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Revision: 1.321
Committed: Sun Mar 30 05:07:06 2025 UTC (17 months, 2 weeks ago) by root
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1 root 1.1 =head1 NAME
2    
3 root 1.265 IO::AIO - Asynchronous/Advanced Input/Output
4 root 1.1
5     =head1 SYNOPSIS
6    
7     use IO::AIO;
8    
9 root 1.181 aio_open "/etc/passwd", IO::AIO::O_RDONLY, 0, sub {
10 root 1.94 my $fh = shift
11     or die "/etc/passwd: $!";
12 root 1.6 ...
13     };
14    
15     aio_unlink "/tmp/file", sub { };
16    
17     aio_read $fh, 30000, 1024, $buffer, 0, sub {
18 root 1.8 $_[0] > 0 or die "read error: $!";
19 root 1.6 };
20    
21 root 1.56 # version 2+ has request and group objects
22     use IO::AIO 2;
23 root 1.52
24 root 1.68 aioreq_pri 4; # give next request a very high priority
25 root 1.52 my $req = aio_unlink "/tmp/file", sub { };
26     $req->cancel; # cancel request if still in queue
27    
28 root 1.56 my $grp = aio_group sub { print "all stats done\n" };
29     add $grp aio_stat "..." for ...;
30    
31 root 1.1 =head1 DESCRIPTION
32    
33     This module implements asynchronous I/O using whatever means your
34 root 1.156 operating system supports. It is implemented as an interface to C<libeio>
35     (L<http://software.schmorp.de/pkg/libeio.html>).
36 root 1.1
37 root 1.85 Asynchronous means that operations that can normally block your program
38     (e.g. reading from disk) will be done asynchronously: the operation
39     will still block, but you can do something else in the meantime. This
40     is extremely useful for programs that need to stay interactive even
41     when doing heavy I/O (GUI programs, high performance network servers
42     etc.), but can also be used to easily do operations in parallel that are
43     normally done sequentially, e.g. stat'ing many files, which is much faster
44     on a RAID volume or over NFS when you do a number of stat operations
45     concurrently.
46    
47 root 1.108 While most of this works on all types of file descriptors (for
48     example sockets), using these functions on file descriptors that
49 root 1.156 support nonblocking operation (again, sockets, pipes etc.) is
50     very inefficient. Use an event loop for that (such as the L<EV>
51 root 1.108 module): IO::AIO will naturally fit into such an event loop itself.
52 root 1.85
53 root 1.72 In this version, a number of threads are started that execute your
54     requests and signal their completion. You don't need thread support
55     in perl, and the threads created by this module will not be visible
56     to perl. In the future, this module might make use of the native aio
57     functions available on many operating systems. However, they are often
58 root 1.85 not well-supported or restricted (GNU/Linux doesn't allow them on normal
59 root 1.72 files currently, for example), and they would only support aio_read and
60     aio_write, so the remaining functionality would have to be implemented
61     using threads anyway.
62    
63 root 1.265 In addition to asynchronous I/O, this module also exports some rather
64     arcane interfaces, such as C<madvise> or linux's C<splice> system call,
65     which is why the C<A> in C<AIO> can also mean I<advanced>.
66    
67 root 1.108 Although the module will work in the presence of other (Perl-) threads,
68     it is currently not reentrant in any way, so use appropriate locking
69     yourself, always call C<poll_cb> from within the same thread, or never
70     call C<poll_cb> (or other C<aio_> functions) recursively.
71 root 1.72
72 root 1.86 =head2 EXAMPLE
73    
74 root 1.156 This is a simple example that uses the EV module and loads
75 root 1.86 F</etc/passwd> asynchronously:
76    
77 root 1.156 use EV;
78 root 1.86 use IO::AIO;
79    
80 root 1.156 # register the IO::AIO callback with EV
81     my $aio_w = EV::io IO::AIO::poll_fileno, EV::READ, \&IO::AIO::poll_cb;
82 root 1.86
83     # queue the request to open /etc/passwd
84 root 1.181 aio_open "/etc/passwd", IO::AIO::O_RDONLY, 0, sub {
85 root 1.94 my $fh = shift
86 root 1.86 or die "error while opening: $!";
87    
88     # stat'ing filehandles is generally non-blocking
89     my $size = -s $fh;
90    
91     # queue a request to read the file
92     my $contents;
93     aio_read $fh, 0, $size, $contents, 0, sub {
94     $_[0] == $size
95     or die "short read: $!";
96    
97     close $fh;
98    
99     # file contents now in $contents
100     print $contents;
101    
102     # exit event loop and program
103 root 1.257 EV::break;
104 root 1.86 };
105     };
106    
107     # possibly queue up other requests, or open GUI windows,
108     # check for sockets etc. etc.
109    
110     # process events as long as there are some:
111 root 1.257 EV::run;
112 root 1.86
113 root 1.72 =head1 REQUEST ANATOMY AND LIFETIME
114    
115     Every C<aio_*> function creates a request. which is a C data structure not
116     directly visible to Perl.
117    
118     If called in non-void context, every request function returns a Perl
119     object representing the request. In void context, nothing is returned,
120     which saves a bit of memory.
121    
122     The perl object is a fairly standard ref-to-hash object. The hash contents
123     are not used by IO::AIO so you are free to store anything you like in it.
124    
125     During their existance, aio requests travel through the following states,
126     in order:
127    
128     =over 4
129    
130     =item ready
131    
132     Immediately after a request is created it is put into the ready state,
133     waiting for a thread to execute it.
134    
135     =item execute
136    
137     A thread has accepted the request for processing and is currently
138     executing it (e.g. blocking in read).
139    
140     =item pending
141    
142     The request has been executed and is waiting for result processing.
143    
144     While request submission and execution is fully asynchronous, result
145     processing is not and relies on the perl interpreter calling C<poll_cb>
146     (or another function with the same effect).
147    
148     =item result
149    
150     The request results are processed synchronously by C<poll_cb>.
151    
152     The C<poll_cb> function will process all outstanding aio requests by
153     calling their callbacks, freeing memory associated with them and managing
154     any groups they are contained in.
155    
156     =item done
157    
158     Request has reached the end of its lifetime and holds no resources anymore
159     (except possibly for the Perl object, but its connection to the actual
160     aio request is severed and calling its methods will either do nothing or
161     result in a runtime error).
162 root 1.1
163 root 1.88 =back
164    
165 root 1.1 =cut
166    
167     package IO::AIO;
168    
169 root 1.117 use Carp ();
170    
171 root 1.161 use common::sense;
172 root 1.23
173 root 1.1 use base 'Exporter';
174    
175     BEGIN {
176 root 1.320 our $VERSION = 4.81;
177 root 1.1
178 root 1.220 our @AIO_REQ = qw(aio_sendfile aio_seek aio_read aio_write aio_open aio_close
179 root 1.148 aio_stat aio_lstat aio_unlink aio_rmdir aio_readdir aio_readdirx
180 root 1.259 aio_scandir aio_symlink aio_readlink aio_realpath aio_fcntl aio_ioctl
181     aio_sync aio_fsync aio_syncfs aio_fdatasync aio_sync_file_range
182     aio_pathsync aio_readahead aio_fiemap aio_allocate
183 root 1.270 aio_rename aio_rename2 aio_link aio_move aio_copy aio_group
184 root 1.120 aio_nop aio_mknod aio_load aio_rmtree aio_mkdir aio_chown
185 root 1.170 aio_chmod aio_utime aio_truncate
186 root 1.182 aio_msync aio_mtouch aio_mlock aio_mlockall
187 root 1.208 aio_statvfs
188 root 1.279 aio_slurp
189 root 1.208 aio_wd);
190 root 1.120
191 root 1.123 our @EXPORT = (@AIO_REQ, qw(aioreq_pri aioreq_nice));
192 root 1.67 our @EXPORT_OK = qw(poll_fileno poll_cb poll_wait flush
193 root 1.188 min_parallel max_parallel max_idle idle_timeout
194 root 1.86 nreqs nready npending nthreads
195 root 1.157 max_poll_time max_poll_reqs
196 root 1.182 sendfile fadvise madvise
197 root 1.315 mmap munmap mremap munlock munlockall
198    
199     accept4 tee splice pipe2 pipesize
200 root 1.316 fexecve mount umount memfd_create eventfd
201 root 1.315 timerfd_create timerfd_settime timerfd_gettime
202     pidfd_open pidfd_send_signal pidfd_getfd);
203 root 1.1
204 root 1.143 push @AIO_REQ, qw(aio_busy); # not exported
205    
206 root 1.54 @IO::AIO::GRP::ISA = 'IO::AIO::REQ';
207    
208 root 1.1 require XSLoader;
209 root 1.51 XSLoader::load ("IO::AIO", $VERSION);
210 root 1.1 }
211    
212 root 1.5 =head1 FUNCTIONS
213 root 1.1
214 root 1.175 =head2 QUICK OVERVIEW
215    
216 root 1.230 This section simply lists the prototypes most of the functions for
217     quick reference. See the following sections for function-by-function
218 root 1.175 documentation.
219    
220 root 1.208 aio_wd $pathname, $callback->($wd)
221 root 1.175 aio_open $pathname, $flags, $mode, $callback->($fh)
222     aio_close $fh, $callback->($status)
223 root 1.220 aio_seek $fh,$offset,$whence, $callback->($offs)
224 root 1.175 aio_read $fh,$offset,$length, $data,$dataoffset, $callback->($retval)
225     aio_write $fh,$offset,$length, $data,$dataoffset, $callback->($retval)
226     aio_sendfile $out_fh, $in_fh, $in_offset, $length, $callback->($retval)
227     aio_readahead $fh,$offset,$length, $callback->($retval)
228     aio_stat $fh_or_path, $callback->($status)
229     aio_lstat $fh, $callback->($status)
230     aio_statvfs $fh_or_path, $callback->($statvfs)
231     aio_utime $fh_or_path, $atime, $mtime, $callback->($status)
232     aio_chown $fh_or_path, $uid, $gid, $callback->($status)
233 root 1.220 aio_chmod $fh_or_path, $mode, $callback->($status)
234 root 1.175 aio_truncate $fh_or_path, $offset, $callback->($status)
235 root 1.229 aio_allocate $fh, $mode, $offset, $len, $callback->($status)
236 root 1.230 aio_fiemap $fh, $start, $length, $flags, $count, $cb->(\@extents)
237 root 1.175 aio_unlink $pathname, $callback->($status)
238 root 1.209 aio_mknod $pathname, $mode, $dev, $callback->($status)
239 root 1.175 aio_link $srcpath, $dstpath, $callback->($status)
240     aio_symlink $srcpath, $dstpath, $callback->($status)
241 root 1.209 aio_readlink $pathname, $callback->($link)
242 root 1.249 aio_realpath $pathname, $callback->($path)
243 root 1.175 aio_rename $srcpath, $dstpath, $callback->($status)
244 root 1.270 aio_rename2 $srcpath, $dstpath, $flags, $callback->($status)
245 root 1.175 aio_mkdir $pathname, $mode, $callback->($status)
246     aio_rmdir $pathname, $callback->($status)
247     aio_readdir $pathname, $callback->($entries)
248     aio_readdirx $pathname, $flags, $callback->($entries, $flags)
249     IO::AIO::READDIR_DENTS IO::AIO::READDIR_DIRS_FIRST
250     IO::AIO::READDIR_STAT_ORDER IO::AIO::READDIR_FOUND_UNKNOWN
251 root 1.215 aio_scandir $pathname, $maxreq, $callback->($dirs, $nondirs)
252 root 1.209 aio_load $pathname, $data, $callback->($status)
253 root 1.175 aio_copy $srcpath, $dstpath, $callback->($status)
254     aio_move $srcpath, $dstpath, $callback->($status)
255 root 1.209 aio_rmtree $pathname, $callback->($status)
256 root 1.259 aio_fcntl $fh, $cmd, $arg, $callback->($status)
257     aio_ioctl $fh, $request, $buf, $callback->($status)
258 root 1.175 aio_sync $callback->($status)
259 root 1.206 aio_syncfs $fh, $callback->($status)
260 root 1.175 aio_fsync $fh, $callback->($status)
261     aio_fdatasync $fh, $callback->($status)
262     aio_sync_file_range $fh, $offset, $nbytes, $flags, $callback->($status)
263 root 1.209 aio_pathsync $pathname, $callback->($status)
264 root 1.268 aio_msync $scalar, $offset = 0, $length = undef, flags = MS_SYNC, $callback->($status)
265 root 1.175 aio_mtouch $scalar, $offset = 0, $length = undef, flags = 0, $callback->($status)
266 root 1.182 aio_mlock $scalar, $offset = 0, $length = undef, $callback->($status)
267     aio_mlockall $flags, $callback->($status)
268 root 1.175 aio_group $callback->(...)
269     aio_nop $callback->()
270    
271     $prev_pri = aioreq_pri [$pri]
272     aioreq_nice $pri_adjust
273    
274     IO::AIO::poll_wait
275     IO::AIO::poll_cb
276     IO::AIO::poll
277     IO::AIO::flush
278     IO::AIO::max_poll_reqs $nreqs
279     IO::AIO::max_poll_time $seconds
280     IO::AIO::min_parallel $nthreads
281     IO::AIO::max_parallel $nthreads
282     IO::AIO::max_idle $nthreads
283 root 1.188 IO::AIO::idle_timeout $seconds
284 root 1.175 IO::AIO::max_outstanding $maxreqs
285     IO::AIO::nreqs
286     IO::AIO::nready
287     IO::AIO::npending
288 root 1.302 IO::AIO::reinit
289    
290 root 1.307 $nfd = IO::AIO::get_fdlimit
291     IO::AIO::min_fdlimit $nfd
292 root 1.175
293     IO::AIO::sendfile $ofh, $ifh, $offset, $count
294     IO::AIO::fadvise $fh, $offset, $len, $advice
295 root 1.315 IO::AIO::fexecve $fh, $argv, $envp
296 root 1.302
297 root 1.226 IO::AIO::mmap $scalar, $length, $prot, $flags[, $fh[, $offset]]
298     IO::AIO::munmap $scalar
299 root 1.285 IO::AIO::mremap $scalar, $new_length, $flags[, $new_address]
300 root 1.184 IO::AIO::madvise $scalar, $offset, $length, $advice
301     IO::AIO::mprotect $scalar, $offset, $length, $protect
302 root 1.182 IO::AIO::munlock $scalar, $offset = 0, $length = undef
303 root 1.175 IO::AIO::munlockall
304    
305 root 1.321 # stat extensions, should work with built-in stat and aio_stat
306 root 1.302 $counter = IO::AIO::st_gen
307     $seconds = IO::AIO::st_atime, IO::AIO::st_mtime, IO::AIO::st_ctime, IO::AIO::st_btime
308 root 1.321 [$seconds, $nanoseconds] = IO::AIO::st_atime2, IO::AIO::st_mtime2, IO::AIO::st_ctime2, IO::AIO::st_btime2
309 root 1.302 ($atime, $mtime, $ctime, $btime, ...) = IO::AIO::st_xtime
310 root 1.321 ($atime, $mtime, $ctime, $btime, ...) = IO::AIO::st_xtime2 # returns [sec, nsec] arrayrefs
311 root 1.302 $nanoseconds = IO::AIO::st_atimensec, IO::AIO::st_mtimensec, IO::AIO::st_ctimensec, IO::AIO::st_btimensec
312     $seconds = IO::AIO::st_btimesec
313     ($atime, $mtime, $ctime, $btime, ...) = IO::AIO::st_xtimensec
314    
315     # very much unportable syscalls
316 root 1.305 IO::AIO::accept4 $r_fh, $sockaddr, $sockaddr_len, $flags
317 root 1.302 IO::AIO::splice $r_fh, $r_off, $w_fh, $w_off, $length, $flags
318     IO::AIO::tee $r_fh, $w_fh, $length, $flags
319 root 1.315
320 root 1.302 $actual_size = IO::AIO::pipesize $r_fh[, $new_size]
321     ($rfh, $wfh) = IO::AIO::pipe2 [$flags]
322 root 1.315
323     $fh = IO::AIO::eventfd [$initval, [$flags]]
324 root 1.302 $fh = IO::AIO::memfd_create $pathname[, $flags]
325 root 1.315
326 root 1.302 $fh = IO::AIO::timerfd_create $clockid[, $flags]
327     ($cur_interval, $cur_value) = IO::AIO::timerfd_settime $fh, $flags, $new_interval, $nbw_value
328     ($cur_interval, $cur_value) = IO::AIO::timerfd_gettime $fh
329    
330 root 1.315 $fh = IO::AIO::pidfd_open $pid[, $flags]
331     $status = IO::AIO::pidfd_send_signal $pidfh, $signal[, $siginfo[, $flags]]
332     $fh = IO::AIO::pidfd_getfd $pidfh, $targetfd[, $flags]
333    
334 root 1.316 $retval = IO::AIO::mount $special, $path, $fstype, $flags = 0, $data = undef
335     $retval = IO::AIO::umount $path, $flags = 0
336    
337 root 1.219 =head2 API NOTES
338 root 1.1
339 root 1.5 All the C<aio_*> calls are more or less thin wrappers around the syscall
340     with the same name (sans C<aio_>). The arguments are similar or identical,
341 root 1.14 and they all accept an additional (and optional) C<$callback> argument
342 root 1.212 which must be a code reference. This code reference will be called after
343     the syscall has been executed in an asynchronous fashion. The results
344     of the request will be passed as arguments to the callback (and, if an
345     error occured, in C<$!>) - for most requests the syscall return code (e.g.
