but not
1374always, what you want).
1375
1376Since idle watchers use the "lock-out" model, meaning that idle watchers
1377will only be executed when no same or higher priority watchers have
1378received events, they can be used to implement the "lock-out" model when
1379required.
1380
1381For example, to emulate how many other event libraries handle priorities,
1382you can associate an C<ev_idle> watcher to each such watcher, and in
1383the normal watcher callback, you just start the idle watcher. The real
1384processing is done in the idle watcher callback. This causes libev to
1385continuously poll and process kernel event data for the watcher, but when
1386the lock-out case is known to be rare (which in turn is rare :), this is
1387workable.
1388
1389Usually, however, the lock-out model implemented that way will perform
1390miserably under the type of load it was designed to handle. In that case,
1391it might be preferable to stop the real watcher before starting the
1392idle watcher, so the kernel will not have to process the event in case
1393the actual processing will be delayed for considerable time.
1394
1395Here is an example of an I/O watcher that should run at a strictly lower
1396priority than the default, and which should only process data when no
1397other events are pending:
1398
1399 ev_idle idle; // actual processing watcher
1400 ev_io io; // actual event watcher
1401
1402 static void
1403 io_cb (EV_P_ ev_io *w, int revents)
1404 {
1405 // stop the I/O watcher, we received the event, but
1406 // are not yet ready to handle it.
1407 ev_io_stop (EV_A_ w);
1408
1409 // start the idle watcher to handle the actual event.
1410 // it will not be executed as long as other watchers
1411 // with the default priority are receiving events.
1412 ev_idle_start (EV_A_ &idle);
1413 }
1414
1415 static void
1416 idle_cb (EV_P_ ev_idle *w, int revents)
1417 {
1418 // actual processing
1419 read (STDIN_FILENO, ...);
1420
1421 // have to start the I/O watcher again, as
1422 // we have handled the event
1423 ev_io_start (EV_P_ &io);
1424 }
1425
1426 // initialisation
1427 ev_idle_init (&idle, idle_cb);
1428 ev_io_init (&io, io_cb, STDIN_FILENO, EV_READ);
1429 ev_io_start (EV_DEFAULT_ &io);
1430
1431In the "real" world, it might also be beneficial to start a timer, so that
1432low-priority connections can not be locked out forever under load. This
1433enables your program to keep a lower latency for important connections
1434during short periods of high load, while not completely locking out less
1435important ones.
1154 1436
1155 1437
1156=head1 WATCHER TYPES 1438=head1 WATCHER TYPES
1157 1439
1158This section describes each watcher in detail, but will not repeat 1440This section describes each watcher in detail, but will not repeat
1184descriptors to non-blocking mode is also usually a good idea (but not 1466descriptors to non-blocking mode is also usually a good idea (but not
1185required if you know what you are doing). 1467required if you know what you are doing).
1186 1468
1187If you cannot use non-blocking mode, then force the use of a 1469If you cannot use non-blocking mode, then force the use of a
1188known-to-be-good backend (at the time of this writing, this includes only 1470known-to-be-good backend (at the time of this writing, this includes only
1189C<EVBACKEND_SELECT> and C<EVBACKEND_POLL>). 1471C<EVBACKEND_SELECT> and C<EVBACKEND_POLL>). The same applies to file
1472descriptors for which non-blocking operation makes no sense (such as
1473files) - libev doesn't guarantee any specific behaviour in that case.
1190 1474
1191Another thing you have to watch out for is that it is quite easy to 1475Another thing you have to watch out for is that it is quite easy to
1192receive "spurious" readiness notifications, that is your callback might 1476receive "spurious" readiness notifications, that is your callback might
1193be called with C<EV_READ> but a subsequent C<read>(2) will actually block 1477be called with C<EV_READ> but a subsequent C<read>(2) will actually block
1194because there is no data. Not only are some backends known to create a 1478because there is no data. Not only are some backends known to create a
1259 1543
1260So when you encounter spurious, unexplained daemon exits, make sure you 1544So when you encounter spurious, unexplained daemon exits, make sure you
1261ignore SIGPIPE (and maybe make sure you log the exit status of your daemon 1545ignore SIGPIPE (and maybe make sure you log the exit status of your daemon
1262somewhere, as that would have given you a big clue). 1546somewhere, as that would have given you a big clue).
1263 1547
1548=head3 The special problem of accept()ing when you can't
1549
1550Many implementations of the POSIX C<accept> function (for example,
1551found in post-2004 Linux) have the peculiar behaviour of not removing a
1552connection from the pending queue in all error cases.
1553
1554For example, larger servers often run out of file descriptors (because
1555of resource limits), causing C<accept> to fail with C<ENFILE> but not
1556rejecting the connection, leading to libev signalling readiness on
1557the next iteration again (the connection still exists after all), and
1558typically causing the program to loop at 100% CPU usage.
1559
1560Unfortunately, the set of errors that cause this issue differs between
1561operating systems, there is usually little the app can do to remedy the
1562situation, and no known thread-safe method of removing the connection to
1563cope with overload is known (to me).
1564
1565One of the easiest ways to handle this situation is to just ignore it
1566- when the program encounters an overload, it will just loop until the
1567situation is over. While this is a form of busy waiting, no OS offers an
1568event-based way to handle this situation, so it's the best one can do.
1569
1570A better way to handle the situation is to log any errors other than
1571C<EAGAIN> and C<EWOULDBLOCK>, making sure not to flood the log with such
1572messages, and continue as usual, which at least gives the user an idea of
1573what could be wrong ("raise the ulimit!"). For extra points one could stop
1574the C<ev_io> watcher on the listening fd "for a while", which reduces CPU
1575usage.
1576
1577If your program is single-threaded, then you could also keep a dummy file
1578descriptor for overload situations (e.g. by opening F</dev/null>), and
1579when you run into C<ENFILE> or C<EMFILE>, close it, run C<accept>,
1580close that fd, and create a new dummy fd. This will gracefully refuse
1581clients under typical overload conditions.
1582
1583The last way to handle it is to simply log the error and C<exit>, as
1584is often done with C<malloc> failures, but this results in an easy
1585opportunity for a DoS attack.
1264 1586
1265=head3 Watcher-Specific Functions 1587=head3 Watcher-Specific Functions
1266 1588
1267=over 4 1589=over 4
1268 1590
1315year, it will still time out after (roughly) one hour. "Roughly" because 1637year, it will still time out after (roughly) one hour. "Roughly" because
1316detecting time jumps is hard, and some inaccuracies are unavoidable (the 1638detecting time jumps is hard, and some inaccuracies are unavoidable (the
1317monotonic clock option helps a lot here). 1639monotonic clock option helps a lot here).
1318 1640
1319The callback is guaranteed to be invoked only I<after> its timeout has 1641The callback is guaranteed to be invoked only I<after> its timeout has
1320passed, but if multiple timers become ready during the same loop iteration 1642passed (not I<at>, so on systems with very low-resolution clocks this
1321then order of execution is undefined. 1643might introduce a small delay). If multiple timers become ready during the
1644same loop iteration then the ones with earlier time-out values are invoked
1645before ones of the same priority with later time-out values (but this is
1646no longer true when a callback calls C<ev_loop> recursively).
1322 1647
1323=head3 Be smart about timeouts 1648=head3 Be smart about timeouts
1324 1649
1325Many real-world problems involve some kind of timeout, usually for error 1650Many real-world problems involve some kind of timeout, usually for error
1326recovery. A typical example is an HTTP request - if the other side hangs, 1651recovery. A typical example is an HTTP request - if the other side hangs,
1370C<after> argument to C<ev_timer_set>, and only ever use the C<repeat> 1695C<after> argument to C<ev_timer_set>, and only ever use the C<repeat>
1371member and C<ev_timer_again>. 1696member and C<ev_timer_again>.
1372 1697
1373At start: 1698At start:
1374 1699
1375 ev_timer_init (timer, callback); 1700 ev_init (timer, callback);
1376 timer->repeat = 60.; 1701 timer->repeat = 60.;
1377 ev_timer_again (loop, timer); 1702 ev_timer_again (loop, timer);
1378 1703
1379Each time there is some activity: 1704Each time there is some activity:
1380 1705
1412 ev_tstamp timeout = last_activity + 60.; 1737 ev_tstamp timeout = last_activity + 60.;
1413 1738
1414 // if last_activity + 60. is older than now, we did time out 1739 // if last_activity + 60. is older than now, we did time out
1415 if (timeout < now) 1740 if (timeout < now)
1416 { 1741 {
1417 // timeout occured, take action 1742 // timeout occurred, take action
1418 } 1743 }
1419 else 1744 else
1420 { 1745 {
1421 // callback was invoked, but there was some activity, re-arm 1746 // callback was invoked, but there was some activity, re-arm
1422 // the watcher to fire in last_activity + 60, which is 1747 // the watcher to fire in last_activity + 60, which is
1423 // guaranteed to be in the future, so "again" is positive: 1748 // guaranteed to be in the future, so "again" is positive:
1424 w->again = timeout - now; 1749 w->repeat = timeout - now;
1425 ev_timer_again (EV_A_ w); 1750 ev_timer_again (EV_A_ w);
1426 } 1751 }
1427 } 1752 }
1428 1753
1429To summarise the callback: first calculate the real timeout (defined 1754To summarise the callback: first calculate the real timeout (defined
1442 1767
1443To start the timer, simply initialise the watcher and set C<last_activity> 1768To start the timer, simply initialise the watcher and set C<last_activity>
1444to the current time (meaning we just have some activity :), then call the 1769to the current time (meaning we just have some activity :), then call the
1445callback, which will "do the right thing" and start the timer: 1770callback, which will "do the right thing" and start the timer:
1446 1771
1447 ev_timer_init (timer, callback); 1772 ev_init (timer, callback);
1448 last_activity = ev_now (loop); 1773 last_activity = ev_now (loop);
1449 callback (loop, timer, EV_TIMEOUT); 1774 callback (loop, timer, EV_TIMER);
1450 1775
1451And when there is some activity, simply store the current time in 1776And when there is some activity, simply store the current time in
1452C<last_activity>, no libev calls at all: 1777C<last_activity>, no libev calls at all:
1453 1778
1454 last_actiivty = ev_now (loop); 1779 last_activity = ev_now (loop);
1455 1780
1456This technique is slightly more complex, but in most cases where the 1781This technique is slightly more complex, but in most cases where the
1457time-out is unlikely to be triggered, much more efficient. 1782time-out is unlikely to be triggered, much more efficient.
1458 1783
1459Changing the timeout is trivial as well (if it isn't hard-coded in the 1784Changing the timeout is trivial as well (if it isn't hard-coded in the
1513 1838
1514If the event loop is suspended for a long time, you can also force an 1839If the event loop is suspended for a long time, you can also force an
1515update of the time returned by C<ev_now ()> by calling C<ev_now_update 1840update of the time returned by C<ev_now ()> by calling C<ev_now_update
1516()>. 1841()>.
1517 1842
1843=head3 The special problems of suspended animation
1844
1845When you leave the server world it is quite customary to hit machines that
1846can suspend/hibernate - what happens to the clocks during such a suspend?
1847
1848Some quick tests made with a Linux 2.6.28 indicate that a suspend freezes
1849all processes, while the clocks (C<times>, C<CLOCK_MONOTONIC>) continue
1850to run until the system is suspended, but they will not advance while the
1851system is suspended. That means, on resume, it will be as if the program
1852was frozen for a few seconds, but the suspend time will not be counted
1853towards C<ev_timer> when a monotonic clock source is used. The real time
1854clock advanced as expected, but if it is used as sole clocksource, then a
1855long suspend would be detected as a time jump by libev, and timers would
1856be adjusted accordingly.
1857
1858I would not be surprised to see different behaviour in different between
1859operating systems, OS versions or even different hardware.
1860
1861The other form of suspend (job control, or sending a SIGSTOP) will see a
1862time jump in the monotonic clocks and the realtime clock. If the program
1863is suspended for a very long time, and monotonic clock sources are in use,
1864then you can expect C<ev_timer>s to expire as the full suspension time
1865will be counted towards the timers. When no monotonic clock source is in
1866use, then libev will again assume a timejump and adjust accordingly.
1867
1868It might be beneficial for this latter case to call C<ev_suspend>
1869and C<ev_resume> in code that handles C<SIGTSTP>, to at least get
1870deterministic behaviour in this case (you can do nothing against
1871C<SIGSTOP>).
