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1=head1 NAME
2
3perlfunc - Perl builtin functions
4
5=head1 DESCRIPTION
6
7The functions in this section can serve as terms in an expression.
8They fall into two major categories: list operators and named unary
9operators. These differ in their precedence relationship with a
10following comma. (See the precedence table in L<perlop>.) List
11operators take more than one argument, while unary operators can never
12take more than one argument. Thus, a comma terminates the argument of
13a unary operator, but merely separates the arguments of a list
14operator. A unary operator generally provides a scalar context to its
2b5ab1e7 15argument, while a list operator may provide either scalar or list
a0d0e21e 16contexts for its arguments. If it does both, the scalar arguments will
5f05dabc 17be first, and the list argument will follow. (Note that there can ever
0f31cffe 18be only one such list argument.) For instance, splice() has three scalar
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19arguments followed by a list, whereas gethostbyname() has four scalar
20arguments.
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21
22In the syntax descriptions that follow, list operators that expect a
23list (and provide list context for the elements of the list) are shown
24with LIST as an argument. Such a list may consist of any combination
25of scalar arguments or list values; the list values will be included
26in the list as if each individual element were interpolated at that
27point in the list, forming a longer single-dimensional list value.
28Elements of the LIST should be separated by commas.
29
30Any function in the list below may be used either with or without
31parentheses around its arguments. (The syntax descriptions omit the
5f05dabc 32parentheses.) If you use the parentheses, the simple (but occasionally
19799a22 33surprising) rule is this: It I<looks> like a function, therefore it I<is> a
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34function, and precedence doesn't matter. Otherwise it's a list
35operator or unary operator, and precedence does matter. And whitespace
36between the function and left parenthesis doesn't count--so you need to
37be careful sometimes:
38
68dc0745 39 print 1+2+4; # Prints 7.
40 print(1+2) + 4; # Prints 3.
41 print (1+2)+4; # Also prints 3!
42 print +(1+2)+4; # Prints 7.
43 print ((1+2)+4); # Prints 7.
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44
45If you run Perl with the B<-w> switch it can warn you about this. For
46example, the third line above produces:
47
48 print (...) interpreted as function at - line 1.
49 Useless use of integer addition in void context at - line 1.
50
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51A few functions take no arguments at all, and therefore work as neither
52unary nor list operators. These include such functions as C<time>
53and C<endpwent>. For example, C<time+86_400> always means
54C<time() + 86_400>.
55
a0d0e21e 56For functions that can be used in either a scalar or list context,
54310121 57nonabortive failure is generally indicated in a scalar context by
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58returning the undefined value, and in a list context by returning the
59null list.
60
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61Remember the following important rule: There is B<no rule> that relates
62the behavior of an expression in list context to its behavior in scalar
63context, or vice versa. It might do two totally different things.
a0d0e21e 64Each operator and function decides which sort of value it would be most
2b5ab1e7 65appropriate to return in scalar context. Some operators return the
5a964f20 66length of the list that would have been returned in list context. Some
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67operators return the first value in the list. Some operators return the
68last value in the list. Some operators return a count of successful
69operations. In general, they do what you want, unless you want
70consistency.
71
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72An named array in scalar context is quite different from what would at
73first glance appear to be a list in scalar context. You can't get a list
74like C<(1,2,3)> into being in scalar context, because the compiler knows
75the context at compile time. It would generate the scalar comma operator
76there, not the list construction version of the comma. That means it
77was never a list to start with.
78
79In general, functions in Perl that serve as wrappers for system calls
f86cebdf 80of the same name (like chown(2), fork(2), closedir(2), etc.) all return
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81true when they succeed and C<undef> otherwise, as is usually mentioned
82in the descriptions below. This is different from the C interfaces,
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83which return C<-1> on failure. Exceptions to this rule are C<wait>,
84C<waitpid>, and C<syscall>. System calls also set the special C<$!>
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85variable on failure. Other functions do not, except accidentally.
86
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87=head2 Perl Functions by Category
88
89Here are Perl's functions (including things that look like
5a964f20 90functions, like some keywords and named operators)
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91arranged by category. Some functions appear in more
92than one place.
93
94=over
95
96=item Functions for SCALARs or strings
97
22fae026 98C<chomp>, C<chop>, C<chr>, C<crypt>, C<hex>, C<index>, C<lc>, C<lcfirst>,
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99C<length>, C<oct>, C<ord>, C<pack>, C<q/STRING/>, C<qq/STRING/>, C<reverse>,
100C<rindex>, C<sprintf>, C<substr>, C<tr///>, C<uc>, C<ucfirst>, C<y///>
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101
102=item Regular expressions and pattern matching
103
ab4f32c2 104C<m//>, C<pos>, C<quotemeta>, C<s///>, C<split>, C<study>, C<qr//>
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105
106=item Numeric functions
107
22fae026
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108C<abs>, C<atan2>, C<cos>, C<exp>, C<hex>, C<int>, C<log>, C<oct>, C<rand>,
109C<sin>, C<sqrt>, C<srand>
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110
111=item Functions for real @ARRAYs
112
22fae026 113C<pop>, C<push>, C<shift>, C<splice>, C<unshift>
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114
115=item Functions for list data
116
ab4f32c2 117C<grep>, C<join>, C<map>, C<qw/STRING/>, C<reverse>, C<sort>, C<unpack>
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118
119=item Functions for real %HASHes
120
22fae026 121C<delete>, C<each>, C<exists>, C<keys>, C<values>
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122
123=item Input and output functions
124
22fae026
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125C<binmode>, C<close>, C<closedir>, C<dbmclose>, C<dbmopen>, C<die>, C<eof>,
126C<fileno>, C<flock>, C<format>, C<getc>, C<print>, C<printf>, C<read>,
127C<readdir>, C<rewinddir>, C<seek>, C<seekdir>, C<select>, C<syscall>,
128C<sysread>, C<sysseek>, C<syswrite>, C<tell>, C<telldir>, C<truncate>,
129C<warn>, C<write>
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130
131=item Functions for fixed length data or records
132
22fae026 133C<pack>, C<read>, C<syscall>, C<sysread>, C<syswrite>, C<unpack>, C<vec>
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134
135=item Functions for filehandles, files, or directories
136
22fae026 137C<-I<X>>, C<chdir>, C<chmod>, C<chown>, C<chroot>, C<fcntl>, C<glob>,
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138C<ioctl>, C<link>, C<lstat>, C<mkdir>, C<open>, C<opendir>,
139C<readlink>, C<rename>, C<rmdir>, C<stat>, C<symlink>, C<umask>,
140C<unlink>, C<utime>
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141
142=item Keywords related to the control flow of your perl program
143
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144C<caller>, C<continue>, C<die>, C<do>, C<dump>, C<eval>, C<exit>,
145C<goto>, C<last>, C<next>, C<redo>, C<return>, C<sub>, C<wantarray>
cb1a09d0 146
54310121 147=item Keywords related to scoping
cb1a09d0 148
22fae026 149C<caller>, C<import>, C<local>, C<my>, C<package>, C<use>
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150
151=item Miscellaneous functions
152
22fae026
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153C<defined>, C<dump>, C<eval>, C<formline>, C<local>, C<my>, C<reset>,
154C<scalar>, C<undef>, C<wantarray>
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155
156=item Functions for processes and process groups
157
22fae026 158C<alarm>, C<exec>, C<fork>, C<getpgrp>, C<getppid>, C<getpriority>, C<kill>,
ab4f32c2 159C<pipe>, C<qx/STRING/>, C<setpgrp>, C<setpriority>, C<sleep>, C<system>,
22fae026 160C<times>, C<wait>, C<waitpid>
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161
162=item Keywords related to perl modules
163
22fae026 164C<do>, C<import>, C<no>, C<package>, C<require>, C<use>
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165
166=item Keywords related to classes and object-orientedness
167
22fae026
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168C<bless>, C<dbmclose>, C<dbmopen>, C<package>, C<ref>, C<tie>, C<tied>,
169C<untie>, C<use>
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170
171=item Low-level socket functions
172
22fae026
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173C<accept>, C<bind>, C<connect>, C<getpeername>, C<getsockname>,
174C<getsockopt>, C<listen>, C<recv>, C<send>, C<setsockopt>, C<shutdown>,
175C<socket>, C<socketpair>
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176
177=item System V interprocess communication functions
178
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179C<msgctl>, C<msgget>, C<msgrcv>, C<msgsnd>, C<semctl>, C<semget>, C<semop>,
180C<shmctl>, C<shmget>, C<shmread>, C<shmwrite>
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181
182=item Fetching user and group info
183
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184C<endgrent>, C<endhostent>, C<endnetent>, C<endpwent>, C<getgrent>,
185C<getgrgid>, C<getgrnam>, C<getlogin>, C<getpwent>, C<getpwnam>,
186C<getpwuid>, C<setgrent>, C<setpwent>
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187
188=item Fetching network info
189
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190C<endprotoent>, C<endservent>, C<gethostbyaddr>, C<gethostbyname>,
191C<gethostent>, C<getnetbyaddr>, C<getnetbyname>, C<getnetent>,
192C<getprotobyname>, C<getprotobynumber>, C<getprotoent>,
193C<getservbyname>, C<getservbyport>, C<getservent>, C<sethostent>,
194C<setnetent>, C<setprotoent>, C<setservent>
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195
196=item Time-related functions
197
22fae026 198C<gmtime>, C<localtime>, C<time>, C<times>
cb1a09d0 199
37798a01 200=item Functions new in perl5
201
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202C<abs>, C<bless>, C<chomp>, C<chr>, C<exists>, C<formline>, C<glob>,
203C<import>, C<lc>, C<lcfirst>, C<map>, C<my>, C<no>, C<prototype>, C<qx>,
204C<qw>, C<readline>, C<readpipe>, C<ref>, C<sub*>, C<sysopen>, C<tie>,
205C<tied>, C<uc>, C<ucfirst>, C<untie>, C<use>
37798a01 206
207* - C<sub> was a keyword in perl4, but in perl5 it is an
5a964f20 208operator, which can be used in expressions.
37798a01 209
210=item Functions obsoleted in perl5
211
22fae026 212C<dbmclose>, C<dbmopen>
37798a01 213
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214=back
215
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216=head2 Portability
217
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218Perl was born in Unix and can therefore access all common Unix
219system calls. In non-Unix environments, the functionality of some
220Unix system calls may not be available, or details of the available
221functionality may differ slightly. The Perl functions affected
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222by this are:
223
224C<-X>, C<binmode>, C<chmod>, C<chown>, C<chroot>, C<crypt>,
225C<dbmclose>, C<dbmopen>, C<dump>, C<endgrent>, C<endhostent>,
226C<endnetent>, C<endprotoent>, C<endpwent>, C<endservent>, C<exec>,
227C<fcntl>, C<flock>, C<fork>, C<getgrent>, C<getgrgid>, C<gethostent>,
228C<getlogin>, C<getnetbyaddr>, C<getnetbyname>, C<getnetent>,
229C<getppid>, C<getprgp>, C<getpriority>, C<getprotobynumber>,
230C<getprotoent>, C<getpwent>, C<getpwnam>, C<getpwuid>,
231C<getservbyport>, C<getservent>, C<getsockopt>, C<glob>, C<ioctl>,
232C<kill>, C<link>, C<lstat>, C<msgctl>, C<msgget>, C<msgrcv>,
2b5ab1e7 233C<msgsnd>, C<open>, C<pipe>, C<readlink>, C<rename>, C<select>, C<semctl>,
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234C<semget>, C<semop>, C<setgrent>, C<sethostent>, C<setnetent>,
235C<setpgrp>, C<setpriority>, C<setprotoent>, C<setpwent>,
236C<setservent>, C<setsockopt>, C<shmctl>, C<shmget>, C<shmread>,
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237C<shmwrite>, C<socket>, C<socketpair>, C<stat>, C<symlink>, C<syscall>,
238C<sysopen>, C<system>, C<times>, C<truncate>, C<umask>, C<unlink>,
239C<utime>, C<wait>, C<waitpid>
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240
241For more information about the portability of these functions, see
242L<perlport> and other available platform-specific documentation.
243
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244=head2 Alphabetical Listing of Perl Functions
245
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246=over 8
247
22fae026 248=item I<-X> FILEHANDLE
a0d0e21e 249
22fae026 250=item I<-X> EXPR
a0d0e21e 251
22fae026 252=item I<-X>
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253
254A file test, where X is one of the letters listed below. This unary
255operator takes one argument, either a filename or a filehandle, and
256tests the associated file to see if something is true about it. If the
7660c0ab 257argument is omitted, tests C<$_>, except for C<-t>, which tests STDIN.
19799a22 258Unless otherwise documented, it returns C<1> for true and C<''> for false, or
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259the undefined value if the file doesn't exist. Despite the funny
260names, precedence is the same as any other named unary operator, and
261the argument may be parenthesized like any other unary operator. The
262operator may be any of:
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263X<-r>X<-w>X<-x>X<-o>X<-R>X<-W>X<-X>X<-O>X<-e>X<-z>X<-s>X<-f>X<-d>X<-l>X<-p>
264X<-S>X<-b>X<-c>X<-t>X<-u>X<-g>X<-k>X<-T>X<-B>X<-M>X<-A>X<-C>
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265
266 -r File is readable by effective uid/gid.
267 -w File is writable by effective uid/gid.
268 -x File is executable by effective uid/gid.
269 -o File is owned by effective uid.
270
271 -R File is readable by real uid/gid.
272 -W File is writable by real uid/gid.
273 -X File is executable by real uid/gid.
274 -O File is owned by real uid.
275
276 -e File exists.
277 -z File has zero size.
54310121 278 -s File has nonzero size (returns size).
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279
280 -f File is a plain file.
281 -d File is a directory.
282 -l File is a symbolic link.
9c4d0f16 283 -p File is a named pipe (FIFO), or Filehandle is a pipe.
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284 -S File is a socket.
285 -b File is a block special file.
286 -c File is a character special file.
287 -t Filehandle is opened to a tty.
288
289 -u File has setuid bit set.
290 -g File has setgid bit set.
291 -k File has sticky bit set.
292
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293 -T File is an ASCII text file.
294 -B File is a "binary" file (opposite of -T).
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295
296 -M Age of file in days when script started.
297 -A Same for access time.
298 -C Same for inode change time.
299
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300Example:
301
302 while (<>) {
303 chop;
304 next unless -f $_; # ignore specials
5a964f20 305 #...
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306 }
307
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308The interpretation of the file permission operators C<-r>, C<-R>,
309C<-w>, C<-W>, C<-x>, and C<-X> is by default based solely on the mode
310of the file and the uids and gids of the user. There may be other
311reasons you can't actually read, write, or execute the file. Such
312reasons may be for example network filesystem access controls, ACLs
313(access control lists), read-only filesystems, and unrecognized
314executable formats.
315
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316Also note that, for the superuser on the local filesystems, the C<-r>,
317C<-R>, C<-w>, and C<-W> tests always return 1, and C<-x> and C<-X> return 1
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318if any execute bit is set in the mode. Scripts run by the superuser
319may thus need to do a stat() to determine the actual mode of the file,
2b5ab1e7 320or temporarily set their effective uid to something else.
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321
322If you are using ACLs, there is a pragma called C<filetest> that may
323produce more accurate results than the bare stat() mode bits.
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324When under the C<use filetest 'access'> the above-mentioned filetests
325will test whether the permission can (not) be granted using the
468541a8 326access() family of system calls. Also note that the C<-x> and C<-X> may
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327under this pragma return true even if there are no execute permission
328bits set (nor any extra execute permission ACLs). This strangeness is
329due to the underlying system calls' definitions. Read the
330documentation for the C<filetest> pragma for more information.
331
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332Note that C<-s/a/b/> does not do a negated substitution. Saying
333C<-exp($foo)> still works as expected, however--only single letters
334following a minus are interpreted as file tests.
335
336The C<-T> and C<-B> switches work as follows. The first block or so of the
337file is examined for odd characters such as strange control codes or
61eff3bc 338characters with the high bit set. If too many strange characters (>30%)
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339are found, it's a C<-B> file, otherwise it's a C<-T> file. Also, any file
340containing null in the first block is considered a binary file. If C<-T>
341or C<-B> is used on a filehandle, the current stdio buffer is examined
19799a22 342rather than the first block. Both C<-T> and C<-B> return true on a null
54310121 343file, or a file at EOF when testing a filehandle. Because you have to
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344read a file to do the C<-T> test, on most occasions you want to use a C<-f>
345against the file first, as in C<next unless -f $file && -T $file>.
a0d0e21e 346
19799a22 347If any of the file tests (or either the C<stat> or C<lstat> operators) are given
28757baa 348the special filehandle consisting of a solitary underline, then the stat
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349structure of the previous file test (or stat operator) is used, saving
350a system call. (This doesn't work with C<-t>, and you need to remember
351that lstat() and C<-l> will leave values in the stat structure for the
352symbolic link, not the real file.) Example:
353
354 print "Can do.\n" if -r $a || -w _ || -x _;
355
356 stat($filename);
357 print "Readable\n" if -r _;
358 print "Writable\n" if -w _;
359 print "Executable\n" if -x _;
360 print "Setuid\n" if -u _;
361 print "Setgid\n" if -g _;
362 print "Sticky\n" if -k _;
363 print "Text\n" if -T _;
364 print "Binary\n" if -B _;
365
366=item abs VALUE
367
54310121 368=item abs
bbce6d69 369
a0d0e21e 370Returns the absolute value of its argument.
7660c0ab 371If VALUE is omitted, uses C<$_>.
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372
373=item accept NEWSOCKET,GENERICSOCKET
374
f86cebdf 375Accepts an incoming socket connect, just as the accept(2) system call
19799a22 376does. Returns the packed address if it succeeded, false otherwise.
2b5ab1e7 377See the example in L<perlipc/"Sockets: Client/Server Communication">.
a0d0e21e 378
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379On systems that support a close-on-exec flag on files, the flag will
380be set for the newly opened file descriptor, as determined by the
381value of $^F. See L<perlvar/$^F>.
382
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383=item alarm SECONDS
384
54310121 385=item alarm
bbce6d69 386
a0d0e21e 387Arranges to have a SIGALRM delivered to this process after the
bbce6d69 388specified number of seconds have elapsed. If SECONDS is not specified,
7660c0ab 389the value stored in C<$_> is used. (On some machines,
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390unfortunately, the elapsed time may be up to one second less than you
391specified because of how seconds are counted.) Only one timer may be
392counting at once. Each call disables the previous timer, and an
7660c0ab 393argument of C<0> may be supplied to cancel the previous timer without
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394starting a new one. The returned value is the amount of time remaining
395on the previous timer.
396
4633a7c4 397For delays of finer granularity than one second, you may use Perl's
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398four-argument version of select() leaving the first three arguments
399undefined, or you might be able to use the C<syscall> interface to
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400access setitimer(2) if your system supports it. The Time::HiRes module
401from CPAN may also prove useful.
402
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403It is usually a mistake to intermix C<alarm> and C<sleep> calls.
404(C<sleep> may be internally implemented in your system with C<alarm>)
a0d0e21e 405
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406If you want to use C<alarm> to time out a system call you need to use an
407C<eval>/C<die> pair. You can't rely on the alarm causing the system call to
f86cebdf 408fail with C<$!> set to C<EINTR> because Perl sets up signal handlers to
19799a22 409restart system calls on some systems. Using C<eval>/C<die> always works,
5a964f20 410modulo the caveats given in L<perlipc/"Signals">.
ff68c719 411
412 eval {
f86cebdf 413 local $SIG{ALRM} = sub { die "alarm\n" }; # NB: \n required
36477c24 414 alarm $timeout;
ff68c719 415 $nread = sysread SOCKET, $buffer, $size;
36477c24 416 alarm 0;
ff68c719 417 };
ff68c719 418 if ($@) {
f86cebdf 419 die unless $@ eq "alarm\n"; # propagate unexpected errors
ff68c719 420 # timed out
421 }
422 else {
423 # didn't
424 }
425
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426=item atan2 Y,X
427
428Returns the arctangent of Y/X in the range -PI to PI.
429
ca6e1c26 430For the tangent operation, you may use the C<Math::Trig::tan>
28757baa 431function, or use the familiar relation:
432
433 sub tan { sin($_[0]) / cos($_[0]) }
434
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435=item bind SOCKET,NAME
436
437Binds a network address to a socket, just as the bind system call
19799a22 438does. Returns true if it succeeded, false otherwise. NAME should be a
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439packed address of the appropriate type for the socket. See the examples in
440L<perlipc/"Sockets: Client/Server Communication">.
a0d0e21e 441
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442=item binmode FILEHANDLE, DISCIPLINE
443
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444=item binmode FILEHANDLE
445
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446Arranges for FILEHANDLE to be read or written in "binary" or "text" mode
447on systems where the run-time libraries distinguish between binary and
30168b04 448text files. If FILEHANDLE is an expression, the value is taken as the
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449name of the filehandle. DISCIPLINE can be either of C<":raw"> for
450binary mode or C<":crlf"> for "text" mode. If the DISCIPLINE is
451omitted, it defaults to C<":raw">.
30168b04 452
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453binmode() should be called after open() but before any I/O is done on
454the filehandle.
455
456On many systems binmode() currently has no effect, but in future, it
457will be extended to support user-defined input and output disciplines.
458On some systems binmode() is necessary when you're not working with a
459text file. For the sake of portability it is a good idea to always use
460it when appropriate, and to never use it when it isn't appropriate.
30168b04
GS
461
462In other words: Regardless of platform, use binmode() on binary
463files, and do not use binmode() on text files.
19799a22 464
16fe6d59
GS
465The C<open> pragma can be used to establish default disciplines.
466See L<open>.
467
19799a22 468The operating system, device drivers, C libraries, and Perl run-time
30168b04
GS
469system all work together to let the programmer treat a single
470character (C<\n>) as the line terminator, irrespective of the external
471representation. On many operating systems, the native text file
472representation matches the internal representation, but on some
473platforms the external representation of C<\n> is made up of more than
474one character.
475
476Mac OS and all variants of Unix use a single character to end each line
477in the external representation of text (even though that single
478character is not necessarily the same across these platforms).
479Consequently binmode() has no effect on these operating systems. In
480other systems like VMS, MS-DOS and the various flavors of MS-Windows
481your program sees a C<\n> as a simple C<\cJ>, but what's stored in text
482files are the two characters C<\cM\cJ>. That means that, if you don't
483use binmode() on these systems, C<\cM\cJ> sequences on disk will be
484converted to C<\n> on input, and any C<\n> in your program will be
485converted back to C<\cM\cJ> on output. This is what you want for text
486files, but it can be disastrous for binary files.
487
488Another consequence of using binmode() (on some systems) is that
489special end-of-file markers will be seen as part of the data stream.
490For systems from the Microsoft family this means that if your binary
491data contains C<\cZ>, the I/O subsystem will ragard it as the end of
492the file, unless you use binmode().
493
494binmode() is not only important for readline() and print() operations,
495but also when using read(), seek(), sysread(), syswrite() and tell()
496(see L<perlport> for more details). See the C<$/> and C<$\> variables
497in L<perlvar> for how to manually set your input and output
498line-termination sequences.
a0d0e21e 499
4633a7c4 500=item bless REF,CLASSNAME
a0d0e21e
LW
501
502=item bless REF
503
2b5ab1e7
TC
504This function tells the thingy referenced by REF that it is now an object
505in the CLASSNAME package. If CLASSNAME is omitted, the current package
19799a22 506is used. Because a C<bless> is often the last thing in a constructor,
2b5ab1e7
TC
507it returns the reference for convenience. Always use the two-argument
508version if the function doing the blessing might be inherited by a
509derived class. See L<perltoot> and L<perlobj> for more about the blessing
510(and blessings) of objects.
a0d0e21e 511
57668c4d 512Consider always blessing objects in CLASSNAMEs that are mixed case.
2b5ab1e7
TC
513Namespaces with all lowercase names are considered reserved for
514Perl pragmata. Builtin types have all uppercase names, so to prevent
515confusion, you may wish to avoid such package names as well. Make sure
516that CLASSNAME is a true value.
60ad88b8
GS
517
518See L<perlmod/"Perl Modules">.
519
a0d0e21e
LW
520=item caller EXPR
521
522=item caller
523
5a964f20 524Returns the context of the current subroutine call. In scalar context,
28757baa 525returns the caller's package name if there is a caller, that is, if
19799a22 526we're in a subroutine or C<eval> or C<require>, and the undefined value
5a964f20 527otherwise. In list context, returns
a0d0e21e 528
748a9306 529 ($package, $filename, $line) = caller;
a0d0e21e
LW
530
531With EXPR, it returns some extra information that the debugger uses to
532print a stack trace. The value of EXPR indicates how many call frames
533to go back before the current one.
534
f3aa04c2 535 ($package, $filename, $line, $subroutine, $hasargs,
e476b1b5 536 $wantarray, $evaltext, $is_require, $hints, $bitmask) = caller($i);
e7ea3e70 537
951ba7fe 538Here $subroutine may be C<(eval)> if the frame is not a subroutine
19799a22 539call, but an C<eval>. In such a case additional elements $evaltext and
7660c0ab 540C<$is_require> are set: C<$is_require> is true if the frame is created by a
19799a22 541C<require> or C<use> statement, $evaltext contains the text of the
dc848c6f 542C<eval EXPR> statement. In particular, for a C<eval BLOCK> statement,
951ba7fe 543$filename is C<(eval)>, but $evaltext is undefined. (Note also that
dc848c6f 544each C<use> statement creates a C<require> frame inside an C<eval EXPR>)
e476b1b5
GS
545frame. C<$hints> and C<$bitmask> contain pragmatic hints that the caller
546was compiled with. The C<$hints> and C<$bitmask> values are subject to
547change between versions of Perl, and are not meant for external use.
748a9306
LW
548
549Furthermore, when called from within the DB package, caller returns more
7660c0ab 550detailed information: it sets the list variable C<@DB::args> to be the
54310121 551arguments with which the subroutine was invoked.
748a9306 552
7660c0ab 553Be aware that the optimizer might have optimized call frames away before
19799a22 554C<caller> had a chance to get the information. That means that C<caller(N)>
7660c0ab 555might not return information about the call frame you expect it do, for
61eff3bc 556C<< N > 1 >>. In particular, C<@DB::args> might have information from the
19799a22 557previous time C<caller> was called.
7660c0ab 558
a0d0e21e
LW
559=item chdir EXPR
560
2b5ab1e7 561Changes the working directory to EXPR, if possible. If EXPR is omitted,
0bfc1ec4
GS
562changes to the directory specified by C<$ENV{HOME}>, if set; if not,
563changes to the directory specified by C<$ENV{LOGDIR}>. If neither is
564set, C<chdir> does nothing. It returns true upon success, false
565otherwise. See the example under C<die>.
a0d0e21e
LW
566
567=item chmod LIST
568
569Changes the permissions of a list of files. The first element of the
4633a7c4 570list must be the numerical mode, which should probably be an octal
2f9daede
TP
571number, and which definitely should I<not> a string of octal digits:
572C<0644> is okay, C<'0644'> is not. Returns the number of files
dc848c6f 573successfully changed. See also L</oct>, if all you have is a string.
a0d0e21e
LW
574
575 $cnt = chmod 0755, 'foo', 'bar';
576 chmod 0755, @executables;
f86cebdf
GS
577 $mode = '0644'; chmod $mode, 'foo'; # !!! sets mode to
578 # --w----r-T
2f9daede
TP
579 $mode = '0644'; chmod oct($mode), 'foo'; # this is better
580 $mode = 0644; chmod $mode, 'foo'; # this is best
a0d0e21e 581
ca6e1c26
JH
582You can also import the symbolic C<S_I*> constants from the Fcntl
583module:
584
585 use Fcntl ':mode';
586
587 chmod S_IRWXU|S_IRGRP|S_IXGRP|S_IROTH|S_IXOTH, @executables;
588 # This is identical to the chmod 0755 of the above example.