346     most syscalls return C<-1> on error, unlike perl, which usually delivers
347     "false").
348    
349     Some requests (such as C<aio_readdir>) pass the actual results and
350     communicate failures by passing C<undef>.
351 root 1.1
352 root 1.23 All functions expecting a filehandle keep a copy of the filehandle
353     internally until the request has finished.
354 root 1.1
355 root 1.87 All functions return request objects of type L<IO::AIO::REQ> that allow
356     further manipulation of those requests while they are in-flight.
357 root 1.52
358 root 1.209 The pathnames you pass to these routines I<should> be absolute. The
359     reason for this is that at the time the request is being executed, the
360 root 1.212 current working directory could have changed. Alternatively, you can
361     make sure that you never change the current working directory anywhere
362     in the program and then use relative paths. You can also take advantage
363     of IO::AIOs working directory abstraction, that lets you specify paths
364     relative to some previously-opened "working directory object" - see the
365     description of the C<IO::AIO::WD> class later in this document.
366 root 1.28
367 root 1.87 To encode pathnames as octets, either make sure you either: a) always pass
368     in filenames you got from outside (command line, readdir etc.) without
369 root 1.212 tinkering, b) are in your native filesystem encoding, c) use the Encode
370     module and encode your pathnames to the locale (or other) encoding in
371     effect in the user environment, d) use Glib::filename_from_unicode on
372     unicode filenames or e) use something else to ensure your scalar has the
373     correct contents.
374 root 1.87
375     This works, btw. independent of the internal UTF-8 bit, which IO::AIO
376 root 1.136 handles correctly whether it is set or not.
377 root 1.1
378 root 1.219 =head2 AIO REQUEST FUNCTIONS
379    
380 root 1.5 =over 4
381 root 1.1
382 root 1.80 =item $prev_pri = aioreq_pri [$pri]
383 root 1.68
384 root 1.80 Returns the priority value that would be used for the next request and, if
385     C<$pri> is given, sets the priority for the next aio request.
386 root 1.68
387 root 1.80 The default priority is C<0>, the minimum and maximum priorities are C<-4>
388     and C<4>, respectively. Requests with higher priority will be serviced
389     first.
390    
391     The priority will be reset to C<0> after each call to one of the C<aio_*>
392 root 1.68 functions.
393    
394 root 1.69 Example: open a file with low priority, then read something from it with
395     higher priority so the read request is serviced before other low priority
396     open requests (potentially spamming the cache):
397    
398     aioreq_pri -3;
399     aio_open ..., sub {
400     return unless $_[0];
401    
402     aioreq_pri -2;
403     aio_read $_[0], ..., sub {
404     ...
405     };
406     };
407    
408 root 1.106
409 root 1.69 =item aioreq_nice $pri_adjust
410    
411     Similar to C<aioreq_pri>, but subtracts the given value from the current
412 root 1.87 priority, so the effect is cumulative.
413 root 1.69
414 root 1.106
415 root 1.40 =item aio_open $pathname, $flags, $mode, $callback->($fh)
416 root 1.1
417 root 1.2 Asynchronously open or create a file and call the callback with a newly
418 root 1.233 created filehandle for the file (or C<undef> in case of an error).
419 root 1.1
420 root 1.20 The C<$flags> argument is a bitmask. See the C<Fcntl> module for a
421     list. They are the same as used by C<sysopen>.
422    
423     Likewise, C<$mode> specifies the mode of the newly created file, if it
424     didn't exist and C<O_CREAT> has been given, just like perl's C<sysopen>,
425     except that it is mandatory (i.e. use C<0> if you don't create new files,
426 root 1.101 and C<0666> or C<0777> if you do). Note that the C<$mode> will be modified
427     by the umask in effect then the request is being executed, so better never
428     change the umask.
429 root 1.1
430     Example:
431    
432 root 1.181 aio_open "/etc/passwd", IO::AIO::O_RDONLY, 0, sub {
433 root 1.2 if ($_[0]) {
434     print "open successful, fh is $_[0]\n";
435 root 1.1 ...
436     } else {
437     die "open failed: $!\n";
438     }
439     };
440    
441 root 1.194 In addition to all the common open modes/flags (C<O_RDONLY>, C<O_WRONLY>,
442     C<O_RDWR>, C<O_CREAT>, C<O_TRUNC>, C<O_EXCL> and C<O_APPEND>), the
443     following POSIX and non-POSIX constants are available (missing ones on
444     your system are, as usual, C<0>):
445    
446     C<O_ASYNC>, C<O_DIRECT>, C<O_NOATIME>, C<O_CLOEXEC>, C<O_NOCTTY>, C<O_NOFOLLOW>,
447     C<O_NONBLOCK>, C<O_EXEC>, C<O_SEARCH>, C<O_DIRECTORY>, C<O_DSYNC>,
448 root 1.286 C<O_RSYNC>, C<O_SYNC>, C<O_PATH>, C<O_TMPFILE>, C<O_TTY_INIT> and C<O_ACCMODE>.
449 root 1.194
450 root 1.106
451 root 1.40 =item aio_close $fh, $callback->($status)
452 root 1.1
453 root 1.2 Asynchronously close a file and call the callback with the result
454 root 1.116 code.
455    
456 root 1.117 Unfortunately, you can't do this to perl. Perl I<insists> very strongly on
457 root 1.121 closing the file descriptor associated with the filehandle itself.
458 root 1.117
459 root 1.121 Therefore, C<aio_close> will not close the filehandle - instead it will
460     use dup2 to overwrite the file descriptor with the write-end of a pipe
461     (the pipe fd will be created on demand and will be cached).
462 root 1.117
463 root 1.121 Or in other words: the file descriptor will be closed, but it will not be
464     free for reuse until the perl filehandle is closed.
465 root 1.117
466     =cut
467    
468 root 1.220 =item aio_seek $fh, $offset, $whence, $callback->($offs)
469    
470 root 1.221 Seeks the filehandle to the new C<$offset>, similarly to perl's
471 root 1.220 C<sysseek>. The C<$whence> can use the traditional values (C<0> for
472     C<IO::AIO::SEEK_SET>, C<1> for C<IO::AIO::SEEK_CUR> or C<2> for
473     C<IO::AIO::SEEK_END>).
474    
475     The resulting absolute offset will be passed to the callback, or C<-1> in
476     case of an error.
477    
478     In theory, the C<$whence> constants could be different than the
479     corresponding values from L<Fcntl>, but perl guarantees they are the same,
480     so don't panic.
481    
482 root 1.225 As a GNU/Linux (and maybe Solaris) extension, also the constants
483     C<IO::AIO::SEEK_DATA> and C<IO::AIO::SEEK_HOLE> are available, if they
484     could be found. No guarantees about suitability for use in C<aio_seek> or
485     Perl's C<sysseek> can be made though, although I would naively assume they
486     "just work".
487    
488 root 1.40 =item aio_read $fh,$offset,$length, $data,$dataoffset, $callback->($retval)
489 root 1.1
490 root 1.40 =item aio_write $fh,$offset,$length, $data,$dataoffset, $callback->($retval)
491 root 1.1
492 root 1.145 Reads or writes C<$length> bytes from or to the specified C<$fh> and
493 root 1.267 C<$offset> into the scalar given by C<$data> and offset C<$dataoffset> and
494     calls the callback with the actual number of bytes transferred (or -1 on
495 root 1.145 error, just like the syscall).
496 root 1.109
497 root 1.146 C<aio_read> will, like C<sysread>, shrink or grow the C<$data> scalar to
498     offset plus the actual number of bytes read.
499    
500 root 1.112 If C<$offset> is undefined, then the current file descriptor offset will
501     be used (and updated), otherwise the file descriptor offset will not be
502     changed by these calls.
503 root 1.109
504 root 1.145 If C<$length> is undefined in C<aio_write>, use the remaining length of
505     C<$data>.
506 root 1.109
507     If C<$dataoffset> is less than zero, it will be counted from the end of
508     C<$data>.
509 root 1.1
510 root 1.31 The C<$data> scalar I<MUST NOT> be modified in any way while the request
511 root 1.108 is outstanding. Modifying it can result in segfaults or World War III (if
512     the necessary/optional hardware is installed).
513 root 1.31
514 root 1.17 Example: Read 15 bytes at offset 7 into scalar C<$buffer>, starting at
515 root 1.1 offset C<0> within the scalar:
516    
517     aio_read $fh, 7, 15, $buffer, 0, sub {
518 root 1.9 $_[0] > 0 or die "read error: $!";
519     print "read $_[0] bytes: <$buffer>\n";
520 root 1.1 };
521    
522 root 1.106
523 root 1.40 =item aio_sendfile $out_fh, $in_fh, $in_offset, $length, $callback->($retval)
524 root 1.35
525     Tries to copy C<$length> bytes from C<$in_fh> to C<$out_fh>. It starts
526     reading at byte offset C<$in_offset>, and starts writing at the current
527     file offset of C<$out_fh>. Because of that, it is not safe to issue more
528     than one C<aio_sendfile> per C<$out_fh>, as they will interfere with each
529 root 1.196 other. The same C<$in_fh> works fine though, as this function does not
530     move or use the file offset of C<$in_fh>.
531 root 1.35
532 root 1.185 Please note that C<aio_sendfile> can read more bytes from C<$in_fh> than
533 root 1.196 are written, and there is no way to find out how many more bytes have been
534     read from C<aio_sendfile> alone, as C<aio_sendfile> only provides the
535     number of bytes written to C<$out_fh>. Only if the result value equals
536     C<$length> one can assume that C<$length> bytes have been read.
537 root 1.185
538     Unlike with other C<aio_> functions, it makes a lot of sense to use
539     C<aio_sendfile> on non-blocking sockets, as long as one end (typically
540     the C<$in_fh>) is a file - the file I/O will then be asynchronous, while
541 root 1.196 the socket I/O will be non-blocking. Note, however, that you can run
542     into a trap where C<aio_sendfile> reads some data with readahead, then
543     fails to write all data, and when the socket is ready the next time, the
544     data in the cache is already lost, forcing C<aio_sendfile> to again hit
545     the disk. Explicit C<aio_read> + C<aio_write> let's you better control
546     resource usage.
547    
548     This call tries to make use of a native C<sendfile>-like syscall to
549     provide zero-copy operation. For this to work, C<$out_fh> should refer to
550     a socket, and C<$in_fh> should refer to an mmap'able file.
551 root 1.35
552 root 1.170 If a native sendfile cannot be found or it fails with C<ENOSYS>,
553 root 1.196 C<EINVAL>, C<ENOTSUP>, C<EOPNOTSUPP>, C<EAFNOSUPPORT>, C<EPROTOTYPE> or
554     C<ENOTSOCK>, it will be emulated, so you can call C<aio_sendfile> on any
555     type of filehandle regardless of the limitations of the operating system.
556    
557     As native sendfile syscalls (as practically any non-POSIX interface hacked
558     together in a hurry to improve benchmark numbers) tend to be rather buggy
559     on many systems, this implementation tries to work around some known bugs
560     in Linux and FreeBSD kernels (probably others, too), but that might fail,
561     so you really really should check the return value of C<aio_sendfile> -
562 root 1.262 fewer bytes than expected might have been transferred.
563 root 1.35
564 root 1.106
565 root 1.40 =item aio_readahead $fh,$offset,$length, $callback->($retval)
566 root 1.1
567 root 1.20 C<aio_readahead> populates the page cache with data from a file so that
568 root 1.1 subsequent reads from that file will not block on disk I/O. The C<$offset>
569     argument specifies the starting point from which data is to be read and
570     C<$length> specifies the number of bytes to be read. I/O is performed in
571     whole pages, so that offset is effectively rounded down to a page boundary
572     and bytes are read up to the next page boundary greater than or equal to
573 root 1.20 (off-set+length). C<aio_readahead> does not read beyond the end of the
574 root 1.1 file. The current file offset of the file is left unchanged.
575    
576 root 1.261 If that syscall doesn't exist (likely if your kernel isn't Linux) it will
577     be emulated by simply reading the data, which would have a similar effect.
578 root 1.26
579 root 1.106
580 root 1.40 =item aio_stat $fh_or_path, $callback->($status)
581 root 1.1
582 root 1.40 =item aio_lstat $fh, $callback->($status)
583 root 1.1
584 root 1.294 Works almost exactly like perl's C<stat> or C<lstat> in void context. The
585     callback will be called after the stat and the results will be available
586     using C<stat _> or C<-s _> and other tests (with the exception of C<-B>
587     and C<-T>).
588 root 1.1
589     Currently, the stats are always 64-bit-stats, i.e. instead of returning an
590     error when stat'ing a large file, the results will be silently truncated
591     unless perl itself is compiled with large file support.
592    
593 root 1.187 To help interpret the mode and dev/rdev stat values, IO::AIO offers the
594     following constants and functions (if not implemented, the constants will
595     be C<0> and the functions will either C<croak> or fall back on traditional
596     behaviour).
597    
598     C<S_IFMT>, C<S_IFIFO>, C<S_IFCHR>, C<S_IFBLK>, C<S_IFLNK>, C<S_IFREG>,
599     C<S_IFDIR>, C<S_IFWHT>, C<S_IFSOCK>, C<IO::AIO::major $dev_t>,
600     C<IO::AIO::minor $dev_t>, C<IO::AIO::makedev $major, $minor>.
601    
602 root 1.289 To access higher resolution stat timestamps, see L<SUBSECOND STAT TIME
603     ACCESS>.
604    
605 root 1.1 Example: Print the length of F</etc/passwd>:
606    
607     aio_stat "/etc/passwd", sub {
608     $_[0] and die "stat failed: $!";
609     print "size is ", -s _, "\n";
610     };
611    
612 root 1.106
613 root 1.175 =item aio_statvfs $fh_or_path, $callback->($statvfs)
614 root 1.172
615     Works like the POSIX C<statvfs> or C<fstatvfs> syscalls, depending on
616     whether a file handle or path was passed.
617    
618     On success, the callback is passed a hash reference with the following
619     members: C<bsize>, C<frsize>, C<blocks>, C<bfree>, C<bavail>, C<files>,
620     C<ffree>, C<favail>, C<fsid>, C<flag> and C<namemax>. On failure, C<undef>
621     is passed.
622    
623     The following POSIX IO::AIO::ST_* constants are defined: C<ST_RDONLY> and
624     C<ST_NOSUID>.
625    
626     The following non-POSIX IO::AIO::ST_* flag masks are defined to
627     their correct value when available, or to C<0> on systems that do
628     not support them: C<ST_NODEV>, C<ST_NOEXEC>, C<ST_SYNCHRONOUS>,
629     C<ST_MANDLOCK>, C<ST_WRITE>, C<ST_APPEND>, C<ST_IMMUTABLE>, C<ST_NOATIME>,
630     C<ST_NODIRATIME> and C<ST_RELATIME>.
631    
632     Example: stat C</wd> and dump out the data if successful.
633    
634     aio_statvfs "/wd", sub {
635     my $f = $_[0]
636     or die "statvfs: $!";
637    
638     use Data::Dumper;
639     say Dumper $f;
640     };
641    
642     # result:
643     {
644     bsize => 1024,
645     bfree => 4333064312,
646     blocks => 10253828096,
647     files => 2050765568,
648     flag => 4096,
649     favail => 2042092649,
650     bavail => 4333064312,
651     ffree => 2042092649,
652     namemax => 255,
653     frsize => 1024,
654     fsid => 1810
655     }
656    
657 root 1.106 =item aio_utime $fh_or_path, $atime, $mtime, $callback->($status)
658    
659     Works like perl's C<utime> function (including the special case of $atime
660     and $mtime being undef). Fractional times are supported if the underlying
661 root 1.321 syscalls support them, and can be specified as fractional numbers or
662     C<[$second, $nanosecond]> integer arrayref pairs.
663 root 1.106
664 root 1.294 When called with a pathname, uses utimensat(2) or utimes(2) if available,
665     otherwise utime(2). If called on a file descriptor, uses futimens(2)
666     or futimes(2) if available, otherwise returns ENOSYS, so this is not
667     portable.
668 root 1.106
669     Examples:
670    
671 root 1.107 # set atime and mtime to current time (basically touch(1)):
672 root 1.106 aio_utime "path", undef, undef;
673     # set atime to current time and mtime to beginning of the epoch:
674     aio_utime "path", time, undef; # undef==0
675    
676    
677     =item aio_chown $fh_or_path, $uid, $gid, $callback->($status)
678    
679     Works like perl's C<chown> function, except that C<undef> for either $uid
680     or $gid is being interpreted as "do not change" (but -1 can also be used).