1872
1518=head3 Watcher-Specific Functions and Data Members 1873=head3 Watcher-Specific Functions and Data Members
1519 1874
1520=over 4 1875=over 4
1521 1876
1522=item ev_timer_init (ev_timer *, callback, ev_tstamp after, ev_tstamp repeat) 1877=item ev_timer_init (ev_timer *, callback, ev_tstamp after, ev_tstamp repeat)
1545If the timer is started but non-repeating, stop it (as if it timed out). 1900If the timer is started but non-repeating, stop it (as if it timed out).
1546 1901
1547If the timer is repeating, either start it if necessary (with the 1902If the timer is repeating, either start it if necessary (with the
1548C<repeat> value), or reset the running timer to the C<repeat> value. 1903C<repeat> value), or reset the running timer to the C<repeat> value.
1549 1904
1550This sounds a bit complicated, see "Be smart about timeouts", above, for a 1905This sounds a bit complicated, see L<Be smart about timeouts>, above, for a
1551usage example. 1906usage example.
1907
1908=item ev_tstamp ev_timer_remaining (loop, ev_timer *)
1909
1910Returns the remaining time until a timer fires. If the timer is active,
1911then this time is relative to the current event loop time, otherwise it's
1912the timeout value currently configured.
1913
1914That is, after an C<ev_timer_set (w, 5, 7)>, C<ev_timer_remaining> returns
1915C<5>. When the timer is started and one second passes, C<ev_timer_remaining>
1916will return C<4>. When the timer expires and is restarted, it will return
1917roughly C<7> (likely slightly less as callback invocation takes some time,
1918too), and so on.
1552 1919
1553=item ev_tstamp repeat [read-write] 1920=item ev_tstamp repeat [read-write]
1554 1921
1555The current C<repeat> value. Will be used each time the watcher times out 1922The current C<repeat> value. Will be used each time the watcher times out
1556or C<ev_timer_again> is called, and determines the next timeout (if any), 1923or C<ev_timer_again> is called, and determines the next timeout (if any),
1594=head2 C<ev_periodic> - to cron or not to cron? 1961=head2 C<ev_periodic> - to cron or not to cron?
1595 1962
1596Periodic watchers are also timers of a kind, but they are very versatile 1963Periodic watchers are also timers of a kind, but they are very versatile
1597(and unfortunately a bit complex). 1964(and unfortunately a bit complex).
1598 1965
1599Unlike C<ev_timer>'s, they are not based on real time (or relative time) 1966Unlike C<ev_timer>, periodic watchers are not based on real time (or
1600but on wall clock time (absolute time). You can tell a periodic watcher 1967relative time, the physical time that passes) but on wall clock time
1601to trigger after some specific point in time. For example, if you tell a 1968(absolute time, the thing you can read on your calender or clock). The
1602periodic watcher to trigger in 10 seconds (by specifying e.g. C<ev_now () 1969difference is that wall clock time can run faster or slower than real
1603+ 10.>, that is, an absolute time not a delay) and then reset your system 1970time, and time jumps are not uncommon (e.g. when you adjust your
1604clock to January of the previous year, then it will take more than year 1971wrist-watch).
1605to trigger the event (unlike an C<ev_timer>, which would still trigger
1606roughly 10 seconds later as it uses a relative timeout).
1607 1972
1973You can tell a periodic watcher to trigger after some specific point
1974in time: for example, if you tell a periodic watcher to trigger "in 10
1975seconds" (by specifying e.g. C<ev_now () + 10.>, that is, an absolute time
1976not a delay) and then reset your system clock to January of the previous
1977year, then it will take a year or more to trigger the event (unlike an
1978C<ev_timer>, which would still trigger roughly 10 seconds after starting
1979it, as it uses a relative timeout).
1980
1608C<ev_periodic>s can also be used to implement vastly more complex timers, 1981C<ev_periodic> watchers can also be used to implement vastly more complex
1609such as triggering an event on each "midnight, local time", or other 1982timers, such as triggering an event on each "midnight, local time", or
1610complicated rules. 1983other complicated rules. This cannot be done with C<ev_timer> watchers, as
1984those cannot react to time jumps.
1611 1985
1612As with timers, the callback is guaranteed to be invoked only when the 1986As with timers, the callback is guaranteed to be invoked only when the
1613time (C<at>) has passed, but if multiple periodic timers become ready 1987point in time where it is supposed to trigger has passed. If multiple
1614during the same loop iteration, then order of execution is undefined. 1988timers become ready during the same loop iteration then the ones with
1989earlier time-out values are invoked before ones with later time-out values
1990(but this is no longer true when a callback calls C<ev_loop> recursively).
1615 1991
1616=head3 Watcher-Specific Functions and Data Members 1992=head3 Watcher-Specific Functions and Data Members
1617 1993
1618=over 4 1994=over 4
1619 1995
1620=item ev_periodic_init (ev_periodic *, callback, ev_tstamp at, ev_tstamp interval, reschedule_cb) 1996=item ev_periodic_init (ev_periodic *, callback, ev_tstamp offset, ev_tstamp interval, reschedule_cb)
1621 1997
1622=item ev_periodic_set (ev_periodic *, ev_tstamp after, ev_tstamp repeat, reschedule_cb) 1998=item ev_periodic_set (ev_periodic *, ev_tstamp offset, ev_tstamp interval, reschedule_cb)
1623 1999
1624Lots of arguments, lets sort it out... There are basically three modes of 2000Lots of arguments, let's sort it out... There are basically three modes of
1625operation, and we will explain them from simplest to most complex: 2001operation, and we will explain them from simplest to most complex:
1626 2002
1627=over 4 2003=over 4
1628 2004
1629=item * absolute timer (at = time, interval = reschedule_cb = 0) 2005=item * absolute timer (offset = absolute time, interval = 0, reschedule_cb = 0)
1630 2006
1631In this configuration the watcher triggers an event after the wall clock 2007In this configuration the watcher triggers an event after the wall clock
1632time C<at> has passed. It will not repeat and will not adjust when a time 2008time C<offset> has passed. It will not repeat and will not adjust when a
1633jump occurs, that is, if it is to be run at January 1st 2011 then it will 2009time jump occurs, that is, if it is to be run at January 1st 2011 then it
1634only run when the system clock reaches or surpasses this time. 2010will be stopped and invoked when the system clock reaches or surpasses
2011this point in time.
1635 2012
1636=item * repeating interval timer (at = offset, interval > 0, reschedule_cb = 0) 2013=item * repeating interval timer (offset = offset within interval, interval > 0, reschedule_cb = 0)
1637 2014
1638In this mode the watcher will always be scheduled to time out at the next 2015In this mode the watcher will always be scheduled to time out at the next
1639C<at + N * interval> time (for some integer N, which can also be negative) 2016C<offset + N * interval> time (for some integer N, which can also be
1640and then repeat, regardless of any time jumps. 2017negative) and then repeat, regardless of any time jumps. The C<offset>
2018argument is merely an offset into the C<interval> periods.
1641 2019
1642This can be used to create timers that do not drift with respect to the 2020This can be used to create timers that do not drift with respect to the
1643system clock, for example, here is a C<ev_periodic> that triggers each 2021system clock, for example, here is an C<ev_periodic> that triggers each
1644hour, on the hour: 2022hour, on the hour (with respect to UTC):
1645 2023
1646 ev_periodic_set (&periodic, 0., 3600., 0); 2024 ev_periodic_set (&periodic, 0., 3600., 0);
1647 2025
1648This doesn't mean there will always be 3600 seconds in between triggers, 2026This doesn't mean there will always be 3600 seconds in between triggers,
1649but only that the callback will be called when the system time shows a 2027but only that the callback will be called when the system time shows a
1650full hour (UTC), or more correctly, when the system time is evenly divisible 2028full hour (UTC), or more correctly, when the system time is evenly divisible
1651by 3600. 2029by 3600.
1652 2030
1653Another way to think about it (for the mathematically inclined) is that 2031Another way to think about it (for the mathematically inclined) is that
1654C<ev_periodic> will try to run the callback in this mode at the next possible 2032C<ev_periodic> will try to run the callback in this mode at the next possible
1655time where C<time = at (mod interval)>, regardless of any time jumps. 2033time where C<time = offset (mod interval)>, regardless of any time jumps.
1656 2034
1657For numerical stability it is preferable that the C<at> value is near 2035For numerical stability it is preferable that the C<offset> value is near
1658C<ev_now ()> (the current time), but there is no range requirement for 2036C<ev_now ()> (the current time), but there is no range requirement for
1659this value, and in fact is often specified as zero. 2037this value, and in fact is often specified as zero.
1660 2038
1661Note also that there is an upper limit to how often a timer can fire (CPU 2039Note also that there is an upper limit to how often a timer can fire (CPU
1662speed for example), so if C<interval> is very small then timing stability 2040speed for example), so if C<interval> is very small then timing stability
1663will of course deteriorate. Libev itself tries to be exact to be about one 2041will of course deteriorate. Libev itself tries to be exact to be about one
1664millisecond (if the OS supports it and the machine is fast enough). 2042millisecond (if the OS supports it and the machine is fast enough).
1665 2043
1666=item * manual reschedule mode (at and interval ignored, reschedule_cb = callback) 2044=item * manual reschedule mode (offset ignored, interval ignored, reschedule_cb = callback)
1667 2045
1668In this mode the values for C<interval> and C<at> are both being 2046In this mode the values for C<interval> and C<offset> are both being
1669ignored. Instead, each time the periodic watcher gets scheduled, the 2047ignored. Instead, each time the periodic watcher gets scheduled, the
1670reschedule callback will be called with the watcher as first, and the 2048reschedule callback will be called with the watcher as first, and the
1671current time as second argument. 2049current time as second argument.
1672 2050
1673NOTE: I<This callback MUST NOT stop or destroy any periodic watcher, 2051NOTE: I<This callback MUST NOT stop or destroy any periodic watcher, ever,
1674ever, or make ANY event loop modifications whatsoever>. 2052or make ANY other event loop modifications whatsoever, unless explicitly
2053allowed by documentation here>.
1675 2054
1676If you need to stop it, return C<now + 1e30> (or so, fudge fudge) and stop 2055If you need to stop it, return C<now + 1e30> (or so, fudge fudge) and stop
1677it afterwards (e.g. by starting an C<ev_prepare> watcher, which is the 2056it afterwards (e.g. by starting an C<ev_prepare> watcher, which is the
1678only event loop modification you are allowed to do). 2057only event loop modification you are allowed to do).
1679 2058
1709a different time than the last time it was called (e.g. in a crond like 2088a different time than the last time it was called (e.g. in a crond like
1710program when the crontabs have changed). 2089program when the crontabs have changed).
1711 2090
1712=item ev_tstamp ev_periodic_at (ev_periodic *) 2091=item ev_tstamp ev_periodic_at (ev_periodic *)
1713 2092
1714When active, returns the absolute time that the watcher is supposed to 2093When active, returns the absolute time that the watcher is supposed
1715trigger next. 2094to trigger next. This is not the same as the C<offset> argument to
2095C<ev_periodic_set>, but indeed works even in interval and manual
2096rescheduling modes.
1716 2097
1717=item ev_tstamp offset [read-write] 2098=item ev_tstamp offset [read-write]
1718 2099
1719When repeating, this contains the offset value, otherwise this is the 2100When repeating, this contains the offset value, otherwise this is the
1720absolute point in time (the C<at> value passed to C<ev_periodic_set>). 2101absolute point in time (the C<offset> value passed to C<ev_periodic_set>,
2102although libev might modify this value for better numerical stability).
1721 2103
1722Can be modified any time, but changes only take effect when the periodic 2104Can be modified any time, but changes only take effect when the periodic
1723timer fires or C<ev_periodic_again> is being called. 2105timer fires or C<ev_periodic_again> is being called.
1724 2106
1725=item ev_tstamp interval [read-write] 2107=item ev_tstamp interval [read-write]
1741Example: Call a callback every hour, or, more precisely, whenever the 2123Example: Call a callback every hour, or, more precisely, whenever the
1742system time is divisible by 3600. The callback invocation times have 2124system time is divisible by 3600. The callback invocation times have
1743potentially a lot of jitter, but good long-term stability. 2125potentially a lot of jitter, but good long-term stability.