589
a0d0e21e
LW
590=item chomp VARIABLE
591
592=item chomp LIST
593
594=item chomp
595
2b5ab1e7
TC
596This safer version of L</chop> removes any trailing string
597that corresponds to the current value of C<$/> (also known as
28757baa 598$INPUT_RECORD_SEPARATOR in the C<English> module). It returns the total
599number of characters removed from all its arguments. It's often used to
600remove the newline from the end of an input record when you're worried
2b5ab1e7
TC
601that the final record may be missing its newline. When in paragraph
602mode (C<$/ = "">), it removes all trailing newlines from the string.
4c5a6083
GS
603When in slurp mode (C<$/ = undef>) or fixed-length record mode (C<$/> is
604a reference to an integer or the like, see L<perlvar>) chomp() won't
19799a22
GS
605remove anything.
606If VARIABLE is omitted, it chomps C<$_>. Example:
a0d0e21e
LW
607
608 while (<>) {
609 chomp; # avoid \n on last field
610 @array = split(/:/);
5a964f20 611 # ...
a0d0e21e
LW
612 }
613
614You can actually chomp anything that's an lvalue, including an assignment:
615
616 chomp($cwd = `pwd`);
617 chomp($answer = <STDIN>);
618
619If you chomp a list, each element is chomped, and the total number of
620characters removed is returned.
621
622=item chop VARIABLE
623
624=item chop LIST
625
626=item chop
627
628Chops off the last character of a string and returns the character
629chopped. It's used primarily to remove the newline from the end of an
630input record, but is much more efficient than C<s/\n//> because it neither
7660c0ab 631scans nor copies the string. If VARIABLE is omitted, chops C<$_>.
a0d0e21e
LW
632Example:
633
634 while (<>) {
635 chop; # avoid \n on last field
636 @array = split(/:/);
5a964f20 637 #...
a0d0e21e
LW
638 }
639
640You can actually chop anything that's an lvalue, including an assignment:
641
642 chop($cwd = `pwd`);
643 chop($answer = <STDIN>);
644
645If you chop a list, each element is chopped. Only the value of the
19799a22 646last C<chop> is returned.
a0d0e21e 647
19799a22 648Note that C<chop> returns the last character. To return all but the last
748a9306
LW
649character, use C<substr($string, 0, -1)>.
650
a0d0e21e
LW
651=item chown LIST
652
653Changes the owner (and group) of a list of files. The first two
19799a22
GS
654elements of the list must be the I<numeric> uid and gid, in that
655order. A value of -1 in either position is interpreted by most
656systems to leave that value unchanged. Returns the number of files
657successfully changed.
a0d0e21e
LW
658
659 $cnt = chown $uid, $gid, 'foo', 'bar';
660 chown $uid, $gid, @filenames;
661
54310121 662Here's an example that looks up nonnumeric uids in the passwd file:
a0d0e21e
LW
663
664 print "User: ";
19799a22 665 chomp($user = <STDIN>);
5a964f20 666 print "Files: ";
19799a22 667 chomp($pattern = <STDIN>);
a0d0e21e
LW
668
669 ($login,$pass,$uid,$gid) = getpwnam($user)
670 or die "$user not in passwd file";
671
5a964f20 672 @ary = glob($pattern); # expand filenames
a0d0e21e
LW
673 chown $uid, $gid, @ary;
674
54310121 675On most systems, you are not allowed to change the ownership of the
4633a7c4
LW
676file unless you're the superuser, although you should be able to change
677the group to any of your secondary groups. On insecure systems, these
678restrictions may be relaxed, but this is not a portable assumption.
19799a22
GS
679On POSIX systems, you can detect this condition this way:
680
681 use POSIX qw(sysconf _PC_CHOWN_RESTRICTED);
682 $can_chown_giveaway = not sysconf(_PC_CHOWN_RESTRICTED);
4633a7c4 683
a0d0e21e
LW
684=item chr NUMBER
685
54310121 686=item chr
bbce6d69 687
a0d0e21e 688Returns the character represented by that NUMBER in the character set.
a0ed51b3 689For example, C<chr(65)> is C<"A"> in either ASCII or Unicode, and
2b5ab1e7
TC
690chr(0x263a) is a Unicode smiley face (but only within the scope of
691a C<use utf8>). For the reverse, use L</ord>.
692See L<utf8> for more about Unicode.
a0d0e21e 693
7660c0ab 694If NUMBER is omitted, uses C<$_>.
bbce6d69 695
a0d0e21e
LW
696=item chroot FILENAME
697
54310121 698=item chroot
bbce6d69 699
5a964f20 700This function works like the system call by the same name: it makes the
4633a7c4 701named directory the new root directory for all further pathnames that
951ba7fe 702begin with a C</> by your process and all its children. (It doesn't
28757baa 703change your current working directory, which is unaffected.) For security
4633a7c4 704reasons, this call is restricted to the superuser. If FILENAME is
19799a22 705omitted, does a C<chroot> to C<$_>.
a0d0e21e
LW
706
707=item close FILEHANDLE
708
6a518fbc
TP
709=item close
710
19799a22 711Closes the file or pipe associated with the file handle, returning true
a0d0e21e 712only if stdio successfully flushes buffers and closes the system file
19799a22 713descriptor. Closes the currently selected filehandle if the argument
6a518fbc 714is omitted.
fb73857a 715
716You don't have to close FILEHANDLE if you are immediately going to do
19799a22
GS
717another C<open> on it, because C<open> will close it for you. (See
718C<open>.) However, an explicit C<close> on an input file resets the line
719counter (C<$.>), while the implicit close done by C<open> does not.
fb73857a 720
19799a22
GS
721If the file handle came from a piped open C<close> will additionally
722return false if one of the other system calls involved fails or if the
fb73857a 723program exits with non-zero status. (If the only problem was that the
2b5ab1e7
TC
724program exited non-zero C<$!> will be set to C<0>.) Closing a pipe
725also waits for the process executing on the pipe to complete, in case you
726want to look at the output of the pipe afterwards, and
727implicitly puts the exit status value of that command into C<$?>.
5a964f20 728
73689b13
GS
729Prematurely closing the read end of a pipe (i.e. before the process
730writing to it at the other end has closed it) will result in a
731SIGPIPE being delivered to the writer. If the other end can't
732handle that, be sure to read all the data before closing the pipe.
733
fb73857a 734Example:
a0d0e21e 735
fb73857a 736 open(OUTPUT, '|sort >foo') # pipe to sort
737 or die "Can't start sort: $!";
5a964f20 738 #... # print stuff to output
fb73857a 739 close OUTPUT # wait for sort to finish
740 or warn $! ? "Error closing sort pipe: $!"
741 : "Exit status $? from sort";
742 open(INPUT, 'foo') # get sort's results
743 or die "Can't open 'foo' for input: $!";
a0d0e21e 744
5a964f20
TC
745FILEHANDLE may be an expression whose value can be used as an indirect
746filehandle, usually the real filehandle name.
a0d0e21e
LW
747
748=item closedir DIRHANDLE
749
19799a22 750Closes a directory opened by C<opendir> and returns the success of that
5a964f20
TC
751system call.
752
753DIRHANDLE may be an expression whose value can be used as an indirect
754dirhandle, usually the real dirhandle name.
a0d0e21e
LW
755
756=item connect SOCKET,NAME
757
758Attempts to connect to a remote socket, just as the connect system call
19799a22 759does. Returns true if it succeeded, false otherwise. NAME should be a
4633a7c4
LW
760packed address of the appropriate type for the socket. See the examples in
761L<perlipc/"Sockets: Client/Server Communication">.
a0d0e21e 762
cb1a09d0
AD
763=item continue BLOCK
764
765Actually a flow control statement rather than a function. If there is a
98293880
JH
766C<continue> BLOCK attached to a BLOCK (typically in a C<while> or
767C<foreach>), it is always executed just before the conditional is about to
768be evaluated again, just like the third part of a C<for> loop in C. Thus
cb1a09d0
AD
769it can be used to increment a loop variable, even when the loop has been
770continued via the C<next> statement (which is similar to the C C<continue>
771statement).
772
98293880 773C<last>, C<next>, or C<redo> may appear within a C<continue>
19799a22
GS
774block. C<last> and C<redo> will behave as if they had been executed within
775the main block. So will C<next>, but since it will execute a C<continue>
1d2dff63
GS
776block, it may be more entertaining.
777
778 while (EXPR) {
779 ### redo always comes here
780 do_something;
781 } continue {
782 ### next always comes here
783 do_something_else;
784 # then back the top to re-check EXPR
785 }
786 ### last always comes here
787
788Omitting the C<continue> section is semantically equivalent to using an
19799a22 789empty one, logically enough. In that case, C<next> goes directly back
1d2dff63
GS
790to check the condition at the top of the loop.
791
a0d0e21e
LW
792=item cos EXPR
793
5a964f20 794Returns the cosine of EXPR (expressed in radians). If EXPR is omitted,
7660c0ab 795takes cosine of C<$_>.
a0d0e21e 796
ca6e1c26 797For the inverse cosine operation, you may use the C<Math::Trig::acos()>
28757baa 798function, or use this relation:
799
800 sub acos { atan2( sqrt(1 - $_[0] * $_[0]), $_[0] ) }
801
a0d0e21e
LW
802=item crypt PLAINTEXT,SALT
803
f86cebdf 804Encrypts a string exactly like the crypt(3) function in the C library
4633a7c4
LW
805(assuming that you actually have a version there that has not been
806extirpated as a potential munition). This can prove useful for checking
807the password file for lousy passwords, amongst other things. Only the
808guys wearing white hats should do this.
a0d0e21e 809
19799a22 810Note that C<crypt> is intended to be a one-way function, much like breaking
11155c91
CS
811eggs to make an omelette. There is no (known) corresponding decrypt
812function. As a result, this function isn't all that useful for
813cryptography. (For that, see your nearby CPAN mirror.)
2f9daede 814
e71965be
RS
815When verifying an existing encrypted string you should use the encrypted
816text as the salt (like C<crypt($plain, $crypted) eq $crypted>). This
19799a22 817allows your code to work with the standard C<crypt> and with more
e71965be
RS
818exotic implementations. When choosing a new salt create a random two
819character string whose characters come from the set C<[./0-9A-Za-z]>
820(like C<join '', ('.', '/', 0..9, 'A'..'Z', 'a'..'z')[rand 64, rand 64]>).
821
a0d0e21e
LW
822Here's an example that makes sure that whoever runs this program knows
823their own password:
824
825 $pwd = (getpwuid($<))[1];
a0d0e21e
LW
826
827 system "stty -echo";
828 print "Password: ";
e71965be 829 chomp($word = <STDIN>);
a0d0e21e
LW
830 print "\n";
831 system "stty echo";
832
e71965be 833 if (crypt($word, $pwd) ne $pwd) {
a0d0e21e
LW
834 die "Sorry...\n";
835 } else {
836 print "ok\n";
54310121 837 }
a0d0e21e 838
9f8f0c9d 839Of course, typing in your own password to whoever asks you
748a9306 840for it is unwise.
a0d0e21e 841
19799a22
GS
842The L<crypt> function is unsuitable for encrypting large quantities
843of data, not least of all because you can't get the information
844back. Look at the F<by-module/Crypt> and F<by-module/PGP> directories
845on your favorite CPAN mirror for a slew of potentially useful
846modules.
847
aa689395 848=item dbmclose HASH
a0d0e21e 849
19799a22 850[This function has been largely superseded by the C<untie> function.]
a0d0e21e 851
aa689395 852Breaks the binding between a DBM file and a hash.
a0d0e21e 853
19799a22 854=item dbmopen HASH,DBNAME,MASK
a0d0e21e 855
19799a22 856[This function has been largely superseded by the C<tie> function.]
a0d0e21e 857
7b8d334a 858This binds a dbm(3), ndbm(3), sdbm(3), gdbm(3), or Berkeley DB file to a
19799a22
GS
859hash. HASH is the name of the hash. (Unlike normal C<open>, the first
860argument is I<not> a filehandle, even though it looks like one). DBNAME
aa689395 861is the name of the database (without the F<.dir> or F<.pag> extension if
862any). If the database does not exist, it is created with protection
19799a22
GS
863specified by MASK (as modified by the C<umask>). If your system supports
864only the older DBM functions, you may perform only one C<dbmopen> in your
aa689395 865program. In older versions of Perl, if your system had neither DBM nor
19799a22 866ndbm, calling C<dbmopen> produced a fatal error; it now falls back to
aa689395 867sdbm(3).
868
869If you don't have write access to the DBM file, you can only read hash
870variables, not set them. If you want to test whether you can write,
19799a22 871either use file tests or try setting a dummy hash entry inside an C<eval>,
aa689395 872which will trap the error.
a0d0e21e 873
19799a22
GS
874Note that functions such as C<keys> and C<values> may return huge lists
875when used on large DBM files. You may prefer to use the C<each>
a0d0e21e
LW
876function to iterate over large DBM files. Example:
877
878 # print out history file offsets
879 dbmopen(%HIST,'/usr/lib/news/history',0666);
880 while (($key,$val) = each %HIST) {
881 print $key, ' = ', unpack('L',$val), "\n";
882 }
883 dbmclose(%HIST);
884
cb1a09d0 885See also L<AnyDBM_File> for a more general description of the pros and
184e9718 886cons of the various dbm approaches, as well as L<DB_File> for a particularly
cb1a09d0 887rich implementation.
4633a7c4 888
2b5ab1e7
TC
889You can control which DBM library you use by loading that library
890before you call dbmopen():
891
892 use DB_File;
893 dbmopen(%NS_Hist, "$ENV{HOME}/.netscape/history.db")
894 or die "Can't open netscape history file: $!";
895
a0d0e21e
LW
896=item defined EXPR
897
54310121 898=item defined
bbce6d69 899
2f9daede
TP
900Returns a Boolean value telling whether EXPR has a value other than
901the undefined value C<undef>. If EXPR is not present, C<$_> will be
902checked.
903
904Many operations return C<undef> to indicate failure, end of file,
905system error, uninitialized variable, and other exceptional
906conditions. This function allows you to distinguish C<undef> from
907other values. (A simple Boolean test will not distinguish among
7660c0ab 908C<undef>, zero, the empty string, and C<"0">, which are all equally
2f9daede 909false.) Note that since C<undef> is a valid scalar, its presence
19799a22 910doesn't I<necessarily> indicate an exceptional condition: C<pop>
2f9daede
TP
911returns C<undef> when its argument is an empty array, I<or> when the
912element to return happens to be C<undef>.
913
f10b0346
GS
914You may also use C<defined(&func)> to check whether subroutine C<&func>
915has ever been defined. The return value is unaffected by any forward
916declarations of C<&foo>.
917
918Use of C<defined> on aggregates (hashes and arrays) is deprecated. It
919used to report whether memory for that aggregate has ever been
920allocated. This behavior may disappear in future versions of Perl.
921You should instead use a simple test for size:
922
923 if (@an_array) { print "has array elements\n" }
924 if (%a_hash) { print "has hash members\n" }
2f9daede
TP
925
926When used on a hash element, it tells you whether the value is defined,
dc848c6f 927not whether the key exists in the hash. Use L</exists> for the latter
2f9daede 928purpose.
a0d0e21e
LW
929
930Examples:
931
932 print if defined $switch{'D'};
933 print "$val\n" while defined($val = pop(@ary));
934 die "Can't readlink $sym: $!"
935 unless defined($value = readlink $sym);
a0d0e21e 936 sub foo { defined &$bar ? &$bar(@_) : die "No bar"; }
2f9daede 937 $debugging = 0 unless defined $debugging;
a0d0e21e 938
19799a22 939Note: Many folks tend to overuse C<defined>, and then are surprised to
7660c0ab 940discover that the number C<0> and C<""> (the zero-length string) are, in fact,
2f9daede 941defined values. For example, if you say
a5f75d66
AD
942
943 "ab" =~ /a(.*)b/;
944
7660c0ab 945The pattern match succeeds, and C<$1> is defined, despite the fact that it
a5f75d66 946matched "nothing". But it didn't really match nothing--rather, it
2b5ab1e7 947matched something that happened to be zero characters long. This is all
a5f75d66 948very above-board and honest. When a function returns an undefined value,
2f9daede 949it's an admission that it couldn't give you an honest answer. So you
19799a22 950should use C<defined> only when you're questioning the integrity of what
7660c0ab 951you're trying to do. At other times, a simple comparison to C<0> or C<""> is
2f9daede
TP
952what you want.
953
dc848c6f 954See also L</undef>, L</exists>, L</ref>.
2f9daede 955
a0d0e21e
LW
956=item delete EXPR
957
01020589
GS
958Given an expression that specifies a hash element, array element, hash slice,
959or array slice, deletes the specified element(s) from the hash or array.
8216c1fd
GS
960In the case of an array, if the array elements happen to be at the end,
961the size of the array will shrink to the highest element that tests
962true for exists() (or 0 if no such element exists).
a0d0e21e 963
01020589
GS
964Returns each element so deleted or the undefined value if there was no such
965element. Deleting from C<$ENV{}> modifies the environment. Deleting from
966a hash tied to a DBM file deletes the entry from the DBM file. Deleting
967from a C<tie>d hash or array may not necessarily return anything.
968
8ea97a1e
GS
969Deleting an array element effectively returns that position of the array
970to its initial, uninitialized state. Subsequently testing for the same
8216c1fd
GS
971element with exists() will return false. Note that deleting array
972elements in the middle of an array will not shift the index of the ones
973after them down--use splice() for that. See L</exists>.
8ea97a1e 974
01020589 975The following (inefficiently) deletes all the values of %HASH and @ARRAY:
a0d0e21e 976
5f05dabc 977 foreach $key (keys %HASH) {
978 delete $HASH{$key};
a0d0e21e
LW
979 }
980
01020589
GS
981 foreach $index (0 .. $#ARRAY) {
982 delete $ARRAY[$index];
983 }
984
985And so do these:
5f05dabc 986
01020589
GS
987 delete @HASH{keys %HASH};
988
9740c838 989 delete @ARRAY[0 .. $#ARRAY];
5f05dabc 990
2b5ab1e7 991But both of these are slower than just assigning the empty list
01020589
GS
992or undefining %HASH or @ARRAY:
993
994 %HASH = (); # completely empty %HASH
995 undef %HASH; # forget %HASH ever existed
2b5ab1e7 996
01020589
GS
997 @ARRAY = (); # completely empty @ARRAY
998 undef @ARRAY; # forget @ARRAY ever existed
2b5ab1e7
TC
999
1000Note that the EXPR can be arbitrarily complicated as long as the final
01020589
GS
1001operation is a hash element, array element, hash slice, or array slice
1002lookup:
a0d0e21e
LW
1003
1004 delete $ref->[$x][$y]{$key};
5f05dabc 1005 delete @{$ref->[$x][$y]}{$key1, $key2, @morekeys};
a0d0e21e 1006
01020589
GS
1007 delete $ref->[$x][$y][$index];
1008 delete @{$ref->[$x][$y]}[$index1, $index2, @moreindices];
1009
a0d0e21e
LW
1010=item die LIST
1011
19799a22
GS
1012Outside an C<eval>, prints the value of LIST to C<STDERR> and
1013exits with the current value of C<$!> (errno). If C<$!> is C<0>,
61eff3bc
JH
1014exits with the value of C<<< ($? >> 8) >>> (backtick `command`
1015status). If C<<< ($? >> 8) >>> is C<0>, exits with C<255>. Inside
19799a22
GS
1016an C<eval(),> the error message is stuffed into C<$@> and the
1017C<eval> is terminated with the undefined value. This makes
1018C<die> the way to raise an exception.
a0d0e21e
LW
1019
1020Equivalent examples:
1021
1022 die "Can't cd to spool: $!\n" unless chdir '/usr/spool/news';
54310121 1023 chdir '/usr/spool/news' or die "Can't cd to spool: $!\n"
a0d0e21e
LW
1024
1025If the value of EXPR does not end in a newline, the current script line
1026number and input line number (if any) are also printed, and a newline
883faa13
GS
1027is supplied. Note that the "input line number" (also known as "chunk")
1028is subject to whatever notion of "line" happens to be currently in
1029effect, and is also available as the special variable C<$.>.
1030See L<perlvar/"$/"> and L<perlvar/"$.">.
1031
1032Hint: sometimes appending C<", stopped"> to your message
7660c0ab 1033will cause it to make better sense when the string C<"at foo line 123"> is
a0d0e21e
LW
1034appended. Suppose you are running script "canasta".
1035
1036 die "/etc/games is no good";
1037 die "/etc/games is no good, stopped";
1038
1039produce, respectively
1040
1041 /etc/games is no good at canasta line 123.
1042 /etc/games is no good, stopped at canasta line 123.
1043
2b5ab1e7 1044See also exit(), warn(), and the Carp module.
a0d0e21e 1045
7660c0ab
A
1046If LIST is empty and C<$@> already contains a value (typically from a
1047previous eval) that value is reused after appending C<"\t...propagated">.
fb73857a 1048This is useful for propagating exceptions:
1049
1050 eval { ... };
1051 die unless $@ =~ /Expected exception/;
1052
7660c0ab 1053If C<$@> is empty then the string C<"Died"> is used.
fb73857a 1054
52531d10
GS
1055die() can also be called with a reference argument. If this happens to be
1056trapped within an eval(), $@ contains the reference. This behavior permits
1057a more elaborate exception handling implementation using objects that
1058maintain arbitary state about the nature of the exception. Such a scheme
1059is sometimes preferable to matching particular string values of $@ using
1060regular expressions. Here's an example:
1061
1062 eval { ... ; die Some::Module::Exception->new( FOO => "bar" ) };
1063 if ($@) {
1064 if (ref($@) && UNIVERSAL::isa($@,"Some::Module::Exception")) {
1065 # handle Some::Module::Exception
1066 }
1067 else {
1068 # handle all other possible exceptions
1069 }
1070 }
1071
19799a22 1072Because perl will stringify uncaught exception messages before displaying
52531d10
GS
1073them, you may want to overload stringification operations on such custom
1074exception objects. See L<overload> for details about that.
1075
19799a22
GS
1076You can arrange for a callback to be run just before the C<die>
1077does its deed, by setting the C<$SIG{__DIE__}> hook. The associated
1078handler will be called with the error text and can change the error
1079message, if it sees fit, by calling C<die> again. See
1080L<perlvar/$SIG{expr}> for details on setting C<%SIG> entries, and
1081L<"eval BLOCK"> for some examples. Although this feature was meant
1082to be run only right before your program was to exit, this is not
1083currently the case--the C<$SIG{__DIE__}> hook is currently called
1084even inside eval()ed blocks/strings! If one wants the hook to do
1085nothing in such situations, put
fb73857a 1086
1087 die @_ if $^S;
1088
19799a22
GS
1089as the first line of the handler (see L<perlvar/$^S>). Because
1090this promotes strange action at a distance, this counterintuitive
1091behavior may be fixed in a future release.
774d564b 1092
a0d0e21e
LW
1093=item do BLOCK
1094
1095Not really a function. Returns the value of the last command in the
1096sequence of commands indicated by BLOCK. When modified by a loop
98293880
JH
1097modifier, executes the BLOCK once before testing the loop condition.
1098(On other statements the loop modifiers test the conditional first.)
a0d0e21e 1099
4968c1e4 1100C<do BLOCK> does I<not> count as a loop, so the loop control statements
2b5ab1e7
TC
1101C<next>, C<last>, or C<redo> cannot be used to leave or restart the block.
1102See L<perlsyn> for alternative strategies.
4968c1e4 1103
a0d0e21e
LW
1104=item do SUBROUTINE(LIST)
1105
1106A deprecated form of subroutine call. See L<perlsub>.
1107
1108=item do EXPR
1109
1110Uses the value of EXPR as a filename and executes the contents of the
1111file as a Perl script. Its primary use is to include subroutines
1112from a Perl subroutine library.
1113
1114 do 'stat.pl';
1115
1116is just like
1117
fb73857a 1118 scalar eval `cat stat.pl`;
a0d0e21e 1119
2b5ab1e7
TC
1120except that it's more efficient and concise, keeps track of the current
1121filename for error messages, searches the @INC libraries, and updates
1122C<%INC> if the file is found. See L<perlvar/Predefined Names> for these
1123variables. It also differs in that code evaluated with C<do FILENAME>
1124cannot see lexicals in the enclosing scope; C<eval STRING> does. It's the
1125same, however, in that it does reparse the file every time you call it,
1126so you probably don't want to do this inside a loop.
a0d0e21e 1127
8e30cc93 1128If C<do> cannot read the file, it returns undef and sets C<$!> to the
2b5ab1e7 1129error. If C<do> can read the file but cannot compile it, it
8e30cc93
MG
1130returns undef and sets an error message in C<$@>. If the file is
1131successfully compiled, C<do> returns the value of the last expression
1132evaluated.
1133
a0d0e21e 1134Note that inclusion of library modules is better done with the
19799a22 1135C<use> and C<require> operators, which also do automatic error checking
4633a7c4 1136and raise an exception if there's a problem.
a0d0e21e 1137
5a964f20
TC
1138You might like to use C<do> to read in a program configuration
1139file. Manual error checking can be done this way:
1140
1141 # read in config files: system first, then user
f86cebdf 1142 for $file ("/share/prog/defaults.rc",
2b5ab1e7
TC
1143 "$ENV{HOME}/.someprogrc")
1144 {
5a964f20 1145 unless ($return = do $file) {
f86cebdf
GS
1146 warn "couldn't parse $file: $@" if $@;
1147 warn "couldn't do $file: $!" unless defined $return;
1148 warn "couldn't run $file" unless $return;
5a964f20
TC
1149 }
1150 }
1151
a0d0e21e
LW
1152=item dump LABEL
1153
1614b0e3
JD
1154=item dump
1155
19799a22
GS
1156This function causes an immediate core dump. See also the B<-u>
1157command-line switch in L<perlrun>, which does the same thing.
1158Primarily this is so that you can use the B<undump> program (not
1159supplied) to turn your core dump into an executable binary after
1160having initialized all your variables at the beginning of the
1161program. When the new binary is executed it will begin by executing
1162a C<goto LABEL> (with all the restrictions that C<goto> suffers).
1163Think of it as a goto with an intervening core dump and reincarnation.
1164If C<LABEL> is omitted, restarts the program from the top.
1165
1166B<WARNING>: Any files opened at the time of the dump will I<not>
1167be open any more when the program is reincarnated, with possible
1168resulting confusion on the part of Perl.
1169
1170This function is now largely obsolete, partly because it's very
1171hard to convert a core file into an executable, and because the
1172real compiler backends for generating portable bytecode and compilable
1173C code have superseded it.
1174
1175If you're looking to use L<dump> to speed up your program, consider
1176generating bytecode or native C code as described in L<perlcc>. If
1177you're just trying to accelerate a CGI script, consider using the
1178C<mod_perl> extension to B<Apache>, or the CPAN module, Fast::CGI.
1179You might also consider autoloading or selfloading, which at least
1180make your program I<appear> to run faster.
5a964f20 1181
aa689395 1182=item each HASH
1183
5a964f20 1184When called in list context, returns a 2-element list consisting of the
aa689395 1185key and value for the next element of a hash, so that you can iterate over
5a964f20 1186it. When called in scalar context, returns the key for only the "next"
e902a979 1187element in the hash.
2f9daede 1188
ab192400
GS
1189Entries are returned in an apparently random order. The actual random
1190order is subject to change in future versions of perl, but it is guaranteed
19799a22 1191to be in the same order as either the C<keys> or C<values> function
ab192400
GS
1192would produce on the same (unmodified) hash.
1193
1194When the hash is entirely read, a null array is returned in list context
19799a22
GS
1195(which when assigned produces a false (C<0>) value), and C<undef> in
1196scalar context. The next call to C<each> after that will start iterating
1197again. There is a single iterator for each hash, shared by all C<each>,
1198C<keys>, and C<values> function calls in the program; it can be reset by
2f9daede
TP
1199reading all the elements from the hash, or by evaluating C<keys HASH> or
1200C<values HASH>. If you add or delete elements of a hash while you're
1201iterating over it, you may get entries skipped or duplicated, so don't.
aa689395 1202
f86cebdf 1203The following prints out your environment like the printenv(1) program,
aa689395 1204only in a different order:
a0d0e21e
LW
1205
1206 while (($key,$value) = each %ENV) {
1207 print "$key=$value\n";
1208 }
1209
19799a22 1210See also C<keys>, C<values> and C<sort>.
a0d0e21e
LW
1211
1212=item eof FILEHANDLE
1213
4633a7c4
LW
1214=item eof ()
1215
a0d0e21e
LW
1216=item eof
1217
1218Returns 1 if the next read on FILEHANDLE will return end of file, or if
1219FILEHANDLE is not open. FILEHANDLE may be an expression whose value
5a964f20 1220gives the real filehandle. (Note that this function actually
19799a22 1221reads a character and then C<ungetc>s it, so isn't very useful in an
748a9306 1222interactive context.) Do not read from a terminal file (or call
19799a22 1223C<eof(FILEHANDLE)> on it) after end-of-file is reached. File types such
748a9306
LW
1224as terminals may lose the end-of-file condition if you do.