681    
682     Examples:
683    
684     # same as "chown root path" in the shell:
685     aio_chown "path", 0, -1;
686     # same as above:
687     aio_chown "path", 0, undef;
688    
689    
690 root 1.110 =item aio_truncate $fh_or_path, $offset, $callback->($status)
691    
692     Works like truncate(2) or ftruncate(2).
693    
694    
695 root 1.229 =item aio_allocate $fh, $mode, $offset, $len, $callback->($status)
696    
697 root 1.249 Allocates or frees disk space according to the C<$mode> argument. See the
698     linux C<fallocate> documentation for details.
699 root 1.229
700 root 1.252 C<$mode> is usually C<0> or C<IO::AIO::FALLOC_FL_KEEP_SIZE> to allocate
701     space, or C<IO::AIO::FALLOC_FL_PUNCH_HOLE | IO::AIO::FALLOC_FL_KEEP_SIZE>,
702     to deallocate a file range.
703    
704     IO::AIO also supports C<FALLOC_FL_COLLAPSE_RANGE>, to remove a range
705 root 1.273 (without leaving a hole), C<FALLOC_FL_ZERO_RANGE>, to zero a range,
706     C<FALLOC_FL_INSERT_RANGE> to insert a range and C<FALLOC_FL_UNSHARE_RANGE>
707     to unshare shared blocks (see your L<fallocate(2)> manpage).
708 root 1.229
709     The file system block size used by C<fallocate> is presumably the
710 root 1.273 C<f_bsize> returned by C<statvfs>, but different filesystems and filetypes
711     can dictate other limitations.
712 root 1.229
713     If C<fallocate> isn't available or cannot be emulated (currently no
714     emulation will be attempted), passes C<-1> and sets C<$!> to C<ENOSYS>.
715    
716    
717 root 1.106 =item aio_chmod $fh_or_path, $mode, $callback->($status)
718    
719     Works like perl's C<chmod> function.
720    
721    
722 root 1.40 =item aio_unlink $pathname, $callback->($status)
723 root 1.1
724     Asynchronously unlink (delete) a file and call the callback with the
725     result code.
726    
727 root 1.106
728 root 1.209 =item aio_mknod $pathname, $mode, $dev, $callback->($status)
729 root 1.82
730 root 1.86 [EXPERIMENTAL]
731    
732 root 1.83 Asynchronously create a device node (or fifo). See mknod(2).
733    
734 root 1.86 The only (POSIX-) portable way of calling this function is:
735 root 1.83
736 root 1.209 aio_mknod $pathname, IO::AIO::S_IFIFO | $mode, 0, sub { ...
737 root 1.82
738 root 1.187 See C<aio_stat> for info about some potentially helpful extra constants
739     and functions.
740 root 1.106
741 root 1.50 =item aio_link $srcpath, $dstpath, $callback->($status)
742    
743     Asynchronously create a new link to the existing object at C<$srcpath> at
744     the path C<$dstpath> and call the callback with the result code.
745    
746 root 1.106
747 root 1.50 =item aio_symlink $srcpath, $dstpath, $callback->($status)
748    
749     Asynchronously create a new symbolic link to the existing object at C<$srcpath> at
750     the path C<$dstpath> and call the callback with the result code.
751    
752 root 1.106
753 root 1.209 =item aio_readlink $pathname, $callback->($link)
754 root 1.90
755     Asynchronously read the symlink specified by C<$path> and pass it to
756     the callback. If an error occurs, nothing or undef gets passed to the
757     callback.
758    
759 root 1.106
760 root 1.209 =item aio_realpath $pathname, $callback->($path)
761 root 1.201
762     Asynchronously make the path absolute and resolve any symlinks in
763 root 1.239 C<$path>. The resulting path only consists of directories (same as
764 root 1.202 L<Cwd::realpath>).
765 root 1.201
766     This request can be used to get the absolute path of the current working
767     directory by passing it a path of F<.> (a single dot).
768    
769    
770 root 1.50 =item aio_rename $srcpath, $dstpath, $callback->($status)
771    
772     Asynchronously rename the object at C<$srcpath> to C<$dstpath>, just as
773     rename(2) and call the callback with the result code.
774    
775 root 1.241 On systems that support the AIO::WD working directory abstraction
776     natively, the case C<[$wd, "."]> as C<$srcpath> is specialcased - instead
777     of failing, C<rename> is called on the absolute path of C<$wd>.
778    
779 root 1.106
780 root 1.270 =item aio_rename2 $srcpath, $dstpath, $flags, $callback->($status)
781    
782     Basically a version of C<aio_rename> with an additional C<$flags>
783     argument. Calling this with C<$flags=0> is the same as calling
784     C<aio_rename>.
785    
786     Non-zero flags are currently only supported on GNU/Linux systems that
787     support renameat2. Other systems fail with C<ENOSYS> in this case.
788    
789     The following constants are available (missing ones are, as usual C<0>),
790     see renameat2(2) for details:
791    
792     C<IO::AIO::RENAME_NOREPLACE>, C<IO::AIO::RENAME_EXCHANGE>
793     and C<IO::AIO::RENAME_WHITEOUT>.
794    
795    
796 root 1.101 =item aio_mkdir $pathname, $mode, $callback->($status)
797    
798     Asynchronously mkdir (create) a directory and call the callback with
799     the result code. C<$mode> will be modified by the umask at the time the
800     request is executed, so do not change your umask.
801    
802 root 1.106
803 root 1.40 =item aio_rmdir $pathname, $callback->($status)
804 root 1.27
805     Asynchronously rmdir (delete) a directory and call the callback with the
806     result code.
807    
808 root 1.241 On systems that support the AIO::WD working directory abstraction
809     natively, the case C<[$wd, "."]> is specialcased - instead of failing,
810     C<rmdir> is called on the absolute path of C<$wd>.
811    
812 root 1.106
813 root 1.46 =item aio_readdir $pathname, $callback->($entries)
814 root 1.37
815     Unlike the POSIX call of the same name, C<aio_readdir> reads an entire
816     directory (i.e. opendir + readdir + closedir). The entries will not be
817     sorted, and will B<NOT> include the C<.> and C<..> entries.
818    
819 root 1.148 The callback is passed a single argument which is either C<undef> or an
820     array-ref with the filenames.
821    
822    
823     =item aio_readdirx $pathname, $flags, $callback->($entries, $flags)
824    
825 root 1.207 Quite similar to C<aio_readdir>, but the C<$flags> argument allows one to
826     tune behaviour and output format. In case of an error, C<$entries> will be
827 root 1.148 C<undef>.
828    
829     The flags are a combination of the following constants, ORed together (the
830     flags will also be passed to the callback, possibly modified):
831    
832     =over 4
833    
834 root 1.150 =item IO::AIO::READDIR_DENTS
835 root 1.148
836 root 1.284 Normally the callback gets an arrayref consisting of names only (as
837     with C<aio_readdir>). If this flag is set, then the callback gets an
838     arrayref with C<[$name, $type, $inode]> arrayrefs, each describing a
839     single directory entry in more detail:
840 root 1.148
841     C<$name> is the name of the entry.
842    
843 root 1.150 C<$type> is one of the C<IO::AIO::DT_xxx> constants:
844 root 1.148
845 root 1.150 C<IO::AIO::DT_UNKNOWN>, C<IO::AIO::DT_FIFO>, C<IO::AIO::DT_CHR>, C<IO::AIO::DT_DIR>,
846     C<IO::AIO::DT_BLK>, C<IO::AIO::DT_REG>, C<IO::AIO::DT_LNK>, C<IO::AIO::DT_SOCK>,
847     C<IO::AIO::DT_WHT>.
848 root 1.148
849 root 1.284 C<IO::AIO::DT_UNKNOWN> means just that: readdir does not know. If you need
850     to know, you have to run stat yourself. Also, for speed/memory reasons,
851     the C<$type> scalars are read-only: you must not modify them.
852 root 1.148
853 root 1.150 C<$inode> is the inode number (which might not be exact on systems with 64
854 root 1.155 bit inode numbers and 32 bit perls). This field has unspecified content on
855     systems that do not deliver the inode information.
856 root 1.150
857     =item IO::AIO::READDIR_DIRS_FIRST
858 root 1.148
859     When this flag is set, then the names will be returned in an order where
860 root 1.193 likely directories come first, in optimal stat order. This is useful when
861     you need to quickly find directories, or you want to find all directories
862     while avoiding to stat() each entry.
863 root 1.148
864 root 1.149 If the system returns type information in readdir, then this is used
865 root 1.193 to find directories directly. Otherwise, likely directories are names
866     beginning with ".", or otherwise names with no dots, of which names with
867 root 1.149 short names are tried first.
868    
869 root 1.150 =item IO::AIO::READDIR_STAT_ORDER
870 root 1.148
871     When this flag is set, then the names will be returned in an order
872 root 1.284 suitable for stat()'ing each one. That is, when you plan to stat() most or
873     all files in the given directory, then the returned order will likely be
874     faster.
875    
876     If both this flag and C<IO::AIO::READDIR_DIRS_FIRST> are specified,
877     then the likely dirs come first, resulting in a less optimal stat order
878     for stat'ing all entries, but likely a more optimal order for finding
879     subdirectories.
880 root 1.148
881 root 1.150 =item IO::AIO::READDIR_FOUND_UNKNOWN
882 root 1.148
883     This flag should not be set when calling C<aio_readdirx>. Instead, it
884     is being set by C<aio_readdirx>, when any of the C<$type>'s found were
885 root 1.207 C<IO::AIO::DT_UNKNOWN>. The absence of this flag therefore indicates that all
886 root 1.148 C<$type>'s are known, which can be used to speed up some algorithms.
887    
888     =back
889 root 1.37
890 root 1.106
891 root 1.279 =item aio_slurp $pathname, $offset, $length, $data, $callback->($status)
892    
893     Opens, reads and closes the given file. The data is put into C<$data>,
894     which is resized as required.
895    
896     If C<$offset> is negative, then it is counted from the end of the file.
897    
898     If C<$length> is zero, then the remaining length of the file is
899     used. Also, in this case, the same limitations to modifying C<$data> apply
900     as when IO::AIO::mmap is used, i.e. it must only be modified in-place
901     with C<substr>. If the size of the file is known, specifying a non-zero
902     C<$length> results in a performance advantage.
903    
904     This request is similar to the older C<aio_load> request, but since it is
905     a single request, it might be more efficient to use.
906    
907     Example: load F</etc/passwd> into C<$passwd>.
908    
909     my $passwd;
910     aio_slurp "/etc/passwd", 0, 0, $passwd, sub {
911     $_[0] >= 0
912     or die "/etc/passwd: $!\n";
913    
914     printf "/etc/passwd is %d bytes long, and contains:\n", length $passwd;
915     print $passwd;
916     };
917     IO::AIO::flush;
918    
919    
920 root 1.209 =item aio_load $pathname, $data, $callback->($status)
921 root 1.98
922     This is a composite request that tries to fully load the given file into
923     memory. Status is the same as with aio_read.
924    
925 root 1.279 Using C<aio_slurp> might be more efficient, as it is a single request.
926    
927 root 1.98 =cut
928    
929     sub aio_load($$;$) {
930 root 1.123 my ($path, undef, $cb) = @_;
931     my $data = \$_[1];
932 root 1.98
933 root 1.123 my $pri = aioreq_pri;
934     my $grp = aio_group $cb;
935    
936     aioreq_pri $pri;
937     add $grp aio_open $path, O_RDONLY, 0, sub {
938     my $fh = shift
939     or return $grp->result (-1);
940 root 1.98
941     aioreq_pri $pri;
942 root 1.123 add $grp aio_read $fh, 0, (-s $fh), $$data, 0, sub {
943     $grp->result ($_[0]);
944 root 1.98 };
945 root 1.123 };
946 root 1.98
947 root 1.123 $grp
948 root 1.98 }
949    
950 root 1.82 =item aio_copy $srcpath, $dstpath, $callback->($status)
951    
952     Try to copy the I<file> (directories not supported as either source or
953     destination) from C<$srcpath> to C<$dstpath> and call the callback with
954 root 1.165 a status of C<0> (ok) or C<-1> (error, see C<$!>).
955 root 1.82
956 root 1.275 Existing destination files will be truncated.
957    
958 root 1.134 This is a composite request that creates the destination file with
959 root 1.82 mode 0200 and copies the contents of the source file into it using
960     C<aio_sendfile>, followed by restoring atime, mtime, access mode and
961     uid/gid, in that order.
962    
963     If an error occurs, the partial destination file will be unlinked, if
964     possible, except when setting atime, mtime, access mode and uid/gid, where
965     errors are being ignored.
966    
967     =cut
968    
969     sub aio_copy($$;$) {
970 root 1.123 my ($src, $dst, $cb) = @_;
971 root 1.82
972 root 1.123 my $pri = aioreq_pri;
973     my $grp = aio_group $cb;
974 root 1.82
975 root 1.123 aioreq_pri $pri;
976     add $grp aio_open $src, O_RDONLY, 0, sub {
977     if (my $src_fh = $_[0]) {
978 root 1.166 my @stat = stat $src_fh; # hmm, might block over nfs?
979 root 1.95
980 root 1.123 aioreq_pri $pri;
981     add $grp aio_open $dst, O_CREAT | O_WRONLY | O_TRUNC, 0200, sub {
982     if (my $dst_fh = $_[0]) {
983 root 1.319
984     # best-effort preallocate
985     aioreq_pri $pri;
986     add $grp aio_allocate $dst_fh, IO::AIO::FALLOC_FL_KEEP_SIZE, 0, $stat[7], sub { };
987    
988 root 1.123 aioreq_pri $pri;
989     add $grp aio_sendfile $dst_fh, $src_fh, 0, $stat[7], sub {
990     if ($_[0] == $stat[7]) {
991     $grp->result (0);
992     close $src_fh;
993    
994 root 1.147 my $ch = sub {
995     aioreq_pri $pri;
996     add $grp aio_chmod $dst_fh, $stat[2] & 07777, sub {
997     aioreq_pri $pri;
998     add $grp aio_chown $dst_fh, $stat[4], $stat[5], sub {
999     aioreq_pri $pri;
1000     add $grp aio_close $dst_fh;
1001     }
1002     };
1003     };
1004 root 1.123
1005     aioreq_pri $pri;
1006 root 1.147 add $grp aio_utime $dst_fh, $stat[8], $stat[9], sub {
1007     if ($_[0] < 0 && $! == ENOSYS) {
1008     aioreq_pri $pri;
1009     add $grp aio_utime $dst, $stat[8], $stat[9], $ch;
1010     } else {
1011     $ch->();
1012     }
1013     };
1014 root 1.123 } else {
1015     $grp->result (-1);
1016     close $src_fh;
1017     close $dst_fh;
1018    
1019     aioreq $pri;
1020     add $grp aio_unlink $dst;
1021     }
1022     };
1023     } else {
1024     $grp->result (-1);
1025     }
1026     },
1027 root 1.82
1028 root 1.123 } else {
1029     $grp->result (-1);
1030     }
1031     };
1032 root 1.82
1033 root 1.123 $grp
1034 root 1.82 }
1035    
1036     =item aio_move $srcpath, $dstpath, $callback->($status)
1037    
1038     Try to move the I<file> (directories not supported as either source or
1039     destination) from C<$srcpath> to C<$dstpath> and call the callback with
1040 root 1.165 a status of C<0> (ok) or C<-1> (error, see C<$!>).
1041 root 1.82
1042 root 1.137 This is a composite request that tries to rename(2) the file first; if
1043     rename fails with C<EXDEV>, it copies the file with C<aio_copy> and, if
1044     that is successful, unlinks the C<$srcpath>.
1045 root 1.82
1046     =cut
1047    
1048     sub aio_move($$;$) {
1049 root 1.123 my ($src, $dst, $cb) = @_;
1050 root 1.82
1051 root 1.123 my $pri = aioreq_pri;
1052     my $grp = aio_group $cb;
1053 root 1.82
1054 root 1.123 aioreq_pri $pri;
1055     add $grp aio_rename $src, $dst, sub {
1056     if ($_[0] && $! == EXDEV) {
1057     aioreq_pri $pri;
1058     add $grp aio_copy $src, $dst, sub {
1059     $grp->result ($_[0]);
1060 root 1.95
1061 root 1.196 unless ($_[0]) {
1062 root 1.123 aioreq_pri $pri;
1063     add $grp aio_unlink $src;
1064     }
1065     };
1066     } else {
1067     $grp->result ($_[0]);
1068     }
1069     };
1070 root 1.82
1071 root 1.123 $grp
1072 root 1.82 }
1073    
1074 root 1.209 =item aio_scandir $pathname, $maxreq, $callback->($dirs, $nondirs)
1075 root 1.40
1076 root 1.52 Scans a directory (similar to C<aio_readdir>) but additionally tries to
1077 root 1.76 efficiently separate the entries of directory C<$path> into two sets of
1078     names, directories you can recurse into (directories), and ones you cannot
1079     recurse into (everything else, including symlinks to directories).
1080 root 1.52
1081 root 1.277 C<aio_scandir> is a composite request that generates many sub requests.
