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Revision: 1.60
Committed: Tue Jul 31 22:27:49 2018 UTC (8 years, 1 month ago) by root
Branch: MAIN
CVS Tags: rel-4_5
Changes since 1.59: +37 -11 lines
Log Message:
4.5

File Contents

# User Rev Content
1 root 1.1 NAME
2 root 1.59 IO::AIO - Asynchronous/Advanced Input/Output
3 root 1.1
4     SYNOPSIS
5     use IO::AIO;
6    
7 root 1.44 aio_open "/etc/passwd", IO::AIO::O_RDONLY, 0, sub {
8 root 1.21 my $fh = shift
9     or die "/etc/passwd: $!";
10 root 1.5 ...
11     };
12    
13     aio_unlink "/tmp/file", sub { };
14    
15     aio_read $fh, 30000, 1024, $buffer, 0, sub {
16     $_[0] > 0 or die "read error: $!";
17     };
18    
19 root 1.18 # version 2+ has request and group objects
20     use IO::AIO 2;
21    
22     aioreq_pri 4; # give next request a very high priority
23     my $req = aio_unlink "/tmp/file", sub { };
24     $req->cancel; # cancel request if still in queue
25    
26     my $grp = aio_group sub { print "all stats done\n" };
27     add $grp aio_stat "..." for ...;
28    
29 root 1.1 DESCRIPTION
30     This module implements asynchronous I/O using whatever means your
31 root 1.38 operating system supports. It is implemented as an interface to "libeio"
32     (<http://software.schmorp.de/pkg/libeio.html>).
33 root 1.1
34 root 1.19 Asynchronous means that operations that can normally block your program
35     (e.g. reading from disk) will be done asynchronously: the operation will
36     still block, but you can do something else in the meantime. This is
37     extremely useful for programs that need to stay interactive even when
38     doing heavy I/O (GUI programs, high performance network servers etc.),
39     but can also be used to easily do operations in parallel that are
40     normally done sequentially, e.g. stat'ing many files, which is much
41     faster on a RAID volume or over NFS when you do a number of stat
42     operations concurrently.
43    
44 root 1.20 While most of this works on all types of file descriptors (for example
45     sockets), using these functions on file descriptors that support
46 root 1.24 nonblocking operation (again, sockets, pipes etc.) is very inefficient.
47 root 1.38 Use an event loop for that (such as the EV module): IO::AIO will
48 root 1.24 naturally fit into such an event loop itself.
49 root 1.19
50 root 1.18 In this version, a number of threads are started that execute your
51     requests and signal their completion. You don't need thread support in
52     perl, and the threads created by this module will not be visible to
53     perl. In the future, this module might make use of the native aio
54     functions available on many operating systems. However, they are often
55 root 1.19 not well-supported or restricted (GNU/Linux doesn't allow them on normal
56 root 1.18 files currently, for example), and they would only support aio_read and
57 root 1.2 aio_write, so the remaining functionality would have to be implemented
58     using threads anyway.
59 root 1.1
60 root 1.59 In addition to asynchronous I/O, this module also exports some rather
61     arcane interfaces, such as "madvise" or linux's "splice" system call,
62     which is why the "A" in "AIO" can also mean *advanced*.
63    
64 root 1.24 Although the module will work in the presence of other (Perl-) threads,
65     it is currently not reentrant in any way, so use appropriate locking
66     yourself, always call "poll_cb" from within the same thread, or never
67     call "poll_cb" (or other "aio_" functions) recursively.
68 root 1.18
69 root 1.19 EXAMPLE
70 root 1.38 This is a simple example that uses the EV module and loads /etc/passwd
71     asynchronously:
72 root 1.19
73 root 1.38 use EV;
74 root 1.19 use IO::AIO;
75    
76 root 1.38 # register the IO::AIO callback with EV
77     my $aio_w = EV::io IO::AIO::poll_fileno, EV::READ, \&IO::AIO::poll_cb;
78 root 1.19
79     # queue the request to open /etc/passwd
80 root 1.44 aio_open "/etc/passwd", IO::AIO::O_RDONLY, 0, sub {
81 root 1.21 my $fh = shift
82 root 1.19 or die "error while opening: $!";
83    
84     # stat'ing filehandles is generally non-blocking
85     my $size = -s $fh;
86    
87     # queue a request to read the file
88     my $contents;
89     aio_read $fh, 0, $size, $contents, 0, sub {
90     $_[0] == $size
91     or die "short read: $!";
92    
93     close $fh;
94    
95     # file contents now in $contents
96     print $contents;
97    
98     # exit event loop and program
99 root 1.57 EV::break;
100 root 1.19 };
101     };
102    
103     # possibly queue up other requests, or open GUI windows,
104     # check for sockets etc. etc.
105    
106     # process events as long as there are some:
107 root 1.57 EV::run;
108 root 1.19
109 root 1.18 REQUEST ANATOMY AND LIFETIME
110     Every "aio_*" function creates a request. which is a C data structure
111     not directly visible to Perl.
112    
113     If called in non-void context, every request function returns a Perl
114     object representing the request. In void context, nothing is returned,
115     which saves a bit of memory.
116    
117     The perl object is a fairly standard ref-to-hash object. The hash
118     contents are not used by IO::AIO so you are free to store anything you
119     like in it.
120    
121     During their existance, aio requests travel through the following
122     states, in order:
123    
124     ready
125     Immediately after a request is created it is put into the ready
126     state, waiting for a thread to execute it.
127    
128     execute
129     A thread has accepted the request for processing and is currently
130     executing it (e.g. blocking in read).
131    
132     pending
133     The request has been executed and is waiting for result processing.
134    
135     While request submission and execution is fully asynchronous, result
136     processing is not and relies on the perl interpreter calling
137     "poll_cb" (or another function with the same effect).
138    
139     result
140     The request results are processed synchronously by "poll_cb".
141    
142     The "poll_cb" function will process all outstanding aio requests by
143     calling their callbacks, freeing memory associated with them and
144     managing any groups they are contained in.
145    
146     done
147     Request has reached the end of its lifetime and holds no resources
148     anymore (except possibly for the Perl object, but its connection to
149     the actual aio request is severed and calling its methods will
150     either do nothing or result in a runtime error).
151 root 1.1
152 root 1.4 FUNCTIONS
153 root 1.43 QUICK OVERVIEW
154 root 1.53 This section simply lists the prototypes most of the functions for quick
155     reference. See the following sections for function-by-function
156 root 1.43 documentation.
157    
158 root 1.50 aio_wd $pathname, $callback->($wd)
159 root 1.43 aio_open $pathname, $flags, $mode, $callback->($fh)
160     aio_close $fh, $callback->($status)
161 root 1.51 aio_seek $fh,$offset,$whence, $callback->($offs)
162 root 1.43 aio_read $fh,$offset,$length, $data,$dataoffset, $callback->($retval)
163     aio_write $fh,$offset,$length, $data,$dataoffset, $callback->($retval)
164     aio_sendfile $out_fh, $in_fh, $in_offset, $length, $callback->($retval)
165     aio_readahead $fh,$offset,$length, $callback->($retval)
166     aio_stat $fh_or_path, $callback->($status)
167     aio_lstat $fh, $callback->($status)
168     aio_statvfs $fh_or_path, $callback->($statvfs)
169     aio_utime $fh_or_path, $atime, $mtime, $callback->($status)
170     aio_chown $fh_or_path, $uid, $gid, $callback->($status)
171 root 1.51 aio_chmod $fh_or_path, $mode, $callback->($status)
172 root 1.43 aio_truncate $fh_or_path, $offset, $callback->($status)
173 root 1.53 aio_allocate $fh, $mode, $offset, $len, $callback->($status)
174     aio_fiemap $fh, $start, $length, $flags, $count, $cb->(\@extents)
175 root 1.43 aio_unlink $pathname, $callback->($status)
176 root 1.50 aio_mknod $pathname, $mode, $dev, $callback->($status)
177 root 1.43 aio_link $srcpath, $dstpath, $callback->($status)
178     aio_symlink $srcpath, $dstpath, $callback->($status)
179 root 1.50 aio_readlink $pathname, $callback->($link)
180 root 1.56 aio_realpath $pathname, $callback->($path)
181 root 1.43 aio_rename $srcpath, $dstpath, $callback->($status)
182 root 1.59 aio_rename2 $srcpath, $dstpath, $flags, $callback->($status)
183 root 1.43 aio_mkdir $pathname, $mode, $callback->($status)
184     aio_rmdir $pathname, $callback->($status)
185     aio_readdir $pathname, $callback->($entries)
186     aio_readdirx $pathname, $flags, $callback->($entries, $flags)
187     IO::AIO::READDIR_DENTS IO::AIO::READDIR_DIRS_FIRST
188     IO::AIO::READDIR_STAT_ORDER IO::AIO::READDIR_FOUND_UNKNOWN
189 root 1.50 aio_scandir $pathname, $maxreq, $callback->($dirs, $nondirs)
190     aio_load $pathname, $data, $callback->($status)
191 root 1.43 aio_copy $srcpath, $dstpath, $callback->($status)
192     aio_move $srcpath, $dstpath, $callback->($status)
193 root 1.50 aio_rmtree $pathname, $callback->($status)
194 root 1.58 aio_fcntl $fh, $cmd, $arg, $callback->($status)
195     aio_ioctl $fh, $request, $buf, $callback->($status)
196 root 1.43 aio_sync $callback->($status)
197 root 1.50 aio_syncfs $fh, $callback->($status)
198 root 1.43 aio_fsync $fh, $callback->($status)
199     aio_fdatasync $fh, $callback->($status)
200     aio_sync_file_range $fh, $offset, $nbytes, $flags, $callback->($status)
201 root 1.50 aio_pathsync $pathname, $callback->($status)
202 root 1.59 aio_msync $scalar, $offset = 0, $length = undef, flags = MS_SYNC, $callback->($status)
203 root 1.43 aio_mtouch $scalar, $offset = 0, $length = undef, flags = 0, $callback->($status)
204 root 1.44 aio_mlock $scalar, $offset = 0, $length = undef, $callback->($status)
205     aio_mlockall $flags, $callback->($status)
206 root 1.43 aio_group $callback->(...)
207     aio_nop $callback->()
208    
209     $prev_pri = aioreq_pri [$pri]
210     aioreq_nice $pri_adjust
211    
212     IO::AIO::poll_wait
213     IO::AIO::poll_cb
214     IO::AIO::poll
215     IO::AIO::flush
216     IO::AIO::max_poll_reqs $nreqs
217     IO::AIO::max_poll_time $seconds
218     IO::AIO::min_parallel $nthreads
219     IO::AIO::max_parallel $nthreads
220     IO::AIO::max_idle $nthreads
221 root 1.46 IO::AIO::idle_timeout $seconds
222 root 1.43 IO::AIO::max_outstanding $maxreqs
223     IO::AIO::nreqs
224     IO::AIO::nready
225     IO::AIO::npending
226 root 1.59 $nfd = IO::AIO::get_fdlimit [EXPERIMENTAL]
227     IO::AIO::min_fdlimit $nfd [EXPERIMENTAL]
228 root 1.43
229     IO::AIO::sendfile $ofh, $ifh, $offset, $count
230     IO::AIO::fadvise $fh, $offset, $len, $advice
231 root 1.53 IO::AIO::mmap $scalar, $length, $prot, $flags[, $fh[, $offset]]
232     IO::AIO::munmap $scalar
233 root 1.60 IO::AIO::mremap $scalar, $new_length, $flags[, $new_address]
234 root 1.44 IO::AIO::madvise $scalar, $offset, $length, $advice
235     IO::AIO::mprotect $scalar, $offset, $length, $protect
236     IO::AIO::munlock $scalar, $offset = 0, $length = undef
237 root 1.43 IO::AIO::munlockall
238    
239 root 1.51 API NOTES
240 root 1.20 All the "aio_*" calls are more or less thin wrappers around the syscall
241     with the same name (sans "aio_"). The arguments are similar or
242     identical, and they all accept an additional (and optional) $callback
243 root 1.50 argument which must be a code reference. This code reference will be
244     called after the syscall has been executed in an asynchronous fashion.
