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Revision 1.214 by root, Wed Nov 5 03:52:15 2008 UTC vs.
Revision 1.234 by root, Thu Apr 16 07:49:23 2009 UTC

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);
418starting a watcher (without re-setting it) also usually doesn't cause 420starting a watcher (without re-setting it) also usually doesn't cause
419extra overhead. A fork can both result in spurious notifications as well 421extra overhead. A fork can both result in spurious notifications as well
420as in libev having to destroy and recreate the epoll object, which can 422as in libev having to destroy and recreate the epoll object, which can
421take considerable time and thus should be avoided. 423take considerable time and thus should be avoided.
422 424
423All this means that, in practise, C<EVBACKEND_SELECT> can be as fast or 425All 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 426faster than epoll for maybe up to a hundred file descriptors, depending on
425the usage. So sad. 427the usage. So sad.
426 428
427While nominally embeddable in other event loops, this feature is broken in 429While nominally embeddable in other event loops, this feature is broken in
428all kernel versions tested so far. 430all kernel versions tested so far.
429 431
458 460
459While nominally embeddable in other event loops, this doesn't work 461While nominally embeddable in other event loops, this doesn't work
460everywhere, so you might need to test for this. And since it is broken 462everywhere, 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 463almost 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 464(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, 465(e.g. C<EVBACKEND_SELECT> or C<EVBACKEND_POLL> (but C<poll> is of course
464using it only for sockets. 466also broken on OS X)) and, did I mention it, using it only for sockets.
465 467
466This backend maps C<EV_READ> into an C<EVFILT_READ> kevent with 468This 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 469C<NOTE_EOF>, and C<EV_WRITE> into an C<EVFILT_WRITE> kevent with
468C<NOTE_EOF>. 470C<NOTE_EOF>.
469 471
631This function is rarely useful, but when some event callback runs for a 633This 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 634very long time without entering the event loop, updating libev's idea of
633the current time is a good idea. 635the current time is a good idea.
634 636
635See also "The special problem of time updates" in the C<ev_timer> section. 637See also "The special problem of time updates" in the C<ev_timer> section.
638
639=item ev_suspend (loop)
640
641=item ev_resume (loop)
642
643These two functions suspend and resume a loop, for use when the loop is
644not used for a while and timeouts should not be processed.
645
646A typical use case would be an interactive program such as a game: When
647the user presses C<^Z> to suspend the game and resumes it an hour later it
648would be best to handle timeouts as if no time had actually passed while
649the program was suspended. This can be achieved by calling C<ev_suspend>
650in your C<SIGTSTP> handler, sending yourself a C<SIGSTOP> and calling
651C<ev_resume> directly afterwards to resume timer processing.
652
653Effectively, all C<ev_timer> watchers will be delayed by the time spend
654between C<ev_suspend> and C<ev_resume>, and all C<ev_periodic> watchers
655will be rescheduled (that is, they will lose any events that would have
656occured while suspended).
657
658After calling C<ev_suspend> you B<must not> call I<any> function on the
659given loop other than C<ev_resume>, and you B<must not> call C<ev_resume>
660without a previous call to C<ev_suspend>.
661
662Calling C<ev_suspend>/C<ev_resume> has the side effect of updating the
663event loop time (see C<ev_now_update>).
636 664
637=item ev_loop (loop, int flags) 665=item ev_loop (loop, int flags)
638 666
639Finally, this is it, the event handler. This function usually is called 667Finally, this is it, the event handler. This function usually is called
640after you initialised all your watchers and you want to start handling 668after you initialised all your watchers and you want to start handling
724 752
725If you have a watcher you never unregister that should not keep C<ev_loop> 753If you have a watcher you never unregister that should not keep C<ev_loop>
726from returning, call ev_unref() after starting, and ev_ref() before 754from returning, call ev_unref() after starting, and ev_ref() before
727stopping it. 755stopping it.
728 756
729As an example, libev itself uses this for its internal signal pipe: It is 757As 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 758is 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 759exiting 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 760excellent way to do this for generic recurring timers or from within
733libraries. Just remember to I<unref after start> and I<ref before stop> 761third-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, 762before stop> (but only if the watcher wasn't active before, or was active
735respectively). 763before, respectively. Note also that libev might stop watchers itself
764(e.g. non-repeating timers) in which case you have to C<ev_ref>
765in the callback).
736 766
737Example: Create a signal watcher, but keep it from keeping C<ev_loop> 767Example: Create a signal watcher, but keep it from keeping C<ev_loop>
738running when nothing else is active. 768running when nothing else is active.