1225
820475bd
GS
1226An C<eof> without an argument uses the last file read. Using C<eof()>
1227with empty parentheses is very different. It refers to the pseudo file
1228formed from the files listed on the command line and accessed via the
61eff3bc
JH
1229C<< <> >> operator. Since C<< <> >> isn't explicitly opened,
1230as a normal filehandle is, an C<eof()> before C<< <> >> has been
820475bd
GS
1231used will cause C<@ARGV> to be examined to determine if input is
1232available.
1233
61eff3bc 1234In a C<< while (<>) >> loop, C<eof> or C<eof(ARGV)> can be used to
820475bd
GS
1235detect the end of each file, C<eof()> will only detect the end of the
1236last file. Examples:
a0d0e21e 1237
748a9306
LW
1238 # reset line numbering on each input file
1239 while (<>) {
5a964f20 1240 next if /^\s*#/; # skip comments
748a9306 1241 print "$.\t$_";
5a964f20
TC
1242 } continue {
1243 close ARGV if eof; # Not eof()!
748a9306
LW
1244 }
1245
a0d0e21e
LW
1246 # insert dashes just before last line of last file
1247 while (<>) {
5a964f20 1248 if (eof()) { # check for end of current file
a0d0e21e 1249 print "--------------\n";
2b5ab1e7 1250 close(ARGV); # close or last; is needed if we
748a9306 1251 # are reading from the terminal
a0d0e21e
LW
1252 }
1253 print;
1254 }
1255
a0d0e21e 1256Practical hint: you almost never need to use C<eof> in Perl, because the
3ce0d271
GS
1257input operators typically return C<undef> when they run out of data, or if
1258there was an error.
a0d0e21e
LW
1259
1260=item eval EXPR
1261
1262=item eval BLOCK
1263
c7cc6f1c
GS
1264In the first form, the return value of EXPR is parsed and executed as if it
1265were a little Perl program. The value of the expression (which is itself
5a964f20 1266determined within scalar context) is first parsed, and if there weren't any
c7cc6f1c 1267errors, executed in the context of the current Perl program, so that any
5f05dabc 1268variable settings or subroutine and format definitions remain afterwards.
c7cc6f1c
GS
1269Note that the value is parsed every time the eval executes. If EXPR is
1270omitted, evaluates C<$_>. This form is typically used to delay parsing
1271and subsequent execution of the text of EXPR until run time.
1272
1273In the second form, the code within the BLOCK is parsed only once--at the
1274same time the code surrounding the eval itself was parsed--and executed
1275within the context of the current Perl program. This form is typically
1276used to trap exceptions more efficiently than the first (see below), while
1277also providing the benefit of checking the code within BLOCK at compile
1278time.
1279
1280The final semicolon, if any, may be omitted from the value of EXPR or within
1281the BLOCK.
1282
1283In both forms, the value returned is the value of the last expression
5a964f20 1284evaluated inside the mini-program; a return statement may be also used, just
c7cc6f1c 1285as with subroutines. The expression providing the return value is evaluated
5a964f20 1286in void, scalar, or list context, depending on the context of the eval itself.
c7cc6f1c 1287See L</wantarray> for more on how the evaluation context can be determined.
a0d0e21e 1288
19799a22
GS
1289If there is a syntax error or runtime error, or a C<die> statement is
1290executed, an undefined value is returned by C<eval>, and C<$@> is set to the
a0d0e21e 1291error message. If there was no error, C<$@> is guaranteed to be a null
19799a22 1292string. Beware that using C<eval> neither silences perl from printing
c7cc6f1c
GS
1293warnings to STDERR, nor does it stuff the text of warning messages into C<$@>.
1294To do either of those, you have to use the C<$SIG{__WARN__}> facility. See
1295L</warn> and L<perlvar>.
a0d0e21e 1296
19799a22
GS
1297Note that, because C<eval> traps otherwise-fatal errors, it is useful for
1298determining whether a particular feature (such as C<socket> or C<symlink>)
a0d0e21e
LW
1299is implemented. It is also Perl's exception trapping mechanism, where
1300the die operator is used to raise exceptions.
1301
1302If the code to be executed doesn't vary, you may use the eval-BLOCK
1303form to trap run-time errors without incurring the penalty of
1304recompiling each time. The error, if any, is still returned in C<$@>.
1305Examples:
1306
54310121 1307 # make divide-by-zero nonfatal
a0d0e21e
LW
1308 eval { $answer = $a / $b; }; warn $@ if $@;
1309
1310 # same thing, but less efficient
1311 eval '$answer = $a / $b'; warn $@ if $@;
1312
1313 # a compile-time error
5a964f20 1314 eval { $answer = }; # WRONG
a0d0e21e
LW
1315
1316 # a run-time error
1317 eval '$answer ='; # sets $@
1318
2b5ab1e7
TC
1319Due to the current arguably broken state of C<__DIE__> hooks, when using
1320the C<eval{}> form as an exception trap in libraries, you may wish not
1321to trigger any C<__DIE__> hooks that user code may have installed.
1322You can use the C<local $SIG{__DIE__}> construct for this purpose,
1323as shown in this example:
774d564b 1324
1325 # a very private exception trap for divide-by-zero
f86cebdf
GS
1326 eval { local $SIG{'__DIE__'}; $answer = $a / $b; };
1327 warn $@ if $@;
774d564b 1328
1329This is especially significant, given that C<__DIE__> hooks can call
19799a22 1330C<die> again, which has the effect of changing their error messages:
774d564b 1331
1332 # __DIE__ hooks may modify error messages
1333 {
f86cebdf
GS
1334 local $SIG{'__DIE__'} =
1335 sub { (my $x = $_[0]) =~ s/foo/bar/g; die $x };
c7cc6f1c
GS
1336 eval { die "foo lives here" };
1337 print $@ if $@; # prints "bar lives here"
774d564b 1338 }
1339
19799a22 1340Because this promotes action at a distance, this counterintuitive behavior
2b5ab1e7
TC
1341may be fixed in a future release.
1342
19799a22 1343With an C<eval>, you should be especially careful to remember what's
a0d0e21e
LW
1344being looked at when:
1345
1346 eval $x; # CASE 1
1347 eval "$x"; # CASE 2
1348
1349 eval '$x'; # CASE 3
1350 eval { $x }; # CASE 4
1351
5a964f20 1352 eval "\$$x++"; # CASE 5
a0d0e21e
LW
1353 $$x++; # CASE 6
1354
2f9daede 1355Cases 1 and 2 above behave identically: they run the code contained in
19799a22 1356the variable $x. (Although case 2 has misleading double quotes making
2f9daede 1357the reader wonder what else might be happening (nothing is).) Cases 3
7660c0ab 1358and 4 likewise behave in the same way: they run the code C<'$x'>, which
19799a22 1359does nothing but return the value of $x. (Case 4 is preferred for
2f9daede
TP
1360purely visual reasons, but it also has the advantage of compiling at
1361compile-time instead of at run-time.) Case 5 is a place where
19799a22 1362normally you I<would> like to use double quotes, except that in this
2f9daede
TP
1363particular situation, you can just use symbolic references instead, as
1364in case 6.
a0d0e21e 1365
4968c1e4 1366C<eval BLOCK> does I<not> count as a loop, so the loop control statements
2b5ab1e7 1367C<next>, C<last>, or C<redo> cannot be used to leave or restart the block.
4968c1e4 1368
a0d0e21e
LW
1369=item exec LIST
1370
8bf3b016
GS
1371=item exec PROGRAM LIST
1372
19799a22
GS
1373The C<exec> function executes a system command I<and never returns>--
1374use C<system> instead of C<exec> if you want it to return. It fails and
1375returns false only if the command does not exist I<and> it is executed
fb73857a 1376directly instead of via your system's command shell (see below).
a0d0e21e 1377
19799a22
GS
1378Since it's a common mistake to use C<exec> instead of C<system>, Perl
1379warns you if there is a following statement which isn't C<die>, C<warn>,
1380or C<exit> (if C<-w> is set - but you always do that). If you
1381I<really> want to follow an C<exec> with some other statement, you
55d729e4
GS
1382can use one of these styles to avoid the warning:
1383
5a964f20
TC
1384 exec ('foo') or print STDERR "couldn't exec foo: $!";
1385 { exec ('foo') }; print STDERR "couldn't exec foo: $!";
55d729e4 1386
5a964f20 1387If there is more than one argument in LIST, or if LIST is an array
f86cebdf 1388with more than one value, calls execvp(3) with the arguments in LIST.
5a964f20
TC
1389If there is only one scalar argument or an array with one element in it,
1390the argument is checked for shell metacharacters, and if there are any,
1391the entire argument is passed to the system's command shell for parsing
1392(this is C</bin/sh -c> on Unix platforms, but varies on other platforms).
1393If there are no shell metacharacters in the argument, it is split into
19799a22
GS
1394words and passed directly to C<execvp>, which is more efficient.
1395Examples:
a0d0e21e 1396
19799a22
GS
1397 exec '/bin/echo', 'Your arguments are: ', @ARGV;
1398 exec "sort $outfile | uniq";
a0d0e21e
LW
1399
1400If you don't really want to execute the first argument, but want to lie
1401to the program you are executing about its own name, you can specify
1402the program you actually want to run as an "indirect object" (without a
1403comma) in front of the LIST. (This always forces interpretation of the
54310121 1404LIST as a multivalued list, even if there is only a single scalar in
a0d0e21e
LW
1405the list.) Example:
1406
1407 $shell = '/bin/csh';
1408 exec $shell '-sh'; # pretend it's a login shell
1409
1410or, more directly,
1411
1412 exec {'/bin/csh'} '-sh'; # pretend it's a login shell
1413
bb32b41a
GS
1414When the arguments get executed via the system shell, results will
1415be subject to its quirks and capabilities. See L<perlop/"`STRING`">
1416for details.
1417
19799a22
GS
1418Using an indirect object with C<exec> or C<system> is also more
1419secure. This usage (which also works fine with system()) forces
1420interpretation of the arguments as a multivalued list, even if the
1421list had just one argument. That way you're safe from the shell
1422expanding wildcards or splitting up words with whitespace in them.
5a964f20
TC
1423
1424 @args = ( "echo surprise" );
1425
2b5ab1e7 1426 exec @args; # subject to shell escapes
f86cebdf 1427 # if @args == 1
2b5ab1e7 1428 exec { $args[0] } @args; # safe even with one-arg list
5a964f20
TC
1429
1430The first version, the one without the indirect object, ran the I<echo>
1431program, passing it C<"surprise"> an argument. The second version
1432didn't--it tried to run a program literally called I<"echo surprise">,
1433didn't find it, and set C<$?> to a non-zero value indicating failure.
1434
19799a22 1435Note that C<exec> will not call your C<END> blocks, nor will it call
7660c0ab
A
1436any C<DESTROY> methods in your objects.
1437
a0d0e21e
LW
1438=item exists EXPR
1439
01020589 1440Given an expression that specifies a hash element or array element,
8ea97a1e
GS
1441returns true if the specified element in the hash or array has ever
1442been initialized, even if the corresponding value is undefined. The
1443element is not autovivified if it doesn't exist.
a0d0e21e 1444
01020589
GS
1445 print "Exists\n" if exists $hash{$key};
1446 print "Defined\n" if defined $hash{$key};
1447 print "True\n" if $hash{$key};
1448
1449 print "Exists\n" if exists $array[$index];
1450 print "Defined\n" if defined $array[$index];
1451 print "True\n" if $array[$index];
a0d0e21e 1452
8ea97a1e 1453A hash or array element can be true only if it's defined, and defined if
a0d0e21e
LW
1454it exists, but the reverse doesn't necessarily hold true.
1455
afebc493
GS
1456Given an expression that specifies the name of a subroutine,
1457returns true if the specified subroutine has ever been declared, even
1458if it is undefined. Mentioning a subroutine name for exists or defined
1459does not count as declaring it.
1460
1461 print "Exists\n" if exists &subroutine;
1462 print "Defined\n" if defined &subroutine;
1463
a0d0e21e 1464Note that the EXPR can be arbitrarily complicated as long as the final
afebc493 1465operation is a hash or array key lookup or subroutine name:
a0d0e21e 1466
2b5ab1e7
TC
1467 if (exists $ref->{A}->{B}->{$key}) { }
1468 if (exists $hash{A}{B}{$key}) { }
1469
01020589
GS
1470 if (exists $ref->{A}->{B}->[$ix]) { }
1471 if (exists $hash{A}{B}[$ix]) { }
1472
afebc493
GS
1473 if (exists &{$ref->{A}{B}{$key}}) { }
1474
01020589
GS
1475Although the deepest nested array or hash will not spring into existence
1476just because its existence was tested, any intervening ones will.
61eff3bc 1477Thus C<< $ref->{"A"} >> and C<< $ref->{"A"}->{"B"} >> will spring
01020589
GS
1478into existence due to the existence test for the $key element above.
1479This happens anywhere the arrow operator is used, including even:
5a964f20 1480
2b5ab1e7
TC
1481 undef $ref;
1482 if (exists $ref->{"Some key"}) { }
1483 print $ref; # prints HASH(0x80d3d5c)
1484
1485This surprising autovivification in what does not at first--or even
1486second--glance appear to be an lvalue context may be fixed in a future
5a964f20 1487release.
a0d0e21e 1488
479ba383
GS
1489See L<perlref/"Pseudo-hashes: Using an array as a hash"> for specifics
1490on how exists() acts when used on a pseudo-hash.
e0478e5a 1491
afebc493
GS
1492Use of a subroutine call, rather than a subroutine name, as an argument
1493to exists() is an error.
1494
1495 exists &sub; # OK
1496 exists &sub(); # Error
1497
a0d0e21e
LW
1498=item exit EXPR
1499
2b5ab1e7 1500Evaluates EXPR and exits immediately with that value. Example:
a0d0e21e
LW
1501
1502 $ans = <STDIN>;
1503 exit 0 if $ans =~ /^[Xx]/;
1504
19799a22 1505See also C<die>. If EXPR is omitted, exits with C<0> status. The only
2b5ab1e7
TC
1506universally recognized values for EXPR are C<0> for success and C<1>
1507for error; other values are subject to interpretation depending on the
1508environment in which the Perl program is running. For example, exiting
150969 (EX_UNAVAILABLE) from a I<sendmail> incoming-mail filter will cause
1510the mailer to return the item undelivered, but that's not true everywhere.
a0d0e21e 1511
19799a22
GS
1512Don't use C<exit> to abort a subroutine if there's any chance that
1513someone might want to trap whatever error happened. Use C<die> instead,
1514which can be trapped by an C<eval>.
28757baa 1515
19799a22 1516The exit() function does not always exit immediately. It calls any
2b5ab1e7 1517defined C<END> routines first, but these C<END> routines may not
19799a22 1518themselves abort the exit. Likewise any object destructors that need to
2b5ab1e7
TC
1519be called are called before the real exit. If this is a problem, you
1520can call C<POSIX:_exit($status)> to avoid END and destructor processing.
87275199 1521See L<perlmod> for details.
5a964f20 1522
a0d0e21e
LW
1523=item exp EXPR
1524
54310121 1525=item exp
bbce6d69 1526
2b5ab1e7 1527Returns I<e> (the natural logarithm base) to the power of EXPR.
a0d0e21e
LW
1528If EXPR is omitted, gives C<exp($_)>.
1529
1530=item fcntl FILEHANDLE,FUNCTION,SCALAR
1531
f86cebdf 1532Implements the fcntl(2) function. You'll probably have to say
a0d0e21e
LW
1533
1534 use Fcntl;
1535
0ade1984 1536first to get the correct constant definitions. Argument processing and
19799a22 1537value return works just like C<ioctl> below.
a0d0e21e
LW
1538For example:
1539
1540 use Fcntl;
5a964f20
TC
1541 fcntl($filehandle, F_GETFL, $packed_return_buffer)
1542 or die "can't fcntl F_GETFL: $!";
1543
19799a22 1544You don't have to check for C<defined> on the return from C<fnctl>.
951ba7fe
GS
1545Like C<ioctl>, it maps a C<0> return from the system call into
1546C<"0 but true"> in Perl. This string is true in boolean context and C<0>
2b5ab1e7
TC
1547in numeric context. It is also exempt from the normal B<-w> warnings
1548on improper numeric conversions.
5a964f20 1549
19799a22 1550Note that C<fcntl> will produce a fatal error if used on a machine that
2b5ab1e7
TC
1551doesn't implement fcntl(2). See the Fcntl module or your fcntl(2)
1552manpage to learn what functions are available on your system.
a0d0e21e
LW
1553
1554=item fileno FILEHANDLE
1555
2b5ab1e7
TC
1556Returns the file descriptor for a filehandle, or undefined if the
1557filehandle is not open. This is mainly useful for constructing
19799a22 1558bitmaps for C<select> and low-level POSIX tty-handling operations.
2b5ab1e7
TC
1559If FILEHANDLE is an expression, the value is taken as an indirect
1560filehandle, generally its name.
5a964f20
TC
1561
1562You can use this to find out whether two handles refer to the
1563same underlying descriptor:
1564
1565 if (fileno(THIS) == fileno(THAT)) {
1566 print "THIS and THAT are dups\n";
1567 }
a0d0e21e
LW
1568
1569=item flock FILEHANDLE,OPERATION
1570
19799a22
GS
1571Calls flock(2), or an emulation of it, on FILEHANDLE. Returns true
1572for success, false on failure. Produces a fatal error if used on a
2b5ab1e7 1573machine that doesn't implement flock(2), fcntl(2) locking, or lockf(3).
19799a22 1574C<flock> is Perl's portable file locking interface, although it locks
2b5ab1e7
TC
1575only entire files, not records.
1576
1577Two potentially non-obvious but traditional C<flock> semantics are
1578that it waits indefinitely until the lock is granted, and that its locks
1579B<merely advisory>. Such discretionary locks are more flexible, but offer
19799a22
GS
1580fewer guarantees. This means that files locked with C<flock> may be
1581modified by programs that do not also use C<flock>. See L<perlport>,
2b5ab1e7
TC
1582your port's specific documentation, or your system-specific local manpages
1583for details. It's best to assume traditional behavior if you're writing
1584portable programs. (But if you're not, you should as always feel perfectly
1585free to write for your own system's idiosyncrasies (sometimes called
1586"features"). Slavish adherence to portability concerns shouldn't get
1587in the way of your getting your job done.)
a3cb178b 1588
8ebc5c01 1589OPERATION is one of LOCK_SH, LOCK_EX, or LOCK_UN, possibly combined with
1590LOCK_NB. These constants are traditionally valued 1, 2, 8 and 4, but
ea3105be 1591you can use the symbolic names if you import them from the Fcntl module,
68dc0745 1592either individually, or as a group using the ':flock' tag. LOCK_SH
1593requests a shared lock, LOCK_EX requests an exclusive lock, and LOCK_UN
ea3105be
GS
1594releases a previously requested lock. If LOCK_NB is bitwise-or'ed with
1595LOCK_SH or LOCK_EX then C<flock> will return immediately rather than blocking
68dc0745 1596waiting for the lock (check the return status to see if you got it).
1597
2b5ab1e7
TC
1598To avoid the possibility of miscoordination, Perl now flushes FILEHANDLE
1599before locking or unlocking it.
8ebc5c01 1600
f86cebdf 1601Note that the emulation built with lockf(3) doesn't provide shared
8ebc5c01 1602locks, and it requires that FILEHANDLE be open with write intent. These
2b5ab1e7 1603are the semantics that lockf(3) implements. Most if not all systems
f86cebdf 1604implement lockf(3) in terms of fcntl(2) locking, though, so the
8ebc5c01 1605differing semantics shouldn't bite too many people.
1606
19799a22
GS
1607Note also that some versions of C<flock> cannot lock things over the
1608network; you would need to use the more system-specific C<fcntl> for
f86cebdf
GS
1609that. If you like you can force Perl to ignore your system's flock(2)
1610function, and so provide its own fcntl(2)-based emulation, by passing
8ebc5c01 1611the switch C<-Ud_flock> to the F<Configure> program when you configure
1612perl.
4633a7c4
LW
1613
1614Here's a mailbox appender for BSD systems.
a0d0e21e 1615
7e1af8bc 1616 use Fcntl ':flock'; # import LOCK_* constants
a0d0e21e
LW
1617
1618 sub lock {
7e1af8bc 1619 flock(MBOX,LOCK_EX);
a0d0e21e
LW
1620 # and, in case someone appended
1621 # while we were waiting...
1622 seek(MBOX, 0, 2);
1623 }
1624
1625 sub unlock {
7e1af8bc 1626 flock(MBOX,LOCK_UN);
a0d0e21e
LW
1627 }
1628
1629 open(MBOX, ">>/usr/spool/mail/$ENV{'USER'}")
1630 or die "Can't open mailbox: $!";
1631
1632 lock();
1633 print MBOX $msg,"\n\n";
1634 unlock();
1635
2b5ab1e7
TC
1636On systems that support a real flock(), locks are inherited across fork()
1637calls, whereas those that must resort to the more capricious fcntl()
1638function lose the locks, making it harder to write servers.
1639
cb1a09d0 1640See also L<DB_File> for other flock() examples.
a0d0e21e
LW
1641
1642=item fork
1643
2b5ab1e7
TC
1644Does a fork(2) system call to create a new process running the
1645same program at the same point. It returns the child pid to the
1646parent process, C<0> to the child process, or C<undef> if the fork is
1647unsuccessful. File descriptors (and sometimes locks on those descriptors)
1648are shared, while everything else is copied. On most systems supporting
1649fork(), great care has gone into making it extremely efficient (for
1650example, using copy-on-write technology on data pages), making it the
1651dominant paradigm for multitasking over the last few decades.
5a964f20 1652
45bc9206 1653All files opened for output are flushed before forking the child process.
a0d0e21e 1654
19799a22 1655If you C<fork> without ever waiting on your children, you will
2b5ab1e7
TC
1656accumulate zombies. On some systems, you can avoid this by setting
1657C<$SIG{CHLD}> to C<"IGNORE">. See also L<perlipc> for more examples of
1658forking and reaping moribund children.
cb1a09d0 1659
28757baa 1660Note that if your forked child inherits system file descriptors like
1661STDIN and STDOUT that are actually connected by a pipe or socket, even
2b5ab1e7 1662if you exit, then the remote server (such as, say, a CGI script or a
19799a22 1663backgrounded job launched from a remote shell) won't think you're done.
2b5ab1e7 1664You should reopen those to F</dev/null> if it's any issue.
28757baa 1665
cb1a09d0
AD
1666=item format
1667
19799a22 1668Declare a picture format for use by the C<write> function. For
cb1a09d0
AD
1669example:
1670
54310121 1671 format Something =
cb1a09d0
AD
1672 Test: @<<<<<<<< @||||| @>>>>>
1673 $str, $%, '$' . int($num)
1674 .
1675
1676 $str = "widget";
184e9718 1677 $num = $cost/$quantity;
cb1a09d0
AD
1678 $~ = 'Something';
1679 write;
1680
1681See L<perlform> for many details and examples.
1682
8903cb82 1683=item formline PICTURE,LIST
a0d0e21e 1684
5a964f20 1685This is an internal function used by C<format>s, though you may call it,
a0d0e21e
LW
1686too. It formats (see L<perlform>) a list of values according to the
1687contents of PICTURE, placing the output into the format output
7660c0ab 1688accumulator, C<$^A> (or C<$ACCUMULATOR> in English).
19799a22 1689Eventually, when a C<write> is done, the contents of
a0d0e21e 1690C<$^A> are written to some filehandle, but you could also read C<$^A>
7660c0ab 1691yourself and then set C<$^A> back to C<"">. Note that a format typically
19799a22 1692does one C<formline> per line of form, but the C<formline> function itself
748a9306 1693doesn't care how many newlines are embedded in the PICTURE. This means
4633a7c4 1694that the C<~> and C<~~> tokens will treat the entire PICTURE as a single line.
748a9306
LW
1695You may therefore need to use multiple formlines to implement a single
1696record format, just like the format compiler.
1697
19799a22 1698Be careful if you put double quotes around the picture, because an C<@>
748a9306 1699character may be taken to mean the beginning of an array name.
19799a22 1700C<formline> always returns true. See L<perlform> for other examples.
a0d0e21e
LW
1701
1702=item getc FILEHANDLE
1703
1704=item getc
1705
1706Returns the next character from the input file attached to FILEHANDLE,
2b5ab1e7
TC
1707or the undefined value at end of file, or if there was an error.
1708If FILEHANDLE is omitted, reads from STDIN. This is not particularly
1709efficient. However, it cannot be used by itself to fetch single
1710characters without waiting for the user to hit enter. For that, try
1711something more like:
4633a7c4
LW
1712
1713 if ($BSD_STYLE) {
1714 system "stty cbreak </dev/tty >/dev/tty 2>&1";
1715 }
1716 else {
54310121 1717 system "stty", '-icanon', 'eol', "\001";
4633a7c4
LW
1718 }
1719
1720 $key = getc(STDIN);
1721
1722 if ($BSD_STYLE) {
1723 system "stty -cbreak </dev/tty >/dev/tty 2>&1";
1724 }
1725 else {
5f05dabc 1726 system "stty", 'icanon', 'eol', '^@'; # ASCII null
4633a7c4
LW
1727 }
1728 print "\n";
1729
54310121 1730Determination of whether $BSD_STYLE should be set
1731is left as an exercise to the reader.
cb1a09d0 1732
19799a22 1733The C<POSIX::getattr> function can do this more portably on
2b5ab1e7
TC
1734systems purporting POSIX compliance. See also the C<Term::ReadKey>
1735module from your nearest CPAN site; details on CPAN can be found on
1736L<perlmodlib/CPAN>.
a0d0e21e
LW
1737
1738=item getlogin
1739
5a964f20
TC
1740Implements the C library function of the same name, which on most
1741systems returns the current login from F</etc/utmp>, if any. If null,
19799a22 1742use C<getpwuid>.
a0d0e21e 1743
f86702cc 1744 $login = getlogin || getpwuid($<) || "Kilroy";
a0d0e21e 1745
19799a22
GS
1746Do not consider C<getlogin> for authentication: it is not as
1747secure as C<getpwuid>.
4633a7c4 1748
a0d0e21e
LW
1749=item getpeername SOCKET
1750
1751Returns the packed sockaddr address of other end of the SOCKET connection.
1752
4633a7c4
LW
1753 use Socket;
1754 $hersockaddr = getpeername(SOCK);
19799a22 1755 ($port, $iaddr) = sockaddr_in($hersockaddr);
4633a7c4
LW
1756 $herhostname = gethostbyaddr($iaddr, AF_INET);
1757 $herstraddr = inet_ntoa($iaddr);
a0d0e21e
LW
1758
1759=item getpgrp PID
1760
47e29363 1761Returns the current process group for the specified PID. Use
7660c0ab 1762a PID of C<0> to get the current process group for the
4633a7c4 1763current process. Will raise an exception if used on a machine that
f86cebdf 1764doesn't implement getpgrp(2). If PID is omitted, returns process
19799a22 1765group of current process. Note that the POSIX version of C<getpgrp>
7660c0ab 1766does not accept a PID argument, so only C<PID==0> is truly portable.
a0d0e21e
LW
1767
1768=item getppid
1769
1770Returns the process id of the parent process.
1771
1772=item getpriority WHICH,WHO
1773
4633a7c4
LW
1774Returns the current priority for a process, a process group, or a user.