245     The results of the request will be passed as arguments to the callback
246     (and, if an error occured, in $!) - for most requests the syscall return
247     code (e.g. most syscalls return -1 on error, unlike perl, which usually
248     delivers "false").
249    
250     Some requests (such as "aio_readdir") pass the actual results and
251     communicate failures by passing "undef".
252 root 1.20
253     All functions expecting a filehandle keep a copy of the filehandle
254     internally until the request has finished.
255    
256     All functions return request objects of type IO::AIO::REQ that allow
257     further manipulation of those requests while they are in-flight.
258    
259 root 1.50 The pathnames you pass to these routines *should* be absolute. The
260     reason for this is that at the time the request is being executed, the
261     current working directory could have changed. Alternatively, you can
262     make sure that you never change the current working directory anywhere
263     in the program and then use relative paths. You can also take advantage
264     of IO::AIOs working directory abstraction, that lets you specify paths
265     relative to some previously-opened "working directory object" - see the
266     description of the "IO::AIO::WD" class later in this document.
267 root 1.20
268     To encode pathnames as octets, either make sure you either: a) always
269     pass in filenames you got from outside (command line, readdir etc.)
270 root 1.50 without tinkering, b) are in your native filesystem encoding, c) use the
271     Encode module and encode your pathnames to the locale (or other)
272     encoding in effect in the user environment, d) use
273     Glib::filename_from_unicode on unicode filenames or e) use something
274     else to ensure your scalar has the correct contents.
275 root 1.20
276     This works, btw. independent of the internal UTF-8 bit, which IO::AIO
277 root 1.32 handles correctly whether it is set or not.
278 root 1.20
279 root 1.51 AIO REQUEST FUNCTIONS
280 root 1.20 $prev_pri = aioreq_pri [$pri]
281     Returns the priority value that would be used for the next request
282     and, if $pri is given, sets the priority for the next aio request.
283    
284     The default priority is 0, the minimum and maximum priorities are -4
285     and 4, respectively. Requests with higher priority will be serviced
286     first.
287    
288     The priority will be reset to 0 after each call to one of the
289     "aio_*" functions.
290    
291     Example: open a file with low priority, then read something from it
292     with higher priority so the read request is serviced before other
293     low priority open requests (potentially spamming the cache):
294    
295     aioreq_pri -3;
296     aio_open ..., sub {
297     return unless $_[0];
298    
299     aioreq_pri -2;
300     aio_read $_[0], ..., sub {
301     ...
302     };
303     };
304    
305     aioreq_nice $pri_adjust
306     Similar to "aioreq_pri", but subtracts the given value from the
307     current priority, so the effect is cumulative.
308    
309     aio_open $pathname, $flags, $mode, $callback->($fh)
310     Asynchronously open or create a file and call the callback with a
311 root 1.53 newly created filehandle for the file (or "undef" in case of an
312     error).
313 root 1.20
314     The pathname passed to "aio_open" must be absolute. See API NOTES,
315     above, for an explanation.
316    
317     The $flags argument is a bitmask. See the "Fcntl" module for a list.
318     They are the same as used by "sysopen".
319    
320     Likewise, $mode specifies the mode of the newly created file, if it
321     didn't exist and "O_CREAT" has been given, just like perl's
322     "sysopen", except that it is mandatory (i.e. use 0 if you don't
323 root 1.23 create new files, and 0666 or 0777 if you do). Note that the $mode
324     will be modified by the umask in effect then the request is being
325     executed, so better never change the umask.
326 root 1.20
327     Example:
328    
329 root 1.44 aio_open "/etc/passwd", IO::AIO::O_RDONLY, 0, sub {
330 root 1.20 if ($_[0]) {
331     print "open successful, fh is $_[0]\n";
332     ...
333     } else {
334     die "open failed: $!\n";
335     }
336     };
337    
338 root 1.47 In addition to all the common open modes/flags ("O_RDONLY",
339     "O_WRONLY", "O_RDWR", "O_CREAT", "O_TRUNC", "O_EXCL" and
340     "O_APPEND"), the following POSIX and non-POSIX constants are
341     available (missing ones on your system are, as usual, 0):
342    
343     "O_ASYNC", "O_DIRECT", "O_NOATIME", "O_CLOEXEC", "O_NOCTTY",
344     "O_NOFOLLOW", "O_NONBLOCK", "O_EXEC", "O_SEARCH", "O_DIRECTORY",
345 root 1.60 "O_DSYNC", "O_RSYNC", "O_SYNC", "O_PATH", "O_TMPFILE", "O_TTY_INIT"
346     and "O_ACCMODE".
347 root 1.47
348 root 1.20 aio_close $fh, $callback->($status)
349     Asynchronously close a file and call the callback with the result
350 root 1.26 code.
351 root 1.20
352 root 1.27 Unfortunately, you can't do this to perl. Perl *insists* very
353     strongly on closing the file descriptor associated with the
354 root 1.29 filehandle itself.
355 root 1.27
356 root 1.29 Therefore, "aio_close" will not close the filehandle - instead it
357     will use dup2 to overwrite the file descriptor with the write-end of
358     a pipe (the pipe fd will be created on demand and will be cached).
359 root 1.27
360 root 1.29 Or in other words: the file descriptor will be closed, but it will
361     not be free for reuse until the perl filehandle is closed.
362 root 1.20
363 root 1.51 aio_seek $fh, $offset, $whence, $callback->($offs)
364     Seeks the filehandle to the new $offset, similarly to perl's
365     "sysseek". The $whence can use the traditional values (0 for
366     "IO::AIO::SEEK_SET", 1 for "IO::AIO::SEEK_CUR" or 2 for
367     "IO::AIO::SEEK_END").
368    
369     The resulting absolute offset will be passed to the callback, or -1
370     in case of an error.
371    
372     In theory, the $whence constants could be different than the
373     corresponding values from Fcntl, but perl guarantees they are the
374     same, so don't panic.
375    
376 root 1.52 As a GNU/Linux (and maybe Solaris) extension, also the constants
377     "IO::AIO::SEEK_DATA" and "IO::AIO::SEEK_HOLE" are available, if they
378     could be found. No guarantees about suitability for use in
379     "aio_seek" or Perl's "sysseek" can be made though, although I would
380     naively assume they "just work".
381    
382 root 1.20 aio_read $fh,$offset,$length, $data,$dataoffset, $callback->($retval)
383     aio_write $fh,$offset,$length, $data,$dataoffset, $callback->($retval)
384 root 1.35 Reads or writes $length bytes from or to the specified $fh and
385     $offset into the scalar given by $data and offset $dataoffset and
386 root 1.59 calls the callback with the actual number of bytes transferred (or
387     -1 on error, just like the syscall).
388 root 1.35
389     "aio_read" will, like "sysread", shrink or grow the $data scalar to
390     offset plus the actual number of bytes read.
391 root 1.24
392 root 1.25 If $offset is undefined, then the current file descriptor offset
393     will be used (and updated), otherwise the file descriptor offset
394     will not be changed by these calls.
395 root 1.24
396     If $length is undefined in "aio_write", use the remaining length of
397     $data.
398    
399     If $dataoffset is less than zero, it will be counted from the end of
400     $data.
401 root 1.20
402     The $data scalar *MUST NOT* be modified in any way while the request
403 root 1.24 is outstanding. Modifying it can result in segfaults or World War
404     III (if the necessary/optional hardware is installed).
405 root 1.20
406     Example: Read 15 bytes at offset 7 into scalar $buffer, starting at
407     offset 0 within the scalar:
408    
409     aio_read $fh, 7, 15, $buffer, 0, sub {
410     $_[0] > 0 or die "read error: $!";
411     print "read $_[0] bytes: <$buffer>\n";
412     };
413    
414     aio_sendfile $out_fh, $in_fh, $in_offset, $length, $callback->($retval)
415     Tries to copy $length bytes from $in_fh to $out_fh. It starts
416     reading at byte offset $in_offset, and starts writing at the current
417     file offset of $out_fh. Because of that, it is not safe to issue
418     more than one "aio_sendfile" per $out_fh, as they will interfere
419 root 1.48 with each other. The same $in_fh works fine though, as this function
420     does not move or use the file offset of $in_fh.
421 root 1.20
422 root 1.45 Please note that "aio_sendfile" can read more bytes from $in_fh than
423 root 1.48 are written, and there is no way to find out how many more bytes
424     have been read from "aio_sendfile" alone, as "aio_sendfile" only
425     provides the number of bytes written to $out_fh. Only if the result
426     value equals $length one can assume that $length bytes have been
427     read.
428 root 1.45
429     Unlike with other "aio_" functions, it makes a lot of sense to use
430     "aio_sendfile" on non-blocking sockets, as long as one end
431     (typically the $in_fh) is a file - the file I/O will then be
432     asynchronous, while the socket I/O will be non-blocking. Note,
433     however, that you can run into a trap where "aio_sendfile" reads
434     some data with readahead, then fails to write all data, and when the
435     socket is ready the next time, the data in the cache is already
436     lost, forcing "aio_sendfile" to again hit the disk. Explicit
437 root 1.48 "aio_read" + "aio_write" let's you better control resource usage.
438 root 1.45
439 root 1.48 This call tries to make use of a native "sendfile"-like syscall to
440 root 1.20 provide zero-copy operation. For this to work, $out_fh should refer
441 root 1.43 to a socket, and $in_fh should refer to an mmap'able file.
442 root 1.20
443 root 1.41 If a native sendfile cannot be found or it fails with "ENOSYS",
444 root 1.48 "EINVAL", "ENOTSUP", "EOPNOTSUPP", "EAFNOSUPPORT", "EPROTOTYPE" or
445     "ENOTSOCK", it will be emulated, so you can call "aio_sendfile" on
446     any type of filehandle regardless of the limitations of the
447     operating system.
448    
449     As native sendfile syscalls (as practically any non-POSIX interface
450     hacked together in a hurry to improve benchmark numbers) tend to be
451     rather buggy on many systems, this implementation tries to work
452     around some known bugs in Linux and FreeBSD kernels (probably
453     others, too), but that might fail, so you really really should check
454 root 1.59 the return value of "aio_sendfile" - fewer bytes than expected might
455 root 1.48 have been transferred.
456 root 1.20
457     aio_readahead $fh,$offset,$length, $callback->($retval)
458     "aio_readahead" populates the page cache with data from a file so
459     that subsequent reads from that file will not block on disk I/O. The
460     $offset argument specifies the starting point from which data is to
461     be read and $length specifies the number of bytes to be read. I/O is
462     performed in whole pages, so that offset is effectively rounded down
463     to a page boundary and bytes are read up to the next page boundary
464     greater than or equal to (off-set+length). "aio_readahead" does not
465     read beyond the end of the file. The current file offset of the file
466     is left unchanged.
467    
468 root 1.59 If that syscall doesn't exist (likely if your kernel isn't Linux) it
469 root 1.20 will be emulated by simply reading the data, which would have a
470     similar effect.
471    
472     aio_stat $fh_or_path, $callback->($status)
473     aio_lstat $fh, $callback->($status)
474     Works like perl's "stat" or "lstat" in void context. The callback
475     will be called after the stat and the results will be available
476     using "stat _" or "-s _" etc...
477    
478     The pathname passed to "aio_stat" must be absolute. See API NOTES,
479     above, for an explanation.
480    
481     Currently, the stats are always 64-bit-stats, i.e. instead of
482     returning an error when stat'ing a large file, the results will be
483     silently truncated unless perl itself is compiled with large file
484     support.