739 769
740 ev_signal exitsig; 770 ev_signal exitsig;
924 954
925=item C<EV_ASYNC> 955=item C<EV_ASYNC>
926 956
927The given async watcher has been asynchronously notified (see C<ev_async>). 957The given async watcher has been asynchronously notified (see C<ev_async>).
928 958
959=item C<EV_CUSTOM>
960
961Not ever sent (or otherwise used) by libev itself, but can be freely used
962by libev users to signal watchers (e.g. via C<ev_feed_event>).
963
929=item C<EV_ERROR> 964=item C<EV_ERROR>
930 965
931An unspecified error has occurred, the watcher has been stopped. This might 966An unspecified error has occurred, the watcher has been stopped. This might
932happen because the watcher could not be properly started because libev 967happen 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 968ran out of memory, a file descriptor was found to be closed or any other
1048integer between C<EV_MAXPRI> (default: C<2>) and C<EV_MINPRI> 1083integer between C<EV_MAXPRI> (default: C<2>) and C<EV_MINPRI>
1049(default: C<-2>). Pending watchers with higher priority will be invoked 1084(default: C<-2>). Pending watchers with higher priority will be invoked
1050before watchers with lower priority, but priority will not keep watchers 1085before watchers with lower priority, but priority will not keep watchers
1051from being executed (except for C<ev_idle> watchers). 1086from being executed (except for C<ev_idle> watchers).
1052 1087
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 1088If you need to suppress invocation when higher priority events are pending
1059you need to look at C<ev_idle> watchers, which provide this functionality. 1089you need to look at C<ev_idle> watchers, which provide this functionality.
1060 1090
1061You I<must not> change the priority of a watcher as long as it is active or 1091You I<must not> change the priority of a watcher as long as it is active or
1062pending. 1092pending.
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 1093
1067Setting a priority outside the range of C<EV_MINPRI> to C<EV_MAXPRI> is 1094Setting 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 1095fine, as long as you do not mind that the priority value you query might
1069or might not have been clamped to the valid range. 1096or might not have been clamped to the valid range.
1097
1098The default priority used by watchers when no priority has been set is
1099always C<0>, which is supposed to not be too high and not be too low :).
1100
1101See L<WATCHER PRIORITIES>, below, for a more thorough treatment of
1102priorities.
1070 1103
1071=item ev_invoke (loop, ev_TYPE *watcher, int revents) 1104=item ev_invoke (loop, ev_TYPE *watcher, int revents)
1072 1105
1073Invoke the C<watcher> with the given C<loop> and C<revents>. Neither 1106Invoke 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 1107C<loop> nor C<revents> need to be valid as long as the watcher callback
1149 t2_cb (EV_P_ ev_timer *w, int revents) 1182 t2_cb (EV_P_ ev_timer *w, int revents)
1150 { 1183 {
1151 struct my_biggy big = (struct my_biggy * 1184 struct my_biggy big = (struct my_biggy *
1152 (((char *)w) - offsetof (struct my_biggy, t2)); 1185 (((char *)w) - offsetof (struct my_biggy, t2));
1153 } 1186 }
1187
1188=head2 WATCHER PRIORITY MODELS
1189
1190Many event loops support I<watcher priorities>, which are usually small
1191integers that influence the ordering of event callback invocation
1192between watchers in some way, all else being equal.
1193
1194In libev, Watcher priorities can be set using C<ev_set_priority>. See its
1195description for the more technical details such as the actual priority
1196range.
1197
1198There are two common ways how these these priorities are being interpreted
1199by event loops:
1200
1201In the more common lock-out model, higher priorities "lock out" invocation
1202of lower priority watchers, which means as long as higher priority
1203watchers receive events, lower priority watchers are not being invoked.
1204
1205The less common only-for-ordering model uses priorities solely to order
1206callback invocation within a single event loop iteration: Higher priority
1207watchers are invoked before lower priority ones, but they all get invoked
1208before polling for new events.
1209
1210Libev uses the second (only-for-ordering) model for all its watchers
1211except for idle watchers (which use the lock-out model).
1212
1213The rationale behind this is that implementing the lock-out model for
1214watchers is not well supported by most kernel interfaces, and most event
1215libraries will just poll for the same events again and again as long as
1216their callbacks have not been executed, which is very inefficient in the
1217common case of one high-priority watcher locking out a mass of lower
1218priority ones.