1082 root 1.61 C<$maxreq> specifies the maximum number of outstanding aio requests that
1083     this function generates. If it is C<< <= 0 >>, then a suitable default
1084 root 1.81 will be chosen (currently 4).
1085 root 1.40
1086     On error, the callback is called without arguments, otherwise it receives
1087     two array-refs with path-relative entry names.
1088    
1089     Example:
1090    
1091     aio_scandir $dir, 0, sub {
1092     my ($dirs, $nondirs) = @_;
1093     print "real directories: @$dirs\n";
1094     print "everything else: @$nondirs\n";
1095     };
1096    
1097     Implementation notes.
1098    
1099     The C<aio_readdir> cannot be avoided, but C<stat()>'ing every entry can.
1100    
1101 root 1.149 If readdir returns file type information, then this is used directly to
1102     find directories.
1103    
1104     Otherwise, after reading the directory, the modification time, size etc.
1105     of the directory before and after the readdir is checked, and if they
1106     match (and isn't the current time), the link count will be used to decide
1107     how many entries are directories (if >= 2). Otherwise, no knowledge of the
1108     number of subdirectories will be assumed.
1109    
1110     Then entries will be sorted into likely directories a non-initial dot
1111     currently) and likely non-directories (see C<aio_readdirx>). Then every
1112     entry plus an appended C</.> will be C<stat>'ed, likely directories first,
1113     in order of their inode numbers. If that succeeds, it assumes that the
1114     entry is a directory or a symlink to directory (which will be checked
1115 root 1.207 separately). This is often faster than stat'ing the entry itself because
1116 root 1.52 filesystems might detect the type of the entry without reading the inode
1117 root 1.149 data (e.g. ext2fs filetype feature), even on systems that cannot return
1118     the filetype information on readdir.
1119 root 1.52
1120     If the known number of directories (link count - 2) has been reached, the
1121     rest of the entries is assumed to be non-directories.
1122    
1123     This only works with certainty on POSIX (= UNIX) filesystems, which
1124     fortunately are the vast majority of filesystems around.
1125    
1126     It will also likely work on non-POSIX filesystems with reduced efficiency
1127     as those tend to return 0 or 1 as link counts, which disables the
1128     directory counting heuristic.
1129 root 1.40
1130     =cut
1131    
1132 root 1.100 sub aio_scandir($$;$) {
1133 root 1.123 my ($path, $maxreq, $cb) = @_;
1134    
1135     my $pri = aioreq_pri;
1136 root 1.40
1137 root 1.123 my $grp = aio_group $cb;
1138 root 1.80
1139 root 1.123 $maxreq = 4 if $maxreq <= 0;
1140 root 1.55
1141 root 1.210 # get a wd object
1142 root 1.123 aioreq_pri $pri;
1143 root 1.210 add $grp aio_wd $path, sub {
1144 root 1.212 $_[0]
1145     or return $grp->result ();
1146    
1147 root 1.210 my $wd = [shift, "."];
1148 root 1.40
1149 root 1.210 # stat once
1150 root 1.80 aioreq_pri $pri;
1151 root 1.210 add $grp aio_stat $wd, sub {
1152     return $grp->result () if $_[0];
1153     my $now = time;
1154     my $hash1 = join ":", (stat _)[0,1,3,7,9];
1155 root 1.299 my $rdxflags = READDIR_DIRS_FIRST;
1156    
1157     if ((stat _)[3] < 2) {
1158     # at least one non-POSIX filesystem exists
1159     # that returns useful DT_type values: btrfs,
1160     # so optimise for this here by requesting dents
1161     $rdxflags |= READDIR_DENTS;
1162     }
1163 root 1.40
1164 root 1.210 # read the directory entries
1165 root 1.80 aioreq_pri $pri;
1166 root 1.299 add $grp aio_readdirx $wd, $rdxflags, sub {
1167     my ($entries, $flags) = @_
1168 root 1.210 or return $grp->result ();
1169    
1170 root 1.299 if ($rdxflags & READDIR_DENTS) {
1171     # if we requested type values, see if we can use them directly.
1172    
1173     # if there were any DT_UNKNOWN entries then we assume we
1174     # don't know. alternatively, we could assume that if we get
1175     # one DT_DIR, then all directories are indeed marked with
1176     # DT_DIR, but this seems not required for btrfs, and this
1177     # is basically the "btrfs can't get it's act together" code
1178     # branch.
1179     unless ($flags & READDIR_FOUND_UNKNOWN) {
1180     # now we have valid DT_ information for all entries,
1181     # so use it as an optimisation without further stat's.
1182     # they must also all be at the beginning of @$entries
1183     # by now.
1184    
1185     my $dirs;
1186    
1187     if (@$entries) {
1188     for (0 .. $#$entries) {
1189     if ($entries->[$_][1] != DT_DIR) {
1190     # splice out directories
1191     $dirs = [splice @$entries, 0, $_];
1192     last;
1193     }
1194     }
1195    
1196     # if we didn't find any non-dir, then all entries are dirs
1197     unless ($dirs) {
1198     ($dirs, $entries) = ($entries, []);
1199     }
1200     } else {
1201     # directory is empty, so there are no sbdirs
1202     $dirs = [];
1203     }
1204    
1205     # either splice'd the directories out or the dir was empty.
1206     # convert dents to filenames
1207     $_ = $_->[0] for @$dirs;
1208     $_ = $_->[0] for @$entries;
1209    
1210     return $grp->result ($dirs, $entries);
1211     }
1212    
1213     # cannot use, so return to our old ways
1214     # by pretending we only scanned for names.
1215     $_ = $_->[0] for @$entries;
1216     }
1217    
1218 root 1.210 # stat the dir another time
1219     aioreq_pri $pri;
1220     add $grp aio_stat $wd, sub {
1221     my $hash2 = join ":", (stat _)[0,1,3,7,9];
1222 root 1.95
1223 root 1.210 my $ndirs;
1224 root 1.95
1225 root 1.210 # take the slow route if anything looks fishy
1226     if ($hash1 ne $hash2 or (stat _)[9] == $now) {
1227     $ndirs = -1;
1228     } else {
1229     # if nlink == 2, we are finished
1230     # for non-posix-fs's, we rely on nlink < 2
1231     $ndirs = (stat _)[3] - 2
1232     or return $grp->result ([], $entries);
1233     }
1234 root 1.123
1235 root 1.210 my (@dirs, @nondirs);
1236 root 1.40
1237 root 1.210 my $statgrp = add $grp aio_group sub {
1238     $grp->result (\@dirs, \@nondirs);
1239     };
1240 root 1.40
1241 root 1.210 limit $statgrp $maxreq;
1242     feed $statgrp sub {
1243     return unless @$entries;
1244     my $entry = shift @$entries;
1245    
1246     aioreq_pri $pri;
1247     $wd->[1] = "$entry/.";
1248     add $statgrp aio_stat $wd, sub {
1249     if ($_[0] < 0) {
1250     push @nondirs, $entry;
1251     } else {
1252     # need to check for real directory
1253     aioreq_pri $pri;
1254     $wd->[1] = $entry;
1255     add $statgrp aio_lstat $wd, sub {
1256     if (-d _) {
1257     push @dirs, $entry;
1258    
1259     unless (--$ndirs) {
1260     push @nondirs, @$entries;
1261     feed $statgrp;
1262     }
1263     } else {
1264     push @nondirs, $entry;
1265 root 1.74 }
1266 root 1.40 }
1267     }
1268 root 1.210 };
1269 root 1.74 };
1270 root 1.40 };
1271     };
1272     };
1273 root 1.123 };
1274 root 1.55
1275 root 1.123 $grp
1276 root 1.40 }
1277    
1278 root 1.209 =item aio_rmtree $pathname, $callback->($status)
1279 root 1.99
1280 root 1.100 Delete a directory tree starting (and including) C<$path>, return the
1281 root 1.239 status of the final C<rmdir> only. This is a composite request that
1282 root 1.100 uses C<aio_scandir> to recurse into and rmdir directories, and unlink
1283     everything else.
1284 root 1.99
1285     =cut
1286    
1287     sub aio_rmtree;
1288 root 1.100 sub aio_rmtree($;$) {
1289 root 1.123 my ($path, $cb) = @_;
1290 root 1.99
1291 root 1.123 my $pri = aioreq_pri;
1292     my $grp = aio_group $cb;
1293 root 1.99
1294 root 1.123 aioreq_pri $pri;
1295     add $grp aio_scandir $path, 0, sub {
1296     my ($dirs, $nondirs) = @_;
1297 root 1.99
1298 root 1.123 my $dirgrp = aio_group sub {
1299     add $grp aio_rmdir $path, sub {
1300     $grp->result ($_[0]);
1301 root 1.99 };
1302 root 1.123 };
1303 root 1.99
1304 root 1.123 (aioreq_pri $pri), add $dirgrp aio_rmtree "$path/$_" for @$dirs;
1305     (aioreq_pri $pri), add $dirgrp aio_unlink "$path/$_" for @$nondirs;
1306 root 1.99
1307 root 1.123 add $grp $dirgrp;
1308     };
1309 root 1.99
1310 root 1.123 $grp
1311 root 1.99 }
1312    
1313 root 1.259 =item aio_fcntl $fh, $cmd, $arg, $callback->($status)
1314    
1315     =item aio_ioctl $fh, $request, $buf, $callback->($status)
1316    
1317     These work just like the C<fcntl> and C<ioctl> built-in functions, except
1318     they execute asynchronously and pass the return value to the callback.
1319    
1320     Both calls can be used for a lot of things, some of which make more sense
1321     to run asynchronously in their own thread, while some others make less
1322     sense. For example, calls that block waiting for external events, such
1323     as locking, will also lock down an I/O thread while it is waiting, which
1324     can deadlock the whole I/O system. At the same time, there might be no
1325     alternative to using a thread to wait.
1326    
1327     So in general, you should only use these calls for things that do
1328     (filesystem) I/O, not for things that wait for other events (network,
1329     other processes), although if you are careful and know what you are doing,
1330     you still can.
1331    
1332 root 1.303 The following constants are available and can be used for normal C<ioctl>
1333     and C<fcntl> as well (missing ones are, as usual C<0>):
1334 root 1.264
1335 root 1.271 C<F_DUPFD_CLOEXEC>,
1336    
1337     C<F_OFD_GETLK>, C<F_OFD_SETLK>, C<F_OFD_GETLKW>,
1338    
1339 root 1.264 C<FIFREEZE>, C<FITHAW>, C<FITRIM>, C<FICLONE>, C<FICLONERANGE>, C<FIDEDUPERANGE>.
1340    
1341 root 1.303 C<F_ADD_SEALS>, C<F_GET_SEALS>, C<F_SEAL_SEAL>, C<F_SEAL_SHRINK>, C<F_SEAL_GROW> and
1342     C<F_SEAL_WRITE>.
1343    
1344 root 1.264 C<FS_IOC_GETFLAGS>, C<FS_IOC_SETFLAGS>, C<FS_IOC_GETVERSION>, C<FS_IOC_SETVERSION>,
1345     C<FS_IOC_FIEMAP>.
1346    
1347     C<FS_IOC_FSGETXATTR>, C<FS_IOC_FSSETXATTR>, C<FS_IOC_SET_ENCRYPTION_POLICY>,
1348     C<FS_IOC_GET_ENCRYPTION_PWSALT>, C<FS_IOC_GET_ENCRYPTION_POLICY>, C<FS_KEY_DESCRIPTOR_SIZE>.
1349    
1350     C<FS_SECRM_FL>, C<FS_UNRM_FL>, C<FS_COMPR_FL>, C<FS_SYNC_FL>, C<FS_IMMUTABLE_FL>,
1351     C<FS_APPEND_FL>, C<FS_NODUMP_FL>, C<FS_NOATIME_FL>, C<FS_DIRTY_FL>,
1352     C<FS_COMPRBLK_FL>, C<FS_NOCOMP_FL>, C<FS_ENCRYPT_FL>, C<FS_BTREE_FL>,
1353     C<FS_INDEX_FL>, C<FS_JOURNAL_DATA_FL>, C<FS_NOTAIL_FL>, C<FS_DIRSYNC_FL>, C<FS_TOPDIR_FL>,
1354     C<FS_FL_USER_MODIFIABLE>.
1355    
1356     C<FS_XFLAG_REALTIME>, C<FS_XFLAG_PREALLOC>, C<FS_XFLAG_IMMUTABLE>, C<FS_XFLAG_APPEND>,
1357     C<FS_XFLAG_SYNC>, C<FS_XFLAG_NOATIME>, C<FS_XFLAG_NODUMP>, C<FS_XFLAG_RTINHERIT>,
1358     C<FS_XFLAG_PROJINHERIT>, C<FS_XFLAG_NOSYMLINKS>, C<FS_XFLAG_EXTSIZE>, C<FS_XFLAG_EXTSZINHERIT>,
1359     C<FS_XFLAG_NODEFRAG>, C<FS_XFLAG_FILESTREAM>, C<FS_XFLAG_DAX>, C<FS_XFLAG_HASATTR>,
1360    
1361 root 1.316 C<BLKROSET>, C<BLKROGET>, C<BLKRRPART>, C<BLKGETSIZE>, C<BLKFLSBUF>, C<BLKRASET>,
1362     C<BLKRAGET>, C<BLKFRASET>, C<BLKFRAGET>, C<BLKSECTSET>, C<BLKSECTGET>, C<BLKSSZGET>,
1363     C<BLKBSZGET>, C<BLKBSZSET>, C<BLKGETSIZE64>,
1364    
1365    
1366 root 1.119 =item aio_sync $callback->($status)
1367    
1368     Asynchronously call sync and call the callback when finished.
1369    
1370 root 1.40 =item aio_fsync $fh, $callback->($status)
1371 root 1.1
1372     Asynchronously call fsync on the given filehandle and call the callback
1373     with the fsync result code.
1374    
1375 root 1.40 =item aio_fdatasync $fh, $callback->($status)
1376 root 1.1
1377     Asynchronously call fdatasync on the given filehandle and call the
1378 root 1.26 callback with the fdatasync result code.
1379    
1380     If this call isn't available because your OS lacks it or it couldn't be
1381     detected, it will be emulated by calling C<fsync> instead.
1382 root 1.1
1383 root 1.206 =item aio_syncfs $fh, $callback->($status)
1384    
1385     Asynchronously call the syncfs syscall to sync the filesystem associated
1386     to the given filehandle and call the callback with the syncfs result
1387     code. If syncfs is not available, calls sync(), but returns C<-1> and sets
1388     errno to C<ENOSYS> nevertheless.
1389    
1390 root 1.142 =item aio_sync_file_range $fh, $offset, $nbytes, $flags, $callback->($status)
1391    
1392     Sync the data portion of the file specified by C<$offset> and C<$length>
1393     to disk (but NOT the metadata), by calling the Linux-specific
1394     sync_file_range call. If sync_file_range is not available or it returns
1395     ENOSYS, then fdatasync or fsync is being substituted.
1396    
1397     C<$flags> can be a combination of C<IO::AIO::SYNC_FILE_RANGE_WAIT_BEFORE>,
1398     C<IO::AIO::SYNC_FILE_RANGE_WRITE> and
1399     C<IO::AIO::SYNC_FILE_RANGE_WAIT_AFTER>: refer to the sync_file_range
1400     manpage for details.
1401    
1402 root 1.209 =item aio_pathsync $pathname, $callback->($status)
1403 root 1.120
1404     This request tries to open, fsync and close the given path. This is a
1405 root 1.135 composite request intended to sync directories after directory operations
1406 root 1.120 (E.g. rename). This might not work on all operating systems or have any
1407     specific effect, but usually it makes sure that directory changes get
1408     written to disc. It works for anything that can be opened for read-only,
1409     not just directories.
1410    
1411 root 1.162 Future versions of this function might fall back to other methods when
1412     C<fsync> on the directory fails (such as calling C<sync>).
1413    
1414 root 1.120 Passes C<0> when everything went ok, and C<-1> on error.
1415    
1416     =cut
1417    
1418     sub aio_pathsync($;$) {
1419 root 1.123 my ($path, $cb) = @_;
1420    
1421     my $pri = aioreq_pri;
1422     my $grp = aio_group $cb;
1423 root 1.120
1424 root 1.123 aioreq_pri $pri;
1425     add $grp aio_open $path, O_RDONLY, 0, sub {
1426     my ($fh) = @_;
1427     if ($fh) {
1428     aioreq_pri $pri;
1429     add $grp aio_fsync $fh, sub {
1430     $grp->result ($_[0]);
1431 root 1.120
1432     aioreq_pri $pri;
1433 root 1.123 add $grp aio_close $fh;
1434     };
1435     } else {
1436     $grp->result (-1);
1437     }
1438     };
1439 root 1.120
1440 root 1.123 $grp
1441 root 1.120 }
1442    
1443 root 1.268 =item aio_msync $scalar, $offset = 0, $length = undef, flags = MS_SYNC, $callback->($status)
1444 root 1.170
1445     This is a rather advanced IO::AIO call, which only works on mmap(2)ed
1446 root 1.176 scalars (see the C<IO::AIO::mmap> function, although it also works on data
1447     scalars managed by the L<Sys::Mmap> or L<Mmap> modules, note that the
1448     scalar must only be modified in-place while an aio operation is pending on
1449     it).