485    
486 root 1.46 To help interpret the mode and dev/rdev stat values, IO::AIO offers
487     the following constants and functions (if not implemented, the
488     constants will be 0 and the functions will either "croak" or fall
489     back on traditional behaviour).
490    
491     "S_IFMT", "S_IFIFO", "S_IFCHR", "S_IFBLK", "S_IFLNK", "S_IFREG",
492     "S_IFDIR", "S_IFWHT", "S_IFSOCK", "IO::AIO::major $dev_t",
493     "IO::AIO::minor $dev_t", "IO::AIO::makedev $major, $minor".
494    
495 root 1.20 Example: Print the length of /etc/passwd:
496    
497     aio_stat "/etc/passwd", sub {
498     $_[0] and die "stat failed: $!";
499     print "size is ", -s _, "\n";
500     };
501    
502 root 1.42 aio_statvfs $fh_or_path, $callback->($statvfs)
503     Works like the POSIX "statvfs" or "fstatvfs" syscalls, depending on
504     whether a file handle or path was passed.
505    
506     On success, the callback is passed a hash reference with the
507     following members: "bsize", "frsize", "blocks", "bfree", "bavail",
508     "files", "ffree", "favail", "fsid", "flag" and "namemax". On
509     failure, "undef" is passed.
510    
511     The following POSIX IO::AIO::ST_* constants are defined: "ST_RDONLY"
512     and "ST_NOSUID".
513    
514     The following non-POSIX IO::AIO::ST_* flag masks are defined to
515     their correct value when available, or to 0 on systems that do not
516     support them: "ST_NODEV", "ST_NOEXEC", "ST_SYNCHRONOUS",
517     "ST_MANDLOCK", "ST_WRITE", "ST_APPEND", "ST_IMMUTABLE",
518     "ST_NOATIME", "ST_NODIRATIME" and "ST_RELATIME".
519    
520     Example: stat "/wd" and dump out the data if successful.
521    
522     aio_statvfs "/wd", sub {
523     my $f = $_[0]
524     or die "statvfs: $!";
525    
526     use Data::Dumper;
527     say Dumper $f;
528     };
529    
530     # result:
531     {
532     bsize => 1024,
533     bfree => 4333064312,
534     blocks => 10253828096,
535     files => 2050765568,
536     flag => 4096,
537     favail => 2042092649,
538     bavail => 4333064312,
539     ffree => 2042092649,
540     namemax => 255,
541     frsize => 1024,
542     fsid => 1810
543     }
544    
545 root 1.24 aio_utime $fh_or_path, $atime, $mtime, $callback->($status)
546     Works like perl's "utime" function (including the special case of
547     $atime and $mtime being undef). Fractional times are supported if
548     the underlying syscalls support them.
549    
550     When called with a pathname, uses utimes(2) if available, otherwise
551     utime(2). If called on a file descriptor, uses futimes(2) if
552     available, otherwise returns ENOSYS, so this is not portable.
553    
554     Examples:
555    
556     # set atime and mtime to current time (basically touch(1)):
557     aio_utime "path", undef, undef;
558     # set atime to current time and mtime to beginning of the epoch:
559     aio_utime "path", time, undef; # undef==0
560    
561     aio_chown $fh_or_path, $uid, $gid, $callback->($status)
562     Works like perl's "chown" function, except that "undef" for either
563     $uid or $gid is being interpreted as "do not change" (but -1 can
564     also be used).
565    
566     Examples:
567    
568     # same as "chown root path" in the shell:
569     aio_chown "path", 0, -1;
570     # same as above:
571     aio_chown "path", 0, undef;
572    
573     aio_truncate $fh_or_path, $offset, $callback->($status)
574     Works like truncate(2) or ftruncate(2).
575    
576 root 1.53 aio_allocate $fh, $mode, $offset, $len, $callback->($status)
577 root 1.56 Allocates or frees disk space according to the $mode argument. See
578     the linux "fallocate" documentation for details.
579 root 1.53
580 root 1.57 $mode is usually 0 or "IO::AIO::FALLOC_FL_KEEP_SIZE" to allocate
581     space, or "IO::AIO::FALLOC_FL_PUNCH_HOLE |
582 root 1.53 IO::AIO::FALLOC_FL_KEEP_SIZE", to deallocate a file range.
583    
584 root 1.57 IO::AIO also supports "FALLOC_FL_COLLAPSE_RANGE", to remove a range
585 root 1.59 (without leaving a hole), "FALLOC_FL_ZERO_RANGE", to zero a range,
586     "FALLOC_FL_INSERT_RANGE" to insert a range and
587     "FALLOC_FL_UNSHARE_RANGE" to unshare shared blocks (see your
588     fallocate(2) manpage).
589 root 1.57
590 root 1.53 The file system block size used by "fallocate" is presumably the
591 root 1.59 "f_bsize" returned by "statvfs", but different filesystems and
592     filetypes can dictate other limitations.
593 root 1.53
594     If "fallocate" isn't available or cannot be emulated (currently no
595     emulation will be attempted), passes -1 and sets $! to "ENOSYS".
596    
597 root 1.24 aio_chmod $fh_or_path, $mode, $callback->($status)
598     Works like perl's "chmod" function.
599    
600 root 1.20 aio_unlink $pathname, $callback->($status)
601     Asynchronously unlink (delete) a file and call the callback with the
602     result code.
603    
604 root 1.50 aio_mknod $pathname, $mode, $dev, $callback->($status)
605 root 1.20 [EXPERIMENTAL]
606    
607     Asynchronously create a device node (or fifo). See mknod(2).
608    
609     The only (POSIX-) portable way of calling this function is:
610    
611 root 1.50 aio_mknod $pathname, IO::AIO::S_IFIFO | $mode, 0, sub { ...
612 root 1.20
613 root 1.46 See "aio_stat" for info about some potentially helpful extra
614     constants and functions.
615    
616 root 1.20 aio_link $srcpath, $dstpath, $callback->($status)
617     Asynchronously create a new link to the existing object at $srcpath
618     at the path $dstpath and call the callback with the result code.
619    
620     aio_symlink $srcpath, $dstpath, $callback->($status)
621     Asynchronously create a new symbolic link to the existing object at
622     $srcpath at the path $dstpath and call the callback with the result
623     code.
624    
625 root 1.50 aio_readlink $pathname, $callback->($link)
626 root 1.20 Asynchronously read the symlink specified by $path and pass it to
627     the callback. If an error occurs, nothing or undef gets passed to
628     the callback.
629    
630 root 1.50 aio_realpath $pathname, $callback->($path)
631 root 1.49 Asynchronously make the path absolute and resolve any symlinks in
632 root 1.54 $path. The resulting path only consists of directories (same as
633 root 1.49 Cwd::realpath).
634    
635     This request can be used to get the absolute path of the current
636     working directory by passing it a path of . (a single dot).
637    
638 root 1.20 aio_rename $srcpath, $dstpath, $callback->($status)
639     Asynchronously rename the object at $srcpath to $dstpath, just as
640     rename(2) and call the callback with the result code.
641    
642 root 1.54 On systems that support the AIO::WD working directory abstraction
643     natively, the case "[$wd, "."]" as $srcpath is specialcased -
644     instead of failing, "rename" is called on the absolute path of $wd.
645    
646 root 1.59 aio_rename2 $srcpath, $dstpath, $flags, $callback->($status)
647     Basically a version of "aio_rename" with an additional $flags
648     argument. Calling this with "$flags=0" is the same as calling
649     "aio_rename".
650    
651     Non-zero flags are currently only supported on GNU/Linux systems
652     that support renameat2. Other systems fail with "ENOSYS" in this
653     case.
654    
655     The following constants are available (missing ones are, as usual
656     0), see renameat2(2) for details:
657    
658     "IO::AIO::RENAME_NOREPLACE", "IO::AIO::RENAME_EXCHANGE" and
659     "IO::AIO::RENAME_WHITEOUT".
660    
661 root 1.23 aio_mkdir $pathname, $mode, $callback->($status)
662     Asynchronously mkdir (create) a directory and call the callback with
663     the result code. $mode will be modified by the umask at the time the
664     request is executed, so do not change your umask.
665    
666 root 1.20 aio_rmdir $pathname, $callback->($status)
667     Asynchronously rmdir (delete) a directory and call the callback with
668     the result code.
669    
670 root 1.54 On systems that support the AIO::WD working directory abstraction
671     natively, the case "[$wd, "."]" is specialcased - instead of
672     failing, "rmdir" is called on the absolute path of $wd.
673    
674 root 1.20 aio_readdir $pathname, $callback->($entries)
675     Unlike the POSIX call of the same name, "aio_readdir" reads an
676     entire directory (i.e. opendir + readdir + closedir). The entries
677     will not be sorted, and will NOT include the "." and ".." entries.
678    
679 root 1.36 The callback is passed a single argument which is either "undef" or
680     an array-ref with the filenames.
681    
682     aio_readdirx $pathname, $flags, $callback->($entries, $flags)
683 root 1.50 Quite similar to "aio_readdir", but the $flags argument allows one
684     to tune behaviour and output format. In case of an error, $entries
685     will be "undef".
686 root 1.36
687     The flags are a combination of the following constants, ORed
688     together (the flags will also be passed to the callback, possibly
689     modified):
690    
691     IO::AIO::READDIR_DENTS
692 root 1.60 Normally the callback gets an arrayref consisting of names only
693     (as with "aio_readdir"). If this flag is set, then the callback
694 root 1.47 gets an arrayref with "[$name, $type, $inode]" arrayrefs, each
695 root 1.60 describing a single directory entry in more detail:
696 root 1.36
697     $name is the name of the entry.
698    
699     $type is one of the "IO::AIO::DT_xxx" constants:
700    
701     "IO::AIO::DT_UNKNOWN", "IO::AIO::DT_FIFO", "IO::AIO::DT_CHR",
702     "IO::AIO::DT_DIR", "IO::AIO::DT_BLK", "IO::AIO::DT_REG",
703     "IO::AIO::DT_LNK", "IO::AIO::DT_SOCK", "IO::AIO::DT_WHT".
704    
705     "IO::AIO::DT_UNKNOWN" means just that: readdir does not know. If
706 root 1.60 you need to know, you have to run stat yourself. Also, for
707     speed/memory reasons, the $type scalars are read-only: you must
708     not modify them.
709 root 1.36
710     $inode is the inode number (which might not be exact on systems
711 root 1.38 with 64 bit inode numbers and 32 bit perls). This field has
712     unspecified content on systems that do not deliver the inode
713     information.
714 root 1.36
715     IO::AIO::READDIR_DIRS_FIRST
716     When this flag is set, then the names will be returned in an
717 root 1.47 order where likely directories come first, in optimal stat
718     order. This is useful when you need to quickly find directories,
719     or you want to find all directories while avoiding to stat()
720     each entry.
721 root 1.36
722     If the system returns type information in readdir, then this is
723     used to find directories directly. Otherwise, likely directories
724 root 1.47 are names beginning with ".", or otherwise names with no dots,
725     of which names with short names are tried first.
726 root 1.36
727     IO::AIO::READDIR_STAT_ORDER
728     When this flag is set, then the names will be returned in an
729     order suitable for stat()'ing each one. That is, when you plan
730 root 1.60 to stat() most or all files in the given directory, then the
731     returned order will likely be faster.
732 root 1.36
733     If both this flag and "IO::AIO::READDIR_DIRS_FIRST" are
734     specified, then the likely dirs come first, resulting in a less
735 root 1.60 optimal stat order for stat'ing all entries, but likely a more
736     optimal order for finding subdirectories.
737 root 1.36
738     IO::AIO::READDIR_FOUND_UNKNOWN
739     This flag should not be set when calling "aio_readdirx".
740     Instead, it is being set by "aio_readdirx", when any of the
741 root 1.50 $type's found were "IO::AIO::DT_UNKNOWN". The absence of this
742 root 1.36 flag therefore indicates that all $type's are known, which can
743     be used to speed up some algorithms.