1219
1220Static (ordering) priorities are most useful when you have two or more
1221watchers handling the same resource: a typical usage example is having an
1222C<ev_io> watcher to receive data, and an associated C<ev_timer> to handle
1223timeouts. Under load, data might be received while the program handles
1224other jobs, but since timers normally get invoked first, the timeout
1225handler will be executed before checking for data. In that case, giving
1226the timer a lower priority than the I/O watcher ensures that I/O will be
1227handled first even under adverse conditions (which is usually, but not
1228always, what you want).
1229
1230Since idle watchers use the "lock-out" model, meaning that idle watchers
1231will only be executed when no same or higher priority watchers have
1232received events, they can be used to implement the "lock-out" model when
1233required.
1234
1235For example, to emulate how many other event libraries handle priorities,
1236you can associate an C<ev_idle> watcher to each such watcher, and in
1237the normal watcher callback, you just start the idle watcher. The real
1238processing is done in the idle watcher callback. This causes libev to
1239continously poll and process kernel event data for the watcher, but when
1240the lock-out case is known to be rare (which in turn is rare :), this is
1241workable.
1242
1243Usually, however, the lock-out model implemented that way will perform
1244miserably under the type of load it was designed to handle. In that case,
1245it might be preferable to stop the real watcher before starting the
1246idle watcher, so the kernel will not have to process the event in case
1247the actual processing will be delayed for considerable time.
1248
1249Here is an example of an I/O watcher that should run at a strictly lower
1250priority than the default, and which should only process data when no
1251other events are pending:
1252
1253 ev_idle idle; // actual processing watcher
1254 ev_io io; // actual event watcher
1255
1256 static void
1257 io_cb (EV_P_ ev_io *w, int revents)
1258 {
1259 // stop the I/O watcher, we received the event, but
1260 // are not yet ready to handle it.
1261 ev_io_stop (EV_A_ w);
1262
1263 // start the idle watcher to ahndle the actual event.
1264 // it will not be executed as long as other watchers
1265 // with the default priority are receiving events.
1266 ev_idle_start (EV_A_ &idle);
1267 }
1268
1269 static void
1270 idle-cb (EV_P_ ev_idle *w, int revents)
1271 {
1272 // actual processing
1273 read (STDIN_FILENO, ...);
1274
1275 // have to start the I/O watcher again, as
1276 // we have handled the event
1277 ev_io_start (EV_P_ &io);
1278 }
1279
1280 // initialisation
1281 ev_idle_init (&idle, idle_cb);
1282 ev_io_init (&io, io_cb, STDIN_FILENO, EV_READ);
1283 ev_io_start (EV_DEFAULT_ &io);
1284
1285In the "real" world, it might also be beneficial to start a timer, so that
1286low-priority connections can not be locked out forever under load. This
1287enables your program to keep a lower latency for important connections
1288during short periods of high load, while not completely locking out less
1289important ones.
1154 1290
1155 1291
1156=head1 WATCHER TYPES 1292=head1 WATCHER TYPES
1157 1293
1158This section describes each watcher in detail, but will not repeat 1294This section describes each watcher in detail, but will not repeat
1315year, it will still time out after (roughly) one hour. "Roughly" because 1451year, it will still time out after (roughly) one hour. "Roughly" because
1316detecting time jumps is hard, and some inaccuracies are unavoidable (the 1452detecting time jumps is hard, and some inaccuracies are unavoidable (the
1317monotonic clock option helps a lot here). 1453monotonic clock option helps a lot here).
1318 1454
1319The callback is guaranteed to be invoked only I<after> its timeout has 1455The callback is guaranteed to be invoked only I<after> its timeout has
1320passed, but if multiple timers become ready during the same loop iteration 1456passed. If multiple timers become ready during the same loop iteration
1321then order of execution is undefined. 1457then the ones with earlier time-out values are invoked before ones with
1458later time-out values (but this is no longer true when a callback calls
1459C<ev_loop> recursively).
1322 1460
1323=head3 Be smart about timeouts 1461=head3 Be smart about timeouts
1324 1462
1325Many real-world problems involve some kind of timeout, usually for error 1463Many real-world problems involve some kind of timeout, usually for error
1326recovery. A typical example is an HTTP request - if the other side hangs, 1464recovery. A typical example is an HTTP request - if the other side hangs,
1419 else 1557 else
1420 { 1558 {
1421 // callback was invoked, but there was some activity, re-arm 1559 // callback was invoked, but there was some activity, re-arm
1422 // the watcher to fire in last_activity + 60, which is 1560 // the watcher to fire in last_activity + 60, which is
1423 // guaranteed to be in the future, so "again" is positive: 1561 // guaranteed to be in the future, so "again" is positive:
1424 w->again = timeout - now; 1562 w->repeat = timeout - now;
1425 ev_timer_again (EV_A_ w); 1563 ev_timer_again (EV_A_ w);
1426 } 1564 }
1427 } 1565 }
1428 1566
1429To summarise the callback: first calculate the real timeout (defined 1567To summarise the callback: first calculate the real timeout (defined
1545If the timer is started but non-repeating, stop it (as if it timed out). 1683If the timer is started but non-repeating, stop it (as if it timed out).