1775(See L<getpriority(2)>.) Will raise a fatal exception if used on a
f86cebdf 1776machine that doesn't implement getpriority(2).
a0d0e21e
LW
1777
1778=item getpwnam NAME
1779
1780=item getgrnam NAME
1781
1782=item gethostbyname NAME
1783
1784=item getnetbyname NAME
1785
1786=item getprotobyname NAME
1787
1788=item getpwuid UID
1789
1790=item getgrgid GID
1791
1792=item getservbyname NAME,PROTO
1793
1794=item gethostbyaddr ADDR,ADDRTYPE
1795
1796=item getnetbyaddr ADDR,ADDRTYPE
1797
1798=item getprotobynumber NUMBER
1799
1800=item getservbyport PORT,PROTO
1801
1802=item getpwent
1803
1804=item getgrent
1805
1806=item gethostent
1807
1808=item getnetent
1809
1810=item getprotoent
1811
1812=item getservent
1813
1814=item setpwent
1815
1816=item setgrent
1817
1818=item sethostent STAYOPEN
1819
1820=item setnetent STAYOPEN
1821
1822=item setprotoent STAYOPEN
1823
1824=item setservent STAYOPEN
1825
1826=item endpwent
1827
1828=item endgrent
1829
1830=item endhostent
1831
1832=item endnetent
1833
1834=item endprotoent
1835
1836=item endservent
1837
1838These routines perform the same functions as their counterparts in the
5a964f20 1839system library. In list context, the return values from the
a0d0e21e
LW
1840various get routines are as follows:
1841
1842 ($name,$passwd,$uid,$gid,
6ee623d5 1843 $quota,$comment,$gcos,$dir,$shell,$expire) = getpw*
a0d0e21e
LW
1844 ($name,$passwd,$gid,$members) = getgr*
1845 ($name,$aliases,$addrtype,$length,@addrs) = gethost*
1846 ($name,$aliases,$addrtype,$net) = getnet*
1847 ($name,$aliases,$proto) = getproto*
1848 ($name,$aliases,$port,$proto) = getserv*
1849
1850(If the entry doesn't exist you get a null list.)
1851
5a964f20 1852In scalar context, you get the name, unless the function was a
a0d0e21e
LW
1853lookup by name, in which case you get the other thing, whatever it is.
1854(If the entry doesn't exist you get the undefined value.) For example:
1855
5a964f20
TC
1856 $uid = getpwnam($name);
1857 $name = getpwuid($num);
1858 $name = getpwent();
1859 $gid = getgrnam($name);
1860 $name = getgrgid($num;
1861 $name = getgrent();
1862 #etc.
a0d0e21e 1863
19799a22 1864In I<getpw*()> the fields $quota, $comment, and $expire are
2b5ab1e7 1865special cases in the sense that in many systems they are unsupported.
19799a22
GS
1866If the $quota is unsupported, it is an empty scalar. If it is
1867supported, it usually encodes the disk quota. If the $comment
2b5ab1e7
TC
1868field is unsupported, it is an empty scalar. If it is supported it
1869usually encodes some administrative comment about the user. In some
19799a22
GS
1870systems the $quota field may be $change or $age, fields that have
1871to do with password aging. In some systems the $comment field may
1872be $class. The $expire field, if present, encodes the expiration
2b5ab1e7
TC
1873period of the account or the password. For the availability and the
1874exact meaning of these fields in your system, please consult your
1875getpwnam(3) documentation and your F<pwd.h> file. You can also find
19799a22
GS
1876out from within Perl what your $quota and $comment fields mean
1877and whether you have the $expire field by using the C<Config> module
2b5ab1e7
TC
1878and the values C<d_pwquota>, C<d_pwage>, C<d_pwchange>, C<d_pwcomment>,
1879and C<d_pwexpire>. Shadow password files are only supported if your
1880vendor has implemented them in the intuitive fashion that calling the
1881regular C library routines gets the shadow versions if you're running
1882under privilege. Those that incorrectly implement a separate library
1883call are not supported.
6ee623d5 1884
19799a22 1885The $members value returned by I<getgr*()> is a space separated list of
a0d0e21e
LW
1886the login names of the members of the group.
1887
1888For the I<gethost*()> functions, if the C<h_errno> variable is supported in
1889C, it will be returned to you via C<$?> if the function call fails. The
7660c0ab 1890C<@addrs> value returned by a successful call is a list of the raw
a0d0e21e
LW
1891addresses returned by the corresponding system library call. In the
1892Internet domain, each address is four bytes long and you can unpack it
1893by saying something like:
1894
1895 ($a,$b,$c,$d) = unpack('C4',$addr[0]);
1896
2b5ab1e7
TC
1897The Socket library makes this slightly easier:
1898
1899 use Socket;
1900 $iaddr = inet_aton("127.1"); # or whatever address
1901 $name = gethostbyaddr($iaddr, AF_INET);
1902
1903 # or going the other way
19799a22 1904 $straddr = inet_ntoa($iaddr);
2b5ab1e7 1905
19799a22
GS
1906If you get tired of remembering which element of the return list
1907contains which return value, by-name interfaces are provided
1908in standard modules: C<File::stat>, C<Net::hostent>, C<Net::netent>,
1909C<Net::protoent>, C<Net::servent>, C<Time::gmtime>, C<Time::localtime>,
1910and C<User::grent>. These override the normal built-ins, supplying
1911versions that return objects with the appropriate names
1912for each field. For example:
5a964f20
TC
1913
1914 use File::stat;
1915 use User::pwent;
1916 $is_his = (stat($filename)->uid == pwent($whoever)->uid);
1917
1918Even though it looks like they're the same method calls (uid),
19799a22
GS
1919they aren't, because a C<File::stat> object is different from
1920a C<User::pwent> object.
5a964f20 1921
a0d0e21e
LW
1922=item getsockname SOCKET
1923
19799a22
GS
1924Returns the packed sockaddr address of this end of the SOCKET connection,
1925in case you don't know the address because you have several different
1926IPs that the connection might have come in on.
a0d0e21e 1927
4633a7c4
LW
1928 use Socket;
1929 $mysockaddr = getsockname(SOCK);
19799a22
GS
1930 ($port, $myaddr) = sockaddr_in($mysockaddr);
1931 printf "Connect to %s [%s]\n",
1932 scalar gethostbyaddr($myaddr, AF_INET),
1933 inet_ntoa($myaddr);
a0d0e21e
LW
1934
1935=item getsockopt SOCKET,LEVEL,OPTNAME
1936
5a964f20 1937Returns the socket option requested, or undef if there is an error.
a0d0e21e
LW
1938
1939=item glob EXPR
1940
0a753a76 1941=item glob
1942
2b5ab1e7
TC
1943Returns the value of EXPR with filename expansions such as the
1944standard Unix shell F</bin/csh> would do. This is the internal function
61eff3bc
JH
1945implementing the C<< <*.c> >> operator, but you can use it directly.
1946If EXPR is omitted, C<$_> is used. The C<< <*.c> >> operator is
2b5ab1e7 1947discussed in more detail in L<perlop/"I/O Operators">.
a0d0e21e 1948
3a4b19e4
GS
1949Beginning with v5.6.0, this operator is implemented using the standard
1950C<File::Glob> extension. See L<File::Glob> for details.
1951
a0d0e21e
LW
1952=item gmtime EXPR
1953
48a26b3a 1954Converts a time as returned by the time function to a 8-element list
54310121 1955with the time localized for the standard Greenwich time zone.
4633a7c4 1956Typically used as follows:
a0d0e21e 1957
48a26b3a
GS
1958 # 0 1 2 3 4 5 6 7
1959 ($sec,$min,$hour,$mday,$mon,$year,$wday,$yday) =
a0d0e21e
LW
1960 gmtime(time);
1961
48a26b3a
GS
1962All list elements are numeric, and come straight out of the C `struct
1963tm'. $sec, $min, and $hour are the seconds, minutes, and hours of the
1964specified time. $mday is the day of the month, and $mon is the month
1965itself, in the range C<0..11> with 0 indicating January and 11
1966indicating December. $year is the number of years since 1900. That
1967is, $year is C<123> in year 2023. $wday is the day of the week, with
19680 indicating Sunday and 3 indicating Wednesday. $yday is the day of
1969the year, in the range C<1..365> (or C<1..366> in leap years.)
1970
1971Note that the $year element is I<not> simply the last two digits of
1972the year. If you assume it is, then you create non-Y2K-compliant
1973programs--and you wouldn't want to do that, would you?
2f9daede 1974
abd75f24
GS
1975The proper way to get a complete 4-digit year is simply:
1976
1977 $year += 1900;
1978
1979And to get the last two digits of the year (e.g., '01' in 2001) do:
1980
1981 $year = sprintf("%02d", $year % 100);
1982
48a26b3a 1983If EXPR is omitted, C<gmtime()> uses the current time (C<gmtime(time)>).
a0d0e21e 1984
48a26b3a 1985In scalar context, C<gmtime()> returns the ctime(3) value:
0a753a76 1986
1987 $now_string = gmtime; # e.g., "Thu Oct 13 04:54:34 1994"
1988
19799a22 1989Also see the C<timegm> function provided by the C<Time::Local> module,
f86cebdf 1990and the strftime(3) function available via the POSIX module.
7660c0ab 1991
2b5ab1e7
TC
1992This scalar value is B<not> locale dependent (see L<perllocale>), but
1993is instead a Perl builtin. Also see the C<Time::Local> module, and the
1994strftime(3) and mktime(3) functions available via the POSIX module. To
7660c0ab
A
1995get somewhat similar but locale dependent date strings, set up your
1996locale environment variables appropriately (please see L<perllocale>)
1997and try for example:
1998
1999 use POSIX qw(strftime);
2b5ab1e7 2000 $now_string = strftime "%a %b %e %H:%M:%S %Y", gmtime;
7660c0ab 2001
2b5ab1e7
TC
2002Note that the C<%a> and C<%b> escapes, which represent the short forms
2003of the day of the week and the month of the year, may not necessarily
2004be three characters wide in all locales.
0a753a76 2005
a0d0e21e
LW
2006=item goto LABEL
2007
748a9306
LW
2008=item goto EXPR
2009
a0d0e21e
LW
2010=item goto &NAME
2011
7660c0ab 2012The C<goto-LABEL> form finds the statement labeled with LABEL and resumes
a0d0e21e 2013execution there. It may not be used to go into any construct that
7660c0ab 2014requires initialization, such as a subroutine or a C<foreach> loop. It
0a753a76 2015also can't be used to go into a construct that is optimized away,
19799a22 2016or to get out of a block or subroutine given to C<sort>.
0a753a76 2017It can be used to go almost anywhere else within the dynamic scope,
a0d0e21e 2018including out of subroutines, but it's usually better to use some other
19799a22 2019construct such as C<last> or C<die>. The author of Perl has never felt the
7660c0ab 2020need to use this form of C<goto> (in Perl, that is--C is another matter).
a0d0e21e 2021
7660c0ab
A
2022The C<goto-EXPR> form expects a label name, whose scope will be resolved
2023dynamically. This allows for computed C<goto>s per FORTRAN, but isn't
748a9306
LW
2024necessarily recommended if you're optimizing for maintainability:
2025
2026 goto ("FOO", "BAR", "GLARCH")[$i];
2027
6cb9131c
GS
2028The C<goto-&NAME> form is quite different from the other forms of C<goto>.
2029In fact, it isn't a goto in the normal sense at all, and doesn't have
2030the stigma associated with other gotos. Instead, it
2031substitutes a call to the named subroutine for the currently running
2032subroutine. This is used by C<AUTOLOAD> subroutines that wish to load
2033another subroutine and then pretend that the other subroutine had been
2034called in the first place (except that any modifications to C<@_>
2035in the current subroutine are propagated to the other subroutine.)
2036After the C<goto>, not even C<caller> will be able to tell that this
2037routine was called first.
2038
2039NAME needn't be the name of a subroutine; it can be a scalar variable
2040containing a code reference, or a block which evaluates to a code
2041reference.
a0d0e21e
LW
2042
2043=item grep BLOCK LIST
2044
2045=item grep EXPR,LIST
2046
2b5ab1e7
TC
2047This is similar in spirit to, but not the same as, grep(1) and its
2048relatives. In particular, it is not limited to using regular expressions.
2f9daede 2049
a0d0e21e 2050Evaluates the BLOCK or EXPR for each element of LIST (locally setting
7660c0ab 2051C<$_> to each element) and returns the list value consisting of those
19799a22
GS
2052elements for which the expression evaluated to true. In scalar
2053context, returns the number of times the expression was true.
a0d0e21e
LW
2054
2055 @foo = grep(!/^#/, @bar); # weed out comments
2056
2057or equivalently,
2058
2059 @foo = grep {!/^#/} @bar; # weed out comments
2060
2b5ab1e7
TC
2061Note that, because C<$_> is a reference into the list value, it can
2062be used to modify the elements of the array. While this is useful and
2063supported, it can cause bizarre results if the LIST is not a named array.
2064Similarly, grep returns aliases into the original list, much as a for
2065loop's index variable aliases the list elements. That is, modifying an
19799a22
GS
2066element of a list returned by grep (for example, in a C<foreach>, C<map>
2067or another C<grep>) actually modifies the element in the original list.
2b5ab1e7 2068This is usually something to be avoided when writing clear code.
a0d0e21e 2069
19799a22 2070See also L</map> for a list composed of the results of the BLOCK or EXPR.
38325410 2071
a0d0e21e
LW
2072=item hex EXPR
2073
54310121 2074=item hex
bbce6d69 2075
2b5ab1e7
TC
2076Interprets EXPR as a hex string and returns the corresponding value.
2077(To convert strings that might start with either 0, 0x, or 0b, see
2078L</oct>.) If EXPR is omitted, uses C<$_>.
2f9daede
TP
2079
2080 print hex '0xAf'; # prints '175'
2081 print hex 'aF'; # same
a0d0e21e 2082
19799a22 2083Hex strings may only represent integers. Strings that would cause
c6edd1b7 2084integer overflow trigger a warning.
19799a22 2085
a0d0e21e
LW
2086=item import
2087
19799a22 2088There is no builtin C<import> function. It is just an ordinary
4633a7c4 2089method (subroutine) defined (or inherited) by modules that wish to export
19799a22 2090names to another module. The C<use> function calls the C<import> method
54310121 2091for the package used. See also L</use()>, L<perlmod>, and L<Exporter>.
a0d0e21e
LW
2092
2093=item index STR,SUBSTR,POSITION
2094
2095=item index STR,SUBSTR
2096
2b5ab1e7
TC
2097The index function searches for one string within another, but without
2098the wildcard-like behavior of a full regular-expression pattern match.
2099It returns the position of the first occurrence of SUBSTR in STR at
2100or after POSITION. If POSITION is omitted, starts searching from the
2101beginning of the string. The return value is based at C<0> (or whatever
2102you've set the C<$[> variable to--but don't do that). If the substring
2103is not found, returns one less than the base, ordinarily C<-1>.
a0d0e21e
LW
2104
2105=item int EXPR
2106
54310121 2107=item int
bbce6d69 2108
7660c0ab 2109Returns the integer portion of EXPR. If EXPR is omitted, uses C<$_>.
2b5ab1e7
TC
2110You should not use this function for rounding: one because it truncates
2111towards C<0>, and two because machine representations of floating point
2112numbers can sometimes produce counterintuitive results. For example,
2113C<int(-6.725/0.025)> produces -268 rather than the correct -269; that's
2114because it's really more like -268.99999999999994315658 instead. Usually,
19799a22 2115the C<sprintf>, C<printf>, or the C<POSIX::floor> and C<POSIX::ceil>
2b5ab1e7 2116functions will serve you better than will int().
a0d0e21e
LW
2117
2118=item ioctl FILEHANDLE,FUNCTION,SCALAR
2119
2b5ab1e7 2120Implements the ioctl(2) function. You'll probably first have to say
a0d0e21e 2121
4633a7c4 2122 require "ioctl.ph"; # probably in /usr/local/lib/perl/ioctl.ph
a0d0e21e 2123
2b5ab1e7 2124to get the correct function definitions. If F<ioctl.ph> doesn't
a0d0e21e 2125exist or doesn't have the correct definitions you'll have to roll your
61eff3bc 2126own, based on your C header files such as F<< <sys/ioctl.h> >>.
5a964f20 2127(There is a Perl script called B<h2ph> that comes with the Perl kit that
54310121 2128may help you in this, but it's nontrivial.) SCALAR will be read and/or
4633a7c4 2129written depending on the FUNCTION--a pointer to the string value of SCALAR
19799a22 2130will be passed as the third argument of the actual C<ioctl> call. (If SCALAR
4633a7c4
LW
2131has no string value but does have a numeric value, that value will be
2132passed rather than a pointer to the string value. To guarantee this to be
19799a22
GS
2133true, add a C<0> to the scalar before using it.) The C<pack> and C<unpack>
2134functions may be needed to manipulate the values of structures used by
2135C<ioctl>.
a0d0e21e 2136
19799a22 2137The return value of C<ioctl> (and C<fcntl>) is as follows:
a0d0e21e
LW
2138
2139 if OS returns: then Perl returns:
2140 -1 undefined value
2141 0 string "0 but true"
2142 anything else that number
2143
19799a22 2144Thus Perl returns true on success and false on failure, yet you can
a0d0e21e
LW
2145still easily determine the actual value returned by the operating
2146system:
2147
2b5ab1e7 2148 $retval = ioctl(...) || -1;
a0d0e21e
LW
2149 printf "System returned %d\n", $retval;
2150
c2611fb3 2151The special string "C<0> but true" is exempt from B<-w> complaints
5a964f20
TC
2152about improper numeric conversions.
2153
19799a22
GS
2154Here's an example of setting a filehandle named C<REMOTE> to be
2155non-blocking at the system level. You'll have to negotiate C<$|>
2156on your own, though.
2157
2158 use Fcntl qw(F_GETFL F_SETFL O_NONBLOCK);
2159
2160 $flags = fcntl(REMOTE, F_GETFL, 0)
2161 or die "Can't get flags for the socket: $!\n";
2162
2163 $flags = fcntl(REMOTE, F_SETFL, $flags | O_NONBLOCK)
2164 or die "Can't set flags for the socket: $!\n";
2165
a0d0e21e
LW
2166=item join EXPR,LIST
2167
2b5ab1e7
TC
2168Joins the separate strings of LIST into a single string with fields
2169separated by the value of EXPR, and returns that new string. Example:
a0d0e21e 2170
2b5ab1e7 2171 $rec = join(':', $login,$passwd,$uid,$gid,$gcos,$home,$shell);
a0d0e21e 2172
eb6e2d6f
GS
2173Beware that unlike C<split>, C<join> doesn't take a pattern as its
2174first argument. Compare L</split>.
a0d0e21e 2175
aa689395 2176=item keys HASH
2177
19799a22 2178Returns a list consisting of all the keys of the named hash. (In
1d2dff63 2179scalar context, returns the number of keys.) The keys are returned in
ab192400
GS
2180an apparently random order. The actual random order is subject to
2181change in future versions of perl, but it is guaranteed to be the same
19799a22 2182order as either the C<values> or C<each> function produces (given
ab192400
GS
2183that the hash has not been modified). As a side effect, it resets
2184HASH's iterator.
a0d0e21e 2185
aa689395 2186Here is yet another way to print your environment:
a0d0e21e
LW
2187
2188 @keys = keys %ENV;
2189 @values = values %ENV;
19799a22 2190 while (@keys) {
a0d0e21e
LW
2191 print pop(@keys), '=', pop(@values), "\n";
2192 }
2193
2194or how about sorted by key:
2195
2196 foreach $key (sort(keys %ENV)) {
2197 print $key, '=', $ENV{$key}, "\n";
2198 }
2199
19799a22 2200To sort a hash by value, you'll need to use a C<sort> function.
aa689395 2201Here's a descending numeric sort of a hash by its values:
4633a7c4 2202
5a964f20 2203 foreach $key (sort { $hash{$b} <=> $hash{$a} } keys %hash) {
4633a7c4
LW
2204 printf "%4d %s\n", $hash{$key}, $key;
2205 }
2206
19799a22 2207As an lvalue C<keys> allows you to increase the number of hash buckets
aa689395 2208allocated for the given hash. This can gain you a measure of efficiency if
2209you know the hash is going to get big. (This is similar to pre-extending
2210an array by assigning a larger number to $#array.) If you say
55497cff 2211
2212 keys %hash = 200;
2213
ab192400
GS
2214then C<%hash> will have at least 200 buckets allocated for it--256 of them,
2215in fact, since it rounds up to the next power of two. These
55497cff 2216buckets will be retained even if you do C<%hash = ()>, use C<undef
2217%hash> if you want to free the storage while C<%hash> is still in scope.
2218You can't shrink the number of buckets allocated for the hash using
19799a22 2219C<keys> in this way (but you needn't worry about doing this by accident,
55497cff 2220as trying has no effect).
2221
19799a22 2222See also C<each>, C<values> and C<sort>.
ab192400 2223
b350dd2f 2224=item kill SIGNAL, LIST
a0d0e21e 2225
b350dd2f 2226Sends a signal to a list of processes. Returns the number of
517db077
GS
2227processes successfully signaled (which is not necessarily the
2228same as the number actually killed).
a0d0e21e
LW
2229
2230 $cnt = kill 1, $child1, $child2;
2231 kill 9, @goners;
2232
b350dd2f
GS
2233If SIGNAL is zero, no signal is sent to the process. This is a
2234useful way to check that the process is alive and hasn't changed
2235its UID. See L<perlport> for notes on the portability of this
2236construct.
2237
2238Unlike in the shell, if SIGNAL is negative, it kills
4633a7c4
LW
2239process groups instead of processes. (On System V, a negative I<PROCESS>
2240number will also kill process groups, but that's not portable.) That
2241means you usually want to use positive not negative signals. You may also
da0045b7 2242use a signal name in quotes. See L<perlipc/"Signals"> for details.
a0d0e21e
LW
2243
2244=item last LABEL
2245
2246=item last
2247
2248The C<last> command is like the C<break> statement in C (as used in
2249loops); it immediately exits the loop in question. If the LABEL is
2250omitted, the command refers to the innermost enclosing loop. The
2251C<continue> block, if any, is not executed:
2252
4633a7c4
LW
2253 LINE: while (<STDIN>) {
2254 last LINE if /^$/; # exit when done with header
5a964f20 2255 #...
a0d0e21e
LW
2256 }
2257
4968c1e4 2258C<last> cannot be used to exit a block which returns a value such as
2b5ab1e7
TC
2259C<eval {}>, C<sub {}> or C<do {}>, and should not be used to exit
2260a grep() or map() operation.
4968c1e4 2261
6c1372ed
GS
2262Note that a block by itself is semantically identical to a loop
2263that executes once. Thus C<last> can be used to effect an early
2264exit out of such a block.
2265
98293880
JH
2266See also L</continue> for an illustration of how C<last>, C<next>, and
2267C<redo> work.
1d2dff63 2268
a0d0e21e
LW
2269=item lc EXPR
2270
54310121 2271=item lc
bbce6d69 2272
a0d0e21e 2273Returns an lowercased version of EXPR. This is the internal function
7660c0ab 2274implementing the C<\L> escape in double-quoted strings.
19799a22
GS
2275Respects current LC_CTYPE locale if C<use locale> in force. See L<perllocale>
2276and L<utf8>.
a0d0e21e 2277
7660c0ab 2278If EXPR is omitted, uses C<$_>.
bbce6d69 2279
a0d0e21e
LW
2280=item lcfirst EXPR
2281
54310121 2282=item lcfirst
bbce6d69 2283
a0d0e21e 2284Returns the value of EXPR with the first character lowercased. This is
7660c0ab 2285the internal function implementing the C<\l> escape in double-quoted strings.
a0ed51b3 2286Respects current LC_CTYPE locale if C<use locale> in force. See L<perllocale>.
a0d0e21e 2287
7660c0ab 2288If EXPR is omitted, uses C<$_>.
bbce6d69 2289
a0d0e21e
LW
2290=item length EXPR
2291
54310121 2292=item length
bbce6d69 2293
a0ed51b3 2294Returns the length in characters of the value of EXPR. If EXPR is
2b5ab1e7
TC
2295omitted, returns length of C<$_>. Note that this cannot be used on
2296an entire array or hash to find out how many elements these have.
2297For that, use C<scalar @array> and C<scalar keys %hash> respectively.
a0d0e21e
LW
2298
2299=item link OLDFILE,NEWFILE
2300
19799a22
GS
2301Creates a new filename linked to the old filename. Returns true for
2302success, false otherwise.
a0d0e21e
LW
2303
2304=item listen SOCKET,QUEUESIZE
2305
19799a22
GS
2306Does the same thing that the listen system call does. Returns true if
2307it succeeded, false otherwise. See the example in L<perlipc/"Sockets: Client/Server Communication">.
a0d0e21e
LW
2308
2309=item local EXPR
2310
19799a22 2311You really probably want to be using C<my> instead, because C<local> isn't
2b5ab1e7
TC
2312what most people think of as "local". See L<perlsub/"Private Variables
2313via my()"> for details.
2314
5a964f20
TC
2315A local modifies the listed variables to be local to the enclosing
2316block, file, or eval. If more than one value is listed, the list must
2317be placed in parentheses. See L<perlsub/"Temporary Values via local()">
2318for details, including issues with tied arrays and hashes.
a0d0e21e 2319
a0d0e21e
LW
2320=item localtime EXPR
2321
19799a22 2322Converts a time as returned by the time function to a 9-element list
5f05dabc 2323with the time analyzed for the local time zone. Typically used as
a0d0e21e
LW
2324follows:
2325
54310121 2326 # 0 1 2 3 4 5 6 7 8
a0d0e21e
LW
2327 ($sec,$min,$hour,$mday,$mon,$year,$wday,$yday,$isdst) =
2328 localtime(time);
2329
48a26b3a
GS
2330All list elements are numeric, and come straight out of the C `struct
2331tm'. $sec, $min, and $hour are the seconds, minutes, and hours of the
2332specified time. $mday is the day of the month, and $mon is the month
2333itself, in the range C<0..11> with 0 indicating January and 11
2334indicating December. $year is the number of years since 1900. That
2335is, $year is C<123> in year 2023. $wday is the day of the week, with
23360 indicating Sunday and 3 indicating Wednesday. $yday is the day of
2337the year, in the range C<1..365> (or C<1..366> in leap years.) $isdst
2338is true if the specified time occurs during daylight savings time,
2339false otherwise.
2340
2341Note that the $year element is I<not> simply the last two digits of
2342the year. If you assume it is, then you create non-Y2K-compliant
2343programs--and you wouldn't want to do that, would you?
54310121 2344
abd75f24
GS
2345The proper way to get a complete 4-digit year is simply:
2346
2347 $year += 1900;
2348
2349And to get the last two digits of the year (e.g., '01' in 2001) do:
2350
2351 $year = sprintf("%02d", $year % 100);
2352
48a26b3a 2353If EXPR is omitted, C<localtime()> uses the current time (C<localtime(time)>).
a0d0e21e 2354
48a26b3a 2355In scalar context, C<localtime()> returns the ctime(3) value:
a0d0e21e 2356
5f05dabc 2357 $now_string = localtime; # e.g., "Thu Oct 13 04:54:34 1994"
a0d0e21e 2358
a3cb178b 2359This scalar value is B<not> locale dependent, see L<perllocale>, but
68f8bed4
JH
2360instead a Perl builtin. Also see the C<Time::Local> module
2361(to convert the second, minutes, hours, ... back to seconds since the
2362stroke of midnight the 1st of January 1970, the value returned by
ca6e1c26 2363time()), and the strftime(3) and mktime(3) functions available via the
68f8bed4
JH
2364POSIX module. To get somewhat similar but locale dependent date
2365strings, set up your locale environment variables appropriately
2366(please see L<perllocale>) and try for example:
a3cb178b 2367
5a964f20 2368 use POSIX qw(strftime);
2b5ab1e7 2369 $now_string = strftime "%a %b %e %H:%M:%S %Y", localtime;
a3cb178b
GS
2370
2371Note that the C<%a> and C<%b>, the short forms of the day of the week
2372and the month of the year, may not necessarily be three characters wide.
a0d0e21e 2373
19799a22
GS
2374=item lock
2375
2376 lock I<THING>
2377
2378This function places an advisory lock on a variable, subroutine,
2379or referenced object contained in I<THING> until the lock goes out
2380of scope. This is a built-in function only if your version of Perl
2381was built with threading enabled, and if you've said C<use Threads>.