744 root 1.20
745 root 1.59 aio_slurp $pathname, $offset, $length, $data, $callback->($status)
746     Opens, reads and closes the given file. The data is put into $data,
747     which is resized as required.
748    
749     If $offset is negative, then it is counted from the end of the file.
750    
751     If $length is zero, then the remaining length of the file is used.
752     Also, in this case, the same limitations to modifying $data apply as
753     when IO::AIO::mmap is used, i.e. it must only be modified in-place
754     with "substr". If the size of the file is known, specifying a
755     non-zero $length results in a performance advantage.
756    
757     This request is similar to the older "aio_load" request, but since
758     it is a single request, it might be more efficient to use.
759    
760     Example: load /etc/passwd into $passwd.
761    
762     my $passwd;
763     aio_slurp "/etc/passwd", 0, 0, $passwd, sub {
764     $_[0] >= 0
765     or die "/etc/passwd: $!\n";
766    
767     printf "/etc/passwd is %d bytes long, and contains:\n", length $passwd;
768     print $passwd;
769     };
770     IO::AIO::flush;
771    
772 root 1.50 aio_load $pathname, $data, $callback->($status)
773 root 1.22 This is a composite request that tries to fully load the given file
774     into memory. Status is the same as with aio_read.
775    
776 root 1.59 Using "aio_slurp" might be more efficient, as it is a single
777     request.
778    
779 root 1.20 aio_copy $srcpath, $dstpath, $callback->($status)
780     Try to copy the *file* (directories not supported as either source
781     or destination) from $srcpath to $dstpath and call the callback with
782 root 1.40 a status of 0 (ok) or -1 (error, see $!).
783 root 1.20
784 root 1.59 Existing destination files will be truncated.
785    
786 root 1.32 This is a composite request that creates the destination file with
787     mode 0200 and copies the contents of the source file into it using
788     "aio_sendfile", followed by restoring atime, mtime, access mode and
789     uid/gid, in that order.
790 root 1.20
791     If an error occurs, the partial destination file will be unlinked,
792     if possible, except when setting atime, mtime, access mode and
793     uid/gid, where errors are being ignored.
794    
795     aio_move $srcpath, $dstpath, $callback->($status)
796     Try to move the *file* (directories not supported as either source
797     or destination) from $srcpath to $dstpath and call the callback with
798 root 1.40 a status of 0 (ok) or -1 (error, see $!).
799 root 1.20
800 root 1.33 This is a composite request that tries to rename(2) the file first;
801     if rename fails with "EXDEV", it copies the file with "aio_copy"
802     and, if that is successful, unlinks the $srcpath.
803 root 1.20
804 root 1.50 aio_scandir $pathname, $maxreq, $callback->($dirs, $nondirs)
805 root 1.20 Scans a directory (similar to "aio_readdir") but additionally tries
806     to efficiently separate the entries of directory $path into two sets
807     of names, directories you can recurse into (directories), and ones
808     you cannot recurse into (everything else, including symlinks to
809     directories).
810    
811 root 1.59 "aio_scandir" is a composite request that generates many sub
812     requests. $maxreq specifies the maximum number of outstanding aio
813 root 1.20 requests that this function generates. If it is "<= 0", then a
814     suitable default will be chosen (currently 4).
815    
816     On error, the callback is called without arguments, otherwise it
817     receives two array-refs with path-relative entry names.
818    
819     Example:
820    
821     aio_scandir $dir, 0, sub {
822     my ($dirs, $nondirs) = @_;
823     print "real directories: @$dirs\n";
824     print "everything else: @$nondirs\n";
825     };
826    
827     Implementation notes.
828    
829     The "aio_readdir" cannot be avoided, but "stat()"'ing every entry
830     can.
831    
832 root 1.36 If readdir returns file type information, then this is used directly
833     to find directories.
834    
835     Otherwise, after reading the directory, the modification time, size
836     etc. of the directory before and after the readdir is checked, and
837     if they match (and isn't the current time), the link count will be
838     used to decide how many entries are directories (if >= 2).
839     Otherwise, no knowledge of the number of subdirectories will be
840     assumed.
841    
842     Then entries will be sorted into likely directories a non-initial
843     dot currently) and likely non-directories (see "aio_readdirx"). Then
844     every entry plus an appended "/." will be "stat"'ed, likely
845     directories first, in order of their inode numbers. If that
846     succeeds, it assumes that the entry is a directory or a symlink to
847 root 1.50 directory (which will be checked separately). This is often faster
848 root 1.36 than stat'ing the entry itself because filesystems might detect the
849     type of the entry without reading the inode data (e.g. ext2fs
850     filetype feature), even on systems that cannot return the filetype
851     information on readdir.
852 root 1.20
853     If the known number of directories (link count - 2) has been
854     reached, the rest of the entries is assumed to be non-directories.
855    
856     This only works with certainty on POSIX (= UNIX) filesystems, which
857     fortunately are the vast majority of filesystems around.
858    
859     It will also likely work on non-POSIX filesystems with reduced
860     efficiency as those tend to return 0 or 1 as link counts, which
861     disables the directory counting heuristic.
862    
863 root 1.50 aio_rmtree $pathname, $callback->($status)
864 root 1.23 Delete a directory tree starting (and including) $path, return the
865     status of the final "rmdir" only. This is a composite request that
866     uses "aio_scandir" to recurse into and rmdir directories, and unlink
867     everything else.
868    
869 root 1.58 aio_fcntl $fh, $cmd, $arg, $callback->($status)
870     aio_ioctl $fh, $request, $buf, $callback->($status)
871     These work just like the "fcntl" and "ioctl" built-in functions,
872     except they execute asynchronously and pass the return value to the
873     callback.
874    
875     Both calls can be used for a lot of things, some of which make more
876     sense to run asynchronously in their own thread, while some others
877     make less sense. For example, calls that block waiting for external
878     events, such as locking, will also lock down an I/O thread while it
879     is waiting, which can deadlock the whole I/O system. At the same
880     time, there might be no alternative to using a thread to wait.
881    
882     So in general, you should only use these calls for things that do
883     (filesystem) I/O, not for things that wait for other events
884     (network, other processes), although if you are careful and know
885     what you are doing, you still can.
886    
887 root 1.59 The following constants are available (missing ones are, as usual
888     0):
889    
890     "F_DUPFD_CLOEXEC",
891    
892     "F_OFD_GETLK", "F_OFD_SETLK", "F_OFD_GETLKW",
893    
894     "FIFREEZE", "FITHAW", "FITRIM", "FICLONE", "FICLONERANGE",
895     "FIDEDUPERANGE".
896    
897     "FS_IOC_GETFLAGS", "FS_IOC_SETFLAGS", "FS_IOC_GETVERSION",
898     "FS_IOC_SETVERSION", "FS_IOC_FIEMAP".
899    
900     "FS_IOC_FSGETXATTR", "FS_IOC_FSSETXATTR",
901     "FS_IOC_SET_ENCRYPTION_POLICY", "FS_IOC_GET_ENCRYPTION_PWSALT",
902     "FS_IOC_GET_ENCRYPTION_POLICY", "FS_KEY_DESCRIPTOR_SIZE".
903    
904     "FS_SECRM_FL", "FS_UNRM_FL", "FS_COMPR_FL", "FS_SYNC_FL",
905     "FS_IMMUTABLE_FL", "FS_APPEND_FL", "FS_NODUMP_FL", "FS_NOATIME_FL",
906     "FS_DIRTY_FL", "FS_COMPRBLK_FL", "FS_NOCOMP_FL", "FS_ENCRYPT_FL",
907     "FS_BTREE_FL", "FS_INDEX_FL", "FS_JOURNAL_DATA_FL", "FS_NOTAIL_FL",
908     "FS_DIRSYNC_FL", "FS_TOPDIR_FL", "FS_FL_USER_MODIFIABLE".
909    
910     "FS_XFLAG_REALTIME", "FS_XFLAG_PREALLOC", "FS_XFLAG_IMMUTABLE",
911     "FS_XFLAG_APPEND", "FS_XFLAG_SYNC", "FS_XFLAG_NOATIME",
912     "FS_XFLAG_NODUMP", "FS_XFLAG_RTINHERIT", "FS_XFLAG_PROJINHERIT",
913     "FS_XFLAG_NOSYMLINKS", "FS_XFLAG_EXTSIZE", "FS_XFLAG_EXTSZINHERIT",
914     "FS_XFLAG_NODEFRAG", "FS_XFLAG_FILESTREAM", "FS_XFLAG_DAX",
915     "FS_XFLAG_HASATTR",
916    
917 root 1.28 aio_sync $callback->($status)
918     Asynchronously call sync and call the callback when finished.
919    
920 root 1.20 aio_fsync $fh, $callback->($status)
921     Asynchronously call fsync on the given filehandle and call the
922     callback with the fsync result code.
923    
924     aio_fdatasync $fh, $callback->($status)
925     Asynchronously call fdatasync on the given filehandle and call the
926     callback with the fdatasync result code.
927    
928     If this call isn't available because your OS lacks it or it couldn't
929     be detected, it will be emulated by calling "fsync" instead.
930    
931 root 1.50 aio_syncfs $fh, $callback->($status)
932     Asynchronously call the syncfs syscall to sync the filesystem
933     associated to the given filehandle and call the callback with the
934     syncfs result code. If syncfs is not available, calls sync(), but
935     returns -1 and sets errno to "ENOSYS" nevertheless.
936    
937 root 1.34 aio_sync_file_range $fh, $offset, $nbytes, $flags, $callback->($status)
938     Sync the data portion of the file specified by $offset and $length
939     to disk (but NOT the metadata), by calling the Linux-specific
940     sync_file_range call. If sync_file_range is not available or it
941     returns ENOSYS, then fdatasync or fsync is being substituted.
942    
943     $flags can be a combination of
944     "IO::AIO::SYNC_FILE_RANGE_WAIT_BEFORE",
945     "IO::AIO::SYNC_FILE_RANGE_WRITE" and
946     "IO::AIO::SYNC_FILE_RANGE_WAIT_AFTER": refer to the sync_file_range
947     manpage for details.
948    
949 root 1.50 aio_pathsync $pathname, $callback->($status)
950 root 1.28 This request tries to open, fsync and close the given path. This is
951 root 1.32 a composite request intended to sync directories after directory
952 root 1.28 operations (E.g. rename). This might not work on all operating
953     systems or have any specific effect, but usually it makes sure that
954     directory changes get written to disc. It works for anything that
955     can be opened for read-only, not just directories.
956    
957 root 1.39 Future versions of this function might fall back to other methods
958     when "fsync" on the directory fails (such as calling "sync").
959    
960 root 1.28 Passes 0 when everything went ok, and -1 on error.
961    
962 root 1.59 aio_msync $scalar, $offset = 0, $length = undef, flags = MS_SYNC,
963 root 1.41 $callback->($status)
964     This is a rather advanced IO::AIO call, which only works on
965 root 1.43 mmap(2)ed scalars (see the "IO::AIO::mmap" function, although it
966     also works on data scalars managed by the Sys::Mmap or Mmap modules,
967     note that the scalar must only be modified in-place while an aio
968     operation is pending on it).
969 root 1.41
970     It calls the "msync" function of your OS, if available, with the
971     memory area starting at $offset in the string and ending $length
972     bytes later. If $length is negative, counts from the end, and if
973     $length is "undef", then it goes till the end of the string. The
974 root 1.59 flags can be either "IO::AIO::MS_ASYNC" or "IO::AIO::MS_SYNC", plus
975     an optional "IO::AIO::MS_INVALIDATE".