1744 2126
1745 static void 2127 static void
1746 clock_cb (struct ev_loop *loop, ev_io *w, int revents) 2128 clock_cb (struct ev_loop *loop, ev_periodic *w, int revents)
1747 { 2129 {
1748 ... its now a full hour (UTC, or TAI or whatever your clock follows) 2130 ... its now a full hour (UTC, or TAI or whatever your clock follows)
1749 } 2131 }
1750 2132
1751 ev_periodic hourly_tick; 2133 ev_periodic hourly_tick;
1777Signal watchers will trigger an event when the process receives a specific 2159Signal watchers will trigger an event when the process receives a specific
1778signal one or more times. Even though signals are very asynchronous, libev 2160signal one or more times. Even though signals are very asynchronous, libev
1779will try it's best to deliver signals synchronously, i.e. as part of the 2161will try it's best to deliver signals synchronously, i.e. as part of the
1780normal event processing, like any other event. 2162normal event processing, like any other event.
1781 2163
1782If you want signals asynchronously, just use C<sigaction> as you would 2164If you want signals to be delivered truly asynchronously, just use
1783do without libev and forget about sharing the signal. You can even use 2165C<sigaction> as you would do without libev and forget about sharing
1784C<ev_async> from a signal handler to synchronously wake up an event loop. 2166the signal. You can even use C<ev_async> from a signal handler to
2167synchronously wake up an event loop.
1785 2168
1786You can configure as many watchers as you like per signal. Only when the 2169You can configure as many watchers as you like for the same signal, but
2170only within the same loop, i.e. you can watch for C<SIGINT> in your
2171default loop and for C<SIGIO> in another loop, but you cannot watch for
2172C<SIGINT> in both the default loop and another loop at the same time. At
2173the moment, C<SIGCHLD> is permanently tied to the default loop.
2174
1787first watcher gets started will libev actually register a signal handler 2175When the first watcher gets started will libev actually register something
1788with the kernel (thus it coexists with your own signal handlers as long as 2176with the kernel (thus it coexists with your own signal handlers as long as
1789you don't register any with libev for the same signal). Similarly, when 2177you don't register any with libev for the same signal).
1790the last signal watcher for a signal is stopped, libev will reset the
1791signal handler to SIG_DFL (regardless of what it was set to before).
1792 2178
1793If possible and supported, libev will install its handlers with 2179If possible and supported, libev will install its handlers with
1794C<SA_RESTART> behaviour enabled, so system calls should not be unduly 2180C<SA_RESTART> (or equivalent) behaviour enabled, so system calls should
1795interrupted. If you have a problem with system calls getting interrupted by 2181not be unduly interrupted. If you have a problem with system calls getting
1796signals you can block all signals in an C<ev_check> watcher and unblock 2182interrupted by signals you can block all signals in an C<ev_check> watcher
1797them in an C<ev_prepare> watcher. 2183and unblock them in an C<ev_prepare> watcher.
2184
2185=head3 The special problem of inheritance over fork/execve/pthread_create
2186
2187Both the signal mask (C<sigprocmask>) and the signal disposition
2188(C<sigaction>) are unspecified after starting a signal watcher (and after
2189stopping it again), that is, libev might or might not block the signal,
2190and might or might not set or restore the installed signal handler.
2191
2192While this does not matter for the signal disposition (libev never
2193sets signals to C<SIG_IGN>, so handlers will be reset to C<SIG_DFL> on
2194C<execve>), this matters for the signal mask: many programs do not expect
2195certain signals to be blocked.
2196
2197This means that before calling C<exec> (from the child) you should reset
2198the signal mask to whatever "default" you expect (all clear is a good
2199choice usually).
2200
2201The simplest way to ensure that the signal mask is reset in the child is
2202to install a fork handler with C<pthread_atfork> that resets it. That will
2203catch fork calls done by libraries (such as the libc) as well.
2204
2205In current versions of libev, the signal will not be blocked indefinitely
2206unless you use the C<signalfd> API (C<EV_SIGNALFD>). While this reduces
2207the window of opportunity for problems, it will not go away, as libev
2208I<has> to modify the signal mask, at least temporarily.
2209
2210So I can't stress this enough: I<If you do not reset your signal mask when
2211you expect it to be empty, you have a race condition in your code>. This
2212is not a libev-specific thing, this is true for most event libraries.
1798 2213
1799=head3 Watcher-Specific Functions and Data Members 2214=head3 Watcher-Specific Functions and Data Members
1800 2215
1801=over 4 2216=over 4
1802 2217
1834some child status changes (most typically when a child of yours dies or 2249some child status changes (most typically when a child of yours dies or
1835exits). It is permissible to install a child watcher I<after> the child 2250exits). It is permissible to install a child watcher I<after> the child
1836has been forked (which implies it might have already exited), as long 2251has been forked (which implies it might have already exited), as long
1837as the event loop isn't entered (or is continued from a watcher), i.e., 2252as the event loop isn't entered (or is continued from a watcher), i.e.,
1838forking and then immediately registering a watcher for the child is fine, 2253forking and then immediately registering a watcher for the child is fine,
1839but forking and registering a watcher a few event loop iterations later is 2254but forking and registering a watcher a few event loop iterations later or
1840not. 2255in the next callback invocation is not.
1841 2256
1842Only the default event loop is capable of handling signals, and therefore 2257Only the default event loop is capable of handling signals, and therefore
1843you can only register child watchers in the default event loop. 2258you can only register child watchers in the default event loop.
1844 2259
2260Due to some design glitches inside libev, child watchers will always be
2261handled at maximum priority (their priority is set to C<EV_MAXPRI> by
2262libev)
2263
1845=head3 Process Interaction 2264=head3 Process Interaction
1846 2265
1847Libev grabs C<SIGCHLD> as soon as the default event loop is 2266Libev grabs C<SIGCHLD> as soon as the default event loop is
1848initialised. This is necessary to guarantee proper behaviour even if 2267initialised. This is necessary to guarantee proper behaviour even if the
1849the first child watcher is started after the child exits. The occurrence 2268first child watcher is started after the child exits. The occurrence
1850of C<SIGCHLD> is recorded asynchronously, but child reaping is done 2269of C<SIGCHLD> is recorded asynchronously, but child reaping is done
1851synchronously as part of the event loop processing. Libev always reaps all 2270synchronously as part of the event loop processing. Libev always reaps all
1852children, even ones not watched. 2271children, even ones not watched.
1853 2272
1854=head3 Overriding the Built-In Processing 2273=head3 Overriding the Built-In Processing
1864=head3 Stopping the Child Watcher 2283=head3 Stopping the Child Watcher
1865 2284
1866Currently, the child watcher never gets stopped, even when the 2285Currently, the child watcher never gets stopped, even when the
1867child terminates, so normally one needs to stop the watcher in the 2286child terminates, so normally one needs to stop the watcher in the
1868callback. Future versions of libev might stop the watcher automatically 2287callback. Future versions of libev might stop the watcher automatically
1869when a child exit is detected. 2288when a child exit is detected (calling C<ev_child_stop> twice is not a
2289problem).
1870 2290
1871=head3 Watcher-Specific Functions and Data Members 2291=head3 Watcher-Specific Functions and Data Members
1872 2292
1873=over 4 2293=over 4
1874 2294
2010the process. The exception are C<ev_stat> watchers - those call C<stat 2430the process. The exception are C<ev_stat> watchers - those call C<stat
2011()>, which is a synchronous operation. 2431()>, which is a synchronous operation.
2012 2432
2013For local paths, this usually doesn't matter: unless the system is very 2433For local paths, this usually doesn't matter: unless the system is very
2014busy or the intervals between stat's are large, a stat call will be fast, 2434busy or the intervals between stat's are large, a stat call will be fast,
2015as the path data is suually in memory already (except when starting the 2435as the path data is usually in memory already (except when starting the
2016watcher). 2436watcher).
2017 2437
2018For networked file systems, calling C<stat ()> can block an indefinite 2438For networked file systems, calling C<stat ()> can block an indefinite
2019time due to network issues, and even under good conditions, a stat call 2439time due to network issues, and even under good conditions, a stat call
2020often takes multiple milliseconds. 2440often takes multiple milliseconds.
2177 2597
2178=head3 Watcher-Specific Functions and Data Members 2598=head3 Watcher-Specific Functions and Data Members
2179 2599
2180=over 4 2600=over 4
2181 2601
2182=item ev_idle_init (ev_signal *, callback) 2602=item ev_idle_init (ev_idle *, callback)
2183 2603
2184Initialises and configures the idle watcher - it has no parameters of any 2604Initialises and configures the idle watcher - it has no parameters of any
2185kind. There is a C<ev_idle_set> macro, but using it is utterly pointless, 2605kind. There is a C<ev_idle_set> macro, but using it is utterly pointless,
2186believe me. 2606believe me.
2187 2607
2200 // no longer anything immediate to do. 2620 // no longer anything immediate to do.
2201 } 2621 }
2202 2622
2203 ev_idle *idle_watcher = malloc (sizeof (ev_idle)); 2623 ev_idle *idle_watcher = malloc (sizeof (ev_idle));
2204 ev_idle_init (idle_watcher, idle_cb); 2624 ev_idle_init (idle_watcher, idle_cb);
2205 ev_idle_start (loop, idle_cb); 2625 ev_idle_start (loop, idle_watcher);
2206 2626
2207 2627
2208=head2 C<ev_prepare> and C<ev_check> - customise your event loop! 2628=head2 C<ev_prepare> and C<ev_check> - customise your event loop!
2209 2629
2210Prepare and check watchers are usually (but not always) used in pairs: 2630Prepare and check watchers are usually (but not always) used in pairs:
2303 struct pollfd fds [nfd]; 2723 struct pollfd fds [nfd];
2304 // actual code will need to loop here and realloc etc. 2724 // actual code will need to loop here and realloc etc.
2305 adns_beforepoll (ads, fds, &nfd, &timeout, timeval_from (ev_time ())); 2725 adns_beforepoll (ads, fds, &nfd, &timeout, timeval_from (ev_time ()));
2306 2726
2307 /* the callback is illegal, but won't be called as we stop during check */ 2727 /* the callback is illegal, but won't be called as we stop during check */
2308 ev_timer_init (&tw, 0, timeout * 1e-3); 2728 ev_timer_init (&tw, 0, timeout * 1e-3, 0.);
2309 ev_timer_start (loop, &tw); 2729 ev_timer_start (loop, &tw);
2310 2730
2311 // create one ev_io per pollfd 2731 // create one ev_io per pollfd
2312 for (int i = 0; i < nfd; ++i) 2732 for (int i = 0; i < nfd; ++i)
2313 { 2733 {
2426some fds have to be watched and handled very quickly (with low latency), 2846some fds have to be watched and handled very quickly (with low latency),
2427and even priorities and idle watchers might have too much overhead. In 2847and even priorities and idle watchers might have too much overhead. In
2428this case you would put all the high priority stuff in one loop and all 2848this case you would put all the high priority stuff in one loop and all
2429the rest in a second one, and embed the second one in the first. 2849the rest in a second one, and embed the second one in the first.
2430 2850
2431As long as the watcher is active, the callback will be invoked every time 2851As long as the watcher is active, the callback will be invoked every
2432there might be events pending in the embedded loop. The callback must then 2852time there might be events pending in the embedded loop. The callback
2433call C<ev_embed_sweep (mainloop, watcher)> to make a single sweep and invoke 2853must then call C<ev_embed_sweep (mainloop, watcher)> to make a single
2434their callbacks (you could also start an idle watcher to give the embedded 2854sweep and invoke their callbacks (the callback doesn't need to invoke the
2435loop strictly lower priority for example). You can also set the callback 2855C<ev_embed_sweep> function directly, it could also start an idle watcher
2436to C<0>, in which case the embed watcher will automatically execute the 2856to give the embedded loop strictly lower priority for example).
2437embedded loop sweep.
2438 2857
2439As long as the watcher is started it will automatically handle events. The 2858You can also set the callback to C<0>, in which case the embed watcher
2440callback will be invoked whenever some events have been handled. You can 2859will automatically execute the embedded loop sweep whenever necessary.
2441set the callback to C<0> to avoid having to specify one if you are not
2442interested in that.
2443 2860
2444Also, there have not currently been made special provisions for forking: 2861Fork detection will be handled transparently while the C<ev_embed> watcher
2445when you fork, you not only have to call C<ev_loop_fork> on both loops, 2862is active, i.e., the embedded loop will automatically be forked when the
2446but you will also have to stop and restart any C<ev_embed> watchers 2863embedding loop forks. In other cases, the user is responsible for calling
2447yourself - but you can use a fork watcher to handle this automatically, 2864C<ev_loop_fork> on the embedded loop.
2448and future versions of libev might do just that.
2449 2865
2450Unfortunately, not all backends are embeddable: only the ones returned by 2866Unfortunately, not all backends are embeddable: only the ones returned by
2451C<ev_embeddable_backends> are, which, unfortunately, does not include any 2867C<ev_embeddable_backends> are, which, unfortunately, does not include any
2452portable one. 2868portable one.