1450 root 1.170
1451     It calls the C<msync> function of your OS, if available, with the memory
1452     area starting at C<$offset> in the string and ending C<$length> bytes
1453     later. If C<$length> is negative, counts from the end, and if C<$length>
1454     is C<undef>, then it goes till the end of the string. The flags can be
1455 root 1.268 either C<IO::AIO::MS_ASYNC> or C<IO::AIO::MS_SYNC>, plus an optional
1456     C<IO::AIO::MS_INVALIDATE>.
1457 root 1.170
1458     =item aio_mtouch $scalar, $offset = 0, $length = undef, flags = 0, $callback->($status)
1459    
1460     This is a rather advanced IO::AIO call, which works best on mmap(2)ed
1461     scalars.
1462    
1463     It touches (reads or writes) all memory pages in the specified
1464 root 1.239 range inside the scalar. All caveats and parameters are the same
1465 root 1.170 as for C<aio_msync>, above, except for flags, which must be either
1466     C<0> (which reads all pages and ensures they are instantiated) or
1467 root 1.239 C<IO::AIO::MT_MODIFY>, which modifies the memory pages (by reading and
1468 root 1.170 writing an octet from it, which dirties the page).
1469    
1470 root 1.182 =item aio_mlock $scalar, $offset = 0, $length = undef, $callback->($status)
1471    
1472     This is a rather advanced IO::AIO call, which works best on mmap(2)ed
1473     scalars.
1474    
1475     It reads in all the pages of the underlying storage into memory (if any)
1476     and locks them, so they are not getting swapped/paged out or removed.
1477    
1478     If C<$length> is undefined, then the scalar will be locked till the end.
1479    
1480     On systems that do not implement C<mlock>, this function returns C<-1>
1481     and sets errno to C<ENOSYS>.
1482    
1483     Note that the corresponding C<munlock> is synchronous and is
1484     documented under L<MISCELLANEOUS FUNCTIONS>.
1485    
1486 root 1.183 Example: open a file, mmap and mlock it - both will be undone when
1487     C<$data> gets destroyed.
1488    
1489     open my $fh, "<", $path or die "$path: $!";
1490     my $data;
1491     IO::AIO::mmap $data, -s $fh, IO::AIO::PROT_READ, IO::AIO::MAP_SHARED, $fh;
1492     aio_mlock $data; # mlock in background
1493    
1494 root 1.182 =item aio_mlockall $flags, $callback->($status)
1495    
1496 root 1.297 Calls the C<mlockall> function with the given C<$flags> (a
1497     combination of C<IO::AIO::MCL_CURRENT>, C<IO::AIO::MCL_FUTURE> and
1498     C<IO::AIO::MCL_ONFAULT>).
1499 root 1.182
1500     On systems that do not implement C<mlockall>, this function returns C<-1>
1501 root 1.297 and sets errno to C<ENOSYS>. Similarly, flag combinations not supported
1502     by the system result in a return value of C<-1> with errno being set to
1503     C<EINVAL>.
1504 root 1.182
1505     Note that the corresponding C<munlockall> is synchronous and is
1506     documented under L<MISCELLANEOUS FUNCTIONS>.
1507    
1508 root 1.183 Example: asynchronously lock all current and future pages into memory.
1509    
1510     aio_mlockall IO::AIO::MCL_FUTURE;
1511    
1512 root 1.223 =item aio_fiemap $fh, $start, $length, $flags, $count, $cb->(\@extents)
1513    
1514 root 1.234 Queries the extents of the given file (by calling the Linux C<FIEMAP>
1515     ioctl, see L<http://cvs.schmorp.de/IO-AIO/doc/fiemap.txt> for details). If
1516     the ioctl is not available on your OS, then this request will fail with
1517 root 1.223 C<ENOSYS>.
1518    
1519     C<$start> is the starting offset to query extents for, C<$length> is the
1520     size of the range to query - if it is C<undef>, then the whole file will
1521     be queried.
1522    
1523     C<$flags> is a combination of flags (C<IO::AIO::FIEMAP_FLAG_SYNC> or
1524     C<IO::AIO::FIEMAP_FLAG_XATTR> - C<IO::AIO::FIEMAP_FLAGS_COMPAT> is also
1525     exported), and is normally C<0> or C<IO::AIO::FIEMAP_FLAG_SYNC> to query
1526     the data portion.
1527    
1528     C<$count> is the maximum number of extent records to return. If it is
1529 root 1.232 C<undef>, then IO::AIO queries all extents of the range. As a very special
1530 root 1.223 case, if it is C<0>, then the callback receives the number of extents
1531 root 1.232 instead of the extents themselves (which is unreliable, see below).
1532 root 1.223
1533     If an error occurs, the callback receives no arguments. The special
1534     C<errno> value C<IO::AIO::EBADR> is available to test for flag errors.
1535    
1536     Otherwise, the callback receives an array reference with extent
1537     structures. Each extent structure is an array reference itself, with the
1538     following members:
1539    
1540     [$logical, $physical, $length, $flags]
1541    
1542     Flags is any combination of the following flag values (typically either C<0>
1543 root 1.231 or C<IO::AIO::FIEMAP_EXTENT_LAST> (1)):
1544 root 1.223
1545     C<IO::AIO::FIEMAP_EXTENT_LAST>, C<IO::AIO::FIEMAP_EXTENT_UNKNOWN>,
1546     C<IO::AIO::FIEMAP_EXTENT_DELALLOC>, C<IO::AIO::FIEMAP_EXTENT_ENCODED>,
1547     C<IO::AIO::FIEMAP_EXTENT_DATA_ENCRYPTED>, C<IO::AIO::FIEMAP_EXTENT_NOT_ALIGNED>,
1548     C<IO::AIO::FIEMAP_EXTENT_DATA_INLINE>, C<IO::AIO::FIEMAP_EXTENT_DATA_TAIL>,
1549     C<IO::AIO::FIEMAP_EXTENT_UNWRITTEN>, C<IO::AIO::FIEMAP_EXTENT_MERGED> or
1550     C<IO::AIO::FIEMAP_EXTENT_SHARED>.
1551    
1552 root 1.278 At the time of this writing (Linux 3.2), this request is unreliable unless
1553 root 1.232 C<$count> is C<undef>, as the kernel has all sorts of bugs preventing
1554 root 1.278 it to return all extents of a range for files with a large number of
1555     extents. The code (only) works around all these issues if C<$count> is
1556     C<undef>.
1557 root 1.232
1558 root 1.58 =item aio_group $callback->(...)
1559 root 1.54
1560 root 1.55 This is a very special aio request: Instead of doing something, it is a
1561     container for other aio requests, which is useful if you want to bundle
1562 root 1.71 many requests into a single, composite, request with a definite callback
1563     and the ability to cancel the whole request with its subrequests.
1564 root 1.55
1565     Returns an object of class L<IO::AIO::GRP>. See its documentation below
1566     for more info.
1567    
1568     Example:
1569    
1570     my $grp = aio_group sub {
1571     print "all stats done\n";
1572     };
1573    
1574     add $grp
1575     (aio_stat ...),
1576     (aio_stat ...),
1577     ...;
1578    
1579 root 1.63 =item aio_nop $callback->()
1580    
1581     This is a special request - it does nothing in itself and is only used for
1582     side effects, such as when you want to add a dummy request to a group so
1583     that finishing the requests in the group depends on executing the given
1584     code.
1585    
1586 root 1.64 While this request does nothing, it still goes through the execution
1587     phase and still requires a worker thread. Thus, the callback will not
1588     be executed immediately but only after other requests in the queue have
1589     entered their execution phase. This can be used to measure request
1590     latency.
1591    
1592 root 1.71 =item IO::AIO::aio_busy $fractional_seconds, $callback->() *NOT EXPORTED*
1593 root 1.54
1594     Mainly used for debugging and benchmarking, this aio request puts one of
1595     the request workers to sleep for the given time.
1596    
1597 root 1.56 While it is theoretically handy to have simple I/O scheduling requests
1598 root 1.71 like sleep and file handle readable/writable, the overhead this creates is
1599     immense (it blocks a thread for a long time) so do not use this function
1600     except to put your application under artificial I/O pressure.
1601 root 1.56
1602 root 1.5 =back
1603    
1604 root 1.209
1605     =head2 IO::AIO::WD - multiple working directories
1606    
1607     Your process only has one current working directory, which is used by all
1608     threads. This makes it hard to use relative paths (some other component
1609     could call C<chdir> at any time, and it is hard to control when the path
1610     will be used by IO::AIO).
1611    
1612     One solution for this is to always use absolute paths. This usually works,
1613     but can be quite slow (the kernel has to walk the whole path on every
1614     access), and can also be a hassle to implement.
1615    
1616     Newer POSIX systems have a number of functions (openat, fdopendir,
1617     futimensat and so on) that make it possible to specify working directories
1618     per operation.
1619    
1620     For portability, and because the clowns who "designed", or shall I write,
1621     perpetrated this new interface were obviously half-drunk, this abstraction
1622     cannot be perfect, though.
1623    
1624     IO::AIO allows you to convert directory paths into a so-called IO::AIO::WD
1625     object. This object stores the canonicalised, absolute version of the
1626     path, and on systems that allow it, also a directory file descriptor.
1627    
1628     Everywhere where a pathname is accepted by IO::AIO (e.g. in C<aio_stat>
1629     or C<aio_unlink>), one can specify an array reference with an IO::AIO::WD
1630 root 1.214 object and a pathname instead (or the IO::AIO::WD object alone, which
1631     gets interpreted as C<[$wd, "."]>). If the pathname is absolute, the
1632 root 1.213 IO::AIO::WD object is ignored, otherwise the pathname is resolved relative
1633 root 1.209 to that IO::AIO::WD object.
1634    
1635     For example, to get a wd object for F</etc> and then stat F<passwd>
1636     inside, you would write:
1637    
1638     aio_wd "/etc", sub {
1639     my $etcdir = shift;
1640    
1641     # although $etcdir can be undef on error, there is generally no reason
1642     # to check for errors here, as aio_stat will fail with ENOENT
1643     # when $etcdir is undef.
1644    
1645     aio_stat [$etcdir, "passwd"], sub {
1646     # yay
1647     };
1648     };
1649    
1650 root 1.250 The fact that C<aio_wd> is a request and not a normal function shows that
1651     creating an IO::AIO::WD object is itself a potentially blocking operation,
1652     which is why it is done asynchronously.
1653 root 1.214
1654     To stat the directory obtained with C<aio_wd> above, one could write
1655     either of the following three request calls:
1656    
1657     aio_lstat "/etc" , sub { ... # pathname as normal string
1658     aio_lstat [$wd, "."], sub { ... # "." relative to $wd (i.e. $wd itself)
1659     aio_lstat $wd , sub { ... # shorthand for the previous
1660 root 1.209
1661     As with normal pathnames, IO::AIO keeps a copy of the working directory
1662     object and the pathname string, so you could write the following without
1663     causing any issues due to C<$path> getting reused:
1664    
1665     my $path = [$wd, undef];
1666    
1667     for my $name (qw(abc def ghi)) {
1668     $path->[1] = $name;
1669     aio_stat $path, sub {
1670     # ...
1671     };
1672     }
1673    
1674     There are some caveats: when directories get renamed (or deleted), the
1675     pathname string doesn't change, so will point to the new directory (or
1676     nowhere at all), while the directory fd, if available on the system,
1677     will still point to the original directory. Most functions accepting a
1678     pathname will use the directory fd on newer systems, and the string on
1679 root 1.277 older systems. Some functions (such as C<aio_realpath>) will always rely on
1680     the string form of the pathname.
1681 root 1.209
1682 root 1.239 So this functionality is mainly useful to get some protection against
1683 root 1.209 C<chdir>, to easily get an absolute path out of a relative path for future
1684     reference, and to speed up doing many operations in the same directory
1685     (e.g. when stat'ing all files in a directory).
1686    
1687     The following functions implement this working directory abstraction:
1688    
1689     =over 4
1690    
1691     =item aio_wd $pathname, $callback->($wd)
1692    
1693     Asynchonously canonicalise the given pathname and convert it to an
1694     IO::AIO::WD object representing it. If possible and supported on the
1695     system, also open a directory fd to speed up pathname resolution relative
1696     to this working directory.
1697    
1698     If something goes wrong, then C<undef> is passwd to the callback instead
1699     of a working directory object and C<$!> is set appropriately. Since
1700     passing C<undef> as working directory component of a pathname fails the
1701     request with C<ENOENT>, there is often no need for error checking in the
1702     C<aio_wd> callback, as future requests using the value will fail in the
1703     expected way.
1704    
1705     =item IO::AIO::CWD
1706    
1707 root 1.306 This is a compile time constant (object) that represents the process
1708 root 1.209 current working directory.
1709    
1710 root 1.239 Specifying this object as working directory object for a pathname is as if
1711     the pathname would be specified directly, without a directory object. For
1712     example, these calls are functionally identical:
1713 root 1.209
1714     aio_stat "somefile", sub { ... };
1715     aio_stat [IO::AIO::CWD, "somefile"], sub { ... };
1716    
1717     =back
1718    
1719 root 1.239 To recover the path associated with an IO::AIO::WD object, you can use
1720     C<aio_realpath>:
1721    
1722     aio_realpath $wd, sub {
1723     warn "path is $_[0]\n";
1724     };
1725    
1726 root 1.241 Currently, C<aio_statvfs> always, and C<aio_rename> and C<aio_rmdir>
1727     sometimes, fall back to using an absolue path.
1728 root 1.209
1729 root 1.53 =head2 IO::AIO::REQ CLASS
1730 root 1.52
1731     All non-aggregate C<aio_*> functions return an object of this class when
1732     called in non-void context.
1733    
1734     =over 4
1735    
1736 root 1.65 =item cancel $req
1737 root 1.52
1738     Cancels the request, if possible. Has the effect of skipping execution
1739     when entering the B<execute> state and skipping calling the callback when
1740     entering the the B<result> state, but will leave the request otherwise
1741 root 1.151 untouched (with the exception of readdir). That means that requests that
1742     currently execute will not be stopped and resources held by the request
1743     will not be freed prematurely.
1744 root 1.52
1745 root 1.65 =item cb $req $callback->(...)
1746    
1747     Replace (or simply set) the callback registered to the request.
1748    
1749 root 1.52 =back
1750    
1751 root 1.55 =head2 IO::AIO::GRP CLASS
1752    
1753     This class is a subclass of L<IO::AIO::REQ>, so all its methods apply to
1754     objects of this class, too.
1755    
1756     A IO::AIO::GRP object is a special request that can contain multiple other
1757     aio requests.
1758    
1759     You create one by calling the C<aio_group> constructing function with a
1760     callback that will be called when all contained requests have entered the
1761     C<done> state:
1762    
1763     my $grp = aio_group sub {
1764     print "all requests are done\n";
1765     };
1766    
1767     You add requests by calling the C<add> method with one or more
1768     C<IO::AIO::REQ> objects:
1769    
1770     $grp->add (aio_unlink "...");
1771    
1772 root 1.58 add $grp aio_stat "...", sub {
1773     $_[0] or return $grp->result ("error");
1774    
1775     # add another request dynamically, if first succeeded
1776     add $grp aio_open "...", sub {
1777     $grp->result ("ok");
1778     };
1779     };
1780 root 1.55
1781     This makes it very easy to create composite requests (see the source of
1782     C<aio_move> for an application) that work and feel like simple requests.
1783    
1784 root 1.62 =over 4
1785    
1786     =item * The IO::AIO::GRP objects will be cleaned up during calls to
1787 root 1.55 C<IO::AIO::poll_cb>, just like any other request.
1788    
1789 root 1.62 =item * They can be canceled like any other request. Canceling will cancel not
1790 root 1.59 only the request itself, but also all requests it contains.
1791 root 1.55
1792 root 1.62 =item * They can also can also be added to other IO::AIO::GRP objects.
1793 root 1.55
1794 root 1.62 =item * You must not add requests to a group from within the group callback (or
1795 root 1.60 any later time).
1796    
1797 root 1.62 =back
1798    
1799 root 1.55 Their lifetime, simplified, looks like this: when they are empty, they
1800     will finish very quickly. If they contain only requests that are in the
1801     C<done> state, they will also finish. Otherwise they will continue to
1802     exist.
1803    
1804 root 1.133 That means after creating a group you have some time to add requests
1805     (precisely before the callback has been invoked, which is only done within
1806     the C<poll_cb>). And in the callbacks of those requests, you can add
1807     further requests to the group. And only when all those requests have
1808     finished will the the group itself finish.
1809 root 1.57
1810 root 1.55 =over 4
1811    
1812 root 1.65 =item add $grp ...
1813    
1814 root 1.55 =item $grp->add (...)
1815    
1816 root 1.57 Add one or more requests to the group. Any type of L<IO::AIO::REQ> can
1817     be added, including other groups, as long as you do not create circular
1818     dependencies.