2382Otherwise a user-defined function by this name will be called. See
2383L<Thread>.
2384
a0d0e21e
LW
2385=item log EXPR
2386
54310121 2387=item log
bbce6d69 2388
2b5ab1e7
TC
2389Returns the natural logarithm (base I<e>) of EXPR. If EXPR is omitted,
2390returns log of C<$_>. To get the log of another base, use basic algebra:
19799a22 2391The base-N log of a number is equal to the natural log of that number
2b5ab1e7
TC
2392divided by the natural log of N. For example:
2393
2394 sub log10 {
2395 my $n = shift;
2396 return log($n)/log(10);
2397 }
2398
2399See also L</exp> for the inverse operation.
a0d0e21e
LW
2400
2401=item lstat FILEHANDLE
2402
2403=item lstat EXPR
2404
54310121 2405=item lstat
bbce6d69 2406
19799a22 2407Does the same thing as the C<stat> function (including setting the
5a964f20
TC
2408special C<_> filehandle) but stats a symbolic link instead of the file
2409the symbolic link points to. If symbolic links are unimplemented on
19799a22 2410your system, a normal C<stat> is done.
a0d0e21e 2411
7660c0ab 2412If EXPR is omitted, stats C<$_>.
bbce6d69 2413
a0d0e21e
LW
2414=item m//
2415
2416The match operator. See L<perlop>.
2417
2418=item map BLOCK LIST
2419
2420=item map EXPR,LIST
2421
19799a22
GS
2422Evaluates the BLOCK or EXPR for each element of LIST (locally setting
2423C<$_> to each element) and returns the list value composed of the
2424results of each such evaluation. In scalar context, returns the
2425total number of elements so generated. Evaluates BLOCK or EXPR in
2426list context, so each element of LIST may produce zero, one, or
2427more elements in the returned value.
dd99ebda 2428
a0d0e21e
LW
2429 @chars = map(chr, @nums);
2430
2431translates a list of numbers to the corresponding characters. And
2432
4633a7c4 2433 %hash = map { getkey($_) => $_ } @array;
a0d0e21e
LW
2434
2435is just a funny way to write
2436
2437 %hash = ();
2438 foreach $_ (@array) {
4633a7c4 2439 $hash{getkey($_)} = $_;
a0d0e21e
LW
2440 }
2441
2b5ab1e7
TC
2442Note that, because C<$_> is a reference into the list value, it can
2443be used to modify the elements of the array. While this is useful and
2444supported, it can cause bizarre results if the LIST is not a named array.
2445Using a regular C<foreach> loop for this purpose would be clearer in
2446most cases. See also L</grep> for an array composed of those items of
2447the original list for which the BLOCK or EXPR evaluates to true.
fb73857a 2448
19799a22 2449=item mkdir FILENAME,MASK
a0d0e21e 2450
5a211162
GS
2451=item mkdir FILENAME
2452
0591cd52 2453Creates the directory specified by FILENAME, with permissions
19799a22
GS
2454specified by MASK (as modified by C<umask>). If it succeeds it
2455returns true, otherwise it returns false and sets C<$!> (errno).
5a211162 2456If omitted, MASK defaults to 0777.
0591cd52 2457
19799a22 2458In general, it is better to create directories with permissive MASK,
0591cd52 2459and let the user modify that with their C<umask>, than it is to supply
19799a22 2460a restrictive MASK and give the user no way to be more permissive.
0591cd52
NT
2461The exceptions to this rule are when the file or directory should be
2462kept private (mail files, for instance). The perlfunc(1) entry on
19799a22 2463C<umask> discusses the choice of MASK in more detail.
a0d0e21e
LW
2464
2465=item msgctl ID,CMD,ARG
2466
f86cebdf 2467Calls the System V IPC function msgctl(2). You'll probably have to say
0ade1984
JH
2468
2469 use IPC::SysV;
2470
7660c0ab
A
2471first to get the correct constant definitions. If CMD is C<IPC_STAT>,
2472then ARG must be a variable which will hold the returned C<msqid_ds>
951ba7fe
GS
2473structure. Returns like C<ioctl>: the undefined value for error,
2474C<"0 but true"> for zero, or the actual return value otherwise. See also
19799a22 2475C<IPC::SysV> and C<IPC::Semaphore> documentation.
a0d0e21e
LW
2476
2477=item msgget KEY,FLAGS
2478
f86cebdf 2479Calls the System V IPC function msgget(2). Returns the message queue
7660c0ab 2480id, or the undefined value if there is an error. See also C<IPC::SysV>
19799a22 2481and C<IPC::Msg> documentation.
a0d0e21e
LW
2482
2483=item msgsnd ID,MSG,FLAGS
2484
2485Calls the System V IPC function msgsnd to send the message MSG to the
e4038a1f
MS
2486message queue ID. MSG must begin with the native long integer message
2487type, which may be created with C<pack("l!", $type)>. Returns true if
2488successful, or false if there is an error. See also C<IPC::SysV> and
2489C<IPC::SysV::Msg> documentation.
a0d0e21e
LW
2490
2491=item msgrcv ID,VAR,SIZE,TYPE,FLAGS
2492
2493Calls the System V IPC function msgrcv to receive a message from
2494message queue ID into variable VAR with a maximum message size of
0ade1984
JH
2495SIZE. Note that if a message is received, the message type will be
2496the first thing in VAR, and the maximum length of VAR is SIZE plus the
19799a22 2497size of the message type. Returns true if successful, or false if
7660c0ab 2498there is an error. See also C<IPC::SysV> and C<IPC::SysV::Msg> documentation.
a0d0e21e
LW
2499
2500=item my EXPR
2501
09bef843
SB
2502=item my EXPR : ATTRIBUTES
2503
19799a22
GS
2504A C<my> declares the listed variables to be local (lexically) to the
2505enclosing block, file, or C<eval>. If
5f05dabc 2506more than one value is listed, the list must be placed in parentheses. See
cb1a09d0 2507L<perlsub/"Private Variables via my()"> for details.
4633a7c4 2508
a0d0e21e
LW
2509=item next LABEL
2510
2511=item next
2512
2513The C<next> command is like the C<continue> statement in C; it starts
2514the next iteration of the loop:
2515
4633a7c4
LW
2516 LINE: while (<STDIN>) {
2517 next LINE if /^#/; # discard comments
5a964f20 2518 #...
a0d0e21e
LW
2519 }
2520
2521Note that if there were a C<continue> block on the above, it would get
2522executed even on discarded lines. If the LABEL is omitted, the command
2523refers to the innermost enclosing loop.
2524
4968c1e4 2525C<next> cannot be used to exit a block which returns a value such as
2b5ab1e7
TC
2526C<eval {}>, C<sub {}> or C<do {}>, and should not be used to exit
2527a grep() or map() operation.
4968c1e4 2528
6c1372ed
GS
2529Note that a block by itself is semantically identical to a loop
2530that executes once. Thus C<next> will exit such a block early.
2531
98293880
JH
2532See also L</continue> for an illustration of how C<last>, C<next>, and
2533C<redo> work.
1d2dff63 2534
a0d0e21e
LW
2535=item no Module LIST
2536
7660c0ab 2537See the L</use> function, which C<no> is the opposite of.
a0d0e21e
LW
2538
2539=item oct EXPR
2540
54310121 2541=item oct
bbce6d69 2542
4633a7c4 2543Interprets EXPR as an octal string and returns the corresponding
4f19785b
WSI
2544value. (If EXPR happens to start off with C<0x>, interprets it as a
2545hex string. If EXPR starts off with C<0b>, it is interpreted as a
2546binary string.) The following will handle decimal, binary, octal, and
4633a7c4 2547hex in the standard Perl or C notation:
a0d0e21e
LW
2548
2549 $val = oct($val) if $val =~ /^0/;
2550
19799a22
GS
2551If EXPR is omitted, uses C<$_>. To go the other way (produce a number
2552in octal), use sprintf() or printf():
2553
2554 $perms = (stat("filename"))[2] & 07777;
2555 $oct_perms = sprintf "%lo", $perms;
2556
2557The oct() function is commonly used when a string such as C<644> needs
2558to be converted into a file mode, for example. (Although perl will
2559automatically convert strings into numbers as needed, this automatic
2560conversion assumes base 10.)
a0d0e21e 2561
1c1fc3ea 2562=item open FILEHANDLE,MODE,LIST
6170680b 2563
a0d0e21e
LW
2564=item open FILEHANDLE,EXPR
2565
2566=item open FILEHANDLE
2567
2568Opens the file whose filename is given by EXPR, and associates it with
5f05dabc 2569FILEHANDLE. If FILEHANDLE is an expression, its value is used as the
2570name of the real filehandle wanted. If EXPR is omitted, the scalar
2571variable of the same name as the FILEHANDLE contains the filename.
19799a22
GS
2572(Note that lexical variables--those declared with C<my>--will not work
2573for this purpose; so if you're using C<my>, specify EXPR in your call
2b5ab1e7
TC
2574to open.) See L<perlopentut> for a kinder, gentler explanation of opening
2575files.
5f05dabc 2576
61eff3bc
JH
2577If MODE is C<< '<' >> or nothing, the file is opened for input.
2578If MODE is C<< '>' >>, the file is truncated and opened for
2579output, being created if necessary. If MODE is C<<< '>>' >>>,
fbb426e4 2580the file is opened for appending, again being created if necessary.
61eff3bc
JH
2581You can put a C<'+'> in front of the C<< '>' >> or C<< '<' >> to indicate that
2582you want both read and write access to the file; thus C<< '+<' >> is almost
2583always preferred for read/write updates--the C<< '+>' >> mode would clobber the
5a964f20
TC
2584file first. You can't usually use either read-write mode for updating
2585textfiles, since they have variable length records. See the B<-i>
0591cd52
NT
2586switch in L<perlrun> for a better approach. The file is created with
2587permissions of C<0666> modified by the process' C<umask> value.
5a964f20 2588
61eff3bc
JH
2589These various prefixes correspond to the fopen(3) modes of C<'r'>, C<'r+'>,
2590C<'w'>, C<'w+'>, C<'a'>, and C<'a+'>.
5f05dabc 2591
6170680b
IZ
2592In the 2-arguments (and 1-argument) form of the call the mode and
2593filename should be concatenated (in this order), possibly separated by
61eff3bc 2594spaces. It is possible to omit the mode if the mode is C<< '<' >>.
6170680b 2595
7660c0ab 2596If the filename begins with C<'|'>, the filename is interpreted as a
5a964f20 2597command to which output is to be piped, and if the filename ends with a
f244e06d
GS
2598C<'|'>, the filename is interpreted as a command which pipes output to
2599us. See L<perlipc/"Using open() for IPC">
19799a22 2600for more examples of this. (You are not allowed to C<open> to a command
5a964f20
TC
2601that pipes both in I<and> out, but see L<IPC::Open2>, L<IPC::Open3>,
2602and L<perlipc/"Bidirectional Communication"> for alternatives.)
cb1a09d0 2603
6170680b
IZ
2604If MODE is C<'|-'>, the filename is interpreted as a
2605command to which output is to be piped, and if MODE is
2606C<'-|'>, the filename is interpreted as a command which pipes output to
2607us. In the 2-arguments (and 1-argument) form one should replace dash
2608(C<'-'>) with the command. See L<perlipc/"Using open() for IPC">
2609for more examples of this. (You are not allowed to C<open> to a command
2610that pipes both in I<and> out, but see L<IPC::Open2>, L<IPC::Open3>,
2611and L<perlipc/"Bidirectional Communication"> for alternatives.)
2612
2613In the 2-arguments (and 1-argument) form opening C<'-'> opens STDIN
61eff3bc 2614and opening C<< '>-' >> opens STDOUT.
6170680b
IZ
2615
2616Open returns
19799a22 2617nonzero upon success, the undefined value otherwise. If the C<open>
4633a7c4 2618involved a pipe, the return value happens to be the pid of the
54310121 2619subprocess.
cb1a09d0
AD
2620
2621If you're unfortunate enough to be running Perl on a system that
2622distinguishes between text files and binary files (modern operating
2623systems don't care), then you should check out L</binmode> for tips for
19799a22 2624dealing with this. The key distinction between systems that need C<binmode>
5a964f20
TC
2625and those that don't is their text file formats. Systems like Unix, MacOS, and
2626Plan9, which delimit lines with a single character, and which encode that
19799a22 2627character in C as C<"\n">, do not need C<binmode>. The rest need it.
cb1a09d0 2628
fb73857a 2629When opening a file, it's usually a bad idea to continue normal execution
19799a22
GS
2630if the request failed, so C<open> is frequently used in connection with
2631C<die>. Even if C<die> won't do what you want (say, in a CGI script,
fb73857a 2632where you want to make a nicely formatted error message (but there are
5a964f20 2633modules that can help with that problem)) you should always check
19799a22 2634the return value from opening a file. The infrequent exception is when
fb73857a 2635working with an unopened filehandle is actually what you want to do.
2636
cb1a09d0 2637Examples:
a0d0e21e
LW
2638
2639 $ARTICLE = 100;
2640 open ARTICLE or die "Can't find article $ARTICLE: $!\n";
2641 while (<ARTICLE>) {...
2642
6170680b 2643 open(LOG, '>>/usr/spool/news/twitlog'); # (log is reserved)
fb73857a 2644 # if the open fails, output is discarded
a0d0e21e 2645
6170680b 2646 open(DBASE, '+<', 'dbase.mine') # open for update
fb73857a 2647 or die "Can't open 'dbase.mine' for update: $!";
cb1a09d0 2648
6170680b
IZ
2649 open(DBASE, '+<dbase.mine') # ditto
2650 or die "Can't open 'dbase.mine' for update: $!";
2651
2652 open(ARTICLE, '-|', "caesar <$article") # decrypt article
fb73857a 2653 or die "Can't start caesar: $!";
a0d0e21e 2654
6170680b
IZ
2655 open(ARTICLE, "caesar <$article |") # ditto
2656 or die "Can't start caesar: $!";
2657
2658 open(EXTRACT, "|sort >/tmp/Tmp$$") # $$ is our process id
fb73857a 2659 or die "Can't start sort: $!";
a0d0e21e
LW
2660
2661 # process argument list of files along with any includes
2662
2663 foreach $file (@ARGV) {
2664 process($file, 'fh00');
2665 }
2666
2667 sub process {
5a964f20 2668 my($filename, $input) = @_;
a0d0e21e
LW
2669 $input++; # this is a string increment
2670 unless (open($input, $filename)) {
2671 print STDERR "Can't open $filename: $!\n";
2672 return;
2673 }
2674
5a964f20 2675 local $_;
a0d0e21e
LW
2676 while (<$input>) { # note use of indirection
2677 if (/^#include "(.*)"/) {
2678 process($1, $input);
2679 next;
2680 }
5a964f20 2681 #... # whatever
a0d0e21e
LW
2682 }
2683 }
2684
2685You may also, in the Bourne shell tradition, specify an EXPR beginning
61eff3bc 2686with C<< '>&' >>, in which case the rest of the string is interpreted as the
5a964f20 2687name of a filehandle (or file descriptor, if numeric) to be
61eff3bc
JH
2688duped and opened. You may use C<&> after C<< > >>, C<<< >> >>>,
2689C<< < >>, C<< +> >>, C<<< +>> >>>, and C<< +< >>. The
a0d0e21e 2690mode you specify should match the mode of the original filehandle.
184e9718 2691(Duping a filehandle does not take into account any existing contents of
6170680b
IZ
2692stdio buffers.) Duping file handles is not yet supported for 3-argument
2693open().
2694
a0d0e21e
LW
2695Here is a script that saves, redirects, and restores STDOUT and
2696STDERR:
2697
2698 #!/usr/bin/perl
5a964f20
TC
2699 open(OLDOUT, ">&STDOUT");
2700 open(OLDERR, ">&STDERR");
a0d0e21e 2701
6170680b
IZ
2702 open(STDOUT, '>', "foo.out") || die "Can't redirect stdout";
2703 open(STDERR, ">&STDOUT") || die "Can't dup stdout";
a0d0e21e
LW
2704
2705 select(STDERR); $| = 1; # make unbuffered
2706 select(STDOUT); $| = 1; # make unbuffered
2707
2708 print STDOUT "stdout 1\n"; # this works for
2709 print STDERR "stderr 1\n"; # subprocesses too
2710
2711 close(STDOUT);
2712 close(STDERR);
2713
5a964f20
TC
2714 open(STDOUT, ">&OLDOUT");
2715 open(STDERR, ">&OLDERR");
a0d0e21e
LW
2716
2717 print STDOUT "stdout 2\n";
2718 print STDERR "stderr 2\n";
2719
61eff3bc 2720If you specify C<< '<&=N' >>, where C<N> is a number, then Perl will do an
19799a22 2721equivalent of C's C<fdopen> of that file descriptor; this is more
4633a7c4 2722parsimonious of file descriptors. For example:
a0d0e21e
LW
2723
2724 open(FILEHANDLE, "<&=$fd")
2725
4af147f6
CS
2726Note that this feature depends on the fdopen() C library function.
2727On many UNIX systems, fdopen() is known to fail when file descriptors
2728exceed a certain value, typically 255. If you need more file
2729descriptors than that, consider rebuilding Perl to use the C<sfio>
2730library.
2731
6170680b
IZ
2732If you open a pipe on the command C<'-'>, i.e., either C<'|-'> or C<'-|'>
2733with 2-arguments (or 1-argument) form of open(), then
a0d0e21e 2734there is an implicit fork done, and the return value of open is the pid
7660c0ab 2735of the child within the parent process, and C<0> within the child
184e9718 2736process. (Use C<defined($pid)> to determine whether the open was successful.)
a0d0e21e
LW
2737The filehandle behaves normally for the parent, but i/o to that
2738filehandle is piped from/to the STDOUT/STDIN of the child process.
2739In the child process the filehandle isn't opened--i/o happens from/to
2740the new STDOUT or STDIN. Typically this is used like the normal
2741piped open when you want to exercise more control over just how the
2742pipe command gets executed, such as when you are running setuid, and
54310121 2743don't want to have to scan shell commands for metacharacters.
6170680b 2744The following triples are more or less equivalent:
a0d0e21e
LW
2745
2746 open(FOO, "|tr '[a-z]' '[A-Z]'");
6170680b
IZ
2747 open(FOO, '|-', "tr '[a-z]' '[A-Z]'");
2748 open(FOO, '|-') || exec 'tr', '[a-z]', '[A-Z]';
a0d0e21e
LW
2749
2750 open(FOO, "cat -n '$file'|");
6170680b
IZ
2751 open(FOO, '-|', "cat -n '$file'");
2752 open(FOO, '-|') || exec 'cat', '-n', $file;
a0d0e21e 2753
4633a7c4
LW
2754See L<perlipc/"Safe Pipe Opens"> for more examples of this.
2755
45bc9206
GS
2756NOTE: On any operation that may do a fork, all files opened for output
2757are flushed before the fork is attempted. On systems that support a
2758close-on-exec flag on files, the flag will be set for the newly opened
2759file descriptor as determined by the value of $^F. See L<perlvar/$^F>.
a0d0e21e 2760
0dccf244
CS
2761Closing any piped filehandle causes the parent process to wait for the
2762child to finish, and returns the status value in C<$?>.
2763
6170680b
IZ
2764The filename passed to 2-argument (or 1-argument) form of open()
2765will have leading and trailing
f86cebdf 2766whitespace deleted, and the normal redirection characters
5a964f20
TC
2767honored. This property, known as "magic open",
2768can often be used to good effect. A user could specify a filename of
7660c0ab 2769F<"rsh cat file |">, or you could change certain filenames as needed:
5a964f20
TC
2770
2771 $filename =~ s/(.*\.gz)\s*$/gzip -dc < $1|/;
2772 open(FH, $filename) or die "Can't open $filename: $!";
2773
6170680b
IZ
2774Use 3-argument form to open a file with arbitrary weird characters in it,
2775
2776 open(FOO, '<', $file);
2777
2778otherwise it's necessary to protect any leading and trailing whitespace:
5a964f20
TC
2779
2780 $file =~ s#^(\s)#./$1#;
2781 open(FOO, "< $file\0");
2782
6170680b
IZ
2783(this may not work on some bizzare filesystems). One should
2784conscientiously choose between the the I<magic> and 3-arguments form
2785of open():
2786
2787 open IN, $ARGV[0];
2788
2789will allow the user to specify an argument of the form C<"rsh cat file |">,
2790but will not work on a filename which happens to have a trailing space, while
2791
2792 open IN, '<', $ARGV[0];
2793
2794will have exactly the opposite restrictions.
2795
19799a22 2796If you want a "real" C C<open> (see L<open(2)> on your system), then you
6170680b
IZ
2797should use the C<sysopen> function, which involves no such magic (but
2798may use subtly different filemodes than Perl open(), which is mapped
2799to C fopen()). This is
5a964f20
TC
2800another way to protect your filenames from interpretation. For example:
2801
2802 use IO::Handle;
2803 sysopen(HANDLE, $path, O_RDWR|O_CREAT|O_EXCL)
2804 or die "sysopen $path: $!";
2805 $oldfh = select(HANDLE); $| = 1; select($oldfh);
2806 print HANDLE "stuff $$\n");
2807 seek(HANDLE, 0, 0);
2808 print "File contains: ", <HANDLE>;
2809
7660c0ab
A
2810Using the constructor from the C<IO::Handle> package (or one of its
2811subclasses, such as C<IO::File> or C<IO::Socket>), you can generate anonymous
5a964f20
TC
2812filehandles that have the scope of whatever variables hold references to
2813them, and automatically close whenever and however you leave that scope:
c07a80fd 2814
5f05dabc 2815 use IO::File;
5a964f20 2816 #...
c07a80fd 2817 sub read_myfile_munged {
2818 my $ALL = shift;
5f05dabc 2819 my $handle = new IO::File;
c07a80fd 2820 open($handle, "myfile") or die "myfile: $!";
2821 $first = <$handle>
2822 or return (); # Automatically closed here.
2823 mung $first or die "mung failed"; # Or here.
2824 return $first, <$handle> if $ALL; # Or here.
2825 $first; # Or here.
2826 }
2827
b687b08b 2828See L</seek> for some details about mixing reading and writing.
a0d0e21e
LW
2829
2830=item opendir DIRHANDLE,EXPR
2831
19799a22
GS
2832Opens a directory named EXPR for processing by C<readdir>, C<telldir>,
2833C<seekdir>, C<rewinddir>, and C<closedir>. Returns true if successful.
a0d0e21e
LW
2834DIRHANDLEs have their own namespace separate from FILEHANDLEs.
2835
2836=item ord EXPR
2837
54310121 2838=item ord
bbce6d69 2839
a0ed51b3 2840Returns the numeric (ASCII or Unicode) value of the first character of EXPR. If
7660c0ab 2841EXPR is omitted, uses C<$_>. For the reverse, see L</chr>.
2b5ab1e7 2842See L<utf8> for more about Unicode.
a0d0e21e 2843
77ca0c92
LW
2844=item our EXPR
2845
2846An C<our> declares the listed variables to be valid globals within
2847the enclosing block, file, or C<eval>. That is, it has the same
2848scoping rules as a "my" declaration, but does not create a local
2849variable. If more than one value is listed, the list must be placed
2850in parentheses. The C<our> declaration has no semantic effect unless
2851"use strict vars" is in effect, in which case it lets you use the
2852declared global variable without qualifying it with a package name.
2853(But only within the lexical scope of the C<our> declaration. In this
2854it differs from "use vars", which is package scoped.)
2855
f472eb5c
GS
2856An C<our> declaration declares a global variable that will be visible
2857across its entire lexical scope, even across package boundaries. The
2858package in which the variable is entered is determined at the point
2859of the declaration, not at the point of use. This means the following
2860behavior holds:
2861
2862 package Foo;
2863 our $bar; # declares $Foo::bar for rest of lexical scope
2864 $bar = 20;
2865
2866 package Bar;
2867 print $bar; # prints 20
2868
2869Multiple C<our> declarations in the same lexical scope are allowed
2870if they are in different packages. If they happened to be in the same
2871package, Perl will emit warnings if you have asked for them.
2872
2873 use warnings;
2874 package Foo;
2875 our $bar; # declares $Foo::bar for rest of lexical scope
2876 $bar = 20;
2877
2878 package Bar;
2879 our $bar = 30; # declares $Bar::bar for rest of lexical scope
2880 print $bar; # prints 30
2881
2882 our $bar; # emits warning
2883
a0d0e21e
LW
2884=item pack TEMPLATE,LIST
2885
2b6c5635
GS
2886Takes a LIST of values and converts it into a string using the rules
2887given by the TEMPLATE. The resulting string is the concatenation of
2888the converted values. Typically, each converted value looks
2889like its machine-level representation. For example, on 32-bit machines
2890a converted integer may be represented by a sequence of 4 bytes.
2891
2892The TEMPLATE is a
a0d0e21e
LW
2893sequence of characters that give the order and type of values, as
2894follows:
2895
5a929a98 2896 a A string with arbitrary binary data, will be null padded.
a0d0e21e 2897 A An ascii string, will be space padded.
5a929a98
VU
2898 Z A null terminated (asciz) string, will be null padded.
2899
2b6c5635
GS
2900 b A bit string (ascending bit order inside each byte, like vec()).
2901 B A bit string (descending bit order inside each byte).
a0d0e21e
LW
2902 h A hex string (low nybble first).
2903 H A hex string (high nybble first).
2904
2905 c A signed char value.
a0ed51b3 2906 C An unsigned char value. Only does bytes. See U for Unicode.
96e4d5b1 2907
a0d0e21e
LW
2908 s A signed short value.
2909 S An unsigned short value.
96e4d5b1 2910 (This 'short' is _exactly_ 16 bits, which may differ from
851646ae
JH
2911 what a local C compiler calls 'short'. If you want
2912 native-length shorts, use the '!' suffix.)
96e4d5b1 2913
a0d0e21e
LW
2914 i A signed integer value.
2915 I An unsigned integer value.
19799a22 2916 (This 'integer' is _at_least_ 32 bits wide. Its exact
f86cebdf
GS
2917 size depends on what a local C compiler calls 'int',
2918 and may even be larger than the 'long' described in
2919 the next item.)
96e4d5b1 2920
a0d0e21e
LW
2921 l A signed long value.
2922 L An unsigned long value.
96e4d5b1 2923 (This 'long' is _exactly_ 32 bits, which may differ from
851646ae
JH
2924 what a local C compiler calls 'long'. If you want
2925 native-length longs, use the '!' suffix.)
a0d0e21e 2926
5d11dd56
MG
2927 n An unsigned short in "network" (big-endian) order.
2928 N An unsigned long in "network" (big-endian) order.
2929 v An unsigned short in "VAX" (little-endian) order.
2930 V An unsigned long in "VAX" (little-endian) order.
96e4d5b1 2931 (These 'shorts' and 'longs' are _exactly_ 16 bits and
2932 _exactly_ 32 bits, respectively.)
a0d0e21e 2933
dae0da7a
JH
2934 q A signed quad (64-bit) value.
2935 Q An unsigned quad value.
851646ae
JH
2936 (Quads are available only if your system supports 64-bit
2937 integer values _and_ if Perl has been compiled to support those.
dae0da7a
JH
2938 Causes a fatal error otherwise.)
2939
a0d0e21e
LW
2940 f A single-precision float in the native format.
2941 d A double-precision float in the native format.
2942
2943 p A pointer to a null-terminated string.
2944 P A pointer to a structure (fixed-length string).
2945
2946 u A uuencoded string.
a0ed51b3
LW
2947 U A Unicode character number. Encodes to UTF-8 internally.
2948 Works even if C<use utf8> is not in effect.
a0d0e21e 2949
96e4d5b1 2950 w A BER compressed integer. Its bytes represent an unsigned
f86cebdf
GS
2951 integer in base 128, most significant digit first, with as
2952 few digits as possible. Bit eight (the high bit) is set
2953 on each byte except the last.
def98dd4 2954
a0d0e21e
LW
2955 x A null byte.