1546 1684
1547If the timer is repeating, either start it if necessary (with the 1685If the timer is repeating, either start it if necessary (with the
1548C<repeat> value), or reset the running timer to the C<repeat> value. 1686C<repeat> value), or reset the running timer to the C<repeat> value.
1549 1687
1550This sounds a bit complicated, see "Be smart about timeouts", above, for a 1688This sounds a bit complicated, see L<Be smart about timeouts>, above, for a
1551usage example. 1689usage example.
1552 1690
1553=item ev_tstamp repeat [read-write] 1691=item ev_tstamp repeat [read-write]
1554 1692
1555The current C<repeat> value. Will be used each time the watcher times out 1693The current C<repeat> value. Will be used each time the watcher times out
1594=head2 C<ev_periodic> - to cron or not to cron? 1732=head2 C<ev_periodic> - to cron or not to cron?
1595 1733
1596Periodic watchers are also timers of a kind, but they are very versatile 1734Periodic watchers are also timers of a kind, but they are very versatile
1597(and unfortunately a bit complex). 1735(and unfortunately a bit complex).
1598 1736
1599Unlike C<ev_timer>'s, they are not based on real time (or relative time) 1737Unlike 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 1738relative 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 1739(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 () 1740difference 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 1741time, 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 1742wrist-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 1743
1744You can tell a periodic watcher to trigger after some specific point
1745in time: for example, if you tell a periodic watcher to trigger "in 10
1746seconds" (by specifying e.g. C<ev_now () + 10.>, that is, an absolute time
1747not a delay) and then reset your system clock to January of the previous
1748year, then it will take a year or more to trigger the event (unlike an
1749C<ev_timer>, which would still trigger roughly 10 seconds after starting
1750it, as it uses a relative timeout).
1751
1608C<ev_periodic>s can also be used to implement vastly more complex timers, 1752C<ev_periodic> watchers can also be used to implement vastly more complex
1609such as triggering an event on each "midnight, local time", or other 1753timers, such as triggering an event on each "midnight, local time", or
1610complicated rules. 1754other complicated rules. This cannot be done with C<ev_timer> watchers, as
1755those cannot react to time jumps.
1611 1756
1612As with timers, the callback is guaranteed to be invoked only when the 1757As with timers, the callback is guaranteed to be invoked only when the
1613time (C<at>) has passed, but if multiple periodic timers become ready 1758point in time where it is supposed to trigger has passed. If multiple
1614during the same loop iteration, then order of execution is undefined. 1759timers become ready during the same loop iteration then the ones with
1760earlier time-out values are invoked before ones with later time-out values
1761(but this is no longer true when a callback calls C<ev_loop> recursively).
1615 1762
1616=head3 Watcher-Specific Functions and Data Members 1763=head3 Watcher-Specific Functions and Data Members
1617 1764
1618=over 4 1765=over 4
1619 1766
1620=item ev_periodic_init (ev_periodic *, callback, ev_tstamp at, ev_tstamp interval, reschedule_cb) 1767=item ev_periodic_init (ev_periodic *, callback, ev_tstamp offset, ev_tstamp interval, reschedule_cb)
1621 1768
1622=item ev_periodic_set (ev_periodic *, ev_tstamp after, ev_tstamp repeat, reschedule_cb) 1769=item ev_periodic_set (ev_periodic *, ev_tstamp offset, ev_tstamp interval, reschedule_cb)
1623 1770
1624Lots of arguments, lets sort it out... There are basically three modes of 1771Lots of arguments, let's sort it out... There are basically three modes of
1625operation, and we will explain them from simplest to most complex: 1772operation, and we will explain them from simplest to most complex:
1626 1773
1627=over 4 1774=over 4
1628 1775
1629=item * absolute timer (at = time, interval = reschedule_cb = 0) 1776=item * absolute timer (offset = absolute time, interval = 0, reschedule_cb = 0)
1630 1777
1631In this configuration the watcher triggers an event after the wall clock 1778In 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 1779time 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 1780time 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. 1781will be stopped and invoked when the system clock reaches or surpasses
1782this point in time.