1819    
1820     Returns all its arguments.
1821 root 1.55
1822 root 1.74 =item $grp->cancel_subs
1823    
1824     Cancel all subrequests and clears any feeder, but not the group request
1825     itself. Useful when you queued a lot of events but got a result early.
1826    
1827 root 1.168 The group request will finish normally (you cannot add requests to the
1828     group).
1829    
1830 root 1.58 =item $grp->result (...)
1831    
1832     Set the result value(s) that will be passed to the group callback when all
1833 root 1.120 subrequests have finished and set the groups errno to the current value
1834 root 1.80 of errno (just like calling C<errno> without an error number). By default,
1835     no argument will be passed and errno is zero.
1836    
1837     =item $grp->errno ([$errno])
1838    
1839     Sets the group errno value to C<$errno>, or the current value of errno
1840     when the argument is missing.
1841    
1842     Every aio request has an associated errno value that is restored when
1843     the callback is invoked. This method lets you change this value from its
1844     default (0).
1845    
1846     Calling C<result> will also set errno, so make sure you either set C<$!>
1847     before the call to C<result>, or call c<errno> after it.
1848 root 1.58
1849 root 1.65 =item feed $grp $callback->($grp)
1850 root 1.60
1851     Sets a feeder/generator on this group: every group can have an attached
1852     generator that generates requests if idle. The idea behind this is that,
1853     although you could just queue as many requests as you want in a group,
1854 root 1.139 this might starve other requests for a potentially long time. For example,
1855 root 1.211 C<aio_scandir> might generate hundreds of thousands of C<aio_stat>
1856     requests, delaying any later requests for a long time.
1857 root 1.60
1858     To avoid this, and allow incremental generation of requests, you can
1859     instead a group and set a feeder on it that generates those requests. The
1860 root 1.68 feed callback will be called whenever there are few enough (see C<limit>,
1861 root 1.60 below) requests active in the group itself and is expected to queue more
1862     requests.
1863    
1864 root 1.68 The feed callback can queue as many requests as it likes (i.e. C<add> does
1865     not impose any limits).
1866 root 1.60
1867 root 1.65 If the feed does not queue more requests when called, it will be
1868 root 1.60 automatically removed from the group.
1869    
1870 root 1.138 If the feed limit is C<0> when this method is called, it will be set to
1871     C<2> automatically.
1872 root 1.60
1873     Example:
1874    
1875     # stat all files in @files, but only ever use four aio requests concurrently:
1876    
1877     my $grp = aio_group sub { print "finished\n" };
1878 root 1.68 limit $grp 4;
1879 root 1.65 feed $grp sub {
1880 root 1.60 my $file = pop @files
1881     or return;
1882    
1883     add $grp aio_stat $file, sub { ... };
1884 root 1.65 };
1885 root 1.60
1886 root 1.68 =item limit $grp $num
1887 root 1.60
1888     Sets the feeder limit for the group: The feeder will be called whenever
1889     the group contains less than this many requests.
1890    
1891     Setting the limit to C<0> will pause the feeding process.
1892    
1893 root 1.138 The default value for the limit is C<0>, but note that setting a feeder
1894     automatically bumps it up to C<2>.
1895    
1896 root 1.55 =back
1897    
1898 root 1.294
1899 root 1.5 =head2 SUPPORT FUNCTIONS
1900    
1901 root 1.86 =head3 EVENT PROCESSING AND EVENT LOOP INTEGRATION
1902    
1903 root 1.5 =over 4
1904    
1905     =item $fileno = IO::AIO::poll_fileno
1906    
1907 root 1.20 Return the I<request result pipe file descriptor>. This filehandle must be
1908 root 1.156 polled for reading by some mechanism outside this module (e.g. EV, Glib,
1909     select and so on, see below or the SYNOPSIS). If the pipe becomes readable
1910     you have to call C<poll_cb> to check the results.
1911 root 1.5
1912     See C<poll_cb> for an example.
1913    
1914     =item IO::AIO::poll_cb
1915    
1916 root 1.240 Process some requests that have reached the result phase (i.e. they have
1917     been executed but the results are not yet reported). You have to call
1918     this "regularly" to finish outstanding requests.
1919    
1920     Returns C<0> if all events could be processed (or there were no
1921     events to process), or C<-1> if it returned earlier for whatever
1922     reason. Returns immediately when no events are outstanding. The amount
1923     of events processed depends on the settings of C<IO::AIO::max_poll_req>,
1924     C<IO::AIO::max_poll_time> and C<IO::AIO::max_outstanding>.
1925    
1926     If not all requests were processed for whatever reason, the poll file
1927     descriptor will still be ready when C<poll_cb> returns, so normally you
1928     don't have to do anything special to have it called later.
1929 root 1.78
1930 root 1.192 Apart from calling C<IO::AIO::poll_cb> when the event filehandle becomes
1931     ready, it can be beneficial to call this function from loops which submit
1932     a lot of requests, to make sure the results get processed when they become
1933     available and not just when the loop is finished and the event loop takes
1934     over again. This function returns very fast when there are no outstanding
1935     requests.
1936    
1937 root 1.20 Example: Install an Event watcher that automatically calls
1938 root 1.156 IO::AIO::poll_cb with high priority (more examples can be found in the
1939     SYNOPSIS section, at the top of this document):
1940 root 1.5
1941     Event->io (fd => IO::AIO::poll_fileno,
1942     poll => 'r', async => 1,
1943     cb => \&IO::AIO::poll_cb);
1944    
1945 root 1.175 =item IO::AIO::poll_wait
1946    
1947 root 1.240 Wait until either at least one request is in the result phase or no
1948     requests are outstanding anymore.
1949    
1950     This is useful if you want to synchronously wait for some requests to
1951     become ready, without actually handling them.
1952 root 1.175
1953     See C<nreqs> for an example.
1954    
1955     =item IO::AIO::poll
1956    
1957     Waits until some requests have been handled.
1958    
1959     Returns the number of requests processed, but is otherwise strictly
1960     equivalent to:
1961    
1962     IO::AIO::poll_wait, IO::AIO::poll_cb
1963    
1964     =item IO::AIO::flush
1965    
1966     Wait till all outstanding AIO requests have been handled.
1967    
1968     Strictly equivalent to:
1969    
1970     IO::AIO::poll_wait, IO::AIO::poll_cb
1971     while IO::AIO::nreqs;
1972    
1973 root 1.294 This function can be useful at program aborts, to make sure outstanding
1974     I/O has been done (C<IO::AIO> uses an C<END> block which already calls
1975     this function on normal exits), or when you are merely using C<IO::AIO>
1976     for its more advanced functions, rather than for async I/O, e.g.:
1977    
1978     my ($dirs, $nondirs);
1979     IO::AIO::aio_scandir "/tmp", 0, sub { ($dirs, $nondirs) = @_ };
1980     IO::AIO::flush;
1981     # $dirs, $nondirs are now set
1982    
1983 root 1.86 =item IO::AIO::max_poll_reqs $nreqs
1984    
1985     =item IO::AIO::max_poll_time $seconds
1986    
1987     These set the maximum number of requests (default C<0>, meaning infinity)
1988     that are being processed by C<IO::AIO::poll_cb> in one call, respectively
1989     the maximum amount of time (default C<0>, meaning infinity) spent in
1990     C<IO::AIO::poll_cb> to process requests (more correctly the mininum amount
1991     of time C<poll_cb> is allowed to use).
1992 root 1.78
1993 root 1.89 Setting C<max_poll_time> to a non-zero value creates an overhead of one
1994     syscall per request processed, which is not normally a problem unless your
1995     callbacks are really really fast or your OS is really really slow (I am
1996     not mentioning Solaris here). Using C<max_poll_reqs> incurs no overhead.
1997    
1998 root 1.86 Setting these is useful if you want to ensure some level of
1999     interactiveness when perl is not fast enough to process all requests in
2000     time.
2001 root 1.78
2002 root 1.86 For interactive programs, values such as C<0.01> to C<0.1> should be fine.
2003 root 1.78
2004     Example: Install an Event watcher that automatically calls
2005 root 1.89 IO::AIO::poll_cb with low priority, to ensure that other parts of the
2006 root 1.78 program get the CPU sometimes even under high AIO load.
2007    
2008 root 1.86 # try not to spend much more than 0.1s in poll_cb
2009     IO::AIO::max_poll_time 0.1;
2010    
2011     # use a low priority so other tasks have priority
2012 root 1.78 Event->io (fd => IO::AIO::poll_fileno,
2013     poll => 'r', nice => 1,
2014 root 1.86 cb => &IO::AIO::poll_cb);
2015 root 1.78
2016 root 1.104 =back
2017    
2018 root 1.294
2019 root 1.86 =head3 CONTROLLING THE NUMBER OF THREADS
2020 root 1.13
2021 root 1.105 =over
2022    
2023 root 1.5 =item IO::AIO::min_parallel $nthreads
2024    
2025 root 1.61 Set the minimum number of AIO threads to C<$nthreads>. The current
2026     default is C<8>, which means eight asynchronous operations can execute
2027     concurrently at any one time (the number of outstanding requests,
2028     however, is unlimited).
2029 root 1.5
2030 root 1.34 IO::AIO starts threads only on demand, when an AIO request is queued and
2031 root 1.86 no free thread exists. Please note that queueing up a hundred requests can
2032     create demand for a hundred threads, even if it turns out that everything
2033     is in the cache and could have been processed faster by a single thread.
2034 root 1.34
2035 root 1.61 It is recommended to keep the number of threads relatively low, as some
2036     Linux kernel versions will scale negatively with the number of threads
2037     (higher parallelity => MUCH higher latency). With current Linux 2.6
2038     versions, 4-32 threads should be fine.
2039 root 1.5
2040 root 1.34 Under most circumstances you don't need to call this function, as the
2041     module selects a default that is suitable for low to moderate load.
2042 root 1.5
2043     =item IO::AIO::max_parallel $nthreads
2044    
2045 root 1.34 Sets the maximum number of AIO threads to C<$nthreads>. If more than the
2046     specified number of threads are currently running, this function kills
2047     them. This function blocks until the limit is reached.
2048    
2049     While C<$nthreads> are zero, aio requests get queued but not executed
2050     until the number of threads has been increased again.
2051 root 1.5
2052     This module automatically runs C<max_parallel 0> at program end, to ensure
2053     that all threads are killed and that there are no outstanding requests.
2054    
2055     Under normal circumstances you don't need to call this function.
2056    
2057 root 1.86 =item IO::AIO::max_idle $nthreads
2058    
2059 root 1.188 Limit the number of threads (default: 4) that are allowed to idle
2060     (i.e., threads that did not get a request to process within the idle
2061     timeout (default: 10 seconds). That means if a thread becomes idle while
2062     C<$nthreads> other threads are also idle, it will free its resources and
2063     exit.
2064 root 1.86
2065     This is useful when you allow a large number of threads (e.g. 100 or 1000)
2066     to allow for extremely high load situations, but want to free resources
2067     under normal circumstances (1000 threads can easily consume 30MB of RAM).
2068    
2069     The default is probably ok in most situations, especially if thread
2070     creation is fast. If thread creation is very slow on your system you might
2071     want to use larger values.
2072    
2073 root 1.188 =item IO::AIO::idle_timeout $seconds
2074    
2075     Sets the minimum idle timeout (default 10) after which worker threads are
2076     allowed to exit. SEe C<IO::AIO::max_idle>.
2077    
2078 root 1.123 =item IO::AIO::max_outstanding $maxreqs
2079 root 1.5
2080 root 1.195 Sets the maximum number of outstanding requests to C<$nreqs>. If
2081     you do queue up more than this number of requests, the next call to
2082     C<IO::AIO::poll_cb> (and other functions calling C<poll_cb>, such as
2083     C<IO::AIO::flush> or C<IO::AIO::poll>) will block until the limit is no
2084     longer exceeded.
2085    
2086     In other words, this setting does not enforce a queue limit, but can be
2087     used to make poll functions block if the limit is exceeded.
2088    
2089 root 1.313 This is a bad function to use in interactive programs because it blocks,
2090     and a bad way to reduce concurrency because it is inexact. If you need to
2091     issue many requests without being able to call a poll function on demand,
2092     it is better to use an C<aio_group> together with a feed callback.
2093 root 1.79
2094 root 1.313 Its main use is in scripts without an event loop - when you want to stat a
2095     lot of files, you can write something like this:
2096 root 1.195
2097     IO::AIO::max_outstanding 32;
2098    
2099     for my $path (...) {
2100     aio_stat $path , ...;
2101     IO::AIO::poll_cb;
2102     }
2103    
2104     IO::AIO::flush;
2105    
2106 root 1.313 The call to C<poll_cb> inside the loop will normally return instantly,
2107     allowing the loop to progress, but as soon as more than C<32> requests
2108     are in-flight, it will block until some requests have been handled. This
2109     keeps the loop from pushing a large number of C<aio_stat> requests onto
2110     the queue (which, with many paths to stat, can use up a lot of memory).
2111 root 1.195
2112     The default value for C<max_outstanding> is very large, so there is no
2113     practical limit on the number of outstanding requests.
2114 root 1.5
2115 root 1.104 =back
2116    
2117 root 1.294
2118 root 1.86 =head3 STATISTICAL INFORMATION
2119    
2120 root 1.104 =over
2121    
2122 root 1.86 =item IO::AIO::nreqs
2123    
2124     Returns the number of requests currently in the ready, execute or pending
2125     states (i.e. for which their callback has not been invoked yet).
2126    
2127     Example: wait till there are no outstanding requests anymore:
2128    
2129     IO::AIO::poll_wait, IO::AIO::poll_cb
2130     while IO::AIO::nreqs;
2131    
2132     =item IO::AIO::nready
2133    
2134     Returns the number of requests currently in the ready state (not yet
2135     executed).
2136    
2137     =item IO::AIO::npending
2138    
2139     Returns the number of requests currently in the pending state (executed,
2140     but not yet processed by poll_cb).
2141    
2142 root 1.5 =back
2143    
2144 root 1.294
2145 root 1.289 =head3 SUBSECOND STAT TIME ACCESS
2146    
2147     Both C<aio_stat>/C<aio_lstat> and perl's C<stat>/C<lstat> functions can
2148     generally find access/modification and change times with subsecond time
2149     accuracy of the system supports it, but perl's built-in functions only
2150     return the integer part.
2151    
2152     The following functions return the timestamps of the most recent
2153     stat with subsecond precision on most systems and work both after
2154     C<aio_stat>/C<aio_lstat> and perl's C<stat>/C<lstat> calls. Their return
2155     value is only meaningful after a successful C<stat>/C<lstat> call, or
2156     during/after a successful C<aio_stat>/C<aio_lstat> callback.
2157    
2158     This is similar to the L<Time::HiRes> C<stat> functions, but can return
2159     full resolution without rounding and work with standard perl C<stat>,
2160     alleviating the need to call the special C<Time::HiRes> functions, which
2161     do not act like their perl counterparts.
2162    
2163     On operating systems or file systems where subsecond time resolution is
2164     not supported or could not be detected, a fractional part of C<0> is
2165     returned, so it is always safe to call these functions.
2166    
2167     =over 4
2168    
2169 root 1.294 =item $seconds = IO::AIO::st_atime, IO::AIO::st_mtime, IO::AIO::st_ctime, IO::AIO::st_btime
2170 root 1.289
2171 root 1.294 Return the access, modication, change or birth time, respectively,
2172     including fractional part. Due to the limited precision of floating point,
2173     the accuracy on most platforms is only a bit better than milliseconds
2174     for times around now - see the I<nsec> function family, below, for full
2175 root 1.289 accuracy.
2176    
2177 root 1.294 File birth time is only available when the OS and perl support it (on
2178     FreeBSD and NetBSD at the time of this writing, although support is
2179 root 1.301 adaptive, so if your OS/perl gains support, IO::AIO can take advantage of
2180 root 1.294 it). On systems where it isn't available, C<0> is currently returned, but
2181     this might change to C<undef> in a future version.
2182 root 1.289
2183 root 1.321 =item $seconds = IO::AIO::st_atime2, IO::AIO::st_mtime2, IO::AIO::st_ctime2, IO::AIO::st_btime2
2184    
2185     Like the previous, except they return the timestamp as an array reference
2186     with integer second and nanosecond parts (suitable as input to other
2187     functions in C<IO::AIO>).
2188    
2189     stat "." or die;
2190     my $mtime = IO::AIO::st_mtime2;
2191     printf "seconds: %d, nanoseconds: %d\n", $mtime->[0], $mtime->[1];
2192    
2193 root 1.294 =item ($atime, $mtime, $ctime, $btime, ...) = IO::AIO::st_xtime
2194 root 1.289
2195 root 1.294 Returns access, modification, change and birth time all in one go, and
2196     maybe more times in the future version.
2197 root 1.289
2198 root 1.321 =item ($atime, $mtime, $ctime, $btime, ...) = IO::AIO::st_xtime2
2199    
2200     Like C<IO::AIO::st_xtime>, but rteturns all times as array references, as
2201     in C<st_atime2>.
2202    
2203 root 1.294 =item $nanoseconds = IO::AIO::st_atimensec, IO::AIO::st_mtimensec, IO::AIO::st_ctimensec, IO::AIO::st_btimensec
2204    
2205     Return the fractional access, modifcation, change or birth time, in nanoseconds,
2206 root 1.289 as an integer in the range C<0> to C<999999999>.