2453 2869
2547event loop blocks next and before C<ev_check> watchers are being called, 2963event loop blocks next and before C<ev_check> watchers are being called,
2548and only in the child after the fork. If whoever good citizen calling 2964and only in the child after the fork. If whoever good citizen calling
2549C<ev_default_fork> cheats and calls it in the wrong process, the fork 2965C<ev_default_fork> cheats and calls it in the wrong process, the fork
2550handlers will be invoked, too, of course. 2966handlers will be invoked, too, of course.
2551 2967
2968=head3 The special problem of life after fork - how is it possible?
2969
2970Most uses of C<fork()> consist of forking, then some simple calls to set
2971up/change the process environment, followed by a call to C<exec()>. This
2972sequence should be handled by libev without any problems.
2973
2974This changes when the application actually wants to do event handling
2975in the child, or both parent in child, in effect "continuing" after the
2976fork.
2977
2978The default mode of operation (for libev, with application help to detect
2979forks) is to duplicate all the state in the child, as would be expected
2980when I<either> the parent I<or> the child process continues.
2981
2982When both processes want to continue using libev, then this is usually the
2983wrong result. In that case, usually one process (typically the parent) is
2984supposed to continue with all watchers in place as before, while the other
2985process typically wants to start fresh, i.e. without any active watchers.
2986
2987The cleanest and most efficient way to achieve that with libev is to
2988simply create a new event loop, which of course will be "empty", and
2989use that for new watchers. This has the advantage of not touching more
2990memory than necessary, and thus avoiding the copy-on-write, and the
2991disadvantage of having to use multiple event loops (which do not support
2992signal watchers).
2993
2994When this is not possible, or you want to use the default loop for
2995other reasons, then in the process that wants to start "fresh", call
2996C<ev_default_destroy ()> followed by C<ev_default_loop (...)>. Destroying
2997the default loop will "orphan" (not stop) all registered watchers, so you
2998have to be careful not to execute code that modifies those watchers. Note
2999also that in that case, you have to re-register any signal watchers.
3000
2552=head3 Watcher-Specific Functions and Data Members 3001=head3 Watcher-Specific Functions and Data Members
2553 3002
2554=over 4 3003=over 4
2555 3004
2556=item ev_fork_init (ev_signal *, callback) 3005=item ev_fork_init (ev_signal *, callback)
2560believe me. 3009believe me.
2561 3010
2562=back 3011=back
2563 3012
2564 3013
2565=head2 C<ev_async> - how to wake up another event loop 3014=head2 C<ev_async> - how to wake up an event loop
2566 3015
2567In general, you cannot use an C<ev_loop> from multiple threads or other 3016In general, you cannot use an C<ev_loop> from multiple threads or other
2568asynchronous sources such as signal handlers (as opposed to multiple event 3017asynchronous sources such as signal handlers (as opposed to multiple event
2569loops - those are of course safe to use in different threads). 3018loops - those are of course safe to use in different threads).
2570 3019
2571Sometimes, however, you need to wake up another event loop you do not 3020Sometimes, however, you need to wake up an event loop you do not control,
2572control, for example because it belongs to another thread. This is what 3021for example because it belongs to another thread. This is what C<ev_async>
2573C<ev_async> watchers do: as long as the C<ev_async> watcher is active, you 3022watchers do: as long as the C<ev_async> watcher is active, you can signal
2574can signal it by calling C<ev_async_send>, which is thread- and signal 3023it by calling C<ev_async_send>, which is thread- and signal safe.
2575safe.
2576 3024
2577This functionality is very similar to C<ev_signal> watchers, as signals, 3025This functionality is very similar to C<ev_signal> watchers, as signals,
2578too, are asynchronous in nature, and signals, too, will be compressed 3026too, are asynchronous in nature, and signals, too, will be compressed
2579(i.e. the number of callback invocations may be less than the number of 3027(i.e. the number of callback invocations may be less than the number of
2580C<ev_async_sent> calls). 3028C<ev_async_sent> calls).
2585=head3 Queueing 3033=head3 Queueing
2586 3034
2587C<ev_async> does not support queueing of data in any way. The reason 3035C<ev_async> does not support queueing of data in any way. The reason
2588is that the author does not know of a simple (or any) algorithm for a 3036is that the author does not know of a simple (or any) algorithm for a
2589multiple-writer-single-reader queue that works in all cases and doesn't 3037multiple-writer-single-reader queue that works in all cases and doesn't
2590need elaborate support such as pthreads. 3038need elaborate support such as pthreads or unportable memory access
3039semantics.
2591 3040
2592That means that if you want to queue data, you have to provide your own 3041That means that if you want to queue data, you have to provide your own
2593queue. But at least I can tell you how to implement locking around your 3042queue. But at least I can tell you how to implement locking around your
2594queue: 3043queue:
2595 3044
2684an C<EV_ASYNC> event on the watcher into the event loop. Unlike 3133an C<EV_ASYNC> event on the watcher into the event loop. Unlike
2685C<ev_feed_event>, this call is safe to do from other threads, signal or 3134C<ev_feed_event>, this call is safe to do from other threads, signal or
2686similar contexts (see the discussion of C<EV_ATOMIC_T> in the embedding 3135similar contexts (see the discussion of C<EV_ATOMIC_T> in the embedding
2687section below on what exactly this means). 3136section below on what exactly this means).
2688 3137
3138Note that, as with other watchers in libev, multiple events might get
3139compressed into a single callback invocation (another way to look at this
3140is that C<ev_async> watchers are level-triggered, set on C<ev_async_send>,
3141reset when the event loop detects that).
3142
2689This call incurs the overhead of a system call only once per loop iteration, 3143This call incurs the overhead of a system call only once per event loop
2690so while the overhead might be noticeable, it doesn't apply to repeated 3144iteration, so while the overhead might be noticeable, it doesn't apply to
2691calls to C<ev_async_send>. 3145repeated calls to C<ev_async_send> for the same event loop.
2692 3146
2693=item bool = ev_async_pending (ev_async *) 3147=item bool = ev_async_pending (ev_async *)
2694 3148
2695Returns a non-zero value when C<ev_async_send> has been called on the 3149Returns a non-zero value when C<ev_async_send> has been called on the
2696watcher but the event has not yet been processed (or even noted) by the 3150watcher but the event has not yet been processed (or even noted) by the
2699C<ev_async_send> sets a flag in the watcher and wakes up the loop. When 3153C<ev_async_send> sets a flag in the watcher and wakes up the loop. When
2700the loop iterates next and checks for the watcher to have become active, 3154the loop iterates next and checks for the watcher to have become active,
2701it will reset the flag again. C<ev_async_pending> can be used to very 3155it will reset the flag again. C<ev_async_pending> can be used to very
2702quickly check whether invoking the loop might be a good idea. 3156quickly check whether invoking the loop might be a good idea.
2703 3157
2704Not that this does I<not> check whether the watcher itself is pending, only 3158Not that this does I<not> check whether the watcher itself is pending,
2705whether it has been requested to make this watcher pending. 3159only whether it has been requested to make this watcher pending: there
3160is a time window between the event loop checking and resetting the async
3161notification, and the callback being invoked.
2706 3162
2707=back 3163=back
2708 3164
2709 3165
2710=head1 OTHER FUNCTIONS 3166=head1 OTHER FUNCTIONS
2727 3183
2728If C<timeout> is less than 0, then no timeout watcher will be 3184If C<timeout> is less than 0, then no timeout watcher will be
2729started. Otherwise an C<ev_timer> watcher with after = C<timeout> (and 3185started. Otherwise an C<ev_timer> watcher with after = C<timeout> (and
2730repeat = 0) will be started. C<0> is a valid timeout. 3186repeat = 0) will be started. C<0> is a valid timeout.
2731 3187
2732The callback has the type C<void (*cb)(int revents, void *arg)> and gets 3188The callback has the type C<void (*cb)(int revents, void *arg)> and is
2733passed an C<revents> set like normal event callbacks (a combination of 3189passed an C<revents> set like normal event callbacks (a combination of
2734C<EV_ERROR>, C<EV_READ>, C<EV_WRITE> or C<EV_TIMEOUT>) and the C<arg> 3190C<EV_ERROR>, C<EV_READ>, C<EV_WRITE> or C<EV_TIMER>) and the C<arg>
2735value passed to C<ev_once>. Note that it is possible to receive I<both> 3191value passed to C<ev_once>. Note that it is possible to receive I<both>
2736a timeout and an io event at the same time - you probably should give io 3192a timeout and an io event at the same time - you probably should give io
2737events precedence. 3193events precedence.
2738 3194
2739Example: wait up to ten seconds for data to appear on STDIN_FILENO. 3195Example: wait up to ten seconds for data to appear on STDIN_FILENO.
2740 3196
2741 static void stdin_ready (int revents, void *arg) 3197 static void stdin_ready (int revents, void *arg)
2742 { 3198 {
2743 if (revents & EV_READ) 3199 if (revents & EV_READ)
2744 /* stdin might have data for us, joy! */; 3200 /* stdin might have data for us, joy! */;
2745 else if (revents & EV_TIMEOUT) 3201 else if (revents & EV_TIMER)
2746 /* doh, nothing entered */; 3202 /* doh, nothing entered */;
2747 } 3203 }
2748 3204
2749 ev_once (STDIN_FILENO, EV_READ, 10., stdin_ready, 0); 3205 ev_once (STDIN_FILENO, EV_READ, 10., stdin_ready, 0);
2750 3206
2751=item ev_feed_event (struct ev_loop *, watcher *, int revents)
2752
2753Feeds the given event set into the event loop, as if the specified event
2754had happened for the specified watcher (which must be a pointer to an
2755initialised but not necessarily started event watcher).
2756
2757=item ev_feed_fd_event (struct ev_loop *, int fd, int revents) 3207=item ev_feed_fd_event (loop, int fd, int revents)
2758 3208
2759Feed an event on the given fd, as if a file descriptor backend detected 3209Feed an event on the given fd, as if a file descriptor backend detected
2760the given events it. 3210the given events it.
2761 3211
2762=item ev_feed_signal_event (struct ev_loop *loop, int signum) 3212=item ev_feed_signal_event (loop, int signum)
2763 3213
2764Feed an event as if the given signal occurred (C<loop> must be the default 3214Feed an event as if the given signal occurred (C<loop> must be the default
2765loop!). 3215loop!).
2766 3216
2767=back 3217=back
2847 3297
2848=over 4 3298=over 4
2849 3299
2850=item ev::TYPE::TYPE () 3300=item ev::TYPE::TYPE ()
2851 3301
2852=item ev::TYPE::TYPE (struct ev_loop *) 3302=item ev::TYPE::TYPE (loop)
2853 3303
2854=item ev::TYPE::~TYPE 3304=item ev::TYPE::~TYPE
2855 3305
2856The constructor (optionally) takes an event loop to associate the watcher 3306The constructor (optionally) takes an event loop to associate the watcher
2857with. If it is omitted, it will use C<EV_DEFAULT>. 3307with. If it is omitted, it will use C<EV_DEFAULT>.
2889 3339
2890 myclass obj; 3340 myclass obj;
2891 ev::io iow; 3341 ev::io iow;
2892 iow.set <myclass, &myclass::io_cb> (&obj); 3342 iow.set <myclass, &myclass::io_cb> (&obj);
2893 3343
3344=item w->set (object *)
3345
3346This is a variation of a method callback - leaving out the method to call
3347will default the method to C<operator ()>, which makes it possible to use
3348functor objects without having to manually specify the C<operator ()> all
3349the time. Incidentally, you can then also leave out the template argument
3350list.
3351
3352The C<operator ()> method prototype must be C<void operator ()(watcher &w,
3353int revents)>.
3354
3355See the method-C<set> above for more details.
3356
3357Example: use a functor object as callback.
3358
3359 struct myfunctor
3360 {
3361 void operator() (ev::io &w, int revents)
3362 {
3363 ...
3364 }
3365 }
3366
3367 myfunctor f;
3368
3369 ev::io w;
3370 w.set (&f);
3371
2894=item w->set<function> (void *data = 0) 3372=item w->set<function> (void *data = 0)
2895 3373
2896Also sets a callback, but uses a static method or plain function as 3374Also sets a callback, but uses a static method or plain function as
2897callback. The optional C<data> argument will be stored in the watcher's 3375callback. The optional C<data> argument will be stored in the watcher's
2898C<data> member and is free for you to use. 3376C<data> member and is free for you to use.