1635 1783
1636=item * repeating interval timer (at = offset, interval > 0, reschedule_cb = 0) 1784=item * repeating interval timer (offset = offset within interval, interval > 0, reschedule_cb = 0)
1637 1785
1638In this mode the watcher will always be scheduled to time out at the next 1786In 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) 1787C<offset + N * interval> time (for some integer N, which can also be
1640and then repeat, regardless of any time jumps. 1788negative) and then repeat, regardless of any time jumps. The C<offset>
1789argument is merely an offset into the C<interval> periods.
1641 1790
1642This can be used to create timers that do not drift with respect to the 1791This 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 1792system clock, for example, here is an C<ev_periodic> that triggers each
1644hour, on the hour: 1793hour, on the hour (with respect to UTC):
1645 1794
1646 ev_periodic_set (&periodic, 0., 3600., 0); 1795 ev_periodic_set (&periodic, 0., 3600., 0);
1647 1796
1648This doesn't mean there will always be 3600 seconds in between triggers, 1797This 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 1798but 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 1799full hour (UTC), or more correctly, when the system time is evenly divisible
1651by 3600. 1800by 3600.
1652 1801
1653Another way to think about it (for the mathematically inclined) is that 1802Another 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 1803C<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. 1804time where C<time = offset (mod interval)>, regardless of any time jumps.
1656 1805
1657For numerical stability it is preferable that the C<at> value is near 1806For 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 1807C<ev_now ()> (the current time), but there is no range requirement for
1659this value, and in fact is often specified as zero. 1808this value, and in fact is often specified as zero.
1660 1809
1661Note also that there is an upper limit to how often a timer can fire (CPU 1810Note 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 1811speed 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 1812will 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). 1813millisecond (if the OS supports it and the machine is fast enough).
1665 1814
1666=item * manual reschedule mode (at and interval ignored, reschedule_cb = callback) 1815=item * manual reschedule mode (offset ignored, interval ignored, reschedule_cb = callback)
1667 1816
1668In this mode the values for C<interval> and C<at> are both being 1817In this mode the values for C<interval> and C<offset> are both being
1669ignored. Instead, each time the periodic watcher gets scheduled, the 1818ignored. Instead, each time the periodic watcher gets scheduled, the
1670reschedule callback will be called with the watcher as first, and the 1819reschedule callback will be called with the watcher as first, and the
1671current time as second argument. 1820current time as second argument.
1672 1821
1673NOTE: I<This callback MUST NOT stop or destroy any periodic watcher, 1822NOTE: I<This callback MUST NOT stop or destroy any periodic watcher, ever,
1674ever, or make ANY event loop modifications whatsoever>. 1823or make ANY other event loop modifications whatsoever, unless explicitly
1824allowed by documentation here>.
1675 1825
1676If you need to stop it, return C<now + 1e30> (or so, fudge fudge) and stop 1826If 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 1827it afterwards (e.g. by starting an C<ev_prepare> watcher, which is the
1678only event loop modification you are allowed to do). 1828only event loop modification you are allowed to do).
1679 1829
1709a different time than the last time it was called (e.g. in a crond like 1859a different time than the last time it was called (e.g. in a crond like
1710program when the crontabs have changed). 1860program when the crontabs have changed).
1711 1861
1712=item ev_tstamp ev_periodic_at (ev_periodic *) 1862=item ev_tstamp ev_periodic_at (ev_periodic *)
1713 1863
1714When active, returns the absolute time that the watcher is supposed to 1864When active, returns the absolute time that the watcher is supposed
1715trigger next. 1865to trigger next. This is not the same as the C<offset> argument to
1866C<ev_periodic_set>, but indeed works even in interval and manual
1867rescheduling modes.
1716 1868
1717=item ev_tstamp offset [read-write] 1869=item ev_tstamp offset [read-write]
1718 1870
1719When repeating, this contains the offset value, otherwise this is the 1871When repeating, this contains the offset value, otherwise this is the
1720absolute point in time (the C<at> value passed to C<ev_periodic_set>). 1872absolute point in time (the C<offset> value passed to C<ev_periodic_set>,
1873although libev might modify this value for better numerical stability).
1721 1874
1722Can be modified any time, but changes only take effect when the periodic 1875Can be modified any time, but changes only take effect when the periodic
1723timer fires or C<ev_periodic_again> is being called. 1876timer fires or C<ev_periodic_again> is being called.
1724 1877
1725=item ev_tstamp interval [read-write] 1878=item ev_tstamp interval [read-write]
2010the process. The exception are C<ev_stat> watchers - those call C<stat 2163the process. The exception are C<ev_stat> watchers - those call C<stat
2011()>, which is a synchronous operation. 2164()>, which is a synchronous operation.