2956 X Back up a byte.
2957 @ Null fill to absolute position.
2958
5a929a98
VU
2959The following rules apply:
2960
2961=over 8
2962
2963=item *
2964
5a964f20 2965Each letter may optionally be followed by a number giving a repeat
951ba7fe
GS
2966count. With all types except C<a>, C<A>, C<Z>, C<b>, C<B>, C<h>,
2967C<H>, and C<P> the pack function will gobble up that many values from
5a929a98 2968the LIST. A C<*> for the repeat count means to use however many items are
951ba7fe
GS
2969left, except for C<@>, C<x>, C<X>, where it is equivalent
2970to C<0>, and C<u>, where it is equivalent to 1 (or 45, what is the
2b6c5635
GS
2971same).
2972
951ba7fe 2973When used with C<Z>, C<*> results in the addition of a trailing null
2b6c5635
GS
2974byte (so the packed result will be one longer than the byte C<length>
2975of the item).
2976
951ba7fe 2977The repeat count for C<u> is interpreted as the maximal number of bytes
2b6c5635 2978to encode per line of output, with 0 and 1 replaced by 45.
5a929a98
VU
2979
2980=item *
2981
951ba7fe 2982The C<a>, C<A>, and C<Z> types gobble just one value, but pack it as a
5a929a98 2983string of length count, padding with nulls or spaces as necessary. When
951ba7fe
GS
2984unpacking, C<A> strips trailing spaces and nulls, C<Z> strips everything
2985after the first null, and C<a> returns data verbatim. When packing,
2986C<a>, and C<Z> are equivalent.
2b6c5635
GS
2987
2988If the value-to-pack is too long, it is truncated. If too long and an
951ba7fe
GS
2989explicit count is provided, C<Z> packs only C<$count-1> bytes, followed
2990by a null byte. Thus C<Z> always packs a trailing null byte under
2b6c5635 2991all circumstances.
5a929a98
VU
2992
2993=item *
2994
951ba7fe 2995Likewise, the C<b> and C<B> fields pack a string that many bits long.
c73032f5
IZ
2996Each byte of the input field of pack() generates 1 bit of the result.
2997Each result bit is based on the least-significant bit of the corresponding
2998input byte, i.e., on C<ord($byte)%2>. In particular, bytes C<"0"> and
2999C<"1"> generate bits 0 and 1, as do bytes C<"\0"> and C<"\1">.
3000
3001Starting from the beginning of the input string of pack(), each 8-tuple
951ba7fe 3002of bytes is converted to 1 byte of output. With format C<b>
c73032f5 3003the first byte of the 8-tuple determines the least-significant bit of a
951ba7fe 3004byte, and with format C<B> it determines the most-significant bit of
c73032f5
IZ
3005a byte.
3006
3007If the length of the input string is not exactly divisible by 8, the
3008remainder is packed as if the input string were padded by null bytes
3009at the end. Similarly, during unpack()ing the "extra" bits are ignored.
3010
3011If the input string of pack() is longer than needed, extra bytes are ignored.
2b6c5635
GS
3012A C<*> for the repeat count of pack() means to use all the bytes of
3013the input field. On unpack()ing the bits are converted to a string
3014of C<"0">s and C<"1">s.
5a929a98
VU
3015
3016=item *
3017
951ba7fe 3018The C<h> and C<H> fields pack a string that many nybbles (4-bit groups,
851646ae 3019representable as hexadecimal digits, 0-9a-f) long.
5a929a98 3020
c73032f5
IZ
3021Each byte of the input field of pack() generates 4 bits of the result.
3022For non-alphabetical bytes the result is based on the 4 least-significant
3023bits of the input byte, i.e., on C<ord($byte)%16>. In particular,
3024bytes C<"0"> and C<"1"> generate nybbles 0 and 1, as do bytes
3025C<"\0"> and C<"\1">. For bytes C<"a".."f"> and C<"A".."F"> the result
3026is compatible with the usual hexadecimal digits, so that C<"a"> and
3027C<"A"> both generate the nybble C<0xa==10>. The result for bytes
3028C<"g".."z"> and C<"G".."Z"> is not well-defined.
3029
3030Starting from the beginning of the input string of pack(), each pair
951ba7fe 3031of bytes is converted to 1 byte of output. With format C<h> the
c73032f5 3032first byte of the pair determines the least-significant nybble of the
951ba7fe 3033output byte, and with format C<H> it determines the most-significant
c73032f5
IZ
3034nybble.
3035
3036If the length of the input string is not even, it behaves as if padded
3037by a null byte at the end. Similarly, during unpack()ing the "extra"
3038nybbles are ignored.
3039
3040If the input string of pack() is longer than needed, extra bytes are ignored.
3041A C<*> for the repeat count of pack() means to use all the bytes of
3042the input field. On unpack()ing the bits are converted to a string
3043of hexadecimal digits.
3044
5a929a98
VU
3045=item *
3046
951ba7fe 3047The C<p> type packs a pointer to a null-terminated string. You are
5a929a98
VU
3048responsible for ensuring the string is not a temporary value (which can
3049potentially get deallocated before you get around to using the packed result).
951ba7fe
GS
3050The C<P> type packs a pointer to a structure of the size indicated by the
3051length. A NULL pointer is created if the corresponding value for C<p> or
3052C<P> is C<undef>, similarly for unpack().
5a929a98
VU
3053
3054=item *
3055
951ba7fe
GS
3056The C</> template character allows packing and unpacking of strings where
3057the packed structure contains a byte count followed by the string itself.
17f4a12d 3058You write I<length-item>C</>I<string-item>.
43192e07
IP
3059
3060The I<length-item> can be any C<pack> template letter,
3061and describes how the length value is packed.
3062The ones likely to be of most use are integer-packing ones like
951ba7fe
GS
3063C<n> (for Java strings), C<w> (for ASN.1 or SNMP)
3064and C<N> (for Sun XDR).
43192e07
IP
3065
3066The I<string-item> must, at present, be C<"A*">, C<"a*"> or C<"Z*">.
3067For C<unpack> the length of the string is obtained from the I<length-item>,
3068but if you put in the '*' it will be ignored.
3069
17f4a12d
IZ
3070 unpack 'C/a', "\04Gurusamy"; gives 'Guru'
3071 unpack 'a3/A* A*', '007 Bond J '; gives (' Bond','J')
3072 pack 'n/a* w/a*','hello,','world'; gives "\000\006hello,\005world"
43192e07
IP
3073
3074The I<length-item> is not returned explicitly from C<unpack>.
3075
951ba7fe
GS
3076Adding a count to the I<length-item> letter is unlikely to do anything
3077useful, unless that letter is C<A>, C<a> or C<Z>. Packing with a
3078I<length-item> of C<a> or C<Z> may introduce C<"\000"> characters,
43192e07
IP
3079which Perl does not regard as legal in numeric strings.
3080
3081=item *
3082
951ba7fe
GS
3083The integer types C<s>, C<S>, C<l>, and C<L> may be
3084immediately followed by a C<!> suffix to signify native shorts or
3085longs--as you can see from above for example a bare C<l> does mean
851646ae
JH
3086exactly 32 bits, the native C<long> (as seen by the local C compiler)
3087may be larger. This is an issue mainly in 64-bit platforms. You can
951ba7fe 3088see whether using C<!> makes any difference by
726ea183 3089
4d0c1c44
GS
3090 print length(pack("s")), " ", length(pack("s!")), "\n";
3091 print length(pack("l")), " ", length(pack("l!")), "\n";
ef54e1a4 3092
951ba7fe
GS
3093C<i!> and C<I!> also work but only because of completeness;
3094they are identical to C<i> and C<I>.
ef54e1a4 3095
19799a22
GS
3096The actual sizes (in bytes) of native shorts, ints, longs, and long
3097longs on the platform where Perl was built are also available via
3098L<Config>:
3099
3100 use Config;
3101 print $Config{shortsize}, "\n";
3102 print $Config{intsize}, "\n";
3103 print $Config{longsize}, "\n";
3104 print $Config{longlongsize}, "\n";
ef54e1a4 3105
5074e145 3106(The C<$Config{longlongsize}> will be undefine if your system does
851646ae
JH
3107not support long longs.)
3108
ef54e1a4
JH
3109=item *
3110
951ba7fe 3111The integer formats C<s>, C<S>, C<i>, C<I>, C<l>, and C<L>
ef54e1a4
JH
3112are inherently non-portable between processors and operating systems
3113because they obey the native byteorder and endianness. For example a
140cb37e 31144-byte integer 0x12345678 (305419896 decimal) be ordered natively
ef54e1a4 3115(arranged in and handled by the CPU registers) into bytes as
61eff3bc 3116
719a3cf5
JH
3117 0x12 0x34 0x56 0x78 # little-endian
3118 0x78 0x56 0x34 0x12 # big-endian
61eff3bc 3119
5d11dd56 3120Basically, the Intel, Alpha, and VAX CPUs are little-endian, while
719a3cf5
JH
3121everybody else, for example Motorola m68k/88k, PPC, Sparc, HP PA,
3122Power, and Cray are big-endian. MIPS can be either: Digital used it
19799a22 3123in little-endian mode; SGI uses it in big-endian mode.
719a3cf5 3124
19799a22 3125The names `big-endian' and `little-endian' are comic references to
ef54e1a4
JH
3126the classic "Gulliver's Travels" (via the paper "On Holy Wars and a
3127Plea for Peace" by Danny Cohen, USC/ISI IEN 137, April 1, 1980) and
19799a22 3128the egg-eating habits of the Lilliputians.
61eff3bc 3129
140cb37e 3130Some systems may have even weirder byte orders such as
61eff3bc 3131
ef54e1a4
JH
3132 0x56 0x78 0x12 0x34
3133 0x34 0x12 0x78 0x56
61eff3bc 3134
ef54e1a4
JH
3135You can see your system's preference with
3136
3137 print join(" ", map { sprintf "%#02x", $_ }
3138 unpack("C*",pack("L",0x12345678))), "\n";
3139
d99ad34e 3140The byteorder on the platform where Perl was built is also available
726ea183 3141via L<Config>:
ef54e1a4
JH
3142
3143 use Config;
3144 print $Config{byteorder}, "\n";
3145
d99ad34e
JH
3146Byteorders C<'1234'> and C<'12345678'> are little-endian, C<'4321'>
3147and C<'87654321'> are big-endian.
719a3cf5 3148
951ba7fe
GS
3149If you want portable packed integers use the formats C<n>, C<N>,
3150C<v>, and C<V>, their byte endianness and size is known.
851646ae 3151See also L<perlport>.
ef54e1a4
JH
3152
3153=item *
3154
5a929a98
VU
3155Real numbers (floats and doubles) are in the native machine format only;
3156due to the multiplicity of floating formats around, and the lack of a
3157standard "network" representation, no facility for interchange has been
3158made. This means that packed floating point data written on one machine
3159may not be readable on another - even if both use IEEE floating point
3160arithmetic (as the endian-ness of the memory representation is not part
851646ae 3161of the IEEE spec). See also L<perlport>.
5a929a98
VU
3162
3163Note that Perl uses doubles internally for all numeric calculation, and
3164converting from double into float and thence back to double again will
3165lose precision (i.e., C<unpack("f", pack("f", $foo)>) will not in general
19799a22 3166equal $foo).
5a929a98 3167
851646ae
JH
3168=item *
3169
3170You must yourself do any alignment or padding by inserting for example
9ccd05c0
JH
3171enough C<'x'>es while packing. There is no way to pack() and unpack()
3172could know where the bytes are going to or coming from. Therefore
3173C<pack> (and C<unpack>) handle their output and input as flat
3174sequences of bytes.
851646ae 3175
17f4a12d
IZ
3176=item *
3177
3178A comment in a TEMPLATE starts with C<#> and goes to the end of line.
3179
2b6c5635
GS
3180=item *
3181
3182If TEMPLATE requires more arguments to pack() than actually given, pack()
3183assumes additional C<""> arguments. If TEMPLATE requires less arguments
3184to pack() than actually given, extra arguments are ignored.
3185
5a929a98 3186=back
a0d0e21e
LW
3187
3188Examples:
3189
a0ed51b3 3190 $foo = pack("CCCC",65,66,67,68);
a0d0e21e 3191 # foo eq "ABCD"
a0ed51b3 3192 $foo = pack("C4",65,66,67,68);
a0d0e21e 3193 # same thing
a0ed51b3
LW
3194 $foo = pack("U4",0x24b6,0x24b7,0x24b8,0x24b9);
3195 # same thing with Unicode circled letters
a0d0e21e
LW
3196
3197 $foo = pack("ccxxcc",65,66,67,68);
3198 # foo eq "AB\0\0CD"
3199
9ccd05c0
JH
3200 # note: the above examples featuring "C" and "c" are true
3201 # only on ASCII and ASCII-derived systems such as ISO Latin 1
3202 # and UTF-8. In EBCDIC the first example would be
3203 # $foo = pack("CCCC",193,194,195,196);
3204
a0d0e21e
LW
3205 $foo = pack("s2",1,2);
3206 # "\1\0\2\0" on little-endian
3207 # "\0\1\0\2" on big-endian
3208
3209 $foo = pack("a4","abcd","x","y","z");
3210 # "abcd"
3211
3212 $foo = pack("aaaa","abcd","x","y","z");
3213 # "axyz"
3214
3215 $foo = pack("a14","abcdefg");
3216 # "abcdefg\0\0\0\0\0\0\0"
3217
3218 $foo = pack("i9pl", gmtime);
3219 # a real struct tm (on my system anyway)
3220
5a929a98
VU
3221 $utmp_template = "Z8 Z8 Z16 L";
3222 $utmp = pack($utmp_template, @utmp1);
3223 # a struct utmp (BSDish)
3224
3225 @utmp2 = unpack($utmp_template, $utmp);
3226 # "@utmp1" eq "@utmp2"
3227
a0d0e21e
LW
3228 sub bintodec {
3229 unpack("N", pack("B32", substr("0" x 32 . shift, -32)));
3230 }
3231
851646ae
JH
3232 $foo = pack('sx2l', 12, 34);
3233 # short 12, two zero bytes padding, long 34
3234 $bar = pack('s@4l', 12, 34);
3235 # short 12, zero fill to position 4, long 34
3236 # $foo eq $bar
3237
5a929a98 3238The same template may generally also be used in unpack().
a0d0e21e 3239
5a964f20
TC
3240=item package
3241
cb1a09d0
AD
3242=item package NAMESPACE
3243
3244Declares the compilation unit as being in the given namespace. The scope
2b5ab1e7 3245of the package declaration is from the declaration itself through the end
19799a22 3246of the enclosing block, file, or eval (the same as the C<my> operator).
2b5ab1e7
TC
3247All further unqualified dynamic identifiers will be in this namespace.
3248A package statement affects only dynamic variables--including those
19799a22
GS
3249you've used C<local> on--but I<not> lexical variables, which are created
3250with C<my>. Typically it would be the first declaration in a file to
2b5ab1e7
TC
3251be included by the C<require> or C<use> operator. You can switch into a
3252package in more than one place; it merely influences which symbol table
3253is used by the compiler for the rest of that block. You can refer to
3254variables and filehandles in other packages by prefixing the identifier
3255with the package name and a double colon: C<$Package::Variable>.
3256If the package name is null, the C<main> package as assumed. That is,
3257C<$::sail> is equivalent to C<$main::sail> (as well as to C<$main'sail>,
3258still seen in older code).
cb1a09d0 3259
5a964f20
TC
3260If NAMESPACE is omitted, then there is no current package, and all
3261identifiers must be fully qualified or lexicals. This is stricter
3262than C<use strict>, since it also extends to function names.
3263
cb1a09d0
AD
3264See L<perlmod/"Packages"> for more information about packages, modules,
3265and classes. See L<perlsub> for other scoping issues.
3266
a0d0e21e
LW
3267=item pipe READHANDLE,WRITEHANDLE
3268
3269Opens a pair of connected pipes like the corresponding system call.
3270Note that if you set up a loop of piped processes, deadlock can occur
3271unless you are very careful. In addition, note that Perl's pipes use
184e9718 3272stdio buffering, so you may need to set C<$|> to flush your WRITEHANDLE
a0d0e21e
LW
3273after each command, depending on the application.
3274
7e1af8bc 3275See L<IPC::Open2>, L<IPC::Open3>, and L<perlipc/"Bidirectional Communication">
4633a7c4
LW
3276for examples of such things.
3277
4771b018
GS
3278On systems that support a close-on-exec flag on files, the flag will be set
3279for the newly opened file descriptors as determined by the value of $^F.
3280See L<perlvar/$^F>.
3281
a0d0e21e
LW
3282=item pop ARRAY
3283
54310121 3284=item pop
28757baa 3285
a0d0e21e 3286Pops and returns the last value of the array, shortening the array by
19799a22 3287one element. Has an effect similar to
a0d0e21e 3288
19799a22 3289 $ARRAY[$#ARRAY--]
a0d0e21e 3290
19799a22
GS
3291If there are no elements in the array, returns the undefined value
3292(although this may happen at other times as well). If ARRAY is
3293omitted, pops the C<@ARGV> array in the main program, and the C<@_>
3294array in subroutines, just like C<shift>.
a0d0e21e
LW
3295
3296=item pos SCALAR
3297
54310121 3298=item pos
bbce6d69 3299
4633a7c4 3300Returns the offset of where the last C<m//g> search left off for the variable
7660c0ab 3301is in question (C<$_> is used when the variable is not specified). May be
44a8e56a 3302modified to change that offset. Such modification will also influence
3303the C<\G> zero-width assertion in regular expressions. See L<perlre> and
3304L<perlop>.
a0d0e21e
LW
3305
3306=item print FILEHANDLE LIST
3307
3308=item print LIST
3309
3310=item print
3311
19799a22
GS
3312Prints a string or a list of strings. Returns true if successful.
3313FILEHANDLE may be a scalar variable name, in which case the variable
3314contains the name of or a reference to the filehandle, thus introducing
3315one level of indirection. (NOTE: If FILEHANDLE is a variable and
3316the next token is a term, it may be misinterpreted as an operator
2b5ab1e7 3317unless you interpose a C<+> or put parentheses around the arguments.)
19799a22
GS
3318If FILEHANDLE is omitted, prints by default to standard output (or
3319to the last selected output channel--see L</select>). If LIST is
3320also omitted, prints C<$_> to the currently selected output channel.
3321To set the default output channel to something other than STDOUT
3322use the select operation. The current value of C<$,> (if any) is
3323printed between each LIST item. The current value of C<$\> (if
3324any) is printed after the entire LIST has been printed. Because
3325print takes a LIST, anything in the LIST is evaluated in list
3326context, and any subroutine that you call will have one or more of
3327its expressions evaluated in list context. Also be careful not to
3328follow the print keyword with a left parenthesis unless you want
3329the corresponding right parenthesis to terminate the arguments to
3330the print--interpose a C<+> or put parentheses around all the
3331arguments.
a0d0e21e 3332
4633a7c4 3333Note that if you're storing FILEHANDLES in an array or other expression,
da0045b7 3334you will have to use a block returning its value instead:
4633a7c4
LW
3335
3336 print { $files[$i] } "stuff\n";
3337 print { $OK ? STDOUT : STDERR } "stuff\n";
3338
5f05dabc 3339=item printf FILEHANDLE FORMAT, LIST
a0d0e21e 3340
5f05dabc 3341=item printf FORMAT, LIST
a0d0e21e 3342
7660c0ab 3343Equivalent to C<print FILEHANDLE sprintf(FORMAT, LIST)>, except that C<$\>
a3cb178b 3344(the output record separator) is not appended. The first argument
19799a22 3345of the list will be interpreted as the C<printf> format. If C<use locale> is
a034a98d
DD
3346in effect, the character used for the decimal point in formatted real numbers
3347is affected by the LC_NUMERIC locale. See L<perllocale>.
a0d0e21e 3348
19799a22
GS
3349Don't fall into the trap of using a C<printf> when a simple
3350C<print> would do. The C<print> is more efficient and less
28757baa 3351error prone.
3352
da0045b7 3353=item prototype FUNCTION
3354
3355Returns the prototype of a function as a string (or C<undef> if the
5f05dabc 3356function has no prototype). FUNCTION is a reference to, or the name of,
3357the function whose prototype you want to retrieve.
da0045b7 3358
2b5ab1e7
TC
3359If FUNCTION is a string starting with C<CORE::>, the rest is taken as a
3360name for Perl builtin. If the builtin is not I<overridable> (such as
ab4f32c2 3361C<qw//>) or its arguments cannot be expressed by a prototype (such as
19799a22 3362C<system>) returns C<undef> because the builtin does not really behave
2b5ab1e7
TC
3363like a Perl function. Otherwise, the string describing the equivalent
3364prototype is returned.
b6c543e3 3365
a0d0e21e
LW
3366=item push ARRAY,LIST
3367
3368Treats ARRAY as a stack, and pushes the values of LIST
3369onto the end of ARRAY. The length of ARRAY increases by the length of
3370LIST. Has the same effect as
3371
3372 for $value (LIST) {
3373 $ARRAY[++$#ARRAY] = $value;
3374 }
3375
3376but is more efficient. Returns the new number of elements in the array.
3377
3378=item q/STRING/
3379
3380=item qq/STRING/
3381
8782bef2
GB
3382=item qr/STRING/
3383
a0d0e21e
LW
3384=item qx/STRING/
3385
3386=item qw/STRING/
3387
4b6a7270 3388Generalized quotes. See L<perlop/"Regexp Quote-Like Operators">.
a0d0e21e
LW
3389
3390=item quotemeta EXPR
3391
54310121 3392=item quotemeta
bbce6d69 3393
68dc0745 3394Returns the value of EXPR with all non-alphanumeric
a034a98d
DD
3395characters backslashed. (That is, all characters not matching
3396C</[A-Za-z_0-9]/> will be preceded by a backslash in the
3397returned string, regardless of any locale settings.)
3398This is the internal function implementing
7660c0ab 3399the C<\Q> escape in double-quoted strings.
a0d0e21e 3400
7660c0ab 3401If EXPR is omitted, uses C<$_>.
bbce6d69 3402
a0d0e21e
LW
3403=item rand EXPR
3404
3405=item rand
3406
7660c0ab 3407Returns a random fractional number greater than or equal to C<0> and less
3e3baf6d 3408than the value of EXPR. (EXPR should be positive.) If EXPR is
19799a22
GS
3409omitted, the value C<1> is used. Automatically calls C<srand> unless
3410C<srand> has already been called. See also C<srand>.
a0d0e21e 3411
2f9daede 3412(Note: If your rand function consistently returns numbers that are too
a0d0e21e 3413large or too small, then your version of Perl was probably compiled
2f9daede 3414with the wrong number of RANDBITS.)
a0d0e21e
LW
3415
3416=item read FILEHANDLE,SCALAR,LENGTH,OFFSET
3417
3418=item read FILEHANDLE,SCALAR,LENGTH
3419
3420Attempts to read LENGTH bytes of data into variable SCALAR from the
3b02c43c
GS
3421specified FILEHANDLE. Returns the number of bytes actually read,
3422C<0> at end of file, or undef if there was an error. SCALAR will be grown
3423or shrunk to the length actually read. An OFFSET may be specified to
3424place the read data at some other place than the beginning of the
f86cebdf 3425string. This call is actually implemented in terms of stdio's fread(3)
19799a22 3426call. To get a true read(2) system call, see C<sysread>.
a0d0e21e
LW
3427
3428=item readdir DIRHANDLE
3429
19799a22 3430Returns the next directory entry for a directory opened by C<opendir>.
5a964f20 3431If used in list context, returns all the rest of the entries in the
a0d0e21e 3432directory. If there are no more entries, returns an undefined value in
5a964f20 3433scalar context or a null list in list context.
a0d0e21e 3434
19799a22 3435If you're planning to filetest the return values out of a C<readdir>, you'd
5f05dabc 3436better prepend the directory in question. Otherwise, because we didn't
19799a22 3437C<chdir> there, it would have been testing the wrong file.
cb1a09d0
AD
3438
3439 opendir(DIR, $some_dir) || die "can't opendir $some_dir: $!";
3440 @dots = grep { /^\./ && -f "$some_dir/$_" } readdir(DIR);
3441 closedir DIR;
3442
84902520
TB
3443=item readline EXPR
3444
fbad3eb5
GS
3445Reads from the filehandle whose typeglob is contained in EXPR. In scalar
3446context, each call reads and returns the next line, until end-of-file is
3447reached, whereupon the subsequent call returns undef. In list context,
3448reads until end-of-file is reached and returns a list of lines. Note that
3449the notion of "line" used here is however you may have defined it
3450with C<$/> or C<$INPUT_RECORD_SEPARATOR>). See L<perlvar/"$/">.
3451
2b5ab1e7 3452When C<$/> is set to C<undef>, when readline() is in scalar
449bc448
GS
3453context (i.e. file slurp mode), and when an empty file is read, it
3454returns C<''> the first time, followed by C<undef> subsequently.
fbad3eb5 3455
61eff3bc
JH
3456This is the internal function implementing the C<< <EXPR> >>
3457operator, but you can use it directly. The C<< <EXPR> >>
84902520
TB
3458operator is discussed in more detail in L<perlop/"I/O Operators">.
3459
5a964f20
TC
3460 $line = <STDIN>;
3461 $line = readline(*STDIN); # same thing
3462
a0d0e21e
LW
3463=item readlink EXPR
3464
54310121 3465=item readlink
bbce6d69 3466
a0d0e21e
LW
3467Returns the value of a symbolic link, if symbolic links are
3468implemented. If not, gives a fatal error. If there is some system
184e9718 3469error, returns the undefined value and sets C<$!> (errno). If EXPR is
7660c0ab 3470omitted, uses C<$_>.
a0d0e21e 3471
84902520
TB
3472=item readpipe EXPR
3473
5a964f20 3474EXPR is executed as a system command.
84902520
TB
3475The collected standard output of the command is returned.
3476In scalar context, it comes back as a single (potentially
3477multi-line) string. In list context, returns a list of lines
7660c0ab 3478(however you've defined lines with C<$/> or C<$INPUT_RECORD_SEPARATOR>).
84902520
TB
3479This is the internal function implementing the C<qx/EXPR/>
3480operator, but you can use it directly. The C<qx/EXPR/>
3481operator is discussed in more detail in L<perlop/"I/O Operators">.
3482
399388f4 3483=item recv SOCKET,SCALAR,LENGTH,FLAGS
a0d0e21e
LW
3484
3485Receives a message on a socket. Attempts to receive LENGTH bytes of
478234b4
GS
3486data into variable SCALAR from the specified SOCKET filehandle. SCALAR
3487will be grown or shrunk to the length actually read. Takes the same
3488flags as the system call of the same name. Returns the address of the
3489sender if SOCKET's protocol supports this; returns an empty string
3490otherwise. If there's an error, returns the undefined value. This call
3491is actually implemented in terms of recvfrom(2) system call. See
3492L<perlipc/"UDP: Message Passing"> for examples.
a0d0e21e
LW
3493
3494=item redo LABEL
3495
3496=item redo
3497
3498The C<redo> command restarts the loop block without evaluating the
98293880 3499conditional again. The C<continue> block, if any, is not executed. If
a0d0e21e
LW
3500the LABEL is omitted, the command refers to the innermost enclosing
3501loop. This command is normally used by programs that want to lie to
3502themselves about what was just input:
3503
3504 # a simpleminded Pascal comment stripper
3505 # (warning: assumes no { or } in strings)
4633a7c4 3506 LINE: while (<STDIN>) {
a0d0e21e
LW
3507 while (s|({.*}.*){.*}|$1 |) {}
3508 s|{.*}| |;
3509 if (s|{.*| |) {
3510 $front = $_;
3511 while (<STDIN>) {
3512 if (/}/) { # end of comment?