2904Example: Use a plain function as callback. 3382Example: Use a plain function as callback.
2905 3383
2906 static void io_cb (ev::io &w, int revents) { } 3384 static void io_cb (ev::io &w, int revents) { }
2907 iow.set <io_cb> (); 3385 iow.set <io_cb> ();
2908 3386
2909=item w->set (struct ev_loop *) 3387=item w->set (loop)
2910 3388
2911Associates a different C<struct ev_loop> with this watcher. You can only 3389Associates a different C<struct ev_loop> with this watcher. You can only
2912do this when the watcher is inactive (and not pending either). 3390do this when the watcher is inactive (and not pending either).
2913 3391
2914=item w->set ([arguments]) 3392=item w->set ([arguments])
2984L<http://software.schmorp.de/pkg/EV>. 3462L<http://software.schmorp.de/pkg/EV>.
2985 3463
2986=item Python 3464=item Python
2987 3465
2988Python bindings can be found at L<http://code.google.com/p/pyev/>. It 3466Python bindings can be found at L<http://code.google.com/p/pyev/>. It
2989seems to be quite complete and well-documented. Note, however, that the 3467seems to be quite complete and well-documented.
2990patch they require for libev is outright dangerous as it breaks the ABI
2991for everybody else, and therefore, should never be applied in an installed
2992libev (if python requires an incompatible ABI then it needs to embed
2993libev).
2994 3468
2995=item Ruby 3469=item Ruby
2996 3470
2997Tony Arcieri has written a ruby extension that offers access to a subset 3471Tony Arcieri has written a ruby extension that offers access to a subset
2998of the libev API and adds file handle abstractions, asynchronous DNS and 3472of the libev API and adds file handle abstractions, asynchronous DNS and
2999more on top of it. It can be found via gem servers. Its homepage is at 3473more on top of it. It can be found via gem servers. Its homepage is at
3000L<http://rev.rubyforge.org/>. 3474L<http://rev.rubyforge.org/>.
3001 3475
3476Roger Pack reports that using the link order C<-lws2_32 -lmsvcrt-ruby-190>
3477makes rev work even on mingw.
3478
3479=item Haskell
3480
3481A haskell binding to libev is available at
3482L<http://hackage.haskell.org/cgi-bin/hackage-scripts/package/hlibev>.
3483
3002=item D 3484=item D
3003 3485
3004Leandro Lucarella has written a D language binding (F<ev.d>) for libev, to 3486Leandro Lucarella has written a D language binding (F<ev.d>) for libev, to
3005be found at L<http://proj.llucax.com.ar/wiki/evd>. 3487be found at L<http://proj.llucax.com.ar/wiki/evd>.
3006 3488
3007=item Ocaml 3489=item Ocaml
3008 3490
3009Erkki Seppala has written Ocaml bindings for libev, to be found at 3491Erkki Seppala has written Ocaml bindings for libev, to be found at
3010L<http://modeemi.cs.tut.fi/~flux/software/ocaml-ev/>. 3492L<http://modeemi.cs.tut.fi/~flux/software/ocaml-ev/>.
3493
3494=item Lua
3495
3496Brian Maher has written a partial interface to libev for lua (at the
3497time of this writing, only C<ev_io> and C<ev_timer>), to be found at
3498L<http://github.com/brimworks/lua-ev>.
3011 3499
3012=back 3500=back
3013 3501
3014 3502
3015=head1 MACRO MAGIC 3503=head1 MACRO MAGIC
3169 libev.m4 3657 libev.m4
3170 3658
3171=head2 PREPROCESSOR SYMBOLS/MACROS 3659=head2 PREPROCESSOR SYMBOLS/MACROS
3172 3660
3173Libev can be configured via a variety of preprocessor symbols you have to 3661Libev can be configured via a variety of preprocessor symbols you have to
3174define before including any of its files. The default in the absence of 3662define before including (or compiling) any of its files. The default in
3175autoconf is documented for every option. 3663the absence of autoconf is documented for every option.
3664
3665Symbols marked with "(h)" do not change the ABI, and can have different
3666values when compiling libev vs. including F<ev.h>, so it is permissible
3667to redefine them before including F<ev.h> without breaking compatibility
3668to a compiled library. All other symbols change the ABI, which means all
3669users of libev and the libev code itself must be compiled with compatible
3670settings.
3176 3671
3177=over 4 3672=over 4
3178 3673
3179=item EV_STANDALONE 3674=item EV_STANDALONE (h)
3180 3675
3181Must always be C<1> if you do not use autoconf configuration, which 3676Must always be C<1> if you do not use autoconf configuration, which
3182keeps libev from including F<config.h>, and it also defines dummy 3677keeps libev from including F<config.h>, and it also defines dummy
3183implementations for some libevent functions (such as logging, which is not 3678implementations for some libevent functions (such as logging, which is not
3184supported). It will also not define any of the structs usually found in 3679supported). It will also not define any of the structs usually found in
3185F<event.h> that are not directly supported by the libev core alone. 3680F<event.h> that are not directly supported by the libev core alone.
3186 3681
3682In standalone mode, libev will still try to automatically deduce the
3683configuration, but has to be more conservative.
3684
3187=item EV_USE_MONOTONIC 3685=item EV_USE_MONOTONIC
3188 3686
3189If defined to be C<1>, libev will try to detect the availability of the 3687If defined to be C<1>, libev will try to detect the availability of the
3190monotonic clock option at both compile time and runtime. Otherwise no use 3688monotonic clock option at both compile time and runtime. Otherwise no
3191of the monotonic clock option will be attempted. If you enable this, you 3689use of the monotonic clock option will be attempted. If you enable this,
3192usually have to link against librt or something similar. Enabling it when 3690you usually have to link against librt or something similar. Enabling it
3193the functionality isn't available is safe, though, although you have 3691when the functionality isn't available is safe, though, although you have
3194to make sure you link against any libraries where the C<clock_gettime> 3692to make sure you link against any libraries where the C<clock_gettime>
3195function is hiding in (often F<-lrt>). 3693function is hiding in (often F<-lrt>). See also C<EV_USE_CLOCK_SYSCALL>.
3196 3694
3197=item EV_USE_REALTIME 3695=item EV_USE_REALTIME
3198 3696
3199If defined to be C<1>, libev will try to detect the availability of the 3697If defined to be C<1>, libev will try to detect the availability of the
3200real-time clock option at compile time (and assume its availability at 3698real-time clock option at compile time (and assume its availability
3201runtime if successful). Otherwise no use of the real-time clock option will 3699at runtime if successful). Otherwise no use of the real-time clock
3202be attempted. This effectively replaces C<gettimeofday> by C<clock_get 3700option will be attempted. This effectively replaces C<gettimeofday>
3203(CLOCK_REALTIME, ...)> and will not normally affect correctness. See the 3701by C<clock_get (CLOCK_REALTIME, ...)> and will not normally affect
3204note about libraries in the description of C<EV_USE_MONOTONIC>, though. 3702correctness. See the note about libraries in the description of
3703C<EV_USE_MONOTONIC>, though. Defaults to the opposite value of
3704C<EV_USE_CLOCK_SYSCALL>.
3705
3706=item EV_USE_CLOCK_SYSCALL
3707
3708If defined to be C<1>, libev will try to use a direct syscall instead
3709of calling the system-provided C<clock_gettime> function. This option
3710exists because on GNU/Linux, C<clock_gettime> is in C<librt>, but C<librt>
3711unconditionally pulls in C<libpthread>, slowing down single-threaded
3712programs needlessly. Using a direct syscall is slightly slower (in
3713theory), because no optimised vdso implementation can be used, but avoids
3714the pthread dependency. Defaults to C<1> on GNU/Linux with glibc 2.x or
3715higher, as it simplifies linking (no need for C<-lrt>).
3205 3716
3206=item EV_USE_NANOSLEEP 3717=item EV_USE_NANOSLEEP
3207 3718
3208If defined to be C<1>, libev will assume that C<nanosleep ()> is available 3719If defined to be C<1>, libev will assume that C<nanosleep ()> is available
3209and will use it for delays. Otherwise it will use C<select ()>. 3720and will use it for delays. Otherwise it will use C<select ()>.
3225 3736
3226=item EV_SELECT_USE_FD_SET 3737=item EV_SELECT_USE_FD_SET
3227 3738
3228If defined to C<1>, then the select backend will use the system C<fd_set> 3739If defined to C<1>, then the select backend will use the system C<fd_set>
3229structure. This is useful if libev doesn't compile due to a missing 3740structure. This is useful if libev doesn't compile due to a missing
3230C<NFDBITS> or C<fd_mask> definition or it mis-guesses the bitset layout on 3741C<NFDBITS> or C<fd_mask> definition or it mis-guesses the bitset layout
3231exotic systems. This usually limits the range of file descriptors to some 3742on exotic systems. This usually limits the range of file descriptors to
3232low limit such as 1024 or might have other limitations (winsocket only 3743some low limit such as 1024 or might have other limitations (winsocket
3233allows 64 sockets). The C<FD_SETSIZE> macro, set before compilation, might 3744only allows 64 sockets). The C<FD_SETSIZE> macro, set before compilation,
3234influence the size of the C<fd_set> used. 3745configures the maximum size of the C<fd_set>.
3235 3746
3236=item EV_SELECT_IS_WINSOCKET 3747=item EV_SELECT_IS_WINSOCKET
3237 3748
3238When defined to C<1>, the select backend will assume that 3749When defined to C<1>, the select backend will assume that
3239select/socket/connect etc. don't understand file descriptors but 3750select/socket/connect etc. don't understand file descriptors but
3241be used is the winsock select). This means that it will call 3752be used is the winsock select). This means that it will call
3242C<_get_osfhandle> on the fd to convert it to an OS handle. Otherwise, 3753C<_get_osfhandle> on the fd to convert it to an OS handle. Otherwise,
3243it is assumed that all these functions actually work on fds, even 3754it is assumed that all these functions actually work on fds, even
3244on win32. Should not be defined on non-win32 platforms. 3755on win32. Should not be defined on non-win32 platforms.
3245 3756
3246=item EV_FD_TO_WIN32_HANDLE 3757=item EV_FD_TO_WIN32_HANDLE(fd)
3247 3758
3248If C<EV_SELECT_IS_WINSOCKET> is enabled, then libev needs a way to map 3759If C<EV_SELECT_IS_WINSOCKET> is enabled, then libev needs a way to map
3249file descriptors to socket handles. When not defining this symbol (the 3760file descriptors to socket handles. When not defining this symbol (the
3250default), then libev will call C<_get_osfhandle>, which is usually 3761default), then libev will call C<_get_osfhandle>, which is usually
3251correct. In some cases, programs use their own file descriptor management, 3762correct. In some cases, programs use their own file descriptor management,
3252in which case they can provide this function to map fds to socket handles. 3763in which case they can provide this function to map fds to socket handles.
3764
3765=item EV_WIN32_HANDLE_TO_FD(handle)
3766
3767If C<EV_SELECT_IS_WINSOCKET> then libev maps handles to file descriptors
3768using the standard C<_open_osfhandle> function. For programs implementing
3769their own fd to handle mapping, overwriting this function makes it easier
3770to do so. This can be done by defining this macro to an appropriate value.
3771
3772=item EV_WIN32_CLOSE_FD(fd)
3773
3774If programs implement their own fd to handle mapping on win32, then this
3775macro can be used to override the C<close> function, useful to unregister
3776file descriptors again. Note that the replacement function has to close
3777the underlying OS handle.
3253 3778
3254=item EV_USE_POLL 3779=item EV_USE_POLL
3255 3780
3256If defined to be C<1>, libev will compile in support for the C<poll>(2) 3781If defined to be C<1>, libev will compile in support for the C<poll>(2)
3257backend. Otherwise it will be enabled on non-win32 platforms. It 3782backend. Otherwise it will be enabled on non-win32 platforms. It
3304as well as for signal and thread safety in C<ev_async> watchers. 3829as well as for signal and thread safety in C<ev_async> watchers.
3305 3830
3306In the absence of this define, libev will use C<sig_atomic_t volatile> 3831In the absence of this define, libev will use C<sig_atomic_t volatile>
3307(from F<signal.h>), which is usually good enough on most platforms. 3832(from F<signal.h>), which is usually good enough on most platforms.