2012 2165
2013For local paths, this usually doesn't matter: unless the system is very 2166For 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, 2167busy 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 2168as the path data is usually in memory already (except when starting the
2016watcher). 2169watcher).
2017 2170
2018For networked file systems, calling C<stat ()> can block an indefinite 2171For networked file systems, calling C<stat ()> can block an indefinite
2019time due to network issues, and even under good conditions, a stat call 2172time due to network issues, and even under good conditions, a stat call
2020often takes multiple milliseconds. 2173often takes multiple milliseconds.
2177 2330
2178=head3 Watcher-Specific Functions and Data Members 2331=head3 Watcher-Specific Functions and Data Members
2179 2332
2180=over 4 2333=over 4
2181 2334
2182=item ev_idle_init (ev_signal *, callback) 2335=item ev_idle_init (ev_idle *, callback)
2183 2336
2184Initialises and configures the idle watcher - it has no parameters of any 2337Initialises 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, 2338kind. There is a C<ev_idle_set> macro, but using it is utterly pointless,
2186believe me. 2339believe me.
2187 2340
2426some fds have to be watched and handled very quickly (with low latency), 2579some fds have to be watched and handled very quickly (with low latency),
2427and even priorities and idle watchers might have too much overhead. In 2580and 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 2581this 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. 2582the rest in a second one, and embed the second one in the first.
2430 2583
2431As long as the watcher is active, the callback will be invoked every time 2584As 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 2585time 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 2586must 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 2587sweep and invoke their callbacks (the callback doesn't need to invoke the
2435loop strictly lower priority for example). You can also set the callback 2588C<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 2589to give the embedded loop strictly lower priority for example).
2437embedded loop sweep.
2438 2590
2439As long as the watcher is started it will automatically handle events. The 2591You 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 2592will 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 2593
2444Also, there have not currently been made special provisions for forking: 2594Fork 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, 2595is 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 2596embedding loop forks. In other cases, the user is responsible for calling
2447yourself - but you can use a fork watcher to handle this automatically, 2597C<ev_loop_fork> on the embedded loop.
2448and future versions of libev might do just that.
2449 2598
2450Unfortunately, not all backends are embeddable: only the ones returned by 2599Unfortunately, not all backends are embeddable: only the ones returned by
2451C<ev_embeddable_backends> are, which, unfortunately, does not include any 2600C<ev_embeddable_backends> are, which, unfortunately, does not include any
2452portable one. 2601portable one.
2453 2602
2684an C<EV_ASYNC> event on the watcher into the event loop. Unlike 2833an 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 2834C<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 2835similar contexts (see the discussion of C<EV_ATOMIC_T> in the embedding
2687section below on what exactly this means). 2836section below on what exactly this means).
2688 2837
2838Note that, as with other watchers in libev, multiple events might get
2839compressed into a single callback invocation (another way to look at this
2840is that C<ev_async> watchers are level-triggered, set on C<ev_async_send>,
2841reset when the event loop detects that).
2842
2689This call incurs the overhead of a system call only once per loop iteration, 2843This 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 2844iteration, so while the overhead might be noticeable, it doesn't apply to
2691calls to C<ev_async_send>. 2845repeated calls to C<ev_async_send> for the same event loop.
2692 2846
2693=item bool = ev_async_pending (ev_async *) 2847=item bool = ev_async_pending (ev_async *)
2694 2848
2695Returns a non-zero value when C<ev_async_send> has been called on the 2849Returns 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 2850watcher 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 2853C<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, 2854the 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 2855it 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. 2856quickly check whether invoking the loop might be a good idea.
2703 2857
2704Not that this does I<not> check whether the watcher itself is pending, only 2858Not that this does I<not> check whether the watcher itself is pending,
2705whether it has been requested to make this watcher pending. 2859only whether it has been requested to make this watcher pending: there
2860is a time window between the event loop checking and resetting the async
2861notification, and the callback being invoked.
2706 2862
2707=back 2863=back
2708 2864
2709 2865
2710=head1 OTHER FUNCTIONS 2866=head1 OTHER FUNCTIONS
2889 3045
2890 myclass obj; 3046 myclass obj;
2891 ev::io iow; 3047 ev::io iow;
2892 iow.set <myclass, &myclass::io_cb> (&obj); 3048 iow.set <myclass, &myclass::io_cb> (&obj);
2893 3049
3050=item w->set (object *)
3051
3052This is an B<experimental> feature that might go away in a future version.