2207    
2208 root 1.294 Note that no accessors are provided for access, modification and
2209     change times - you need to get those from C<stat _> if required (C<int
2210     IO::AIO::st_atime> and so on will I<not> generally give you the correct
2211     value).
2212    
2213     =item $seconds = IO::AIO::st_btimesec
2214    
2215     The (integral) seconds part of the file birth time, if available.
2216    
2217     =item ($atime, $mtime, $ctime, $btime, ...) = IO::AIO::st_xtimensec
2218 root 1.290
2219 root 1.294 Like the functions above, but returns all four times in one go (and maybe
2220 root 1.290 more in future versions).
2221    
2222 root 1.294 =item $counter = IO::AIO::st_gen
2223    
2224 root 1.296 Returns the generation counter (in practice this is just a random number)
2225     of the file. This is only available on platforms which have this member in
2226     their C<struct stat> (most BSDs at the time of this writing) and generally
2227     only to the root usert. If unsupported, C<0> is returned, but this might
2228     change to C<undef> in a future version.
2229 root 1.294
2230 root 1.289 =back
2231    
2232     Example: print the high resolution modification time of F</etc>, using
2233     C<stat>, and C<IO::AIO::aio_stat>.
2234    
2235     if (stat "/etc") {
2236 root 1.290 printf "stat(/etc) mtime: %f\n", IO::AIO::st_mtime;
2237 root 1.289 }
2238    
2239     IO::AIO::aio_stat "/etc", sub {
2240     $_[0]
2241     and return;
2242    
2243 root 1.290 printf "aio_stat(/etc) mtime: %d.%09d\n", (stat _)[9], IO::AIO::st_mtimensec;
2244 root 1.289 };
2245    
2246     IO::AIO::flush;
2247    
2248     Output of the awbove on my system, showing reduced and full accuracy:
2249    
2250     stat(/etc) mtime: 1534043702.020808
2251     aio_stat(/etc) mtime: 1534043702.020807792
2252    
2253 root 1.294
2254 root 1.157 =head3 MISCELLANEOUS FUNCTIONS
2255    
2256 root 1.248 IO::AIO implements some functions that are useful when you want to use
2257     some "Advanced I/O" function not available to in Perl, without going the
2258     "Asynchronous I/O" route. Many of these have an asynchronous C<aio_*>
2259     counterpart.
2260 root 1.157
2261     =over 4
2262    
2263 root 1.315 =item $retval = IO::AIO::fexecve $fh, $argv, $envp
2264    
2265     A more-or-less direct equivalent to the POSIX C<fexecve> functions, which
2266     allows you to specify the program to be executed via a file descriptor (or
2267     handle). Returns C<-1> and sets errno to C<ENOSYS> if not available.
2268    
2269 root 1.316 =item $retval = IO::AIO::mount $special, $path, $fstype, $flags = 0, $data = undef
2270    
2271     Calls the GNU/Linux mount syscall with the given arguments. All except
2272     C<$flags> are strings, and if C<$data> is C<undef>, a C<NULL> will be
2273     passed.
2274    
2275     The following values for C<$flags> are available:
2276    
2277     C<IO::AIO::MS_RDONLY>, C<IO::AIO::MS_NOSUID>, C<IO::AIO::MS_NODEV>, C<IO::AIO::MS_NOEXEC>, C<IO::AIO::MS_SYNCHRONOUS>,
2278     C<IO::AIO::MS_REMOUNT>, C<IO::AIO::MS_MANDLOCK>, C<IO::AIO::MS_DIRSYNC>, C<IO::AIO::MS_NOATIME>,
2279     C<IO::AIO::MS_NODIRATIME>, C<IO::AIO::MS_BIND>, C<IO::AIO::MS_MOVE>, C<IO::AIO::MS_REC>, C<IO::AIO::MS_SILENT>,
2280     C<IO::AIO::MS_POSIXACL>, C<IO::AIO::MS_UNBINDABLE>, C<IO::AIO::MS_PRIVATE>, C<IO::AIO::MS_SLAVE>, C<IO::AIO::MS_SHARED>,
2281     C<IO::AIO::MS_RELATIME>, C<IO::AIO::MS_KERNMOUNT>, C<IO::AIO::MS_I_VERSION>, C<IO::AIO::MS_STRICTATIME>,
2282     C<IO::AIO::MS_LAZYTIME>, C<IO::AIO::MS_ACTIVE>, C<IO::AIO::MS_NOUSER>, C<IO::AIO::MS_RMT_MASK>, C<IO::AIO::MS_MGC_VAL> and
2283     C<IO::AIO::MS_MGC_MSK>.
2284    
2285     =item $retval = IO::AIO::umount $path, $flags = 0
2286    
2287     Invokes the GNU/Linux C<umount> or C<umount2> syscalls. Always calls
2288     C<umount> if C<$flags> is C<0>, otherwqise always tries to call
2289     C<umount2>.
2290    
2291     The following C<$flags> are available:
2292    
2293     C<IO::AIO::MNT_FORCE>, C<IO::AIO::MNT_DETACH>, C<IO::AIO::MNT_EXPIRE> and C<IO::AIO::UMOUNT_NOFOLLOW>.
2294    
2295 root 1.275 =item $numfd = IO::AIO::get_fdlimit
2296    
2297     Tries to find the current file descriptor limit and returns it, or
2298     C<undef> and sets C<$!> in case of an error. The limit is one larger than
2299     the highest valid file descriptor number.
2300    
2301     =item IO::AIO::min_fdlimit [$numfd]
2302    
2303     Try to increase the current file descriptor limit(s) to at least C<$numfd>
2304     by changing the soft or hard file descriptor resource limit. If C<$numfd>
2305     is missing, it will try to set a very high limit, although this is not
2306     recommended when you know the actual minimum that you require.
2307    
2308     If the limit cannot be raised enough, the function makes a best-effort
2309     attempt to increase the limit as much as possible, using various
2310     tricks, while still failing. You can query the resulting limit using
2311     C<IO::AIO::get_fdlimit>.
2312    
2313 root 1.276 If an error occurs, returns C<undef> and sets C<$!>, otherwise returns
2314     true.
2315 root 1.275
2316 root 1.157 =item IO::AIO::sendfile $ofh, $ifh, $offset, $count
2317    
2318     Calls the C<eio_sendfile_sync> function, which is like C<aio_sendfile>,
2319     but is blocking (this makes most sense if you know the input data is
2320     likely cached already and the output filehandle is set to non-blocking
2321     operations).
2322    
2323     Returns the number of bytes copied, or C<-1> on error.
2324    
2325     =item IO::AIO::fadvise $fh, $offset, $len, $advice
2326    
2327 root 1.184 Simply calls the C<posix_fadvise> function (see its
2328 root 1.157 manpage for details). The following advice constants are
2329 root 1.207 available: C<IO::AIO::FADV_NORMAL>, C<IO::AIO::FADV_SEQUENTIAL>,
2330 root 1.157 C<IO::AIO::FADV_RANDOM>, C<IO::AIO::FADV_NOREUSE>,
2331     C<IO::AIO::FADV_WILLNEED>, C<IO::AIO::FADV_DONTNEED>.
2332    
2333     On systems that do not implement C<posix_fadvise>, this function returns
2334     ENOSYS, otherwise the return value of C<posix_fadvise>.
2335    
2336 root 1.184 =item IO::AIO::madvise $scalar, $offset, $len, $advice
2337    
2338     Simply calls the C<posix_madvise> function (see its
2339     manpage for details). The following advice constants are
2340 root 1.321 available:
2341     C<IO::AIO::MADV_NORMAL>,
2342     C<IO::AIO::MADV_SEQUENTIAL>,
2343     C<IO::AIO::MADV_RANDOM>,
2344     C<IO::AIO::MADV_WILLNEED> and
2345     C<IO::AIO::MADV_DONTNEED>,
2346     as well as the following system-specific constants (when not available, the are C<0>):
2347     C<IO::AIO::MADV_FREE>,
2348     C<IO::AIO::MADV_REMOVE>,
2349     C<IO::AIO::MADV_DONTFORK>,
2350     C<IO::AIO::MADV_DOFORK>,
2351     C<IO::AIO::MADV_MERGEABLE>,
2352     C<IO::AIO::MADV_UNMERGEABLE>,
2353     C<IO::AIO::MADV_HUGEPAGE>,
2354     C<IO::AIO::MADV_NOHUGEPAGE>,
2355     C<IO::AIO::MADV_DONTDUMP>,
2356     C<IO::AIO::MADV_DODUMP>,
2357     C<IO::AIO::MADV_WIPEONFORK>,
2358     C<IO::AIO::MADV_KEEPONFORK>,
2359     C<IO::AIO::MADV_COLD>,
2360     C<IO::AIO::MADV_PAGEOUT>,
2361     C<IO::AIO::MADV_POPULATE_READ>,
2362     C<IO::AIO::MADV_POPULATE_WRITE>,
2363     C<IO::AIO::MADV_DONTNEED_LOCKED>,
2364     C<IO::AIO::MADV_HWPOISON> and
2365     C<IO::AIO::MADV_SOFT_OFFLINE>.
2366 root 1.184
2367 root 1.269 If C<$offset> is negative, counts from the end. If C<$length> is negative,
2368     the remaining length of the C<$scalar> is used. If possible, C<$length>
2369     will be reduced to fit into the C<$scalar>.
2370    
2371 root 1.184 On systems that do not implement C<posix_madvise>, this function returns
2372     ENOSYS, otherwise the return value of C<posix_madvise>.
2373    
2374     =item IO::AIO::mprotect $scalar, $offset, $len, $protect
2375    
2376     Simply calls the C<mprotect> function on the preferably AIO::mmap'ed
2377     $scalar (see its manpage for details). The following protect
2378 root 1.207 constants are available: C<IO::AIO::PROT_NONE>, C<IO::AIO::PROT_READ>,
2379 root 1.184 C<IO::AIO::PROT_WRITE>, C<IO::AIO::PROT_EXEC>.
2380    
2381 root 1.269 If C<$offset> is negative, counts from the end. If C<$length> is negative,
2382     the remaining length of the C<$scalar> is used. If possible, C<$length>
2383     will be reduced to fit into the C<$scalar>.
2384    
2385 root 1.184 On systems that do not implement C<mprotect>, this function returns
2386     ENOSYS, otherwise the return value of C<mprotect>.
2387    
2388 root 1.176 =item IO::AIO::mmap $scalar, $length, $prot, $flags, $fh[, $offset]
2389    
2390     Memory-maps a file (or anonymous memory range) and attaches it to the
2391 root 1.228 given C<$scalar>, which will act like a string scalar. Returns true on
2392     success, and false otherwise.
2393 root 1.176
2394 root 1.268 The scalar must exist, but its contents do not matter - this means you
2395     cannot use a nonexistant array or hash element. When in doubt, C<undef>
2396     the scalar first.
2397    
2398     The only operations allowed on the mmapped scalar are C<substr>/C<vec>,
2399     which don't change the string length, and most read-only operations such
2400     as copying it or searching it with regexes and so on.
2401 root 1.176
2402     Anything else is unsafe and will, at best, result in memory leaks.
2403    
2404     The memory map associated with the C<$scalar> is automatically removed
2405 root 1.268 when the C<$scalar> is undef'd or destroyed, or when the C<IO::AIO::mmap>
2406     or C<IO::AIO::munmap> functions are called on it.
2407 root 1.176
2408     This calls the C<mmap>(2) function internally. See your system's manual
2409     page for details on the C<$length>, C<$prot> and C<$flags> parameters.
2410    
2411     The C<$length> must be larger than zero and smaller than the actual
2412     filesize.
2413    
2414     C<$prot> is a combination of C<IO::AIO::PROT_NONE>, C<IO::AIO::PROT_EXEC>,
2415     C<IO::AIO::PROT_READ> and/or C<IO::AIO::PROT_WRITE>,
2416    
2417 root 1.256 C<$flags> can be a combination of
2418     C<IO::AIO::MAP_SHARED> or
2419     C<IO::AIO::MAP_PRIVATE>,
2420     or a number of system-specific flags (when not available, the are C<0>):
2421     C<IO::AIO::MAP_ANONYMOUS> (which is set to C<MAP_ANON> if your system only provides this constant),
2422     C<IO::AIO::MAP_LOCKED>,
2423     C<IO::AIO::MAP_NORESERVE>,
2424     C<IO::AIO::MAP_POPULATE>,
2425     C<IO::AIO::MAP_NONBLOCK>,
2426     C<IO::AIO::MAP_FIXED>,
2427     C<IO::AIO::MAP_GROWSDOWN>,
2428     C<IO::AIO::MAP_32BIT>,
2429 root 1.311 C<IO::AIO::MAP_HUGETLB>,
2430     C<IO::AIO::MAP_STACK>,
2431     C<IO::AIO::MAP_FIXED_NOREPLACE>,
2432     C<IO::AIO::MAP_SHARED_VALIDATE>,
2433 root 1.321 C<IO::AIO::MAP_SYNC>,
2434     C<IO::AIO::MAP_UNINITIALIZED>,
2435     C<IO::AIO::MAP_DENYWRITE>,
2436     C<IO::AIO::MAP_EXECUTABLE>,
2437     C<IO::AIO::MAP_LOCKED> and
2438     C<IO::AIO::MAP_DROPPABLE>.
2439 root 1.176
2440     If C<$fh> is C<undef>, then a file descriptor of C<-1> is passed.
2441    
2442 root 1.179 C<$offset> is the offset from the start of the file - it generally must be
2443     a multiple of C<IO::AIO::PAGESIZE> and defaults to C<0>.
2444    
2445 root 1.177 Example:
2446    
2447     use Digest::MD5;
2448     use IO::AIO;
2449    
2450     open my $fh, "<verybigfile"
2451     or die "$!";
2452    
2453     IO::AIO::mmap my $data, -s $fh, IO::AIO::PROT_READ, IO::AIO::MAP_SHARED, $fh
2454     or die "verybigfile: $!";
2455    
2456     my $fast_md5 = md5 $data;
2457    
2458 root 1.176 =item IO::AIO::munmap $scalar
2459    
2460     Removes a previous mmap and undefines the C<$scalar>.
2461    
2462 root 1.287 =item IO::AIO::mremap $scalar, $new_length, $flags = MREMAP_MAYMOVE[, $new_address = 0]
2463 root 1.285
2464     Calls the Linux-specific mremap(2) system call. The C<$scalar> must have
2465     been mapped by C<IO::AIO::mmap>, and C<$flags> must currently either be
2466     C<0> or C<IO::AIO::MREMAP_MAYMOVE>.
2467    
2468     Returns true if successful, and false otherwise. If the underlying mmapped
2469     region has changed address, then the true value has the numerical value
2470     C<1>, otherwise it has the numerical value C<0>:
2471    
2472     my $success = IO::AIO::mremap $mmapped, 8192, IO::AIO::MREMAP_MAYMOVE
2473     or die "mremap: $!";
2474    
2475     if ($success*1) {
2476     warn "scalar has chanegd address in memory\n";
2477     }
2478    
2479     C<IO::AIO::MREMAP_FIXED> and the C<$new_address> argument are currently
2480     implemented, but not supported and might go away in a future version.
2481    
2482     On systems where this call is not supported or is not emulated, this call
2483     returns falls and sets C<$!> to C<ENOSYS>.
2484    
2485 root 1.298 =item IO::AIO::mlockall $flags
2486    
2487     Calls the C<eio_mlockall_sync> function, which is like C<aio_mlockall>,
2488     but is blocking.
2489    
2490 root 1.182 =item IO::AIO::munlock $scalar, $offset = 0, $length = undef
2491 root 1.174
2492 root 1.182 Calls the C<munlock> function, undoing the effects of a previous
2493     C<aio_mlock> call (see its description for details).
2494 root 1.174
2495     =item IO::AIO::munlockall
2496    
2497     Calls the C<munlockall> function.
2498    
2499     On systems that do not implement C<munlockall>, this function returns
2500     ENOSYS, otherwise the return value of C<munlockall>.
2501    
2502 root 1.305 =item $fh = IO::AIO::accept4 $r_fh, $sockaddr, $sockaddr_maxlen, $flags
2503    
2504     Uses the GNU/Linux C<accept4(2)> syscall, if available, to accept a socket
2505     and return the new file handle on success, or sets C<$!> and returns
2506     C<undef> on error.
2507    
2508     The remote name of the new socket will be stored in C<$sockaddr>, which
2509     will be extended to allow for at least C<$sockaddr_maxlen> octets. If the
2510     socket name does not fit into C<$sockaddr_maxlen> octets, this is signaled
2511     by returning a longer string in C<$sockaddr>, which might or might not be
2512     truncated.