5a964f20 3513 s|^|$front\{|;
4633a7c4 3514 redo LINE;
a0d0e21e
LW
3515 }
3516 }
3517 }
3518 print;
3519 }
3520
4968c1e4 3521C<redo> cannot be used to retry a block which returns a value such as
2b5ab1e7
TC
3522C<eval {}>, C<sub {}> or C<do {}>, and should not be used to exit
3523a grep() or map() operation.
4968c1e4 3524
6c1372ed
GS
3525Note that a block by itself is semantically identical to a loop
3526that executes once. Thus C<redo> inside such a block will effectively
3527turn it into a looping construct.
3528
98293880 3529See also L</continue> for an illustration of how C<last>, C<next>, and
1d2dff63
GS
3530C<redo> work.
3531
a0d0e21e
LW
3532=item ref EXPR
3533
54310121 3534=item ref
bbce6d69 3535
19799a22 3536Returns a true value if EXPR is a reference, false otherwise. If EXPR
7660c0ab 3537is not specified, C<$_> will be used. The value returned depends on the
bbce6d69 3538type of thing the reference is a reference to.
a0d0e21e
LW
3539Builtin types include:
3540
a0d0e21e
LW
3541 SCALAR
3542 ARRAY
3543 HASH
3544 CODE
19799a22 3545 REF
a0d0e21e 3546 GLOB
19799a22 3547 LVALUE
a0d0e21e 3548
54310121 3549If the referenced object has been blessed into a package, then that package
19799a22 3550name is returned instead. You can think of C<ref> as a C<typeof> operator.
a0d0e21e
LW
3551
3552 if (ref($r) eq "HASH") {
aa689395 3553 print "r is a reference to a hash.\n";
54310121 3554 }
2b5ab1e7 3555 unless (ref($r)) {
a0d0e21e 3556 print "r is not a reference at all.\n";
54310121 3557 }
2b5ab1e7
TC
3558 if (UNIVERSAL::isa($r, "HASH")) { # for subclassing
3559 print "r is a reference to something that isa hash.\n";
3560 }
a0d0e21e
LW
3561
3562See also L<perlref>.
3563
3564=item rename OLDNAME,NEWNAME
3565
19799a22
GS
3566Changes the name of a file; an existing file NEWNAME will be
3567clobbered. Returns true for success, false otherwise.
3568
2b5ab1e7
TC
3569Behavior of this function varies wildly depending on your system
3570implementation. For example, it will usually not work across file system
3571boundaries, even though the system I<mv> command sometimes compensates
3572for this. Other restrictions include whether it works on directories,
3573open files, or pre-existing files. Check L<perlport> and either the
3574rename(2) manpage or equivalent system documentation for details.
a0d0e21e 3575
16070b82
GS
3576=item require VERSION
3577
a0d0e21e
LW
3578=item require EXPR
3579
3580=item require
3581
7660c0ab 3582Demands some semantics specified by EXPR, or by C<$_> if EXPR is not
44dcb63b
GS
3583supplied.
3584
dd629d5b 3585If a VERSION is specified as a literal of the form v5.6.1,
44dcb63b
GS
3586demands that the current version of Perl (C<$^V> or $PERL_VERSION) be
3587at least as recent as that version, at run time. (For compatibility
3588with older versions of Perl, a numeric argument will also be interpreted
3589as VERSION.) Compare with L</use>, which can do a similar check at
3590compile time.
3591
dd629d5b
GS
3592 require v5.6.1; # run time version check
3593 require 5.6.1; # ditto
3594 require 5.005_03; # float version allowed for compatibility
a0d0e21e
LW
3595
3596Otherwise, demands that a library file be included if it hasn't already
3597been included. The file is included via the do-FILE mechanism, which is
19799a22 3598essentially just a variety of C<eval>. Has semantics similar to the following
a0d0e21e
LW
3599subroutine:
3600
3601 sub require {
5a964f20 3602 my($filename) = @_;
a0d0e21e 3603 return 1 if $INC{$filename};
5a964f20 3604 my($realfilename,$result);
a0d0e21e
LW
3605 ITER: {
3606 foreach $prefix (@INC) {
3607 $realfilename = "$prefix/$filename";
3608 if (-f $realfilename) {
f784dfa3 3609 $INC{$filename} = $realfilename;
a0d0e21e
LW
3610 $result = do $realfilename;
3611 last ITER;
3612 }
3613 }
3614 die "Can't find $filename in \@INC";
3615 }
f784dfa3 3616 delete $INC{$filename} if $@ || !$result;
a0d0e21e
LW
3617 die $@ if $@;
3618 die "$filename did not return true value" unless $result;
5a964f20 3619 return $result;
a0d0e21e
LW
3620 }
3621
3622Note that the file will not be included twice under the same specified
19799a22 3623name. The file must return true as the last statement to indicate
a0d0e21e 3624successful execution of any initialization code, so it's customary to
19799a22
GS
3625end such a file with C<1;> unless you're sure it'll return true
3626otherwise. But it's better just to put the C<1;>, in case you add more
a0d0e21e
LW
3627statements.
3628
54310121 3629If EXPR is a bareword, the require assumes a "F<.pm>" extension and
da0045b7 3630replaces "F<::>" with "F</>" in the filename for you,
54310121 3631to make it easy to load standard modules. This form of loading of
a0d0e21e
LW
3632modules does not risk altering your namespace.
3633
ee580363
GS
3634In other words, if you try this:
3635
f86cebdf 3636 require Foo::Bar; # a splendid bareword
ee580363 3637
7660c0ab
A
3638The require function will actually look for the "F<Foo/Bar.pm>" file in the
3639directories specified in the C<@INC> array.
ee580363 3640
5a964f20 3641But if you try this:
ee580363
GS
3642
3643 $class = 'Foo::Bar';
f86cebdf 3644 require $class; # $class is not a bareword
5a964f20 3645 #or
f86cebdf 3646 require "Foo::Bar"; # not a bareword because of the ""
ee580363 3647
7660c0ab 3648The require function will look for the "F<Foo::Bar>" file in the @INC array and
19799a22 3649will complain about not finding "F<Foo::Bar>" there. In this case you can do:
ee580363
GS
3650
3651 eval "require $class";
3652
3653For a yet-more-powerful import facility, see L</use> and L<perlmod>.
a0d0e21e
LW
3654
3655=item reset EXPR
3656
3657=item reset
3658
3659Generally used in a C<continue> block at the end of a loop to clear
7660c0ab 3660variables and reset C<??> searches so that they work again. The
a0d0e21e
LW
3661expression is interpreted as a list of single characters (hyphens
3662allowed for ranges). All variables and arrays beginning with one of
3663those letters are reset to their pristine state. If the expression is
7660c0ab 3664omitted, one-match searches (C<?pattern?>) are reset to match again. Resets
5f05dabc 3665only variables or searches in the current package. Always returns
a0d0e21e
LW
36661. Examples:
3667
3668 reset 'X'; # reset all X variables
3669 reset 'a-z'; # reset lower case variables
2b5ab1e7 3670 reset; # just reset ?one-time? searches
a0d0e21e 3671
7660c0ab 3672Resetting C<"A-Z"> is not recommended because you'll wipe out your
2b5ab1e7
TC
3673C<@ARGV> and C<@INC> arrays and your C<%ENV> hash. Resets only package
3674variables--lexical variables are unaffected, but they clean themselves
3675up on scope exit anyway, so you'll probably want to use them instead.
3676See L</my>.
a0d0e21e 3677
54310121 3678=item return EXPR
3679
3680=item return
3681
19799a22 3682Returns from a subroutine, C<eval>, or C<do FILE> with the value
5a964f20 3683given in EXPR. Evaluation of EXPR may be in list, scalar, or void
54310121 3684context, depending on how the return value will be used, and the context
19799a22 3685may vary from one execution to the next (see C<wantarray>). If no EXPR
2b5ab1e7
TC
3686is given, returns an empty list in list context, the undefined value in
3687scalar context, and (of course) nothing at all in a void context.
a0d0e21e 3688
2b5ab1e7
TC
3689(Note that in the absence of a explicit C<return>, a subroutine, eval,
3690or do FILE will automatically return the value of the last expression
3691evaluated.)
a0d0e21e
LW
3692
3693=item reverse LIST
3694
5a964f20
TC
3695In list context, returns a list value consisting of the elements
3696of LIST in the opposite order. In scalar context, concatenates the
2b5ab1e7 3697elements of LIST and returns a string value with all characters
a0ed51b3 3698in the opposite order.
4633a7c4 3699
2f9daede 3700 print reverse <>; # line tac, last line first
4633a7c4 3701
2f9daede 3702 undef $/; # for efficiency of <>
a0ed51b3 3703 print scalar reverse <>; # character tac, last line tsrif
2f9daede
TP
3704
3705This operator is also handy for inverting a hash, although there are some
3706caveats. If a value is duplicated in the original hash, only one of those
3707can be represented as a key in the inverted hash. Also, this has to
3708unwind one hash and build a whole new one, which may take some time
2b5ab1e7 3709on a large hash, such as from a DBM file.
2f9daede
TP
3710
3711 %by_name = reverse %by_address; # Invert the hash
a0d0e21e
LW
3712
3713=item rewinddir DIRHANDLE
3714
3715Sets the current position to the beginning of the directory for the
19799a22 3716C<readdir> routine on DIRHANDLE.
a0d0e21e
LW
3717
3718=item rindex STR,SUBSTR,POSITION
3719
3720=item rindex STR,SUBSTR
3721
2b5ab1e7 3722Works just like index() except that it returns the position of the LAST
a0d0e21e
LW
3723occurrence of SUBSTR in STR. If POSITION is specified, returns the
3724last occurrence at or before that position.
3725
3726=item rmdir FILENAME
3727
54310121 3728=item rmdir
bbce6d69 3729
5a964f20 3730Deletes the directory specified by FILENAME if that directory is empty. If it
19799a22 3731succeeds it returns true, otherwise it returns false and sets C<$!> (errno). If
7660c0ab 3732FILENAME is omitted, uses C<$_>.
a0d0e21e
LW
3733
3734=item s///
3735
3736The substitution operator. See L<perlop>.
3737
3738=item scalar EXPR
3739
5a964f20 3740Forces EXPR to be interpreted in scalar context and returns the value
54310121 3741of EXPR.
cb1a09d0
AD
3742
3743 @counts = ( scalar @a, scalar @b, scalar @c );
3744
54310121 3745There is no equivalent operator to force an expression to
2b5ab1e7 3746be interpolated in list context because in practice, this is never
cb1a09d0
AD
3747needed. If you really wanted to do so, however, you could use
3748the construction C<@{[ (some expression) ]}>, but usually a simple
3749C<(some expression)> suffices.
a0d0e21e 3750
19799a22 3751Because C<scalar> is unary operator, if you accidentally use for EXPR a
2b5ab1e7
TC
3752parenthesized list, this behaves as a scalar comma expression, evaluating
3753all but the last element in void context and returning the final element
3754evaluated in scalar context. This is seldom what you want.
62c18ce2
GS
3755
3756The following single statement:
3757
3758 print uc(scalar(&foo,$bar)),$baz;
3759
3760is the moral equivalent of these two:
3761
3762 &foo;
3763 print(uc($bar),$baz);
3764
3765See L<perlop> for more details on unary operators and the comma operator.
3766
a0d0e21e
LW
3767=item seek FILEHANDLE,POSITION,WHENCE
3768
19799a22 3769Sets FILEHANDLE's position, just like the C<fseek> call of C<stdio>.
8903cb82 3770FILEHANDLE may be an expression whose value gives the name of the
7660c0ab 3771filehandle. The values for WHENCE are C<0> to set the new position to
ac88732c
JH
3772POSITION, C<1> to set it to the current position plus POSITION, and
3773C<2> to set it to EOF plus POSITION (typically negative). For WHENCE
3774you may use the constants C<SEEK_SET>, C<SEEK_CUR>, and C<SEEK_END>
ca6e1c26
JH
3775(start of the file, current position, end of the file) from the Fcntl
3776module. Returns C<1> upon success, C<0> otherwise.
8903cb82 3777
19799a22
GS
3778If you want to position file for C<sysread> or C<syswrite>, don't use
3779C<seek>--buffering makes its effect on the file's system position
3780unpredictable and non-portable. Use C<sysseek> instead.
a0d0e21e 3781
2b5ab1e7
TC
3782Due to the rules and rigors of ANSI C, on some systems you have to do a
3783seek whenever you switch between reading and writing. Amongst other
3784things, this may have the effect of calling stdio's clearerr(3).
3785A WHENCE of C<1> (C<SEEK_CUR>) is useful for not moving the file position:
cb1a09d0
AD
3786
3787 seek(TEST,0,1);
3788
3789This is also useful for applications emulating C<tail -f>. Once you hit
3790EOF on your read, and then sleep for a while, you might have to stick in a
19799a22 3791seek() to reset things. The C<seek> doesn't change the current position,
8903cb82 3792but it I<does> clear the end-of-file condition on the handle, so that the
61eff3bc 3793next C<< <FILE> >> makes Perl try again to read something. We hope.
cb1a09d0
AD
3794
3795If that doesn't work (some stdios are particularly cantankerous), then
3796you may need something more like this:
3797
3798 for (;;) {
f86cebdf
GS
3799 for ($curpos = tell(FILE); $_ = <FILE>;
3800 $curpos = tell(FILE)) {
cb1a09d0
AD
3801 # search for some stuff and put it into files
3802 }
3803 sleep($for_a_while);
3804 seek(FILE, $curpos, 0);
3805 }
3806
a0d0e21e
LW
3807=item seekdir DIRHANDLE,POS
3808
19799a22
GS
3809Sets the current position for the C<readdir> routine on DIRHANDLE. POS
3810must be a value returned by C<telldir>. Has the same caveats about
a0d0e21e
LW
3811possible directory compaction as the corresponding system library
3812routine.
3813
3814=item select FILEHANDLE
3815
3816=item select
3817
3818Returns the currently selected filehandle. Sets the current default
3819filehandle for output, if FILEHANDLE is supplied. This has two
19799a22 3820effects: first, a C<write> or a C<print> without a filehandle will
a0d0e21e
LW
3821default to this FILEHANDLE. Second, references to variables related to
3822output will refer to this output channel. For example, if you have to
3823set the top of form format for more than one output channel, you might
3824do the following:
3825
3826 select(REPORT1);
3827 $^ = 'report1_top';
3828 select(REPORT2);
3829 $^ = 'report2_top';
3830
3831FILEHANDLE may be an expression whose value gives the name of the
3832actual filehandle. Thus:
3833
3834 $oldfh = select(STDERR); $| = 1; select($oldfh);
3835
4633a7c4
LW
3836Some programmers may prefer to think of filehandles as objects with
3837methods, preferring to write the last example as:
a0d0e21e 3838
28757baa 3839 use IO::Handle;
a0d0e21e
LW
3840 STDERR->autoflush(1);
3841
3842=item select RBITS,WBITS,EBITS,TIMEOUT
3843
f86cebdf 3844This calls the select(2) system call with the bit masks specified, which
19799a22 3845can be constructed using C<fileno> and C<vec>, along these lines:
a0d0e21e
LW
3846
3847 $rin = $win = $ein = '';
3848 vec($rin,fileno(STDIN),1) = 1;
3849 vec($win,fileno(STDOUT),1) = 1;
3850 $ein = $rin | $win;
3851
3852If you want to select on many filehandles you might wish to write a
3853subroutine:
3854
3855 sub fhbits {
5a964f20
TC
3856 my(@fhlist) = split(' ',$_[0]);
3857 my($bits);
a0d0e21e
LW
3858 for (@fhlist) {
3859 vec($bits,fileno($_),1) = 1;
3860 }
3861 $bits;
3862 }
4633a7c4 3863 $rin = fhbits('STDIN TTY SOCK');
a0d0e21e
LW
3864
3865The usual idiom is:
3866
3867 ($nfound,$timeleft) =
3868 select($rout=$rin, $wout=$win, $eout=$ein, $timeout);
3869
54310121 3870or to block until something becomes ready just do this
a0d0e21e
LW
3871
3872 $nfound = select($rout=$rin, $wout=$win, $eout=$ein, undef);
3873
19799a22
GS
3874Most systems do not bother to return anything useful in $timeleft, so
3875calling select() in scalar context just returns $nfound.
c07a80fd 3876
5f05dabc 3877Any of the bit masks can also be undef. The timeout, if specified, is
a0d0e21e 3878in seconds, which may be fractional. Note: not all implementations are
19799a22
GS
3879capable of returning the$timeleft. If not, they always return
3880$timeleft equal to the supplied $timeout.
a0d0e21e 3881
ff68c719 3882You can effect a sleep of 250 milliseconds this way:
a0d0e21e
LW
3883
3884 select(undef, undef, undef, 0.25);
3885
19799a22 3886B<WARNING>: One should not attempt to mix buffered I/O (like C<read>
61eff3bc 3887or <FH>) with C<select>, except as permitted by POSIX, and even
19799a22 3888then only on POSIX systems. You have to use C<sysread> instead.
a0d0e21e
LW
3889
3890=item semctl ID,SEMNUM,CMD,ARG
3891
19799a22 3892Calls the System V IPC function C<semctl>. You'll probably have to say
0ade1984
JH
3893
3894 use IPC::SysV;
3895
3896first to get the correct constant definitions. If CMD is IPC_STAT or
3897GETALL, then ARG must be a variable which will hold the returned
e4038a1f
MS
3898semid_ds structure or semaphore value array. Returns like C<ioctl>:
3899the undefined value for error, "C<0 but true>" for zero, or the actual
3900return value otherwise. The ARG must consist of a vector of native
3901short integers, which may may be created with C<pack("s!",(0)x$nsem)>.
3902See also C<IPC::SysV> and C<IPC::Semaphore> documentation.
a0d0e21e
LW
3903
3904=item semget KEY,NSEMS,FLAGS
3905
3906Calls the System V IPC function semget. Returns the semaphore id, or
7660c0ab
A
3907the undefined value if there is an error. See also C<IPC::SysV> and
3908C<IPC::SysV::Semaphore> documentation.
a0d0e21e
LW
3909
3910=item semop KEY,OPSTRING
3911
3912Calls the System V IPC function semop to perform semaphore operations
3913such as signaling and waiting. OPSTRING must be a packed array of
3914semop structures. Each semop structure can be generated with
3915C<pack("sss", $semnum, $semop, $semflag)>. The number of semaphore
19799a22
GS
3916operations is implied by the length of OPSTRING. Returns true if
3917successful, or false if there is an error. As an example, the
3918following code waits on semaphore $semnum of semaphore id $semid:
a0d0e21e
LW
3919
3920 $semop = pack("sss", $semnum, -1, 0);
3921 die "Semaphore trouble: $!\n" unless semop($semid, $semop);
3922
7660c0ab
A
3923To signal the semaphore, replace C<-1> with C<1>. See also C<IPC::SysV>
3924and C<IPC::SysV::Semaphore> documentation.
a0d0e21e
LW
3925
3926=item send SOCKET,MSG,FLAGS,TO
3927
3928=item send SOCKET,MSG,FLAGS
3929
3930Sends a message on a socket. Takes the same flags as the system call
3931of the same name. On unconnected sockets you must specify a
19799a22 3932destination to send TO, in which case it does a C C<sendto>. Returns
a0d0e21e 3933the number of characters sent, or the undefined value if there is an
2b5ab1e7 3934error. The C system call sendmsg(2) is currently unimplemented.
4633a7c4 3935See L<perlipc/"UDP: Message Passing"> for examples.
a0d0e21e
LW
3936
3937=item setpgrp PID,PGRP
3938
7660c0ab 3939Sets the current process group for the specified PID, C<0> for the current
a0d0e21e 3940process. Will produce a fatal error if used on a machine that doesn't
81777298
GS
3941implement POSIX setpgid(2) or BSD setpgrp(2). If the arguments are omitted,
3942it defaults to C<0,0>. Note that the BSD 4.2 version of C<setpgrp> does not
3943accept any arguments, so only C<setpgrp(0,0)> is portable. See also
3944C<POSIX::setsid()>.
a0d0e21e
LW
3945
3946=item setpriority WHICH,WHO,PRIORITY
3947
3948Sets the current priority for a process, a process group, or a user.
f86cebdf
GS
3949(See setpriority(2).) Will produce a fatal error if used on a machine
3950that doesn't implement setpriority(2).
a0d0e21e
LW
3951
3952=item setsockopt SOCKET,LEVEL,OPTNAME,OPTVAL
3953
3954Sets the socket option requested. Returns undefined if there is an
7660c0ab 3955error. OPTVAL may be specified as C<undef> if you don't want to pass an
a0d0e21e
LW
3956argument.
3957
3958=item shift ARRAY
3959
3960=item shift
3961
3962Shifts the first value of the array off and returns it, shortening the
3963array by 1 and moving everything down. If there are no elements in the
3964array, returns the undefined value. If ARRAY is omitted, shifts the
7660c0ab
A
3965C<@_> array within the lexical scope of subroutines and formats, and the
3966C<@ARGV> array at file scopes or within the lexical scopes established by
7d30b5c4 3967the C<eval ''>, C<BEGIN {}>, C<INIT {}>, C<CHECK {}>, and C<END {}>
4f25aa18
GS
3968constructs.
3969
19799a22
GS
3970See also C<unshift>, C<push>, and C<pop>. C<Shift()> and C<unshift> do the
3971same thing to the left end of an array that C<pop> and C<push> do to the
977336f5 3972right end.
a0d0e21e
LW
3973
3974=item shmctl ID,CMD,ARG
3975
0ade1984
JH
3976Calls the System V IPC function shmctl. You'll probably have to say
3977
3978 use IPC::SysV;
3979
7660c0ab
A
3980first to get the correct constant definitions. If CMD is C<IPC_STAT>,
3981then ARG must be a variable which will hold the returned C<shmid_ds>
3982structure. Returns like ioctl: the undefined value for error, "C<0> but
0ade1984 3983true" for zero, or the actual return value otherwise.
7660c0ab 3984See also C<IPC::SysV> documentation.
a0d0e21e
LW
3985
3986=item shmget KEY,SIZE,FLAGS
3987
3988Calls the System V IPC function shmget. Returns the shared memory
3989segment id, or the undefined value if there is an error.
7660c0ab 3990See also C<IPC::SysV> documentation.
a0d0e21e
LW
3991
3992=item shmread ID,VAR,POS,SIZE
3993
3994=item shmwrite ID,STRING,POS,SIZE
3995
3996Reads or writes the System V shared memory segment ID starting at
3997position POS for size SIZE by attaching to it, copying in/out, and
5a964f20 3998detaching from it. When reading, VAR must be a variable that will
a0d0e21e
LW
3999hold the data read. When writing, if STRING is too long, only SIZE
4000bytes are used; if STRING is too short, nulls are written to fill out
19799a22 4001SIZE bytes. Return true if successful, or false if there is an error.
2b5ab1e7
TC
4002See also C<IPC::SysV> documentation and the C<IPC::Shareable> module
4003from CPAN.
a0d0e21e
LW
4004
4005=item shutdown SOCKET,HOW
4006
4007Shuts down a socket connection in the manner indicated by HOW, which
4008has the same interpretation as in the system call of the same name.
4009
f86cebdf
GS
4010 shutdown(SOCKET, 0); # I/we have stopped reading data
4011 shutdown(SOCKET, 1); # I/we have stopped writing data
4012 shutdown(SOCKET, 2); # I/we have stopped using this socket
5a964f20
TC
4013
4014This is useful with sockets when you want to tell the other
4015side you're done writing but not done reading, or vice versa.
4016It's also a more insistent form of close because it also
19799a22 4017disables the file descriptor in any forked copies in other
5a964f20
TC
4018processes.
4019
a0d0e21e
LW
4020=item sin EXPR
4021
54310121 4022=item sin
bbce6d69 4023
a0d0e21e 4024Returns the sine of EXPR (expressed in radians). If EXPR is omitted,
7660c0ab 4025returns sine of C<$_>.
a0d0e21e 4026
ca6e1c26 4027For the inverse sine operation, you may use the C<Math::Trig::asin>
28757baa 4028function, or use this relation:
4029
4030 sub asin { atan2($_[0], sqrt(1 - $_[0] * $_[0])) }
4031
a0d0e21e
LW
4032=item sleep EXPR
4033
4034=item sleep
4035
4036Causes the script to sleep for EXPR seconds, or forever if no EXPR.
7660c0ab 4037May be interrupted if the process receives a signal such as C<SIGALRM>.
1d3434b8 4038Returns the number of seconds actually slept. You probably cannot
19799a22
GS
4039mix C<alarm> and C<sleep> calls, because C<sleep> is often implemented
4040using C<alarm>.
a0d0e21e
LW
4041
4042On some older systems, it may sleep up to a full second less than what
4043you requested, depending on how it counts seconds. Most modern systems
5a964f20
TC
4044always sleep the full amount. They may appear to sleep longer than that,
4045however, because your process might not be scheduled right away in a
4046busy multitasking system.
a0d0e21e 4047
cb1a09d0 4048For delays of finer granularity than one second, you may use Perl's
68f8bed4
JH
4049C<syscall> interface to access setitimer(2) if your system supports
4050it, or else see L</select> above. The Time::HiRes module from CPAN
4051may also help.
cb1a09d0 4052
19799a22 4053See also the POSIX module's C<sigpause> function.
5f05dabc 4054
a0d0e21e
LW
4055=item socket SOCKET,DOMAIN,TYPE,PROTOCOL
4056
4057Opens a socket of the specified kind and attaches it to filehandle
19799a22
GS
4058SOCKET. DOMAIN, TYPE, and PROTOCOL are specified the same as for
4059the system call of the same name. You should C<use Socket> first
4060to get the proper definitions imported. See the examples in
4061L<perlipc/"Sockets: Client/Server Communication">.
a0d0e21e 4062
8d2a6795
GS
4063On systems that support a close-on-exec flag on files, the flag will
4064be set for the newly opened file descriptor, as determined by the
4065value of $^F. See L<perlvar/$^F>.
4066
a0d0e21e
LW
4067=item socketpair SOCKET1,SOCKET2,DOMAIN,TYPE,PROTOCOL
4068
4069Creates an unnamed pair of sockets in the specified domain, of the
5f05dabc 4070specified type. DOMAIN, TYPE, and PROTOCOL are specified the same as
a0d0e21e 4071for the system call of the same name. If unimplemented, yields a fatal
19799a22 4072error. Returns true if successful.
a0d0e21e 4073
8d2a6795
GS
4074On systems that support a close-on-exec flag on files, the flag will
4075be set for the newly opened file descriptors, as determined by the value
4076of $^F. See L<perlvar/$^F>.
4077
19799a22 4078Some systems defined C<pipe> in terms of C<socketpair>, in which a call
5a964f20
TC
4079to C<pipe(Rdr, Wtr)> is essentially:
4080
4081 use Socket;
4082 socketpair(Rdr, Wtr, AF_UNIX, SOCK_STREAM, PF_UNSPEC);
4083 shutdown(Rdr, 1); # no more writing for reader
4084 shutdown(Wtr, 0); # no more reading for writer
4085
4086See L<perlipc> for an example of socketpair use.
4087
a0d0e21e
LW
4088=item sort SUBNAME LIST
4089
4090=item sort BLOCK LIST
4091
4092=item sort LIST
4093
2f9daede 4094Sorts the LIST and returns the sorted list value. If SUBNAME or BLOCK
19799a22 4095is omitted, C<sort>s in standard string comparison order. If SUBNAME is
2f9daede 4096specified, it gives the name of a subroutine that returns an integer
7660c0ab 4097less than, equal to, or greater than C<0>, depending on how the elements
61eff3bc 4098of the list are to be ordered. (The C<< <=> >> and C<cmp>
2f9daede 4099operators are extremely useful in such routines.) SUBNAME may be a
1d3434b8
GS
4100scalar variable name (unsubscripted), in which case the value provides
4101the name of (or a reference to) the actual subroutine to use. In place
4102of a SUBNAME, you can provide a BLOCK as an anonymous, in-line sort
4103subroutine.
a0d0e21e 4104
43481408
GS
4105If the subroutine's prototype is C<($$)>, the elements to be compared
4106are passed by reference in C<@_>, as for a normal subroutine. If not,
4107the normal calling code for subroutines is bypassed in the interests of
4108efficiency, and the elements to be compared are passed into the subroutine
4109as the package global variables $a and $b (see example below). Note that
4110in the latter case, it is usually counter-productive to declare $a and
4111$b as lexicals.