3053
3054This is a variation of a method callback - leaving out the method to call
3055will default the method to C<operator ()>, which makes it possible to use
3056functor objects without having to manually specify the C<operator ()> all
3057the time. Incidentally, you can then also leave out the template argument
3058list.
3059
3060The C<operator ()> method prototype must be C<void operator ()(watcher &w,
3061int revents)>.
3062
3063See the method-C<set> above for more details.
3064
3065Example: use a functor object as callback.
3066
3067 struct myfunctor
3068 {
3069 void operator() (ev::io &w, int revents)
3070 {
3071 ...
3072 }
3073 }
3074
3075 myfunctor f;
3076
3077 ev::io w;
3078 w.set (&f);
3079
2894=item w->set<function> (void *data = 0) 3080=item w->set<function> (void *data = 0)
2895 3081
2896Also sets a callback, but uses a static method or plain function as 3082Also 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 3083callback. The optional C<data> argument will be stored in the watcher's
2898C<data> member and is free for you to use. 3084C<data> member and is free for you to use.
2984L<http://software.schmorp.de/pkg/EV>. 3170L<http://software.schmorp.de/pkg/EV>.
2985 3171
2986=item Python 3172=item Python
2987 3173
2988Python bindings can be found at L<http://code.google.com/p/pyev/>. It 3174Python 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 3175seems 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 3176
2995=item Ruby 3177=item Ruby
2996 3178
2997Tony Arcieri has written a ruby extension that offers access to a subset 3179Tony Arcieri has written a ruby extension that offers access to a subset
2998of the libev API and adds file handle abstractions, asynchronous DNS and 3180of 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 3181more on top of it. It can be found via gem servers. Its homepage is at
3000L<http://rev.rubyforge.org/>. 3182L<http://rev.rubyforge.org/>.
3183
3184Roger Pack reports that using the link order C<-lws2_32 -lmsvcrt-ruby-190>
3185makes rev work even on mingw.
3186
3187=item Haskell
3188
3189A haskell binding to libev is available at
3190L<http://hackage.haskell.org/cgi-bin/hackage-scripts/package/hlibev>.
3001 3191
3002=item D 3192=item D
3003 3193
3004Leandro Lucarella has written a D language binding (F<ev.d>) for libev, to 3194Leandro Lucarella has written a D language binding (F<ev.d>) for libev, to
3005be found at L<http://proj.llucax.com.ar/wiki/evd>. 3195be found at L<http://proj.llucax.com.ar/wiki/evd>.
3182keeps libev from including F<config.h>, and it also defines dummy 3372keeps libev from including F<config.h>, and it also defines dummy
3183implementations for some libevent functions (such as logging, which is not 3373implementations for some libevent functions (such as logging, which is not
3184supported). It will also not define any of the structs usually found in 3374supported). 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. 3375F<event.h> that are not directly supported by the libev core alone.
3186 3376
3377In stanbdalone mode, libev will still try to automatically deduce the
3378configuration, but has to be more conservative.
3379
3187=item EV_USE_MONOTONIC 3380=item EV_USE_MONOTONIC
3188 3381
3189If defined to be C<1>, libev will try to detect the availability of the 3382If 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 3383monotonic clock option at both compile time and runtime. Otherwise no
3191of the monotonic clock option will be attempted. If you enable this, you 3384use of the monotonic clock option will be attempted. If you enable this,
3192usually have to link against librt or something similar. Enabling it when 3385you usually have to link against librt or something similar. Enabling it
3193the functionality isn't available is safe, though, although you have 3386when the functionality isn't available is safe, though, although you have
3194to make sure you link against any libraries where the C<clock_gettime> 3387to make sure you link against any libraries where the C<clock_gettime>
3195function is hiding in (often F<-lrt>). 3388function is hiding in (often F<-lrt>). See also C<EV_USE_CLOCK_SYSCALL>.
3196 3389
3197=item EV_USE_REALTIME 3390=item EV_USE_REALTIME
3198 3391
3199If defined to be C<1>, libev will try to detect the availability of the 3392If 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 3393real-time clock option at compile time (and assume its availability
3201runtime if successful). Otherwise no use of the real-time clock option will 3394at runtime if successful). Otherwise no use of the real-time clock
3202be attempted. This effectively replaces C<gettimeofday> by C<clock_get 3395option will be attempted. This effectively replaces C<gettimeofday>
3203(CLOCK_REALTIME, ...)> and will not normally affect correctness. See the 3396by C<clock_get (CLOCK_REALTIME, ...)> and will not normally affect
3204note about libraries in the description of C<EV_USE_MONOTONIC>, though. 3397correctness. See the note about libraries in the description of
3398C<EV_USE_MONOTONIC>, though. Defaults to the opposite value of
3399C<EV_USE_CLOCK_SYSCALL>.