976 root 1.41
977     aio_mtouch $scalar, $offset = 0, $length = undef, flags = 0,
978     $callback->($status)
979     This is a rather advanced IO::AIO call, which works best on
980     mmap(2)ed scalars.
981    
982     It touches (reads or writes) all memory pages in the specified range
983     inside the scalar. All caveats and parameters are the same as for
984     "aio_msync", above, except for flags, which must be either 0 (which
985     reads all pages and ensures they are instantiated) or
986 root 1.54 "IO::AIO::MT_MODIFY", which modifies the memory pages (by reading
987 root 1.41 and writing an octet from it, which dirties the page).
988    
989 root 1.44 aio_mlock $scalar, $offset = 0, $length = undef, $callback->($status)
990     This is a rather advanced IO::AIO call, which works best on
991     mmap(2)ed scalars.
992    
993     It reads in all the pages of the underlying storage into memory (if
994     any) and locks them, so they are not getting swapped/paged out or
995     removed.
996    
997     If $length is undefined, then the scalar will be locked till the
998     end.
999    
1000     On systems that do not implement "mlock", this function returns -1
1001     and sets errno to "ENOSYS".
1002    
1003     Note that the corresponding "munlock" is synchronous and is
1004     documented under "MISCELLANEOUS FUNCTIONS".
1005    
1006     Example: open a file, mmap and mlock it - both will be undone when
1007     $data gets destroyed.
1008    
1009     open my $fh, "<", $path or die "$path: $!";
1010     my $data;
1011     IO::AIO::mmap $data, -s $fh, IO::AIO::PROT_READ, IO::AIO::MAP_SHARED, $fh;
1012     aio_mlock $data; # mlock in background
1013    
1014     aio_mlockall $flags, $callback->($status)
1015     Calls the "mlockall" function with the given $flags (a combination
1016     of "IO::AIO::MCL_CURRENT" and "IO::AIO::MCL_FUTURE").
1017    
1018     On systems that do not implement "mlockall", this function returns
1019     -1 and sets errno to "ENOSYS".
1020    
1021     Note that the corresponding "munlockall" is synchronous and is
1022     documented under "MISCELLANEOUS FUNCTIONS".
1023    
1024     Example: asynchronously lock all current and future pages into
1025     memory.
1026    
1027     aio_mlockall IO::AIO::MCL_FUTURE;
1028    
1029 root 1.51 aio_fiemap $fh, $start, $length, $flags, $count, $cb->(\@extents)
1030 root 1.53 Queries the extents of the given file (by calling the Linux "FIEMAP"
1031 root 1.51 ioctl, see <http://cvs.schmorp.de/IO-AIO/doc/fiemap.txt> for
1032 root 1.53 details). If the ioctl is not available on your OS, then this
1033     request will fail with "ENOSYS".
1034 root 1.51
1035     $start is the starting offset to query extents for, $length is the
1036     size of the range to query - if it is "undef", then the whole file
1037     will be queried.
1038    
1039     $flags is a combination of flags ("IO::AIO::FIEMAP_FLAG_SYNC" or
1040     "IO::AIO::FIEMAP_FLAG_XATTR" - "IO::AIO::FIEMAP_FLAGS_COMPAT" is
1041     also exported), and is normally 0 or "IO::AIO::FIEMAP_FLAG_SYNC" to
1042     query the data portion.
1043    
1044     $count is the maximum number of extent records to return. If it is
1045 root 1.53 "undef", then IO::AIO queries all extents of the range. As a very
1046 root 1.51 special case, if it is 0, then the callback receives the number of
1047 root 1.53 extents instead of the extents themselves (which is unreliable, see
1048     below).
1049 root 1.51
1050     If an error occurs, the callback receives no arguments. The special
1051     "errno" value "IO::AIO::EBADR" is available to test for flag errors.
1052    
1053     Otherwise, the callback receives an array reference with extent
1054     structures. Each extent structure is an array reference itself, with
1055     the following members:
1056    
1057     [$logical, $physical, $length, $flags]
1058    
1059     Flags is any combination of the following flag values (typically
1060 root 1.53 either 0 or "IO::AIO::FIEMAP_EXTENT_LAST" (1)):
1061 root 1.51
1062     "IO::AIO::FIEMAP_EXTENT_LAST", "IO::AIO::FIEMAP_EXTENT_UNKNOWN",
1063     "IO::AIO::FIEMAP_EXTENT_DELALLOC", "IO::AIO::FIEMAP_EXTENT_ENCODED",
1064     "IO::AIO::FIEMAP_EXTENT_DATA_ENCRYPTED",
1065     "IO::AIO::FIEMAP_EXTENT_NOT_ALIGNED",
1066     "IO::AIO::FIEMAP_EXTENT_DATA_INLINE",
1067     "IO::AIO::FIEMAP_EXTENT_DATA_TAIL",
1068     "IO::AIO::FIEMAP_EXTENT_UNWRITTEN", "IO::AIO::FIEMAP_EXTENT_MERGED"
1069     or "IO::AIO::FIEMAP_EXTENT_SHARED".
1070    
1071 root 1.59 At the time of this writing (Linux 3.2), this request is unreliable
1072 root 1.53 unless $count is "undef", as the kernel has all sorts of bugs
1073 root 1.59 preventing it to return all extents of a range for files with a
1074     large number of extents. The code (only) works around all these
1075     issues if $count is "undef".
1076 root 1.53
1077 root 1.20 aio_group $callback->(...)
1078     This is a very special aio request: Instead of doing something, it
1079     is a container for other aio requests, which is useful if you want
1080     to bundle many requests into a single, composite, request with a
1081     definite callback and the ability to cancel the whole request with
1082     its subrequests.
1083    
1084     Returns an object of class IO::AIO::GRP. See its documentation below
1085     for more info.
1086    
1087     Example:
1088    
1089     my $grp = aio_group sub {
1090     print "all stats done\n";
1091     };
1092    
1093     add $grp
1094     (aio_stat ...),
1095     (aio_stat ...),
1096     ...;
1097    
1098     aio_nop $callback->()
1099     This is a special request - it does nothing in itself and is only
1100     used for side effects, such as when you want to add a dummy request
1101     to a group so that finishing the requests in the group depends on
1102     executing the given code.
1103    
1104     While this request does nothing, it still goes through the execution
1105     phase and still requires a worker thread. Thus, the callback will
1106     not be executed immediately but only after other requests in the
1107     queue have entered their execution phase. This can be used to
1108     measure request latency.
1109    
1110     IO::AIO::aio_busy $fractional_seconds, $callback->() *NOT EXPORTED*
1111     Mainly used for debugging and benchmarking, this aio request puts
1112     one of the request workers to sleep for the given time.
1113    
1114     While it is theoretically handy to have simple I/O scheduling
1115     requests like sleep and file handle readable/writable, the overhead
1116     this creates is immense (it blocks a thread for a long time) so do
1117     not use this function except to put your application under
1118     artificial I/O pressure.
1119 root 1.18
1120 root 1.50 IO::AIO::WD - multiple working directories
1121     Your process only has one current working directory, which is used by
1122     all threads. This makes it hard to use relative paths (some other
1123     component could call "chdir" at any time, and it is hard to control when
1124     the path will be used by IO::AIO).
1125    
1126     One solution for this is to always use absolute paths. This usually
1127     works, but can be quite slow (the kernel has to walk the whole path on
1128     every access), and can also be a hassle to implement.
1129    
1130     Newer POSIX systems have a number of functions (openat, fdopendir,
1131     futimensat and so on) that make it possible to specify working
1132     directories per operation.
1133    
1134     For portability, and because the clowns who "designed", or shall I
1135     write, perpetrated this new interface were obviously half-drunk, this
1136     abstraction cannot be perfect, though.
1137    
1138     IO::AIO allows you to convert directory paths into a so-called
1139     IO::AIO::WD object. This object stores the canonicalised, absolute
1140     version of the path, and on systems that allow it, also a directory file
1141     descriptor.
1142    
1143     Everywhere where a pathname is accepted by IO::AIO (e.g. in "aio_stat"
1144     or "aio_unlink"), one can specify an array reference with an IO::AIO::WD
1145     object and a pathname instead (or the IO::AIO::WD object alone, which
1146     gets interpreted as "[$wd, "."]"). If the pathname is absolute, the
1147     IO::AIO::WD object is ignored, otherwise the pathname is resolved
1148     relative to that IO::AIO::WD object.
1149    
1150     For example, to get a wd object for /etc and then stat passwd inside,
1151     you would write:
1152    
1153     aio_wd "/etc", sub {
1154     my $etcdir = shift;
1155    
1156     # although $etcdir can be undef on error, there is generally no reason
1157     # to check for errors here, as aio_stat will fail with ENOENT
1158     # when $etcdir is undef.
1159    
1160     aio_stat [$etcdir, "passwd"], sub {
1161     # yay
1162     };
1163     };
1164    
1165 root 1.56 The fact that "aio_wd" is a request and not a normal function shows that
1166     creating an IO::AIO::WD object is itself a potentially blocking
1167     operation, which is why it is done asynchronously.
1168 root 1.50
1169     To stat the directory obtained with "aio_wd" above, one could write
1170     either of the following three request calls:
1171    
1172     aio_lstat "/etc" , sub { ... # pathname as normal string
1173     aio_lstat [$wd, "."], sub { ... # "." relative to $wd (i.e. $wd itself)
1174     aio_lstat $wd , sub { ... # shorthand for the previous
1175    
1176     As with normal pathnames, IO::AIO keeps a copy of the working directory
1177     object and the pathname string, so you could write the following without
1178     causing any issues due to $path getting reused:
1179    
1180     my $path = [$wd, undef];
1181    
1182     for my $name (qw(abc def ghi)) {
1183     $path->[1] = $name;
1184     aio_stat $path, sub {
1185     # ...
1186     };
1187     }
1188    
1189     There are some caveats: when directories get renamed (or deleted), the
1190     pathname string doesn't change, so will point to the new directory (or
1191     nowhere at all), while the directory fd, if available on the system,
1192     will still point to the original directory. Most functions accepting a
1193     pathname will use the directory fd on newer systems, and the string on
1194 root 1.59 older systems. Some functions (such as "aio_realpath") will always rely
1195     on the string form of the pathname.
1196 root 1.50
1197 root 1.54 So this functionality is mainly useful to get some protection against
1198 root 1.50 "chdir", to easily get an absolute path out of a relative path for
1199     future reference, and to speed up doing many operations in the same
1200     directory (e.g. when stat'ing all files in a directory).
1201    
1202     The following functions implement this working directory abstraction:
1203    
1204     aio_wd $pathname, $callback->($wd)
1205     Asynchonously canonicalise the given pathname and convert it to an
1206     IO::AIO::WD object representing it. If possible and supported on the
1207     system, also open a directory fd to speed up pathname resolution
1208     relative to this working directory.
1209    
1210     If something goes wrong, then "undef" is passwd to the callback
1211     instead of a working directory object and $! is set appropriately.
1212     Since passing "undef" as working directory component of a pathname
1213     fails the request with "ENOENT", there is often no need for error
1214     checking in the "aio_wd" callback, as future requests using the
1215     value will fail in the expected way.
1216    
1217     IO::AIO::CWD
1218     This is a compiletime constant (object) that represents the process
1219     current working directory.
1220    
1221     Specifying this object as working directory object for a pathname is
1222     as if the pathname would be specified directly, without a directory
1223 root 1.54 object. For example, these calls are functionally identical:
1224 root 1.50
1225     aio_stat "somefile", sub { ... };
1226     aio_stat [IO::AIO::CWD, "somefile"], sub { ... };
1227    
1228 root 1.54 To recover the path associated with an IO::AIO::WD object, you can use
1229     "aio_realpath":
1230    
1231     aio_realpath $wd, sub {
1232     warn "path is $_[0]\n";
1233     };
1234    
1235     Currently, "aio_statvfs" always, and "aio_rename" and "aio_rmdir"
1236     sometimes, fall back to using an absolue path.