3308 3833
3309=item EV_H 3834=item EV_H (h)
3310 3835
3311The name of the F<ev.h> header file used to include it. The default if 3836The name of the F<ev.h> header file used to include it. The default if
3312undefined is C<"ev.h"> in F<event.h>, F<ev.c> and F<ev++.h>. This can be 3837undefined is C<"ev.h"> in F<event.h>, F<ev.c> and F<ev++.h>. This can be
3313used to virtually rename the F<ev.h> header file in case of conflicts. 3838used to virtually rename the F<ev.h> header file in case of conflicts.
3314 3839
3315=item EV_CONFIG_H 3840=item EV_CONFIG_H (h)
3316 3841
3317If C<EV_STANDALONE> isn't C<1>, this variable can be used to override 3842If C<EV_STANDALONE> isn't C<1>, this variable can be used to override
3318F<ev.c>'s idea of where to find the F<config.h> file, similarly to 3843F<ev.c>'s idea of where to find the F<config.h> file, similarly to
3319C<EV_H>, above. 3844C<EV_H>, above.
3320 3845
3321=item EV_EVENT_H 3846=item EV_EVENT_H (h)
3322 3847
3323Similarly to C<EV_H>, this macro can be used to override F<event.c>'s idea 3848Similarly to C<EV_H>, this macro can be used to override F<event.c>'s idea
3324of how the F<event.h> header can be found, the default is C<"event.h">. 3849of how the F<event.h> header can be found, the default is C<"event.h">.
3325 3850
3326=item EV_PROTOTYPES 3851=item EV_PROTOTYPES (h)
3327 3852
3328If defined to be C<0>, then F<ev.h> will not define any function 3853If defined to be C<0>, then F<ev.h> will not define any function
3329prototypes, but still define all the structs and other symbols. This is 3854prototypes, but still define all the structs and other symbols. This is
3330occasionally useful if you want to provide your own wrapper functions 3855occasionally useful if you want to provide your own wrapper functions
3331around libev functions. 3856around libev functions.
3353fine. 3878fine.
3354 3879
3355If your embedding application does not need any priorities, defining these 3880If your embedding application does not need any priorities, defining these
3356both to C<0> will save some memory and CPU. 3881both to C<0> will save some memory and CPU.
3357 3882
3358=item EV_PERIODIC_ENABLE 3883=item EV_PERIODIC_ENABLE, EV_IDLE_ENABLE, EV_EMBED_ENABLE, EV_STAT_ENABLE,
3884EV_PREPARE_ENABLE, EV_CHECK_ENABLE, EV_FORK_ENABLE, EV_SIGNAL_ENABLE,
3885EV_ASYNC_ENABLE, EV_CHILD_ENABLE.
3359 3886
3360If undefined or defined to be C<1>, then periodic timers are supported. If 3887If undefined or defined to be C<1> (and the platform supports it), then
3361defined to be C<0>, then they are not. Disabling them saves a few kB of 3888the respective watcher type is supported. If defined to be C<0>, then it
3362code. 3889is not. Disabling watcher types mainly saves code size.
3363 3890
3364=item EV_IDLE_ENABLE 3891=item EV_FEATURES
3365
3366If undefined or defined to be C<1>, then idle watchers are supported. If
3367defined to be C<0>, then they are not. Disabling them saves a few kB of
3368code.
3369
3370=item EV_EMBED_ENABLE
3371
3372If undefined or defined to be C<1>, then embed watchers are supported. If
3373defined to be C<0>, then they are not. Embed watchers rely on most other
3374watcher types, which therefore must not be disabled.
3375
3376=item EV_STAT_ENABLE
3377
3378If undefined or defined to be C<1>, then stat watchers are supported. If
3379defined to be C<0>, then they are not.
3380
3381=item EV_FORK_ENABLE
3382
3383If undefined or defined to be C<1>, then fork watchers are supported. If
3384defined to be C<0>, then they are not.
3385
3386=item EV_ASYNC_ENABLE
3387
3388If undefined or defined to be C<1>, then async watchers are supported. If
3389defined to be C<0>, then they are not.
3390
3391=item EV_MINIMAL
3392 3892
3393If you need to shave off some kilobytes of code at the expense of some 3893If you need to shave off some kilobytes of code at the expense of some
3394speed, define this symbol to C<1>. Currently this is used to override some 3894speed (but with the full API), you can define this symbol to request
3395inlining decisions, saves roughly 30% code size on amd64. It also selects a 3895certain subsets of functionality. The default is to enable all features
3396much smaller 2-heap for timer management over the default 4-heap. 3896that can be enabled on the platform.
3897
3898A typical way to use this symbol is to define it to C<0> (or to a bitset
3899with some broad features you want) and then selectively re-enable
3900additional parts you want, for example if you want everything minimal,
3901but multiple event loop support, async and child watchers and the poll
3902backend, use this:
3903
3904 #define EV_FEATURES 0
3905 #define EV_MULTIPLICITY 1
3906 #define EV_USE_POLL 1
3907 #define EV_CHILD_ENABLE 1
3908 #define EV_ASYNC_ENABLE 1
3909
3910The actual value is a bitset, it can be a combination of the following
3911values:
3912
3913=over 4
3914
3915=item C<1> - faster/larger code
3916
3917Use larger code to speed up some operations.
3918
3919Currently this is used to override some inlining decisions (enlarging the
3920code size by roughly 30% on amd64).
3921
3922When optimising for size, use of compiler flags such as C<-Os> with
3923gcc is recommended, as well as C<-DNDEBUG>, as libev contains a number of
3924assertions.
3925
3926=item C<2> - faster/larger data structures
3927
3928Replaces the small 2-heap for timer management by a faster 4-heap, larger
3929hash table sizes and so on. This will usually further increase code size
3930and can additionally have an effect on the size of data structures at
3931runtime.
3932
3933=item C<4> - full API configuration
3934
3935This enables priorities (sets C<EV_MAXPRI>=2 and C<EV_MINPRI>=-2), and
3936enables multiplicity (C<EV_MULTIPLICITY>=1).
3937
3938=item C<8> - full API
3939
3940This enables a lot of the "lesser used" API functions. See C<ev.h> for
3941details on which parts of the API are still available without this
3942feature, and do not complain if this subset changes over time.
3943
3944=item C<16> - enable all optional watcher types
3945
3946Enables all optional watcher types. If you want to selectively enable
3947only some watcher types other than I/O and timers (e.g. prepare,
3948embed, async, child...) you can enable them manually by defining
3949C<EV_watchertype_ENABLE> to C<1> instead.
3950
3951=item C<32> - enable all backends
3952
3953This enables all backends - without this feature, you need to enable at
3954least one backend manually (C<EV_USE_SELECT> is a good choice).
3955
3956=item C<64> - enable OS-specific "helper" APIs
3957
3958Enable inotify, eventfd, signalfd and similar OS-specific helper APIs by
3959default.
3960
3961=back
3962
3963Compiling with C<gcc -Os -DEV_STANDALONE -DEV_USE_EPOLL=1 -DEV_FEATURES=0>
3964reduces the compiled size of libev from 24.7Kb code/2.8Kb data to 6.5Kb
3965code/0.3Kb data on my GNU/Linux amd64 system, while still giving you I/O
3966watchers, timers and monotonic clock support.
3967
3968With an intelligent-enough linker (gcc+binutils are intelligent enough
3969when you use C<-Wl,--gc-sections -ffunction-sections>) functions unused by
3970your program might be left out as well - a binary starting a timer and an
3971I/O watcher then might come out at only 5Kb.
3972
3973=item EV_AVOID_STDIO
3974
3975If this is set to C<1> at compiletime, then libev will avoid using stdio
3976functions (printf, scanf, perror etc.). This will increase the code size
3977somewhat, but if your program doesn't otherwise depend on stdio and your
3978libc allows it, this avoids linking in the stdio library which is quite
3979big.
3980
3981Note that error messages might become less precise when this option is
3982enabled.
3983
3984=item EV_NSIG
3985
3986The highest supported signal number, +1 (or, the number of
3987signals): Normally, libev tries to deduce the maximum number of signals
3988automatically, but sometimes this fails, in which case it can be
3989specified. Also, using a lower number than detected (C<32> should be
3990good for about any system in existence) can save some memory, as libev
3991statically allocates some 12-24 bytes per signal number.
3397 3992
3398=item EV_PID_HASHSIZE 3993=item EV_PID_HASHSIZE
3399 3994
3400C<ev_child> watchers use a small hash table to distribute workload by 3995C<ev_child> watchers use a small hash table to distribute workload by
3401pid. The default size is C<16> (or C<1> with C<EV_MINIMAL>), usually more 3996pid. The default size is C<16> (or C<1> with C<EV_FEATURES> disabled),
3402than enough. If you need to manage thousands of children you might want to 3997usually more than enough. If you need to manage thousands of children you
3403increase this value (I<must> be a power of two). 3998might want to increase this value (I<must> be a power of two).
3404 3999
3405=item EV_INOTIFY_HASHSIZE 4000=item EV_INOTIFY_HASHSIZE
3406 4001
3407C<ev_stat> watchers use a small hash table to distribute workload by 4002C<ev_stat> watchers use a small hash table to distribute workload by
3408inotify watch id. The default size is C<16> (or C<1> with C<EV_MINIMAL>), 4003inotify watch id. The default size is C<16> (or C<1> with C<EV_FEATURES>
3409usually more than enough. If you need to manage thousands of C<ev_stat> 4004disabled), usually more than enough. If you need to manage thousands of
3410watchers you might want to increase this value (I<must> be a power of 4005C<ev_stat> watchers you might want to increase this value (I<must> be a
3411two). 4006power of two).
3412 4007
3413=item EV_USE_4HEAP 4008=item EV_USE_4HEAP
3414 4009
3415Heaps are not very cache-efficient. To improve the cache-efficiency of the 4010Heaps are not very cache-efficient. To improve the cache-efficiency of the
3416timer and periodics heaps, libev uses a 4-heap when this symbol is defined 4011timer and periodics heaps, libev uses a 4-heap when this symbol is defined
3417to C<1>. The 4-heap uses more complicated (longer) code but has noticeably 4012to C<1>. The 4-heap uses more complicated (longer) code but has noticeably
3418faster performance with many (thousands) of watchers. 4013faster performance with many (thousands) of watchers.
3419 4014
3420The default is C<1> unless C<EV_MINIMAL> is set in which case it is C<0> 4015The default is C<1>, unless C<EV_FEATURES> overrides it, in which case it
3421(disabled). 4016will be C<0>.
3422 4017
3423=item EV_HEAP_CACHE_AT 4018=item EV_HEAP_CACHE_AT
3424 4019
3425Heaps are not very cache-efficient. To improve the cache-efficiency of the 4020Heaps are not very cache-efficient. To improve the cache-efficiency of the
3426timer and periodics heaps, libev can cache the timestamp (I<at>) within 4021timer and periodics heaps, libev can cache the timestamp (I<at>) within
3427the heap structure (selected by defining C<EV_HEAP_CACHE_AT> to C<1>), 4022the heap structure (selected by defining C<EV_HEAP_CACHE_AT> to C<1>),
3428which uses 8-12 bytes more per watcher and a few hundred bytes more code, 4023which uses 8-12 bytes more per watcher and a few hundred bytes more code,
3429but avoids random read accesses on heap changes. This improves performance 4024but avoids random read accesses on heap changes. This improves performance
3430noticeably with many (hundreds) of watchers. 4025noticeably with many (hundreds) of watchers.
3431 4026
3432The default is C<1> unless C<EV_MINIMAL> is set in which case it is C<0> 4027The default is C<1>, unless C<EV_FEATURES> overrides it, in which case it
3433(disabled). 4028will be C<0>.
3434 4029
3435=item EV_VERIFY 4030=item EV_VERIFY
3436 4031
3437Controls how much internal verification (see C<ev_loop_verify ()>) will 4032Controls how much internal verification (see C<ev_loop_verify ()>) will
3438be done: If set to C<0>, no internal verification code will be compiled 4033be done: If set to C<0>, no internal verification code will be compiled
3440called. If set to C<2>, then the internal verification code will be 4035called. If set to C<2>, then the internal verification code will be
3441called once per loop, which can slow down libev. If set to C<3>, then the 4036called once per loop, which can slow down libev. If set to C<3>, then the
3442verification code will be called very frequently, which will slow down 4037verification code will be called very frequently, which will slow down
3443libev considerably. 4038libev considerably.
3444 4039
3445The default is C<1>, unless C<EV_MINIMAL> is set, in which case it will be 4040The default is C<1>, unless C<EV_FEATURES> overrides it, in which case it
3446C<0>. 4041will be C<0>.