3400
3401=item EV_USE_CLOCK_SYSCALL
3402
3403If defined to be C<1>, libev will try to use a direct syscall instead
3404of calling the system-provided C<clock_gettime> function. This option
3405exists because on GNU/Linux, C<clock_gettime> is in C<librt>, but C<librt>
3406unconditionally pulls in C<libpthread>, slowing down single-threaded
3407programs needlessly. Using a direct syscall is slightly slower (in
3408theory), because no optimised vdso implementation can be used, but avoids
3409the pthread dependency. Defaults to C<1> on GNU/Linux with glibc 2.x or
3410higher, as it simplifies linking (no need for C<-lrt>).
3205 3411
3206=item EV_USE_NANOSLEEP 3412=item EV_USE_NANOSLEEP
3207 3413
3208If defined to be C<1>, libev will assume that C<nanosleep ()> is available 3414If 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 ()>. 3415and will use it for delays. Otherwise it will use C<select ()>.
3225 3431
3226=item EV_SELECT_USE_FD_SET 3432=item EV_SELECT_USE_FD_SET
3227 3433
3228If defined to C<1>, then the select backend will use the system C<fd_set> 3434If 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 3435structure. 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 3436C<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 3437on exotic systems. This usually limits the range of file descriptors to
3232low limit such as 1024 or might have other limitations (winsocket only 3438some low limit such as 1024 or might have other limitations (winsocket
3233allows 64 sockets). The C<FD_SETSIZE> macro, set before compilation, might 3439only allows 64 sockets). The C<FD_SETSIZE> macro, set before compilation,
3234influence the size of the C<fd_set> used. 3440configures the maximum size of the C<fd_set>.
3235 3441
3236=item EV_SELECT_IS_WINSOCKET 3442=item EV_SELECT_IS_WINSOCKET
3237 3443
3238When defined to C<1>, the select backend will assume that 3444When defined to C<1>, the select backend will assume that
3239select/socket/connect etc. don't understand file descriptors but 3445select/socket/connect etc. don't understand file descriptors but
3888involves iterating over all running async watchers or all signal numbers. 4094involves iterating over all running async watchers or all signal numbers.
3889 4095
3890=back 4096=back
3891 4097
3892 4098
4099=head1 GLOSSARY
4100
4101=over 4
4102
4103=item active
4104
4105A watcher is active as long as it has been started (has been attached to
4106an event loop) but not yet stopped (disassociated from the event loop).
4107
4108=item application
4109
4110In this document, an application is whatever is using libev.
4111
4112=item callback
4113
4114The address of a function that is called when some event has been
4115detected. Callbacks are being passed the event loop, the watcher that
4116received the event, and the actual event bitset.
4117
4118=item callback invocation
4119
4120The act of calling the callback associated with a watcher.
4121
4122=item event
4123
4124A change of state of some external event, such as data now being available
4125for reading on a file descriptor, time having passed or simply not having
4126any other events happening anymore.
4127
4128In libev, events are represented as single bits (such as C<EV_READ> or
4129C<EV_TIMEOUT>).
4130
4131=item event library
4132
4133A software package implementing an event model and loop.
4134
4135=item event loop
4136
4137An entity that handles and processes external events and converts them
4138into callback invocations.
4139
4140=item event model
4141
4142The model used to describe how an event loop handles and processes
4143watchers and events.
4144
4145=item pending
4146
4147A watcher is pending as soon as the corresponding event has been detected,
4148and stops being pending as soon as the watcher will be invoked or its
4149pending status is explicitly cleared by the application.
4150
4151A watcher can be pending, but not active. Stopping a watcher also clears
4152its pending status.
4153
4154=item real time
4155
4156The physical time that is observed. It is apparently strictly monotonic :)
4157
4158=item wall-clock time
4159
4160The time and date as shown on clocks. Unlike real time, it can actually
4161be wrong and jump forwards and backwards, e.g. when the you adjust your
4162clock.
4163
4164=item watcher
4165
4166A data structure that describes interest in certain events. Watchers need
4167to be started (attached to an event loop) before they can receive events.
4168
4169=item watcher invocation
4170
4171The act of calling the callback associated with a watcher.
4172
4173=back
4174
3893=head1 AUTHOR 4175=head1 AUTHOR
3894 4176
3895Marc Lehmann <libev@schmorp.de>, with repeated corrections by Mikael Magnusson. 4177Marc Lehmann <libev@schmorp.de>, with repeated corrections by Mikael Magnusson.
3896 4178

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