2513    
2514     To accept name-less sockets, use C<undef> for C<$sockaddr> and C<0> for
2515     C<$sockaddr_maxlen>.
2516    
2517 root 1.308 The main reasons to use this syscall rather than portable C<accept(2)>
2518 root 1.305 are that you can specify C<SOCK_NONBLOCK> and/or C<SOCK_CLOEXEC>
2519     flags and you can accept name-less sockets by specifying C<0> for
2520     C<$sockaddr_maxlen>, which is sadly not possible with perl's interface to
2521     C<accept>.
2522    
2523 root 1.225 =item IO::AIO::splice $r_fh, $r_off, $w_fh, $w_off, $length, $flags
2524    
2525     Calls the GNU/Linux C<splice(2)> syscall, if available. If C<$r_off> or
2526     C<$w_off> are C<undef>, then C<NULL> is passed for these, otherwise they
2527     should be the file offset.
2528    
2529 root 1.227 C<$r_fh> and C<$w_fh> should not refer to the same file, as splice might
2530     silently corrupt the data in this case.
2531    
2532 root 1.225 The following symbol flag values are available: C<IO::AIO::SPLICE_F_MOVE>,
2533     C<IO::AIO::SPLICE_F_NONBLOCK>, C<IO::AIO::SPLICE_F_MORE> and
2534     C<IO::AIO::SPLICE_F_GIFT>.
2535    
2536     See the C<splice(2)> manpage for details.
2537    
2538     =item IO::AIO::tee $r_fh, $w_fh, $length, $flags
2539    
2540 root 1.248 Calls the GNU/Linux C<tee(2)> syscall, see its manpage and the
2541 root 1.225 description for C<IO::AIO::splice> above for details.
2542    
2543 root 1.243 =item $actual_size = IO::AIO::pipesize $r_fh[, $new_size]
2544    
2545     Attempts to query or change the pipe buffer size. Obviously works only
2546     on pipes, and currently works only on GNU/Linux systems, and fails with
2547     C<-1>/C<ENOSYS> everywhere else. If anybody knows how to influence pipe buffer
2548     size on other systems, drop me a note.
2549    
2550 root 1.253 =item ($rfh, $wfh) = IO::AIO::pipe2 [$flags]
2551    
2552     This is a direct interface to the Linux L<pipe2(2)> system call. If
2553     C<$flags> is missing or C<0>, then this should be the same as a call to
2554 root 1.254 perl's built-in C<pipe> function and create a new pipe, and works on
2555     systems that lack the pipe2 syscall. On win32, this case invokes C<_pipe
2556     (..., 4096, O_BINARY)>.
2557 root 1.253
2558     If C<$flags> is non-zero, it tries to invoke the pipe2 system call with
2559     the given flags (Linux 2.6.27, glibc 2.9).
2560    
2561     On success, the read and write file handles are returned.
2562    
2563     On error, nothing will be returned. If the pipe2 syscall is missing and
2564     C<$flags> is non-zero, fails with C<ENOSYS>.
2565    
2566     Please refer to L<pipe2(2)> for more info on the C<$flags>, but at the
2567     time of this writing, C<IO::AIO::O_CLOEXEC>, C<IO::AIO::O_NONBLOCK> and
2568     C<IO::AIO::O_DIRECT> (Linux 3.4, for packet-based pipes) were supported.
2569    
2570 root 1.281 Example: create a pipe race-free w.r.t. threads and fork:
2571    
2572     my ($rfh, $wfh) = IO::AIO::pipe2 IO::AIO::O_CLOEXEC
2573     or die "pipe2: $!\n";
2574    
2575 root 1.302 =item $fh = IO::AIO::memfd_create $pathname[, $flags]
2576    
2577     This is a direct interface to the Linux L<memfd_create(2)> system
2578     call. The (unhelpful) default for C<$flags> is C<0>, but your default
2579     should be C<IO::AIO::MFD_CLOEXEC>.
2580    
2581     On success, the new memfd filehandle is returned, otherwise returns
2582     C<undef>. If the memfd_create syscall is missing, fails with C<ENOSYS>.
2583    
2584     Please refer to L<memfd_create(2)> for more info on this call.
2585    
2586     The following C<$flags> values are available: C<IO::AIO::MFD_CLOEXEC>,
2587 root 1.314 C<IO::AIO::MFD_ALLOW_SEALING>, C<IO::AIO::MFD_HUGETLB>,
2588     C<IO::AIO::MFD_HUGETLB_2MB> and C<IO::AIO::MFD_HUGETLB_1GB>.
2589 root 1.302
2590     Example: create a new memfd.
2591    
2592     my $fh = IO::AIO::memfd_create "somenameforprocfd", IO::AIO::MFD_CLOEXEC
2593 root 1.308 or die "memfd_create: $!\n";
2594    
2595     =item $fh = IO::AIO::pidfd_open $pid[, $flags]
2596    
2597     This is an interface to the Linux L<pidfd_open(2)> system call. The
2598     default for C<$flags> is C<0>.
2599    
2600     On success, a new pidfd filehandle is returned (that is already set to
2601     close-on-exec), otherwise returns C<undef>. If the syscall is missing,
2602     fails with C<ENOSYS>.
2603    
2604     Example: open pid 6341 as pidfd.
2605    
2606     my $fh = IO::AIO::pidfd_open 6341
2607     or die "pidfd_open: $!\n";
2608    
2609     =item $status = IO::AIO::pidfd_send_signal $pidfh, $signal[, $siginfo[, $flags]]
2610    
2611     This is an interface to the Linux L<pidfd_send_signal> system call. The
2612     default for C<$siginfo> is C<undef> and the default for C<$flags> is C<0>.
2613    
2614     Returns the system call status. If the syscall is missing, fails with
2615     C<ENOSYS>.
2616    
2617     When specified, C<$siginfo> must be a reference to a hash with one or more
2618     of the following members:
2619    
2620     =over
2621    
2622     =item code - the C<si_code> member
2623    
2624     =item pid - the C<si_pid> member
2625    
2626     =item uid - the C<si_uid> member
2627    
2628     =item value_int - the C<si_value.sival_int> member
2629    
2630     =item value_ptr - the C<si_value.sival_ptr> member, specified as an integer
2631    
2632     =back
2633    
2634     Example: send a SIGKILL to the specified process.
2635    
2636     my $status = IO::AIO::pidfd_send_signal $pidfh, 9, undef
2637     and die "pidfd_send_signal: $!\n";
2638    
2639     Example: send a SIGKILL to the specified process with extra data.
2640    
2641     my $status = IO::AIO::pidfd_send_signal $pidfh, 9, { code => -1, value_int => 7 }
2642     and die "pidfd_send_signal: $!\n";
2643    
2644     =item $fh = IO::AIO::pidfd_getfd $pidfh, $targetfd[, $flags]
2645    
2646     This is an interface to the Linux L<pidfd_getfd> system call. The default
2647     for C<$flags> is C<0>.
2648    
2649     On success, returns a dup'ed copy of the target file descriptor (specified
2650     as an integer) returned (that is already set to close-on-exec), otherwise
2651     returns C<undef>. If the syscall is missing, fails with C<ENOSYS>.
2652    
2653     Example: get a copy of standard error of another process and print soemthing to it.
2654    
2655     my $errfh = IO::AIO::pidfd_getfd $pidfh, 2
2656     or die "pidfd_getfd: $!\n";
2657     print $errfh "stderr\n";
2658    
2659 root 1.282 =item $fh = IO::AIO::eventfd [$initval, [$flags]]
2660 root 1.281
2661     This is a direct interface to the Linux L<eventfd(2)> system call. The
2662     (unhelpful) defaults for C<$initval> and C<$flags> are C<0> for both.
2663    
2664     On success, the new eventfd filehandle is returned, otherwise returns
2665     C<undef>. If the eventfd syscall is missing, fails with C<ENOSYS>.
2666    
2667     Please refer to L<eventfd(2)> for more info on this call.
2668    
2669     The following symbol flag values are available: C<IO::AIO::EFD_CLOEXEC>,
2670     C<IO::AIO::EFD_NONBLOCK> and C<IO::AIO::EFD_SEMAPHORE> (Linux 2.6.30).
2671    
2672 root 1.282 Example: create a new eventfd filehandle:
2673    
2674 root 1.302 $fh = IO::AIO::eventfd 0, IO::AIO::EFD_CLOEXEC
2675 root 1.282 or die "eventfd: $!\n";
2676    
2677     =item $fh = IO::AIO::timerfd_create $clockid[, $flags]
2678    
2679 root 1.302 This is a direct interface to the Linux L<timerfd_create(2)> system
2680     call. The (unhelpful) default for C<$flags> is C<0>, but your default
2681     should be C<IO::AIO::TFD_CLOEXEC>.
2682 root 1.282
2683     On success, the new timerfd filehandle is returned, otherwise returns
2684 root 1.302 C<undef>. If the timerfd_create syscall is missing, fails with C<ENOSYS>.
2685 root 1.282
2686     Please refer to L<timerfd_create(2)> for more info on this call.
2687    
2688     The following C<$clockid> values are
2689     available: C<IO::AIO::CLOCK_REALTIME>, C<IO::AIO::CLOCK_MONOTONIC>
2690     C<IO::AIO::CLOCK_CLOCK_BOOTTIME> (Linux 3.15)
2691     C<IO::AIO::CLOCK_CLOCK_REALTIME_ALARM> (Linux 3.11) and
2692     C<IO::AIO::CLOCK_CLOCK_BOOTTIME_ALARM> (Linux 3.11).
2693    
2694     The following C<$flags> values are available (Linux
2695     2.6.27): C<IO::AIO::TFD_NONBLOCK> and C<IO::AIO::TFD_CLOEXEC>.
2696    
2697     Example: create a new timerfd and set it to one-second repeated alarms,
2698     then wait for two alarms:
2699    
2700     my $fh = IO::AIO::timerfd_create IO::AIO::CLOCK_BOOTTIME, IO::AIO::TFD_CLOEXEC
2701     or die "timerfd_create: $!\n";
2702    
2703     defined IO::AIO::timerfd_settime $fh, 0, 1, 1
2704     or die "timerfd_settime: $!\n";
2705    
2706     for (1..2) {
2707     8 == sysread $fh, my $buf, 8
2708     or die "timerfd read failure\n";
2709    
2710     printf "number of expirations (likely 1): %d\n",
2711     unpack "Q", $buf;
2712     }
2713    
2714     =item ($cur_interval, $cur_value) = IO::AIO::timerfd_settime $fh, $flags, $new_interval, $nbw_value
2715    
2716     This is a direct interface to the Linux L<timerfd_settime(2)> system
2717     call. Please refer to its manpage for more info on this call.
2718    
2719     The new itimerspec is specified using two (possibly fractional) second
2720     values, C<$new_interval> and C<$new_value>).
2721    
2722     On success, the current interval and value are returned (as per
2723     C<timerfd_gettime>). On failure, the empty list is returned.
2724    
2725     The following C<$flags> values are
2726     available: C<IO::AIO::TFD_TIMER_ABSTIME> and
2727     C<IO::AIO::TFD_TIMER_CANCEL_ON_SET>.
2728    
2729     See C<IO::AIO::timerfd_create> for a full example.
2730    
2731     =item ($cur_interval, $cur_value) = IO::AIO::timerfd_gettime $fh
2732    
2733     This is a direct interface to the Linux L<timerfd_gettime(2)> system
2734     call. Please refer to its manpage for more info on this call.
2735    
2736     On success, returns the current values of interval and value for the given
2737     timerfd (as potentially fractional second values). On failure, the empty
2738     list is returned.
2739    
2740 root 1.157 =back
2741    
2742 root 1.1 =cut
2743    
2744 root 1.61 min_parallel 8;
2745 root 1.1
2746 root 1.95 END { flush }
2747 root 1.82
2748 root 1.1 1;
2749    
2750 root 1.175 =head1 EVENT LOOP INTEGRATION
2751    
2752     It is recommended to use L<AnyEvent::AIO> to integrate IO::AIO
2753     automatically into many event loops:
2754    
2755     # AnyEvent integration (EV, Event, Glib, Tk, POE, urxvt, pureperl...)
2756     use AnyEvent::AIO;
2757    
2758     You can also integrate IO::AIO manually into many event loops, here are
2759     some examples of how to do this:
2760    
2761     # EV integration
2762     my $aio_w = EV::io IO::AIO::poll_fileno, EV::READ, \&IO::AIO::poll_cb;
2763    
2764     # Event integration
2765     Event->io (fd => IO::AIO::poll_fileno,
2766     poll => 'r',
2767     cb => \&IO::AIO::poll_cb);
2768    
2769     # Glib/Gtk2 integration
2770     add_watch Glib::IO IO::AIO::poll_fileno,
2771     in => sub { IO::AIO::poll_cb; 1 };
2772    
2773     # Tk integration
2774     Tk::Event::IO->fileevent (IO::AIO::poll_fileno, "",
2775     readable => \&IO::AIO::poll_cb);
2776    
2777     # Danga::Socket integration
2778     Danga::Socket->AddOtherFds (IO::AIO::poll_fileno =>
2779     \&IO::AIO::poll_cb);
2780    
2781 root 1.27 =head2 FORK BEHAVIOUR
2782    
2783 root 1.197 Usage of pthreads in a program changes the semantics of fork
2784     considerably. Specifically, only async-safe functions can be called after
2785     fork. Perl doesn't know about this, so in general, you cannot call fork
2786 root 1.204 with defined behaviour in perl if pthreads are involved. IO::AIO uses
2787     pthreads, so this applies, but many other extensions and (for inexplicable
2788     reasons) perl itself often is linked against pthreads, so this limitation
2789     applies to quite a lot of perls.
2790    
2791     This module no longer tries to fight your OS, or POSIX. That means IO::AIO
2792     only works in the process that loaded it. Forking is fully supported, but
2793     using IO::AIO in the child is not.
2794    
2795     You might get around by not I<using> IO::AIO before (or after)
2796     forking. You could also try to call the L<IO::AIO::reinit> function in the
2797     child:
2798    
2799     =over 4
2800    
2801     =item IO::AIO::reinit
2802    
2803 root 1.207 Abandons all current requests and I/O threads and simply reinitialises all
2804     data structures. This is not an operation supported by any standards, but
2805 root 1.204 happens to work on GNU/Linux and some newer BSD systems.
2806    
2807     The only reasonable use for this function is to call it after forking, if
2808     C<IO::AIO> was used in the parent. Calling it while IO::AIO is active in
2809     the process will result in undefined behaviour. Calling it at any time
2810     will also result in any undefined (by POSIX) behaviour.
2811    
2812     =back
2813 root 1.52
2814 root 1.282 =head2 LINUX-SPECIFIC CALLS
2815    
2816     When a call is documented as "linux-specific" then this means it
2817     originated on GNU/Linux. C<IO::AIO> will usually try to autodetect the
2818     availability and compatibility of such calls regardless of the platform
2819     it is compiled on, so platforms such as FreeBSD which often implement
2820     these calls will work. When in doubt, call them and see if they fail wth
2821     C<ENOSYS>.
2822    
2823 root 1.60 =head2 MEMORY USAGE
2824    
2825 root 1.72 Per-request usage:
2826    
2827     Each aio request uses - depending on your architecture - around 100-200
2828     bytes of memory. In addition, stat requests need a stat buffer (possibly
2829     a few hundred bytes), readdir requires a result buffer and so on. Perl
2830     scalars and other data passed into aio requests will also be locked and
2831     will consume memory till the request has entered the done state.
2832 root 1.60
2833 root 1.111 This is not awfully much, so queuing lots of requests is not usually a
2834 root 1.60 problem.
2835    
2836 root 1.72 Per-thread usage:
2837    
2838     In the execution phase, some aio requests require more memory for
2839     temporary buffers, and each thread requires a stack and other data
2840     structures (usually around 16k-128k, depending on the OS).
2841    
2842     =head1 KNOWN BUGS
2843    
2844 root 1.283 Known bugs will be fixed in the next release :)
2845    
2846     =head1 KNOWN ISSUES
2847    
2848     Calls that try to "import" foreign memory areas (such as C<IO::AIO::mmap>
2849     or C<IO::AIO::aio_slurp>) do not work with generic lvalues, such as
2850     non-created hash slots or other scalars I didn't think of. It's best to
2851     avoid such and either use scalar variables or making sure that the scalar
2852     exists (e.g. by storing C<undef>) and isn't "funny" (e.g. tied).
2853    
2854     I am not sure anything can be done about this, so this is considered a
2855     known issue, rather than a bug.
2856 root 1.60
2857 root 1.321 =head1 SECURITY CONSIDERATIONS
2858    
2859     All the functions in this module usually do exactly what they say, and not
2860     more. None of them are hardened against race conditions - for example,
2861     C<IO::AIO::aio_rmtree> will simply iterate over all files and remove
2862     them. For security-hardened versions, use L<File::Path>, C<system "rm
2863     -rf"> or other s.
2864    
2865 root 1.1 =head1 SEE ALSO
2866    
2867 root 1.125 L<AnyEvent::AIO> for easy integration into event loops, L<Coro::AIO> for a
2868 root 1.304 more natural syntax and L<IO::FDPass> for file descriptor passing.
2869 root 1.1
2870     =head1 AUTHOR
2871    
2872     Marc Lehmann <schmorp@schmorp.de>
2873     http://home.schmorp.de/
2874    
2875     =cut
2876