3447 4042
3448=item EV_COMMON 4043=item EV_COMMON
3449 4044
3450By default, all watchers have a C<void *data> member. By redefining 4045By default, all watchers have a C<void *data> member. By redefining
3451this macro to a something else you can include more and other types of 4046this macro to something else you can include more and other types of
3452members. You have to define it each time you include one of the files, 4047members. You have to define it each time you include one of the files,
3453though, and it must be identical each time. 4048though, and it must be identical each time.
3454 4049
3455For example, the perl EV module uses something like this: 4050For example, the perl EV module uses something like this:
3456 4051
3509file. 4104file.
3510 4105
3511The usage in rxvt-unicode is simpler. It has a F<ev_cpp.h> header file 4106The usage in rxvt-unicode is simpler. It has a F<ev_cpp.h> header file
3512that everybody includes and which overrides some configure choices: 4107that everybody includes and which overrides some configure choices:
3513 4108
3514 #define EV_MINIMAL 1 4109 #define EV_FEATURES 8
3515 #define EV_USE_POLL 0 4110 #define EV_USE_SELECT 1
3516 #define EV_MULTIPLICITY 0
3517 #define EV_PERIODIC_ENABLE 0 4111 #define EV_PREPARE_ENABLE 1
4112 #define EV_IDLE_ENABLE 1
3518 #define EV_STAT_ENABLE 0 4113 #define EV_SIGNAL_ENABLE 1
3519 #define EV_FORK_ENABLE 0 4114 #define EV_CHILD_ENABLE 1
4115 #define EV_USE_STDEXCEPT 0
3520 #define EV_CONFIG_H <config.h> 4116 #define EV_CONFIG_H <config.h>
3521 #define EV_MINPRI 0
3522 #define EV_MAXPRI 0
3523 4117
3524 #include "ev++.h" 4118 #include "ev++.h"
3525 4119
3526And a F<ev_cpp.C> implementation file that contains libev proper and is compiled: 4120And a F<ev_cpp.C> implementation file that contains libev proper and is compiled:
3527 4121
3587default loop and triggering an C<ev_async> watcher from the default loop 4181default loop and triggering an C<ev_async> watcher from the default loop
3588watcher callback into the event loop interested in the signal. 4182watcher callback into the event loop interested in the signal.
3589 4183
3590=back 4184=back
3591 4185
4186=head4 THREAD LOCKING EXAMPLE
4187
4188Here is a fictitious example of how to run an event loop in a different
4189thread than where callbacks are being invoked and watchers are
4190created/added/removed.
4191
4192For a real-world example, see the C<EV::Loop::Async> perl module,
4193which uses exactly this technique (which is suited for many high-level
4194languages).
4195
4196The example uses a pthread mutex to protect the loop data, a condition
4197variable to wait for callback invocations, an async watcher to notify the
4198event loop thread and an unspecified mechanism to wake up the main thread.
4199
4200First, you need to associate some data with the event loop:
4201
4202 typedef struct {
4203 mutex_t lock; /* global loop lock */
4204 ev_async async_w;
4205 thread_t tid;
4206 cond_t invoke_cv;
4207 } userdata;
4208
4209 void prepare_loop (EV_P)
4210 {
4211 // for simplicity, we use a static userdata struct.
4212 static userdata u;
4213
4214 ev_async_init (&u->async_w, async_cb);
4215 ev_async_start (EV_A_ &u->async_w);
4216
4217 pthread_mutex_init (&u->lock, 0);
4218 pthread_cond_init (&u->invoke_cv, 0);
4219
4220 // now associate this with the loop
4221 ev_set_userdata (EV_A_ u);
4222 ev_set_invoke_pending_cb (EV_A_ l_invoke);
4223 ev_set_loop_release_cb (EV_A_ l_release, l_acquire);
4224
4225 // then create the thread running ev_loop
4226 pthread_create (&u->tid, 0, l_run, EV_A);
4227 }
4228
4229The callback for the C<ev_async> watcher does nothing: the watcher is used
4230solely to wake up the event loop so it takes notice of any new watchers
4231that might have been added:
4232
4233 static void
4234 async_cb (EV_P_ ev_async *w, int revents)
4235 {
4236 // just used for the side effects
4237 }
4238
4239The C<l_release> and C<l_acquire> callbacks simply unlock/lock the mutex
4240protecting the loop data, respectively.
4241
4242 static void
4243 l_release (EV_P)
4244 {
4245 userdata *u = ev_userdata (EV_A);
4246 pthread_mutex_unlock (&u->lock);
4247 }
4248
4249 static void
4250 l_acquire (EV_P)
4251 {
4252 userdata *u = ev_userdata (EV_A);
4253 pthread_mutex_lock (&u->lock);
4254 }
4255
4256The event loop thread first acquires the mutex, and then jumps straight
4257into C<ev_loop>:
4258
4259 void *
4260 l_run (void *thr_arg)
4261 {
4262 struct ev_loop *loop = (struct ev_loop *)thr_arg;
4263
4264 l_acquire (EV_A);
4265 pthread_setcanceltype (PTHREAD_CANCEL_ASYNCHRONOUS, 0);
4266 ev_loop (EV_A_ 0);
4267 l_release (EV_A);
4268
4269 return 0;
4270 }
4271
4272Instead of invoking all pending watchers, the C<l_invoke> callback will
4273signal the main thread via some unspecified mechanism (signals? pipe
4274writes? C<Async::Interrupt>?) and then waits until all pending watchers
4275have been called (in a while loop because a) spurious wakeups are possible
4276and b) skipping inter-thread-communication when there are no pending
4277watchers is very beneficial):
4278
4279 static void
4280 l_invoke (EV_P)
4281 {
4282 userdata *u = ev_userdata (EV_A);
4283
4284 while (ev_pending_count (EV_A))
4285 {
4286 wake_up_other_thread_in_some_magic_or_not_so_magic_way ();
4287 pthread_cond_wait (&u->invoke_cv, &u->lock);
4288 }
4289 }
4290
4291Now, whenever the main thread gets told to invoke pending watchers, it
4292will grab the lock, call C<ev_invoke_pending> and then signal the loop
4293thread to continue:
4294
4295 static void
4296 real_invoke_pending (EV_P)
4297 {
4298 userdata *u = ev_userdata (EV_A);
4299
4300 pthread_mutex_lock (&u->lock);
4301 ev_invoke_pending (EV_A);
4302 pthread_cond_signal (&u->invoke_cv);
4303 pthread_mutex_unlock (&u->lock);
4304 }
4305
4306Whenever you want to start/stop a watcher or do other modifications to an
4307event loop, you will now have to lock:
4308
4309 ev_timer timeout_watcher;
4310 userdata *u = ev_userdata (EV_A);
4311
4312 ev_timer_init (&timeout_watcher, timeout_cb, 5.5, 0.);
4313
4314 pthread_mutex_lock (&u->lock);
4315 ev_timer_start (EV_A_ &timeout_watcher);
4316 ev_async_send (EV_A_ &u->async_w);
4317 pthread_mutex_unlock (&u->lock);
4318
4319Note that sending the C<ev_async> watcher is required because otherwise
4320an event loop currently blocking in the kernel will have no knowledge
4321about the newly added timer. By waking up the loop it will pick up any new
4322watchers in the next event loop iteration.
4323
3592=head3 COROUTINES 4324=head3 COROUTINES
3593 4325
3594Libev is very accommodating to coroutines ("cooperative threads"): 4326Libev is very accommodating to coroutines ("cooperative threads"):
3595libev fully supports nesting calls to its functions from different 4327libev fully supports nesting calls to its functions from different
3596coroutines (e.g. you can call C<ev_loop> on the same loop from two 4328coroutines (e.g. you can call C<ev_loop> on the same loop from two
3597different coroutines, and switch freely between both coroutines running the 4329different coroutines, and switch freely between both coroutines running
3598loop, as long as you don't confuse yourself). The only exception is that 4330the loop, as long as you don't confuse yourself). The only exception is
3599you must not do this from C<ev_periodic> reschedule callbacks. 4331that you must not do this from C<ev_periodic> reschedule callbacks.
3600 4332
3601Care has been taken to ensure that libev does not keep local state inside 4333Care has been taken to ensure that libev does not keep local state inside
3602C<ev_loop>, and other calls do not usually allow for coroutine switches as 4334C<ev_loop>, and other calls do not usually allow for coroutine switches as
3603they do not call any callbacks. 4335they do not call any callbacks.
3604 4336
3618maintainable. 4350maintainable.
3619 4351
3620And of course, some compiler warnings are just plain stupid, or simply 4352And of course, some compiler warnings are just plain stupid, or simply
3621wrong (because they don't actually warn about the condition their message 4353wrong (because they don't actually warn about the condition their message
3622seems to warn about). For example, certain older gcc versions had some 4354seems to warn about). For example, certain older gcc versions had some
3623warnings that resulted an extreme number of false positives. These have 4355warnings that resulted in an extreme number of false positives. These have
3624been fixed, but some people still insist on making code warn-free with 4356been fixed, but some people still insist on making code warn-free with
3625such buggy versions. 4357such buggy versions.
3626 4358
3627While libev is written to generate as few warnings as possible, 4359While libev is written to generate as few warnings as possible,
3628"warn-free" code is not a goal, and it is recommended not to build libev 4360"warn-free" code is not a goal, and it is recommended not to build libev
3664I suggest using suppression lists. 4396I suggest using suppression lists.
3665 4397
3666 4398
3667=head1 PORTABILITY NOTES 4399=head1 PORTABILITY NOTES
3668 4400
4401=head2 GNU/LINUX 32 BIT LIMITATIONS
4402
4403GNU/Linux is the only common platform that supports 64 bit file/large file
4404interfaces but I<disables> them by default.
4405
4406That means that libev compiled in the default environment doesn't support
4407files larger than 2GiB or so, which mainly affects C<ev_stat> watchers.
4408
4409Unfortunately, many programs try to work around this GNU/Linux issue
4410by enabling the large file API, which makes them incompatible with the
4411standard libev compiled for their system.
4412
4413Likewise, libev cannot enable the large file API itself as this would
4414suddenly make it incompatible to the default compile time environment,
4415i.e. all programs not using special compile switches.
4416
4417=head2 OS/X AND DARWIN BUGS
4418
4419The whole thing is a bug if you ask me - basically any system interface
4420you touch is broken, whether it is locales, poll, kqueue or even the
4421OpenGL drivers.
4422
4423=head3 C<kqueue> is buggy
4424
4425The kqueue syscall is broken in all known versions - most versions support
4426only sockets, many support pipes.
4427
4428=head3 C<poll> is buggy
4429
4430Instead of fixing C<kqueue>, Apple replaced their (working) C<poll>
4431implementation by something calling C<kqueue> internally around the 10.5.6
4432release, so now C<kqueue> I<and> C<poll> are broken.
4433
4434Libev tries to work around this by neither using C<kqueue> nor C<poll> by
4435default on this rotten platform, but of course you cna still ask for them
4436when creating a loop.
4437
4438=head3 C<select> is buggy
4439
4440All that's left is C<select>, and of course Apple found a way to fuck this
4441one up as well: On OS/X, C<select> actively limits the number of file
4442descriptors you can pass in to 1024 - your program suddenyl crashes when
4443you use more.
4444
4445There is an undocumented "workaround" for this - defining
4446C<_DARWIN_UNLIMITED_SELECT>, which libev tries to use, so select I<should>
4447work on OS/X.
4448
4449=head2 SOLARIS PROBLEMS AND WORKAROUNDS
4450
4451=head3 C<errno> reentrancy
4452
4453The default compile environment on Solaris is unfortunately so
4454thread-unsafe that you can't even use components/libraries compiled
4455without C<-D_REENTRANT> (as long as they use C<errno>), which, of course,
4456isn't defined by default.
4457
4458If you want to use libev in threaded environments you have to make sure
4459it's compiled with C<_REENTRANT> defined.
4460
4461=head3 Event port backend
4462
4463The scalable event interface for Solaris is called "event ports". Unfortunately,
4464this mechanism is very buggy. If you run into high CPU usage, your program
4465freezes or you get a large number of spurious wakeups, make sure you have
4466all the relevant and latest kernel patches applied. No, I don't know which
4467ones, but there are multiple ones.
4468
4469If you can't get it to work, you can try running the program with
4470C<LIBEV_FLAGS=3> to only allow C<poll> and C<select> backends.
4471
4472=head2 AIX POLL BUG
4473
4474AIX unfortunately has a broken C<poll.h> header. Libev works around
4475this by trying to avoid the poll backend altogether (i.e. it's not even
4476compiled in), which normally isn't a big problem as C<select> works fine
4477with large bitsets, and AIX is dead anyway.