1237    
1238 root 1.18 IO::AIO::REQ CLASS
1239 root 1.20 All non-aggregate "aio_*" functions return an object of this class when
1240     called in non-void context.
1241 root 1.18
1242 root 1.20 cancel $req
1243     Cancels the request, if possible. Has the effect of skipping
1244     execution when entering the execute state and skipping calling the
1245     callback when entering the the result state, but will leave the
1246 root 1.37 request otherwise untouched (with the exception of readdir). That
1247     means that requests that currently execute will not be stopped and
1248     resources held by the request will not be freed prematurely.
1249 root 1.18
1250 root 1.20 cb $req $callback->(...)
1251     Replace (or simply set) the callback registered to the request.
1252 root 1.18
1253     IO::AIO::GRP CLASS
1254 root 1.20 This class is a subclass of IO::AIO::REQ, so all its methods apply to
1255     objects of this class, too.
1256 root 1.18
1257 root 1.20 A IO::AIO::GRP object is a special request that can contain multiple
1258     other aio requests.
1259 root 1.18
1260 root 1.20 You create one by calling the "aio_group" constructing function with a
1261     callback that will be called when all contained requests have entered
1262     the "done" state:
1263 root 1.18
1264 root 1.20 my $grp = aio_group sub {
1265     print "all requests are done\n";
1266     };
1267    
1268     You add requests by calling the "add" method with one or more
1269     "IO::AIO::REQ" objects:
1270    
1271     $grp->add (aio_unlink "...");
1272    
1273     add $grp aio_stat "...", sub {
1274     $_[0] or return $grp->result ("error");
1275 root 1.1
1276 root 1.20 # add another request dynamically, if first succeeded
1277     add $grp aio_open "...", sub {
1278     $grp->result ("ok");
1279     };
1280     };
1281 root 1.18
1282 root 1.20 This makes it very easy to create composite requests (see the source of
1283     "aio_move" for an application) that work and feel like simple requests.
1284 root 1.18
1285 root 1.28 * The IO::AIO::GRP objects will be cleaned up during calls to
1286     "IO::AIO::poll_cb", just like any other request.
1287    
1288     * They can be canceled like any other request. Canceling will cancel
1289     not only the request itself, but also all requests it contains.
1290    
1291     * They can also can also be added to other IO::AIO::GRP objects.
1292    
1293     * You must not add requests to a group from within the group callback
1294     (or any later time).
1295 root 1.20
1296     Their lifetime, simplified, looks like this: when they are empty, they
1297     will finish very quickly. If they contain only requests that are in the
1298     "done" state, they will also finish. Otherwise they will continue to
1299     exist.
1300    
1301 root 1.32 That means after creating a group you have some time to add requests
1302     (precisely before the callback has been invoked, which is only done
1303     within the "poll_cb"). And in the callbacks of those requests, you can
1304     add further requests to the group. And only when all those requests have
1305     finished will the the group itself finish.
1306 root 1.20
1307     add $grp ...
1308     $grp->add (...)
1309     Add one or more requests to the group. Any type of IO::AIO::REQ can
1310     be added, including other groups, as long as you do not create
1311     circular dependencies.
1312    
1313     Returns all its arguments.
1314    
1315     $grp->cancel_subs
1316     Cancel all subrequests and clears any feeder, but not the group
1317     request itself. Useful when you queued a lot of events but got a
1318     result early.
1319    
1320 root 1.41 The group request will finish normally (you cannot add requests to
1321     the group).
1322    
1323 root 1.20 $grp->result (...)
1324     Set the result value(s) that will be passed to the group callback
1325 root 1.28 when all subrequests have finished and set the groups errno to the
1326 root 1.20 current value of errno (just like calling "errno" without an error
1327     number). By default, no argument will be passed and errno is zero.
1328    
1329     $grp->errno ([$errno])
1330     Sets the group errno value to $errno, or the current value of errno
1331     when the argument is missing.
1332    
1333     Every aio request has an associated errno value that is restored
1334     when the callback is invoked. This method lets you change this value
1335     from its default (0).
1336    
1337     Calling "result" will also set errno, so make sure you either set $!
1338     before the call to "result", or call c<errno> after it.
1339    
1340     feed $grp $callback->($grp)
1341     Sets a feeder/generator on this group: every group can have an
1342     attached generator that generates requests if idle. The idea behind
1343     this is that, although you could just queue as many requests as you
1344     want in a group, this might starve other requests for a potentially
1345     long time. For example, "aio_scandir" might generate hundreds of
1346 root 1.50 thousands of "aio_stat" requests, delaying any later requests for a
1347 root 1.20 long time.
1348    
1349     To avoid this, and allow incremental generation of requests, you can
1350     instead a group and set a feeder on it that generates those
1351     requests. The feed callback will be called whenever there are few
1352     enough (see "limit", below) requests active in the group itself and
1353     is expected to queue more requests.
1354    
1355     The feed callback can queue as many requests as it likes (i.e. "add"
1356     does not impose any limits).
1357    
1358     If the feed does not queue more requests when called, it will be
1359     automatically removed from the group.
1360    
1361 root 1.33 If the feed limit is 0 when this method is called, it will be set to
1362     2 automatically.
1363 root 1.20
1364     Example:
1365    
1366     # stat all files in @files, but only ever use four aio requests concurrently:
1367    
1368     my $grp = aio_group sub { print "finished\n" };
1369     limit $grp 4;
1370     feed $grp sub {
1371     my $file = pop @files
1372     or return;
1373 root 1.18
1374 root 1.20 add $grp aio_stat $file, sub { ... };
1375 root 1.1 };
1376    
1377 root 1.20 limit $grp $num
1378     Sets the feeder limit for the group: The feeder will be called
1379     whenever the group contains less than this many requests.
1380 root 1.18
1381 root 1.20 Setting the limit to 0 will pause the feeding process.
1382 root 1.17
1383 root 1.33 The default value for the limit is 0, but note that setting a feeder
1384     automatically bumps it up to 2.
1385    
1386 root 1.18 SUPPORT FUNCTIONS
1387 root 1.19 EVENT PROCESSING AND EVENT LOOP INTEGRATION
1388 root 1.20 $fileno = IO::AIO::poll_fileno
1389     Return the *request result pipe file descriptor*. This filehandle
1390     must be polled for reading by some mechanism outside this module
1391 root 1.38 (e.g. EV, Glib, select and so on, see below or the SYNOPSIS). If the
1392     pipe becomes readable you have to call "poll_cb" to check the
1393     results.
1394 root 1.20
1395     See "poll_cb" for an example.
1396    
1397     IO::AIO::poll_cb
1398 root 1.54 Process some requests that have reached the result phase (i.e. they
1399     have been executed but the results are not yet reported). You have
1400     to call this "regularly" to finish outstanding requests.
1401    
1402     Returns 0 if all events could be processed (or there were no events
1403     to process), or -1 if it returned earlier for whatever reason.
1404     Returns immediately when no events are outstanding. The amount of
1405     events processed depends on the settings of "IO::AIO::max_poll_req",
1406     "IO::AIO::max_poll_time" and "IO::AIO::max_outstanding".
1407    
1408     If not all requests were processed for whatever reason, the poll
1409     file descriptor will still be ready when "poll_cb" returns, so
1410     normally you don't have to do anything special to have it called
1411     later.
1412 root 1.20
1413 root 1.47 Apart from calling "IO::AIO::poll_cb" when the event filehandle
1414     becomes ready, it can be beneficial to call this function from loops
1415     which submit a lot of requests, to make sure the results get
1416     processed when they become available and not just when the loop is
1417     finished and the event loop takes over again. This function returns
1418     very fast when there are no outstanding requests.
1419    
1420 root 1.20 Example: Install an Event watcher that automatically calls
1421 root 1.38 IO::AIO::poll_cb with high priority (more examples can be found in
1422     the SYNOPSIS section, at the top of this document):
1423 root 1.20
1424     Event->io (fd => IO::AIO::poll_fileno,
1425     poll => 'r', async => 1,
1426     cb => \&IO::AIO::poll_cb);
1427    
1428 root 1.43 IO::AIO::poll_wait
1429 root 1.54 Wait until either at least one request is in the result phase or no
1430     requests are outstanding anymore.
1431    
1432     This is useful if you want to synchronously wait for some requests
1433     to become ready, without actually handling them.
1434 root 1.43
1435     See "nreqs" for an example.
1436    
1437     IO::AIO::poll
1438     Waits until some requests have been handled.
1439    
1440     Returns the number of requests processed, but is otherwise strictly
1441     equivalent to:
1442    
1443     IO::AIO::poll_wait, IO::AIO::poll_cb
1444    
1445     IO::AIO::flush
1446     Wait till all outstanding AIO requests have been handled.
1447    
1448     Strictly equivalent to:
1449    
1450     IO::AIO::poll_wait, IO::AIO::poll_cb
1451     while IO::AIO::nreqs;
1452    
1453 root 1.20 IO::AIO::max_poll_reqs $nreqs
1454     IO::AIO::max_poll_time $seconds
1455     These set the maximum number of requests (default 0, meaning
1456     infinity) that are being processed by "IO::AIO::poll_cb" in one
1457     call, respectively the maximum amount of time (default 0, meaning
1458     infinity) spent in "IO::AIO::poll_cb" to process requests (more
1459     correctly the mininum amount of time "poll_cb" is allowed to use).
1460    
1461     Setting "max_poll_time" to a non-zero value creates an overhead of
1462     one syscall per request processed, which is not normally a problem
1463     unless your callbacks are really really fast or your OS is really
1464     really slow (I am not mentioning Solaris here). Using
1465     "max_poll_reqs" incurs no overhead.
1466    
1467     Setting these is useful if you want to ensure some level of
1468     interactiveness when perl is not fast enough to process all requests
1469     in time.
1470    
1471     For interactive programs, values such as 0.01 to 0.1 should be fine.
1472 root 1.4
1473 root 1.20 Example: Install an Event watcher that automatically calls
1474     IO::AIO::poll_cb with low priority, to ensure that other parts of
1475     the program get the CPU sometimes even under high AIO load.
1476 root 1.4
1477 root 1.20 # try not to spend much more than 0.1s in poll_cb
1478     IO::AIO::max_poll_time 0.1;
1479 root 1.4
1480 root 1.20 # use a low priority so other tasks have priority
1481     Event->io (fd => IO::AIO::poll_fileno,
1482     poll => 'r', nice => 1,
1483     cb => &IO::AIO::poll_cb);
1484    
1485 root 1.19 CONTROLLING THE NUMBER OF THREADS
1486 root 1.20 IO::AIO::min_parallel $nthreads
1487     Set the minimum number of AIO threads to $nthreads. The current
1488     default is 8, which means eight asynchronous operations can execute
1489     concurrently at any one time (the number of outstanding requests,
1490     however, is unlimited).
1491    
1492     IO::AIO starts threads only on demand, when an AIO request is queued
1493     and no free thread exists. Please note that queueing up a hundred
1494     requests can create demand for a hundred threads, even if it turns
1495     out that everything is in the cache and could have been processed
1496     faster by a single thread.
1497    
1498     It is recommended to keep the number of threads relatively low, as
1499     some Linux kernel versions will scale negatively with the number of
1500     threads (higher parallelity => MUCH higher latency). With current
1501     Linux 2.6 versions, 4-32 threads should be fine.
1502    
1503     Under most circumstances you don't need to call this function, as
1504     the module selects a default that is suitable for low to moderate
1505     load.
1506    
1507     IO::AIO::max_parallel $nthreads
1508     Sets the maximum number of AIO threads to $nthreads. If more than
1509     the specified number of threads are currently running, this function
1510     kills them. This function blocks until the limit is reached.
1511    
1512     While $nthreads are zero, aio requests get queued but not executed
1513     until the number of threads has been increased again.
1514    
1515     This module automatically runs "max_parallel 0" at program end, to
1516     ensure that all threads are killed and that there are no outstanding
1517     requests.
1518    
1519     Under normal circumstances you don't need to call this function.
1520    
1521     IO::AIO::max_idle $nthreads
1522     Limit the number of threads (default: 4) that are allowed to idle
1523 root 1.46 (i.e., threads that did not get a request to process within the idle
1524     timeout (default: 10 seconds). That means if a thread becomes idle
1525     while $nthreads other threads are also idle, it will free its
1526     resources and exit.
1527 root 1.20
1528     This is useful when you allow a large number of threads (e.g. 100 or
1529     1000) to allow for extremely high load situations, but want to free
1530     resources under normal circumstances (1000 threads can easily
1531     consume 30MB of RAM).
1532    
1533     The default is probably ok in most situations, especially if thread
1534     creation is fast. If thread creation is very slow on your system you
1535     might want to use larger values.
1536    
1537 root 1.46 IO::AIO::idle_timeout $seconds
1538     Sets the minimum idle timeout (default 10) after which worker
1539     threads are allowed to exit. SEe "IO::AIO::max_idle".
1540    
1541 root 1.30 IO::AIO::max_outstanding $maxreqs
1542 root 1.48 Sets the maximum number of outstanding requests to $nreqs. If you do
1543     queue up more than this number of requests, the next call to
1544     "IO::AIO::poll_cb" (and other functions calling "poll_cb", such as
1545     "IO::AIO::flush" or "IO::AIO::poll") will block until the limit is
1546     no longer exceeded.
1547    
1548     In other words, this setting does not enforce a queue limit, but can
1549     be used to make poll functions block if the limit is exceeded.
1550    
1551 root 1.20 This is a very bad function to use in interactive programs because
1552     it blocks, and a bad way to reduce concurrency because it is
1553     inexact: Better use an "aio_group" together with a feed callback.
1554    
1555 root 1.56 Its main use is in scripts without an event loop - when you want to
1556 root 1.59 stat a lot of files, you can write something like this:
1557 root 1.48
1558     IO::AIO::max_outstanding 32;
1559    
1560     for my $path (...) {
1561     aio_stat $path , ...;
1562     IO::AIO::poll_cb;
1563     }
1564    
1565     IO::AIO::flush;
1566    
1567     The call to "poll_cb" inside the loop will normally return
1568     instantly, but as soon as more thna 32 reqeusts are in-flight, it
1569     will block until some requests have been handled. This keeps the
1570     loop from pushing a large number of "aio_stat" requests onto the
1571     queue.
1572    
1573     The default value for "max_outstanding" is very large, so there is
1574     no practical limit on the number of outstanding requests.
1575 root 1.1
1576 root 1.19 STATISTICAL INFORMATION
1577 root 1.20 IO::AIO::nreqs
1578     Returns the number of requests currently in the ready, execute or
1579     pending states (i.e. for which their callback has not been invoked
1580     yet).
1581    
1582     Example: wait till there are no outstanding requests anymore:
1583    
1584     IO::AIO::poll_wait, IO::AIO::poll_cb
1585     while IO::AIO::nreqs;
1586    
1587     IO::AIO::nready
1588     Returns the number of requests currently in the ready state (not yet
1589     executed).
1590    
1591     IO::AIO::npending
1592     Returns the number of requests currently in the pending state
1593     (executed, but not yet processed by poll_cb).
1594 root 1.19
1595 root 1.38 MISCELLANEOUS FUNCTIONS
1596 root 1.56 IO::AIO implements some functions that are useful when you want to use
1597     some "Advanced I/O" function not available to in Perl, without going the
1598     "Asynchronous I/O" route. Many of these have an asynchronous "aio_*"
1599     counterpart.
1600 root 1.38
1601 root 1.59 $numfd = IO::AIO::get_fdlimit
1602     This function is *EXPERIMENTAL* and subject to change.
1603    
1604     Tries to find the current file descriptor limit and returns it, or
1605     "undef" and sets $! in case of an error. The limit is one larger
1606     than the highest valid file descriptor number.
1607    
1608     IO::AIO::min_fdlimit [$numfd]
1609     This function is *EXPERIMENTAL* and subject to change.
1610    
1611     Try to increase the current file descriptor limit(s) to at least
1612     $numfd by changing the soft or hard file descriptor resource limit.
1613     If $numfd is missing, it will try to set a very high limit, although
1614     this is not recommended when you know the actual minimum that you
1615     require.
1616    
1617     If the limit cannot be raised enough, the function makes a
1618     best-effort attempt to increase the limit as much as possible, using
1619     various tricks, while still failing. You can query the resulting
1620     limit using "IO::AIO::get_fdlimit".
1621    
1622     If an error occurs, returns "undef" and sets $!, otherwise returns
1623     true.
1624    
1625 root 1.38 IO::AIO::sendfile $ofh, $ifh, $offset, $count
1626     Calls the "eio_sendfile_sync" function, which is like
1627     "aio_sendfile", but is blocking (this makes most sense if you know
1628     the input data is likely cached already and the output filehandle is
1629     set to non-blocking operations).
1630    
1631     Returns the number of bytes copied, or -1 on error.
1632    
1633     IO::AIO::fadvise $fh, $offset, $len, $advice
1634 root 1.44 Simply calls the "posix_fadvise" function (see its manpage for
1635 root 1.50 details). The following advice constants are available:
1636 root 1.38 "IO::AIO::FADV_NORMAL", "IO::AIO::FADV_SEQUENTIAL",
1637     "IO::AIO::FADV_RANDOM", "IO::AIO::FADV_NOREUSE",
1638     "IO::AIO::FADV_WILLNEED", "IO::AIO::FADV_DONTNEED".
1639    
1640     On systems that do not implement "posix_fadvise", this function
1641     returns ENOSYS, otherwise the return value of "posix_fadvise".
1642    
1643 root 1.44 IO::AIO::madvise $scalar, $offset, $len, $advice
1644     Simply calls the "posix_madvise" function (see its manpage for
1645 root 1.50 details). The following advice constants are available:
1646 root 1.44 "IO::AIO::MADV_NORMAL", "IO::AIO::MADV_SEQUENTIAL",
1647     "IO::AIO::MADV_RANDOM", "IO::AIO::MADV_WILLNEED",
1648     "IO::AIO::MADV_DONTNEED".
1649    
1650 root 1.59 If $offset is negative, counts from the end. If $length is negative,
1651     the remaining length of the $scalar is used. If possible, $length
1652     will be reduced to fit into the $scalar.
1653    
1654 root 1.44 On systems that do not implement "posix_madvise", this function
1655     returns ENOSYS, otherwise the return value of "posix_madvise".
1656    
1657     IO::AIO::mprotect $scalar, $offset, $len, $protect
1658     Simply calls the "mprotect" function on the preferably AIO::mmap'ed
1659     $scalar (see its manpage for details). The following protect
1660 root 1.50 constants are available: "IO::AIO::PROT_NONE", "IO::AIO::PROT_READ",
1661 root 1.44 "IO::AIO::PROT_WRITE", "IO::AIO::PROT_EXEC".
1662    
1663 root 1.59 If $offset is negative, counts from the end. If $length is negative,
1664     the remaining length of the $scalar is used. If possible, $length
1665     will be reduced to fit into the $scalar.
1666    
1667 root 1.44 On systems that do not implement "mprotect", this function returns
1668     ENOSYS, otherwise the return value of "mprotect".
1669    
1670 root 1.43 IO::AIO::mmap $scalar, $length, $prot, $flags, $fh[, $offset]
1671     Memory-maps a file (or anonymous memory range) and attaches it to
1672 root 1.53 the given $scalar, which will act like a string scalar. Returns true
1673     on success, and false otherwise.
1674 root 1.43
1675 root 1.59 The scalar must exist, but its contents do not matter - this means
1676     you cannot use a nonexistant array or hash element. When in doubt,
1677     "undef" the scalar first.
1678    
1679     The only operations allowed on the mmapped scalar are
1680     "substr"/"vec", which don't change the string length, and most
1681     read-only operations such as copying it or searching it with regexes
1682     and so on.
1683 root 1.43
1684     Anything else is unsafe and will, at best, result in memory leaks.
1685    
1686     The memory map associated with the $scalar is automatically removed
1687 root 1.59 when the $scalar is undef'd or destroyed, or when the
1688     "IO::AIO::mmap" or "IO::AIO::munmap" functions are called on it.
1689 root 1.43
1690     This calls the "mmap"(2) function internally. See your system's
1691     manual page for details on the $length, $prot and $flags parameters.
1692    
1693     The $length must be larger than zero and smaller than the actual
1694     filesize.
1695    
1696     $prot is a combination of "IO::AIO::PROT_NONE",
1697     "IO::AIO::PROT_EXEC", "IO::AIO::PROT_READ" and/or
1698     "IO::AIO::PROT_WRITE",
1699    
1700     $flags can be a combination of "IO::AIO::MAP_SHARED" or
1701     "IO::AIO::MAP_PRIVATE", or a number of system-specific flags (when
1702 root 1.57 not available, the are 0): "IO::AIO::MAP_ANONYMOUS" (which is set to
1703     "MAP_ANON" if your system only provides this constant),
1704 root 1.58 "IO::AIO::MAP_LOCKED", "IO::AIO::MAP_NORESERVE",
1705     "IO::AIO::MAP_POPULATE", "IO::AIO::MAP_NONBLOCK",
1706     "IO::AIO::MAP_FIXED", "IO::AIO::MAP_GROWSDOWN",
1707     "IO::AIO::MAP_32BIT", "IO::AIO::MAP_HUGETLB" or
1708     "IO::AIO::MAP_STACK".
1709 root 1.43
1710     If $fh is "undef", then a file descriptor of -1 is passed.
1711    
1712     $offset is the offset from the start of the file - it generally must
1713     be a multiple of "IO::AIO::PAGESIZE" and defaults to 0.
1714    
1715     Example:
1716    
1717     use Digest::MD5;
1718     use IO::AIO;
1719    
1720     open my $fh, "<verybigfile"
1721     or die "$!";
1722    
1723     IO::AIO::mmap my $data, -s $fh, IO::AIO::PROT_READ, IO::AIO::MAP_SHARED, $fh
1724     or die "verybigfile: $!";
1725    
1726     my $fast_md5 = md5 $data;
1727    
1728     IO::AIO::munmap $scalar
1729     Removes a previous mmap and undefines the $scalar.
1730    
1731 root 1.60 IO::AIO::mremap $scalar, $new_length, $flags = MREMAP_MAYMOVE[,
1732     $new_address = 0]
1733     Calls the Linux-specific mremap(2) system call. The $scalar must
1734     have been mapped by "IO::AIO::mmap", and $flags must currently
1735     either be 0 or "IO::AIO::MREMAP_MAYMOVE".
1736    
1737     Returns true if successful, and false otherwise. If the underlying
1738     mmapped region has changed address, then the true value has the
1739     numerical value 1, otherwise it has the numerical value 0:
1740    
1741     my $success = IO::AIO::mremap $mmapped, 8192, IO::AIO::MREMAP_MAYMOVE
1742     or die "mremap: $!";
1743    
1744     if ($success*1) {
1745     warn "scalar has chanegd address in memory\n";
1746     }
1747    
1748     "IO::AIO::MREMAP_FIXED" and the $new_address argument are currently
1749     implemented, but not supported and might go away in a future
1750     version.
1751    
1752     On systems where this call is not supported or is not emulated, this
1753     call returns falls and sets $! to "ENOSYS".
1754    
1755 root 1.44 IO::AIO::munlock $scalar, $offset = 0, $length = undef
1756     Calls the "munlock" function, undoing the effects of a previous
1757     "aio_mlock" call (see its description for details).