4478
3669=head2 WIN32 PLATFORM LIMITATIONS AND WORKAROUNDS 4479=head2 WIN32 PLATFORM LIMITATIONS AND WORKAROUNDS
4480
4481=head3 General issues
3670 4482
3671Win32 doesn't support any of the standards (e.g. POSIX) that libev 4483Win32 doesn't support any of the standards (e.g. POSIX) that libev
3672requires, and its I/O model is fundamentally incompatible with the POSIX 4484requires, and its I/O model is fundamentally incompatible with the POSIX
3673model. Libev still offers limited functionality on this platform in 4485model. Libev still offers limited functionality on this platform in
3674the form of the C<EVBACKEND_SELECT> backend, and only supports socket 4486the form of the C<EVBACKEND_SELECT> backend, and only supports socket
3675descriptors. This only applies when using Win32 natively, not when using 4487descriptors. This only applies when using Win32 natively, not when using
3676e.g. cygwin. 4488e.g. cygwin. Actually, it only applies to the microsofts own compilers,
4489as every compielr comes with a slightly differently broken/incompatible
4490environment.
3677 4491
3678Lifting these limitations would basically require the full 4492Lifting these limitations would basically require the full
3679re-implementation of the I/O system. If you are into these kinds of 4493re-implementation of the I/O system. If you are into this kind of thing,
3680things, then note that glib does exactly that for you in a very portable 4494then note that glib does exactly that for you in a very portable way (note
3681way (note also that glib is the slowest event library known to man). 4495also that glib is the slowest event library known to man).
3682 4496
3683There is no supported compilation method available on windows except 4497There is no supported compilation method available on windows except
3684embedding it into other applications. 4498embedding it into other applications.
4499
4500Sensible signal handling is officially unsupported by Microsoft - libev
4501tries its best, but under most conditions, signals will simply not work.
3685 4502
3686Not a libev limitation but worth mentioning: windows apparently doesn't 4503Not a libev limitation but worth mentioning: windows apparently doesn't
3687accept large writes: instead of resulting in a partial write, windows will 4504accept large writes: instead of resulting in a partial write, windows will
3688either accept everything or return C<ENOBUFS> if the buffer is too large, 4505either accept everything or return C<ENOBUFS> if the buffer is too large,
3689so make sure you only write small amounts into your sockets (less than a 4506so make sure you only write small amounts into your sockets (less than a
3694the abysmal performance of winsockets, using a large number of sockets 4511the abysmal performance of winsockets, using a large number of sockets
3695is not recommended (and not reasonable). If your program needs to use 4512is not recommended (and not reasonable). If your program needs to use
3696more than a hundred or so sockets, then likely it needs to use a totally 4513more than a hundred or so sockets, then likely it needs to use a totally
3697different implementation for windows, as libev offers the POSIX readiness 4514different implementation for windows, as libev offers the POSIX readiness
3698notification model, which cannot be implemented efficiently on windows 4515notification model, which cannot be implemented efficiently on windows
3699(Microsoft monopoly games). 4516(due to Microsoft monopoly games).
3700 4517
3701A typical way to use libev under windows is to embed it (see the embedding 4518A typical way to use libev under windows is to embed it (see the embedding
3702section for details) and use the following F<evwrap.h> header file instead 4519section for details) and use the following F<evwrap.h> header file instead
3703of F<ev.h>: 4520of F<ev.h>:
3704 4521
3711you do I<not> compile the F<ev.c> or any other embedded source files!): 4528you do I<not> compile the F<ev.c> or any other embedded source files!):
3712 4529
3713 #include "evwrap.h" 4530 #include "evwrap.h"
3714 #include "ev.c" 4531 #include "ev.c"
3715 4532
3716=over 4
3717
3718=item The winsocket select function 4533=head3 The winsocket C<select> function
3719 4534
3720The winsocket C<select> function doesn't follow POSIX in that it 4535The winsocket C<select> function doesn't follow POSIX in that it
3721requires socket I<handles> and not socket I<file descriptors> (it is 4536requires socket I<handles> and not socket I<file descriptors> (it is
3722also extremely buggy). This makes select very inefficient, and also 4537also extremely buggy). This makes select very inefficient, and also
3723requires a mapping from file descriptors to socket handles (the Microsoft 4538requires a mapping from file descriptors to socket handles (the Microsoft
3732 #define EV_SELECT_IS_WINSOCKET 1 /* forces EV_SELECT_USE_FD_SET, too */ 4547 #define EV_SELECT_IS_WINSOCKET 1 /* forces EV_SELECT_USE_FD_SET, too */
3733 4548
3734Note that winsockets handling of fd sets is O(n), so you can easily get a 4549Note that winsockets handling of fd sets is O(n), so you can easily get a
3735complexity in the O(n²) range when using win32. 4550complexity in the O(n²) range when using win32.
3736 4551
3737=item Limited number of file descriptors 4552=head3 Limited number of file descriptors
3738 4553
3739Windows has numerous arbitrary (and low) limits on things. 4554Windows has numerous arbitrary (and low) limits on things.
3740 4555
3741Early versions of winsocket's select only supported waiting for a maximum 4556Early versions of winsocket's select only supported waiting for a maximum
3742of C<64> handles (probably owning to the fact that all windows kernels 4557of C<64> handles (probably owning to the fact that all windows kernels
3743can only wait for C<64> things at the same time internally; Microsoft 4558can only wait for C<64> things at the same time internally; Microsoft
3744recommends spawning a chain of threads and wait for 63 handles and the 4559recommends spawning a chain of threads and wait for 63 handles and the
3745previous thread in each. Great). 4560previous thread in each. Sounds great!).
3746 4561
3747Newer versions support more handles, but you need to define C<FD_SETSIZE> 4562Newer versions support more handles, but you need to define C<FD_SETSIZE>
3748to some high number (e.g. C<2048>) before compiling the winsocket select 4563to some high number (e.g. C<2048>) before compiling the winsocket select
3749call (which might be in libev or elsewhere, for example, perl does its own 4564call (which might be in libev or elsewhere, for example, perl and many
3750select emulation on windows). 4565other interpreters do their own select emulation on windows).
3751 4566
3752Another limit is the number of file descriptors in the Microsoft runtime 4567Another limit is the number of file descriptors in the Microsoft runtime
3753libraries, which by default is C<64> (there must be a hidden I<64> fetish 4568libraries, which by default is C<64> (there must be a hidden I<64>
3754or something like this inside Microsoft). You can increase this by calling 4569fetish or something like this inside Microsoft). You can increase this
3755C<_setmaxstdio>, which can increase this limit to C<2048> (another 4570by calling C<_setmaxstdio>, which can increase this limit to C<2048>
3756arbitrary limit), but is broken in many versions of the Microsoft runtime 4571(another arbitrary limit), but is broken in many versions of the Microsoft
3757libraries.
3758
3759This might get you to about C<512> or C<2048> sockets (depending on 4572runtime libraries. This might get you to about C<512> or C<2048> sockets
3760windows version and/or the phase of the moon). To get more, you need to 4573(depending on windows version and/or the phase of the moon). To get more,
3761wrap all I/O functions and provide your own fd management, but the cost of 4574you need to wrap all I/O functions and provide your own fd management, but
3762calling select (O(n²)) will likely make this unworkable. 4575the cost of calling select (O(n²)) will likely make this unworkable.
3763
3764=back
3765 4576
3766=head2 PORTABILITY REQUIREMENTS 4577=head2 PORTABILITY REQUIREMENTS
3767 4578
3768In addition to a working ISO-C implementation and of course the 4579In addition to a working ISO-C implementation and of course the
3769backend-specific APIs, libev relies on a few additional extensions: 4580backend-specific APIs, libev relies on a few additional extensions:
3810=item C<double> must hold a time value in seconds with enough accuracy 4621=item C<double> must hold a time value in seconds with enough accuracy
3811 4622
3812The type C<double> is used to represent timestamps. It is required to 4623The type C<double> is used to represent timestamps. It is required to
3813have at least 51 bits of mantissa (and 9 bits of exponent), which is good 4624have at least 51 bits of mantissa (and 9 bits of exponent), which is good
3814enough for at least into the year 4000. This requirement is fulfilled by 4625enough for at least into the year 4000. This requirement is fulfilled by
3815implementations implementing IEEE 754 (basically all existing ones). 4626implementations implementing IEEE 754, which is basically all existing
4627ones. With IEEE 754 doubles, you get microsecond accuracy until at least
46282200.
3816 4629
3817=back 4630=back
3818 4631
3819If you know of other additional requirements drop me a note. 4632If you know of other additional requirements drop me a note.
3820 4633
3888involves iterating over all running async watchers or all signal numbers. 4701involves iterating over all running async watchers or all signal numbers.
3889 4702
3890=back 4703=back
3891 4704
3892 4705
4706=head1 PORTING FROM LIBEV 3.X TO 4.X
4707
4708The major version 4 introduced some minor incompatible changes to the API.
4709
4710At the moment, the C<ev.h> header file tries to implement superficial
4711compatibility, so most programs should still compile. Those might be
4712removed in later versions of libev, so better update early than late.
4713
4714=over 4
4715
4716=item C<ev_loop_count> renamed to C<ev_iteration>
4717
4718=item C<ev_loop_depth> renamed to C<ev_depth>
4719
4720=item C<ev_loop_verify> renamed to C<ev_verify>
4721
4722Most functions working on C<struct ev_loop> objects don't have an
4723C<ev_loop_> prefix, so it was removed. Note that C<ev_loop_fork> is
4724still called C<ev_loop_fork> because it would otherwise clash with the
4725C<ev_fork> typedef.
4726
4727=item C<EV_TIMEOUT> renamed to C<EV_TIMER> in C<revents>
4728
4729This is a simple rename - all other watcher types use their name
4730as revents flag, and now C<ev_timer> does, too.
4731
4732Both C<EV_TIMER> and C<EV_TIMEOUT> symbols were present in 3.x versions
4733and continue to be present for the foreseeable future, so this is mostly a
4734documentation change.
4735
4736=item C<EV_MINIMAL> mechanism replaced by C<EV_FEATURES>
4737
4738The preprocessor symbol C<EV_MINIMAL> has been replaced by a different
4739mechanism, C<EV_FEATURES>. Programs using C<EV_MINIMAL> usually compile
4740and work, but the library code will of course be larger.
4741
4742=back
4743
4744
4745=head1 GLOSSARY
4746
4747=over 4
4748
4749=item active
4750
4751A watcher is active as long as it has been started (has been attached to
4752an event loop) but not yet stopped (disassociated from the event loop).
4753
4754=item application
4755
4756In this document, an application is whatever is using libev.
4757
4758=item callback
4759
4760The address of a function that is called when some event has been
4761detected. Callbacks are being passed the event loop, the watcher that
4762received the event, and the actual event bitset.
4763
4764=item callback invocation
4765
4766The act of calling the callback associated with a watcher.
4767
4768=item event
4769
4770A change of state of some external event, such as data now being available
4771for reading on a file descriptor, time having passed or simply not having
4772any other events happening anymore.
4773
4774In libev, events are represented as single bits (such as C<EV_READ> or
4775C<EV_TIMER>).
4776
4777=item event library
4778
4779A software package implementing an event model and loop.
4780
4781=item event loop
4782
4783An entity that handles and processes external events and converts them
4784into callback invocations.
4785
4786=item event model
4787
4788The model used to describe how an event loop handles and processes
4789watchers and events.
4790
4791=item pending
4792
4793A watcher is pending as soon as the corresponding event has been detected,
4794and stops being pending as soon as the watcher will be invoked or its
4795pending status is explicitly cleared by the application.
4796
4797A watcher can be pending, but not active. Stopping a watcher also clears
4798its pending status.
4799
4800=item real time
4801
4802The physical time that is observed. It is apparently strictly monotonic :)
4803
4804=item wall-clock time
4805
4806The time and date as shown on clocks. Unlike real time, it can actually
4807be wrong and jump forwards and backwards, e.g. when the you adjust your
4808clock.
4809
4810=item watcher
4811
4812A data structure that describes interest in certain events. Watchers need
4813to be started (attached to an event loop) before they can receive events.
4814
4815=item watcher invocation
4816
4817The act of calling the callback associated with a watcher.
4818
4819=back
4820
3893=head1 AUTHOR 4821=head1 AUTHOR
3894 4822
3895Marc Lehmann <libev@schmorp.de>, with repeated corrections by Mikael Magnusson. 4823Marc Lehmann <libev@schmorp.de>, with repeated corrections by Mikael Magnusson.
3896 4824

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