1758 root 1.43
1759     IO::AIO::munlockall
1760     Calls the "munlockall" function.
1761    
1762     On systems that do not implement "munlockall", this function returns
1763     ENOSYS, otherwise the return value of "munlockall".
1764    
1765 root 1.52 IO::AIO::splice $r_fh, $r_off, $w_fh, $w_off, $length, $flags
1766     Calls the GNU/Linux splice(2) syscall, if available. If $r_off or
1767     $w_off are "undef", then "NULL" is passed for these, otherwise they
1768     should be the file offset.
1769    
1770 root 1.53 $r_fh and $w_fh should not refer to the same file, as splice might
1771     silently corrupt the data in this case.
1772    
1773 root 1.52 The following symbol flag values are available:
1774     "IO::AIO::SPLICE_F_MOVE", "IO::AIO::SPLICE_F_NONBLOCK",
1775     "IO::AIO::SPLICE_F_MORE" and "IO::AIO::SPLICE_F_GIFT".
1776    
1777     See the splice(2) manpage for details.
1778    
1779     IO::AIO::tee $r_fh, $w_fh, $length, $flags
1780 root 1.56 Calls the GNU/Linux tee(2) syscall, see its manpage and the
1781 root 1.52 description for "IO::AIO::splice" above for details.
1782    
1783 root 1.55 $actual_size = IO::AIO::pipesize $r_fh[, $new_size]
1784     Attempts to query or change the pipe buffer size. Obviously works
1785     only on pipes, and currently works only on GNU/Linux systems, and
1786     fails with -1/"ENOSYS" everywhere else. If anybody knows how to
1787     influence pipe buffer size on other systems, drop me a note.
1788    
1789 root 1.57 ($rfh, $wfh) = IO::AIO::pipe2 [$flags]
1790     This is a direct interface to the Linux pipe2(2) system call. If
1791     $flags is missing or 0, then this should be the same as a call to
1792     perl's built-in "pipe" function and create a new pipe, and works on
1793     systems that lack the pipe2 syscall. On win32, this case invokes
1794     "_pipe (..., 4096, O_BINARY)".
1795    
1796     If $flags is non-zero, it tries to invoke the pipe2 system call with
1797     the given flags (Linux 2.6.27, glibc 2.9).
1798    
1799     On success, the read and write file handles are returned.
1800    
1801     On error, nothing will be returned. If the pipe2 syscall is missing
1802     and $flags is non-zero, fails with "ENOSYS".
1803    
1804     Please refer to pipe2(2) for more info on the $flags, but at the
1805     time of this writing, "IO::AIO::O_CLOEXEC", "IO::AIO::O_NONBLOCK"
1806     and "IO::AIO::O_DIRECT" (Linux 3.4, for packet-based pipes) were
1807     supported.
1808    
1809 root 1.59 Example: create a pipe race-free w.r.t. threads and fork:
1810    
1811     my ($rfh, $wfh) = IO::AIO::pipe2 IO::AIO::O_CLOEXEC
1812     or die "pipe2: $!\n";
1813    
1814     $fh = IO::AIO::eventfd [$initval, [$flags]]
1815     This is a direct interface to the Linux eventfd(2) system call. The
1816     (unhelpful) defaults for $initval and $flags are 0 for both.
1817    
1818     On success, the new eventfd filehandle is returned, otherwise
1819     returns "undef". If the eventfd syscall is missing, fails with
1820     "ENOSYS".
1821    
1822     Please refer to eventfd(2) for more info on this call.
1823    
1824     The following symbol flag values are available:
1825     "IO::AIO::EFD_CLOEXEC", "IO::AIO::EFD_NONBLOCK" and
1826     "IO::AIO::EFD_SEMAPHORE" (Linux 2.6.30).
1827    
1828     Example: create a new eventfd filehandle:
1829    
1830     $fh = IO::AIO::eventfd 0, IO::AIO::O_CLOEXEC
1831     or die "eventfd: $!\n";
1832    
1833     $fh = IO::AIO::timerfd_create $clockid[, $flags]
1834     This is a direct interface to the Linux timerfd_create(2) system
1835     call. The (unhelpful) default for $flags is 0.
1836    
1837     On success, the new timerfd filehandle is returned, otherwise
1838     returns "undef". If the eventfd syscall is missing, fails with
1839     "ENOSYS".
1840    
1841     Please refer to timerfd_create(2) for more info on this call.
1842    
1843     The following $clockid values are available:
1844     "IO::AIO::CLOCK_REALTIME", "IO::AIO::CLOCK_MONOTONIC"
1845     "IO::AIO::CLOCK_CLOCK_BOOTTIME" (Linux 3.15)
1846     "IO::AIO::CLOCK_CLOCK_REALTIME_ALARM" (Linux 3.11) and
1847     "IO::AIO::CLOCK_CLOCK_BOOTTIME_ALARM" (Linux 3.11).
1848    
1849     The following $flags values are available (Linux 2.6.27):
1850     "IO::AIO::TFD_NONBLOCK" and "IO::AIO::TFD_CLOEXEC".
1851    
1852     Example: create a new timerfd and set it to one-second repeated
1853     alarms, then wait for two alarms:
1854    
1855     my $fh = IO::AIO::timerfd_create IO::AIO::CLOCK_BOOTTIME, IO::AIO::TFD_CLOEXEC
1856     or die "timerfd_create: $!\n";
1857    
1858     defined IO::AIO::timerfd_settime $fh, 0, 1, 1
1859     or die "timerfd_settime: $!\n";
1860    
1861     for (1..2) {
1862     8 == sysread $fh, my $buf, 8
1863     or die "timerfd read failure\n";
1864    
1865     printf "number of expirations (likely 1): %d\n",
1866     unpack "Q", $buf;
1867     }
1868    
1869     ($cur_interval, $cur_value) = IO::AIO::timerfd_settime $fh, $flags,
1870     $new_interval, $nbw_value
1871     This is a direct interface to the Linux timerfd_settime(2) system
1872     call. Please refer to its manpage for more info on this call.
1873    
1874     The new itimerspec is specified using two (possibly fractional)
1875     second values, $new_interval and $new_value).
1876    
1877     On success, the current interval and value are returned (as per
1878     "timerfd_gettime"). On failure, the empty list is returned.
1879    
1880     The following $flags values are available:
1881     "IO::AIO::TFD_TIMER_ABSTIME" and "IO::AIO::TFD_TIMER_CANCEL_ON_SET".
1882    
1883     See "IO::AIO::timerfd_create" for a full example.
1884    
1885     ($cur_interval, $cur_value) = IO::AIO::timerfd_gettime $fh
1886     This is a direct interface to the Linux timerfd_gettime(2) system
1887     call. Please refer to its manpage for more info on this call.
1888    
1889     On success, returns the current values of interval and value for the
1890     given timerfd (as potentially fractional second values). On failure,
1891     the empty list is returned.
1892    
1893 root 1.43 EVENT LOOP INTEGRATION
1894     It is recommended to use AnyEvent::AIO to integrate IO::AIO
1895     automatically into many event loops:
1896    
1897     # AnyEvent integration (EV, Event, Glib, Tk, POE, urxvt, pureperl...)
1898     use AnyEvent::AIO;
1899    
1900     You can also integrate IO::AIO manually into many event loops, here are
1901     some examples of how to do this:
1902    
1903     # EV integration
1904     my $aio_w = EV::io IO::AIO::poll_fileno, EV::READ, \&IO::AIO::poll_cb;
1905    
1906     # Event integration
1907     Event->io (fd => IO::AIO::poll_fileno,
1908     poll => 'r',
1909     cb => \&IO::AIO::poll_cb);
1910    
1911     # Glib/Gtk2 integration
1912     add_watch Glib::IO IO::AIO::poll_fileno,
1913     in => sub { IO::AIO::poll_cb; 1 };
1914    
1915     # Tk integration
1916     Tk::Event::IO->fileevent (IO::AIO::poll_fileno, "",
1917     readable => \&IO::AIO::poll_cb);
1918    
1919     # Danga::Socket integration
1920     Danga::Socket->AddOtherFds (IO::AIO::poll_fileno =>
1921     \&IO::AIO::poll_cb);
1922    
1923 root 1.9 FORK BEHAVIOUR
1924 root 1.48 Usage of pthreads in a program changes the semantics of fork
1925     considerably. Specifically, only async-safe functions can be called
1926     after fork. Perl doesn't know about this, so in general, you cannot call
1927 root 1.49 fork with defined behaviour in perl if pthreads are involved. IO::AIO
1928     uses pthreads, so this applies, but many other extensions and (for
1929     inexplicable reasons) perl itself often is linked against pthreads, so
1930     this limitation applies to quite a lot of perls.
1931    
1932     This module no longer tries to fight your OS, or POSIX. That means
1933     IO::AIO only works in the process that loaded it. Forking is fully
1934     supported, but using IO::AIO in the child is not.
1935    
1936     You might get around by not *using* IO::AIO before (or after) forking.
1937     You could also try to call the IO::AIO::reinit function in the child:
1938    
1939     IO::AIO::reinit
1940 root 1.50 Abandons all current requests and I/O threads and simply
1941 root 1.49 reinitialises all data structures. This is not an operation
1942 root 1.50 supported by any standards, but happens to work on GNU/Linux and
1943 root 1.49 some newer BSD systems.
1944    
1945     The only reasonable use for this function is to call it after
1946     forking, if "IO::AIO" was used in the parent. Calling it while
1947     IO::AIO is active in the process will result in undefined behaviour.
1948     Calling it at any time will also result in any undefined (by POSIX)
1949     behaviour.
1950 root 1.18
1951 root 1.59 LINUX-SPECIFIC CALLS
1952     When a call is documented as "linux-specific" then this means it
1953     originated on GNU/Linux. "IO::AIO" will usually try to autodetect the
1954     availability and compatibility of such calls regardless of the platform
1955     it is compiled on, so platforms such as FreeBSD which often implement
1956     these calls will work. When in doubt, call them and see if they fail wth
1957     "ENOSYS".
1958    
1959 root 1.18 MEMORY USAGE
1960 root 1.20 Per-request usage:
1961 root 1.18
1962 root 1.20 Each aio request uses - depending on your architecture - around 100-200
1963     bytes of memory. In addition, stat requests need a stat buffer (possibly
1964     a few hundred bytes), readdir requires a result buffer and so on. Perl
1965     scalars and other data passed into aio requests will also be locked and
1966     will consume memory till the request has entered the done state.
1967    
1968 root 1.25 This is not awfully much, so queuing lots of requests is not usually a
1969 root 1.20 problem.
1970    
1971     Per-thread usage:
1972    
1973     In the execution phase, some aio requests require more memory for
1974     temporary buffers, and each thread requires a stack and other data
1975     structures (usually around 16k-128k, depending on the OS).
1976 root 1.18
1977     KNOWN BUGS
1978 root 1.59 Known bugs will be fixed in the next release :)
1979    
1980     KNOWN ISSUES
1981     Calls that try to "import" foreign memory areas (such as "IO::AIO::mmap"
1982     or "IO::AIO::aio_slurp") do not work with generic lvalues, such as
1983     non-created hash slots or other scalars I didn't think of. It's best to
1984     avoid such and either use scalar variables or making sure that the
1985     scalar exists (e.g. by storing "undef") and isn't "funny" (e.g. tied).
1986    
1987     I am not sure anything can be done about this, so this is considered a
1988     known issue, rather than a bug.
1989 root 1.9
1990 root 1.1 SEE ALSO
1991 root 1.30 AnyEvent::AIO for easy integration into event loops, Coro::AIO for a
1992     more natural syntax.
1993 root 1.1
1994     AUTHOR
1995 root 1.20 Marc Lehmann <schmorp@schmorp.de>
1996     http://home.schmorp.de/
1997 root 1.1