4112
4113In either case, the subroutine may not be recursive. The values to be
4114compared are always passed by reference, so don't modify them.
a0d0e21e 4115
0a753a76 4116You also cannot exit out of the sort block or subroutine using any of the
19799a22 4117loop control operators described in L<perlsyn> or with C<goto>.
0a753a76 4118
a034a98d
DD
4119When C<use locale> is in effect, C<sort LIST> sorts LIST according to the
4120current collation locale. See L<perllocale>.
4121
a0d0e21e
LW
4122Examples:
4123
4124 # sort lexically
4125 @articles = sort @files;
4126
4127 # same thing, but with explicit sort routine
4128 @articles = sort {$a cmp $b} @files;
4129
cb1a09d0 4130 # now case-insensitively
54310121 4131 @articles = sort {uc($a) cmp uc($b)} @files;
cb1a09d0 4132
a0d0e21e
LW
4133 # same thing in reversed order
4134 @articles = sort {$b cmp $a} @files;
4135
4136 # sort numerically ascending
4137 @articles = sort {$a <=> $b} @files;
4138
4139 # sort numerically descending
4140 @articles = sort {$b <=> $a} @files;
4141
19799a22
GS
4142 # this sorts the %age hash by value instead of key
4143 # using an in-line function
4144 @eldest = sort { $age{$b} <=> $age{$a} } keys %age;
4145
a0d0e21e
LW
4146 # sort using explicit subroutine name
4147 sub byage {
2f9daede 4148 $age{$a} <=> $age{$b}; # presuming numeric
a0d0e21e
LW
4149 }
4150 @sortedclass = sort byage @class;
4151
19799a22
GS
4152 sub backwards { $b cmp $a }
4153 @harry = qw(dog cat x Cain Abel);
4154 @george = qw(gone chased yz Punished Axed);
a0d0e21e
LW
4155 print sort @harry;
4156 # prints AbelCaincatdogx
4157 print sort backwards @harry;
4158 # prints xdogcatCainAbel
4159 print sort @george, 'to', @harry;
4160 # prints AbelAxedCainPunishedcatchaseddoggonetoxyz
4161
54310121 4162 # inefficiently sort by descending numeric compare using
4163 # the first integer after the first = sign, or the
cb1a09d0
AD
4164 # whole record case-insensitively otherwise
4165
4166 @new = sort {
4167 ($b =~ /=(\d+)/)[0] <=> ($a =~ /=(\d+)/)[0]
4168 ||
4169 uc($a) cmp uc($b)
4170 } @old;
4171
4172 # same thing, but much more efficiently;
4173 # we'll build auxiliary indices instead
4174 # for speed
4175 @nums = @caps = ();
54310121 4176 for (@old) {
cb1a09d0
AD
4177 push @nums, /=(\d+)/;
4178 push @caps, uc($_);
54310121 4179 }
cb1a09d0
AD
4180
4181 @new = @old[ sort {
4182 $nums[$b] <=> $nums[$a]
4183 ||
4184 $caps[$a] cmp $caps[$b]
4185 } 0..$#old
4186 ];
4187
19799a22 4188 # same thing, but without any temps
cb1a09d0 4189 @new = map { $_->[0] }
19799a22
GS
4190 sort { $b->[1] <=> $a->[1]
4191 ||
4192 $a->[2] cmp $b->[2]
4193 } map { [$_, /=(\d+)/, uc($_)] } @old;
61eff3bc 4194
43481408
GS
4195 # using a prototype allows you to use any comparison subroutine
4196 # as a sort subroutine (including other package's subroutines)
4197 package other;
4198 sub backwards ($$) { $_[1] cmp $_[0]; } # $a and $b are not set here
4199
4200 package main;
4201 @new = sort other::backwards @old;
cb1a09d0 4202
19799a22
GS
4203If you're using strict, you I<must not> declare $a
4204and $b as lexicals. They are package globals. That means
cb1a09d0
AD
4205if you're in the C<main> package, it's
4206
4207 @articles = sort {$main::b <=> $main::a} @files;
4208
4209or just
4210
4211 @articles = sort {$::b <=> $::a} @files;
4212
4213but if you're in the C<FooPack> package, it's
4214
4215 @articles = sort {$FooPack::b <=> $FooPack::a} @files;
4216
55497cff 4217The comparison function is required to behave. If it returns
7660c0ab
A
4218inconsistent results (sometimes saying C<$x[1]> is less than C<$x[2]> and
4219sometimes saying the opposite, for example) the results are not
4220well-defined.
55497cff 4221
a0d0e21e
LW
4222=item splice ARRAY,OFFSET,LENGTH,LIST
4223
4224=item splice ARRAY,OFFSET,LENGTH
4225
4226=item splice ARRAY,OFFSET
4227
453f9044
GS
4228=item splice ARRAY
4229
a0d0e21e 4230Removes the elements designated by OFFSET and LENGTH from an array, and
5a964f20
TC
4231replaces them with the elements of LIST, if any. In list context,
4232returns the elements removed from the array. In scalar context,
43051805 4233returns the last element removed, or C<undef> if no elements are
48cdf507 4234removed. The array grows or shrinks as necessary.
19799a22 4235If OFFSET is negative then it starts that far from the end of the array.
48cdf507 4236If LENGTH is omitted, removes everything from OFFSET onward.
453f9044
GS
4237If LENGTH is negative, leaves that many elements off the end of the array.
4238If both OFFSET and LENGTH are omitted, removes everything.
4239
48cdf507 4240The following equivalences hold (assuming C<$[ == 0>):
a0d0e21e 4241
48cdf507 4242 push(@a,$x,$y) splice(@a,@a,0,$x,$y)
a0d0e21e
LW
4243 pop(@a) splice(@a,-1)
4244 shift(@a) splice(@a,0,1)
4245 unshift(@a,$x,$y) splice(@a,0,0,$x,$y)
5a964f20 4246 $a[$x] = $y splice(@a,$x,1,$y)
a0d0e21e
LW
4247
4248Example, assuming array lengths are passed before arrays:
4249
4250 sub aeq { # compare two list values
5a964f20
TC
4251 my(@a) = splice(@_,0,shift);
4252 my(@b) = splice(@_,0,shift);
a0d0e21e
LW
4253 return 0 unless @a == @b; # same len?
4254 while (@a) {
4255 return 0 if pop(@a) ne pop(@b);
4256 }
4257 return 1;
4258 }
4259 if (&aeq($len,@foo[1..$len],0+@bar,@bar)) { ... }
4260
4261=item split /PATTERN/,EXPR,LIMIT
4262
4263=item split /PATTERN/,EXPR
4264
4265=item split /PATTERN/
4266
4267=item split
4268
19799a22 4269Splits a string into a list of strings and returns that list. By default,
5a964f20 4270empty leading fields are preserved, and empty trailing ones are deleted.
a0d0e21e 4271
5a964f20 4272If not in list context, returns the number of fields found and splits into
7660c0ab 4273the C<@_> array. (In list context, you can force the split into C<@_> by
1d2dff63 4274using C<??> as the pattern delimiters, but it still returns the list
7660c0ab 4275value.) The use of implicit split to C<@_> is deprecated, however, because
5a964f20 4276it clobbers your subroutine arguments.
a0d0e21e 4277
7660c0ab 4278If EXPR is omitted, splits the C<$_> string. If PATTERN is also omitted,
4633a7c4
LW
4279splits on whitespace (after skipping any leading whitespace). Anything
4280matching PATTERN is taken to be a delimiter separating the fields. (Note
fb73857a 4281that the delimiter may be longer than one character.)
4282
5a964f20 4283If LIMIT is specified and positive, splits into no more than that
7b8d334a
GS
4284many fields (though it may split into fewer). If LIMIT is unspecified
4285or zero, trailing null fields are stripped (which potential users
19799a22 4286of C<pop> would do well to remember). If LIMIT is negative, it is
fb73857a 4287treated as if an arbitrarily large LIMIT had been specified.
a0d0e21e
LW
4288
4289A pattern matching the null string (not to be confused with
748a9306 4290a null pattern C<//>, which is just one member of the set of patterns
a0d0e21e
LW
4291matching a null string) will split the value of EXPR into separate
4292characters at each point it matches that way. For example:
4293
4294 print join(':', split(/ */, 'hi there'));
4295
4296produces the output 'h:i:t:h:e:r:e'.
4297
5f05dabc 4298The LIMIT parameter can be used to split a line partially
a0d0e21e
LW
4299
4300 ($login, $passwd, $remainder) = split(/:/, $_, 3);
4301
4302When assigning to a list, if LIMIT is omitted, Perl supplies a LIMIT
4303one larger than the number of variables in the list, to avoid
4304unnecessary work. For the list above LIMIT would have been 4 by
4305default. In time critical applications it behooves you not to split
4306into more fields than you really need.
4307
19799a22 4308If the PATTERN contains parentheses, additional list elements are
a0d0e21e
LW
4309created from each matching substring in the delimiter.
4310
da0045b7 4311 split(/([,-])/, "1-10,20", 3);
a0d0e21e
LW
4312
4313produces the list value
4314
4315 (1, '-', 10, ',', 20)
4316
19799a22 4317If you had the entire header of a normal Unix email message in $header,
4633a7c4
LW
4318you could split it up into fields and their values this way:
4319
4320 $header =~ s/\n\s+/ /g; # fix continuation lines
fb73857a 4321 %hdrs = (UNIX_FROM => split /^(\S*?):\s*/m, $header);
4633a7c4 4322
a0d0e21e
LW
4323The pattern C</PATTERN/> may be replaced with an expression to specify
4324patterns that vary at runtime. (To do runtime compilation only once,
748a9306
LW
4325use C</$variable/o>.)
4326
4327As a special case, specifying a PATTERN of space (C<' '>) will split on
19799a22 4328white space just as C<split> with no arguments does. Thus, C<split(' ')> can
748a9306
LW
4329be used to emulate B<awk>'s default behavior, whereas C<split(/ /)>
4330will give you as many null initial fields as there are leading spaces.
19799a22
GS
4331A C<split> on C</\s+/> is like a C<split(' ')> except that any leading
4332whitespace produces a null first field. A C<split> with no arguments
748a9306 4333really does a C<split(' ', $_)> internally.
a0d0e21e
LW
4334
4335Example:
4336
5a964f20
TC
4337 open(PASSWD, '/etc/passwd');
4338 while (<PASSWD>) {
f86cebdf
GS
4339 ($login, $passwd, $uid, $gid,
4340 $gcos, $home, $shell) = split(/:/);
5a964f20 4341 #...
a0d0e21e
LW
4342 }
4343
19799a22 4344(Note that $shell above will still have a newline on it. See L</chop>,
a0d0e21e
LW
4345L</chomp>, and L</join>.)
4346
5f05dabc 4347=item sprintf FORMAT, LIST
a0d0e21e 4348
19799a22
GS
4349Returns a string formatted by the usual C<printf> conventions of the
4350C library function C<sprintf>. See L<sprintf(3)> or L<printf(3)>
74a77017
CS
4351on your system for an explanation of the general principles.
4352
19799a22
GS
4353Perl does its own C<sprintf> formatting--it emulates the C
4354function C<sprintf>, but it doesn't use it (except for floating-point
74a77017 4355numbers, and even then only the standard modifiers are allowed). As a
19799a22 4356result, any non-standard extensions in your local C<sprintf> are not
74a77017
CS
4357available from Perl.
4358
19799a22 4359Perl's C<sprintf> permits the following universally-known conversions:
74a77017
CS
4360
4361 %% a percent sign
4362 %c a character with the given number
4363 %s a string
4364 %d a signed integer, in decimal
4365 %u an unsigned integer, in decimal
4366 %o an unsigned integer, in octal
4367 %x an unsigned integer, in hexadecimal
4368 %e a floating-point number, in scientific notation
4369 %f a floating-point number, in fixed decimal notation
4370 %g a floating-point number, in %e or %f notation
4371
1b3f7d21 4372In addition, Perl permits the following widely-supported conversions:
74a77017 4373
74a77017
CS
4374 %X like %x, but using upper-case letters
4375 %E like %e, but using an upper-case "E"
4376 %G like %g, but with an upper-case "E" (if applicable)
4f19785b 4377 %b an unsigned integer, in binary
74a77017 4378 %p a pointer (outputs the Perl value's address in hexadecimal)
1b3f7d21
CS
4379 %n special: *stores* the number of characters output so far
4380 into the next variable in the parameter list
74a77017 4381
1b3f7d21
CS
4382Finally, for backward (and we do mean "backward") compatibility, Perl
4383permits these unnecessary but widely-supported conversions:
74a77017 4384
1b3f7d21 4385 %i a synonym for %d
74a77017
CS
4386 %D a synonym for %ld
4387 %U a synonym for %lu
4388 %O a synonym for %lo
4389 %F a synonym for %f
4390
4391Perl permits the following universally-known flags between the C<%>
4392and the conversion letter:
4393
4394 space prefix positive number with a space
4395 + prefix positive number with a plus sign
4396 - left-justify within the field
4397 0 use zeros, not spaces, to right-justify
a3cb178b 4398 # prefix non-zero octal with "0", non-zero hex with "0x"
74a77017 4399 number minimum field width
f86cebdf
GS
4400 .number "precision": digits after decimal point for
4401 floating-point, max length for string, minimum length
4402 for integer
74a77017 4403 l interpret integer as C type "long" or "unsigned long"
74a77017 4404 h interpret integer as C type "short" or "unsigned short"
661cc6a6 4405 If no flags, interpret integer as C type "int" or "unsigned"
74a77017 4406
4628e4f8 4407There are also two Perl-specific flags:
74a77017
CS
4408
4409 V interpret integer as Perl's standard integer type
b22c7a20
GS
4410 v interpret string as a vector of integers, output as
4411 numbers separated either by dots, or by an arbitrary
4412 string received from the argument list when the flag
4413 is preceded by C<*>
74a77017 4414
19799a22 4415Where a number would appear in the flags, an asterisk (C<*>) may be
74a77017
CS
4416used instead, in which case Perl uses the next item in the parameter
4417list as the given number (that is, as the field width or precision).
19799a22
GS
4418If a field width obtained through C<*> is negative, it has the same
4419effect as the C<-> flag: left-justification.
74a77017 4420
b22c7a20
GS
4421The C<v> flag is useful for displaying ordinal values of characters
4422in arbitrary strings:
4423
4424 printf "version is v%vd\n", $^V; # Perl's version
4425 printf "address is %*vX\n", ":", $addr; # IPv6 address
dd629d5b 4426 printf "bits are %*vb\n", " ", $bits; # random bitstring
b22c7a20 4427
74a77017
CS
4428If C<use locale> is in effect, the character used for the decimal
4429point in formatted real numbers is affected by the LC_NUMERIC locale.
4430See L<perllocale>.
a0d0e21e 4431
07158430 4432If Perl understands "quads" (64-bit integers) (this requires
a8764340
GS
4433either that the platform natively support quads or that Perl
4434be specifically compiled to support quads), the characters
07158430
JH
4435
4436 d u o x X b i D U O
4437
4438print quads, and they may optionally be preceded by
4439
4440 ll L q
4441
4442For example
4443
4444 %lld %16LX %qo
4445
46465067 4446You can find out whether your Perl supports quads via L<Config>:
07158430
JH
4447
4448 use Config;
10cc9d2a 4449 ($Config{use64bitint} eq 'define' || $Config{longsize} == 8) &&
46465067 4450 print "quads\n";
07158430
JH
4451
4452If Perl understands "long doubles" (this requires that the platform
a8764340 4453support long doubles), the flags
07158430
JH
4454
4455 e f g E F G
4456
4457may optionally be preceded by
4458
4459 ll L
4460
4461For example
4462
4463 %llf %Lg
4464
4465You can find out whether your Perl supports long doubles via L<Config>:
4466
4467 use Config;
46465067 4468 $Config{d_longdbl} eq 'define' && print "long doubles\n";
07158430 4469
a0d0e21e
LW
4470=item sqrt EXPR
4471
54310121 4472=item sqrt
bbce6d69 4473
a0d0e21e 4474Return the square root of EXPR. If EXPR is omitted, returns square
2b5ab1e7
TC
4475root of C<$_>. Only works on non-negative operands, unless you've
4476loaded the standard Math::Complex module.
4477
4478 use Math::Complex;
4479 print sqrt(-2); # prints 1.4142135623731i
a0d0e21e
LW
4480
4481=item srand EXPR
4482
93dc8474
CS
4483=item srand
4484
19799a22 4485Sets the random number seed for the C<rand> operator. If EXPR is
73c60299
RS
4486omitted, uses a semi-random value supplied by the kernel (if it supports
4487the F</dev/urandom> device) or based on the current time and process
93dc8474 4488ID, among other things. In versions of Perl prior to 5.004 the default
19799a22 4489seed was just the current C<time>. This isn't a particularly good seed,
93dc8474 4490so many old programs supply their own seed value (often C<time ^ $$> or
61eff3bc 4491C<time ^ ($$ + ($$ << 15))>), but that isn't necessary any more.
93dc8474 4492
19799a22 4493In fact, it's usually not necessary to call C<srand> at all, because if
93dc8474 4494it is not called explicitly, it is called implicitly at the first use of
19799a22 4495the C<rand> operator. However, this was not the case in version of Perl
2f9daede 4496before 5.004, so if your script will run under older Perl versions, it
19799a22 4497should call C<srand>.
93dc8474 4498
2f9daede
TP
4499Note that you need something much more random than the default seed for
4500cryptographic purposes. Checksumming the compressed output of one or more
4501rapidly changing operating system status programs is the usual method. For
4502example:
28757baa 4503
4504 srand (time ^ $$ ^ unpack "%L*", `ps axww | gzip`);
4505
7660c0ab 4506If you're particularly concerned with this, see the C<Math::TrulyRandom>
0078ec44
RS
4507module in CPAN.
4508
19799a22 4509Do I<not> call C<srand> multiple times in your program unless you know
28757baa 4510exactly what you're doing and why you're doing it. The point of the
19799a22 4511function is to "seed" the C<rand> function so that C<rand> can produce
28757baa 4512a different sequence each time you run your program. Just do it once at the
19799a22 4513top of your program, or you I<won't> get random numbers out of C<rand>!
28757baa 4514
54310121 4515Frequently called programs (like CGI scripts) that simply use
28757baa 4516
4517 time ^ $$
4518
54310121 4519for a seed can fall prey to the mathematical property that
28757baa 4520
4521 a^b == (a+1)^(b+1)
4522
0078ec44 4523one-third of the time. So don't do that.
f86702cc 4524
a0d0e21e
LW
4525=item stat FILEHANDLE
4526
4527=item stat EXPR
4528
54310121 4529=item stat
bbce6d69 4530
1d2dff63
GS
4531Returns a 13-element list giving the status info for a file, either
4532the file opened via FILEHANDLE, or named by EXPR. If EXPR is omitted,
7660c0ab 4533it stats C<$_>. Returns a null list if the stat fails. Typically used
1d2dff63 4534as follows:
a0d0e21e
LW
4535
4536 ($dev,$ino,$mode,$nlink,$uid,$gid,$rdev,$size,
4537 $atime,$mtime,$ctime,$blksize,$blocks)
4538 = stat($filename);
4539
54310121 4540Not all fields are supported on all filesystem types. Here are the
c07a80fd 4541meaning of the fields:
4542
54310121 4543 0 dev device number of filesystem
4544 1 ino inode number
4545 2 mode file mode (type and permissions)
4546 3 nlink number of (hard) links to the file
4547 4 uid numeric user ID of file's owner
4548 5 gid numeric group ID of file's owner
4549 6 rdev the device identifier (special files only)
4550 7 size total size of file, in bytes
1c74f1bd
GS
4551 8 atime last access time in seconds since the epoch
4552 9 mtime last modify time in seconds since the epoch
4553 10 ctime inode change time (NOT creation time!) in seconds since the epoch
54310121 4554 11 blksize preferred block size for file system I/O
4555 12 blocks actual number of blocks allocated
c07a80fd 4556
4557(The epoch was at 00:00 January 1, 1970 GMT.)
4558
a0d0e21e
LW
4559If stat is passed the special filehandle consisting of an underline, no
4560stat is done, but the current contents of the stat structure from the
4561last stat or filetest are returned. Example:
4562
4563 if (-x $file && (($d) = stat(_)) && $d < 0) {
4564 print "$file is executable NFS file\n";
4565 }
4566
ca6e1c26
JH
4567(This works on machines only for which the device number is negative
4568under NFS.)
a0d0e21e 4569
2b5ab1e7
TC
4570Because the mode contains both the file type and its permissions, you
4571should mask off the file type portion and (s)printf using a C<"%o">
4572if you want to see the real permissions.
4573
4574 $mode = (stat($filename))[2];
4575 printf "Permissions are %04o\n", $mode & 07777;
4576
19799a22 4577In scalar context, C<stat> returns a boolean value indicating success
1d2dff63
GS
4578or failure, and, if successful, sets the information associated with
4579the special filehandle C<_>.
4580
2b5ab1e7
TC
4581The File::stat module provides a convenient, by-name access mechanism:
4582
4583 use File::stat;
4584 $sb = stat($filename);
4585 printf "File is %s, size is %s, perm %04o, mtime %s\n",
4586 $filename, $sb->size, $sb->mode & 07777,
4587 scalar localtime $sb->mtime;
4588
ca6e1c26
JH
4589You can import symbolic mode constants (C<S_IF*>) and functions
4590(C<S_IS*>) from the Fcntl module:
4591
4592 use Fcntl ':mode';
4593
4594 $mode = (stat($filename))[2];
4595
4596 $user_rwx = ($mode & S_IRWXU) >> 6;
4597 $group_read = ($mode & S_IRGRP) >> 3;
4598 $other_execute = $mode & S_IXOTH;
4599
4600 printf "Permissions are %04o\n", S_ISMODE($mode), "\n";
4601
4602 $is_setuid = $mode & S_ISUID;
4603 $is_setgid = S_ISDIR($mode);
4604
4605You could write the last two using the C<-u> and C<-d> operators.
4606The commonly available S_IF* constants are
4607
4608 # Permissions: read, write, execute, for user, group, others.
4609
4610 S_IRWXU S_IRUSR S_IWUSR S_IXUSR
4611 S_IRWXG S_IRGRP S_IWGRP S_IXGRP
4612 S_IRWXO S_IROTH S_IWOTH S_IXOTH
61eff3bc 4613
ca6e1c26
JH
4614 # Setuid/Setgid/Stickiness.
4615
4616 S_ISUID S_ISGID S_ISVTX S_ISTXT
4617
4618 # File types. Not necessarily all are available on your system.
4619
4620 S_IFREG S_IFDIR S_IFLNK S_IFBLK S_ISCHR S_IFIFO S_IFSOCK S_IFWHT S_ENFMT
4621
4622 # The following are compatibility aliases for S_IRUSR, S_IWUSR, S_IXUSR.
4623
4624 S_IREAD S_IWRITE S_IEXEC
4625
4626and the S_IF* functions are
4627
4628 S_IFMODE($mode) the part of $mode containg the permission bits
4629 and the setuid/setgid/sticky bits
4630
4631 S_IFMT($mode) the part of $mode containing the file type
4632 which can be bit-anded with e.g. S_IFREG
4633 or with the following functions
4634
4635 # The operators -f, -d, -l, -b, -c, -p, and -s.
4636
4637 S_ISREG($mode) S_ISDIR($mode) S_ISLNK($mode)
4638 S_ISBLK($mode) S_ISCHR($mode) S_ISFIFO($mode) S_ISSOCK($mode)
4639
4640 # No direct -X operator counterpart, but for the first one
4641 # the -g operator is often equivalent. The ENFMT stands for
4642 # record flocking enforcement, a platform-dependent feature.
4643
4644 S_ISENFMT($mode) S_ISWHT($mode)
4645
4646See your native chmod(2) and stat(2) documentation for more details
4647about the S_* constants.
4648
a0d0e21e
LW
4649=item study SCALAR
4650
4651=item study
4652
184e9718 4653Takes extra time to study SCALAR (C<$_> if unspecified) in anticipation of
a0d0e21e
LW
4654doing many pattern matches on the string before it is next modified.
4655This may or may not save time, depending on the nature and number of
4656patterns you are searching on, and on the distribution of character
19799a22 4657frequencies in the string to be searched--you probably want to compare
5f05dabc 4658run times with and without it to see which runs faster. Those loops
a0d0e21e
LW
4659which scan for many short constant strings (including the constant
4660parts of more complex patterns) will benefit most. You may have only
19799a22
GS
4661one C<study> active at a time--if you study a different scalar the first
4662is "unstudied". (The way C<study> works is this: a linked list of every
a0d0e21e 4663character in the string to be searched is made, so we know, for
7660c0ab 4664example, where all the C<'k'> characters are. From each search string,
a0d0e21e
LW
4665the rarest character is selected, based on some static frequency tables
4666constructed from some C programs and English text. Only those places
4667that contain this "rarest" character are examined.)
4668
5a964f20 4669For example, here is a loop that inserts index producing entries
a0d0e21e
LW
4670before any line containing a certain pattern:
4671
4672 while (<>) {
4673 study;
2b5ab1e7
TC
4674 print ".IX foo\n" if /\bfoo\b/;
4675 print ".IX bar\n" if /\bbar\b/;
4676 print ".IX blurfl\n" if /\bblurfl\b/;
5a964f20 4677 # ...
a0d0e21e
LW
4678 print;
4679 }
4680
951ba7fe
GS
4681In searching for C</\bfoo\b/>, only those locations in C<$_> that contain C<f>
4682will be looked at, because C<f> is rarer than C<o>. In general, this is
a0d0e21e
LW
4683a big win except in pathological cases. The only question is whether
4684it saves you more time than it took to build the linked list in the
4685first place.
4686
4687Note that if you have to look for strings that you don't know till
19799a22 4688runtime, you can build an entire loop as a string and C<eval> that to
a0d0e21e 4689avoid recompiling all your patterns all the time. Together with
7660c0ab 4690undefining C<$/> to input entire files as one record, this can be very
f86cebdf 4691fast, often faster than specialized programs like fgrep(1). The following
184e9718 4692scans a list of files (C<@files>) for a list of words (C<@words>), and prints
a0d0e21e
LW
4693out the names of those files that contain a match:
4694
4695 $search = 'while (<>) { study;';
4696 foreach $word (@words) {
4697 $search .= "++\$seen{\$ARGV} if /\\b$word\\b/;\n";
4698 }
4699 $search .= "}";
4700 @ARGV = @files;
4701 undef $/;
4702 eval $search; # this screams
5f05dabc 4703 $/ = "\n"; # put back to normal input delimiter
a0d0e21e
LW
4704 foreach $file (sort keys(%seen)) {
4705 print $file, "\n";
4706 }
4707
cb1a09d0
AD
4708=item sub BLOCK
4709
4710=item sub NAME
4711
4712=item sub NAME BLOCK
4713
4714This is subroutine definition, not a real function I<per se>. With just a
09bef843
SB
4715NAME (and possibly prototypes or attributes), it's just a forward declaration.
4716Without a NAME, it's an anonymous function declaration, and does actually
4717return a value: the CODE ref of the closure you just created. See L<perlsub>
4718and L<perlref> for details.
cb1a09d0 4719
87275199 4720=item substr EXPR,OFFSET,LENGTH,REPLACEMENT
7b8d334a 4721
87275199 4722=item substr EXPR,OFFSET,LENGTH
a0d0e21e
LW
4723
4724=item substr EXPR,OFFSET
4725
4726Extracts a substring out of EXPR and returns it. First character is at
7660c0ab 4727offset C<0>, or whatever you've set C<$[> to (but don't do that).
84902520 4728If OFFSET is negative (or more precisely, less than C<$[>), starts
87275199
GS
4729that far from the end of the string. If LENGTH is omitted, returns
4730everything to the end of the string. If LENGTH is negative, leaves that
748a9306
LW
4731many characters off the end of the string.
4732
2b5ab1e7 4733You can use the substr() function as an lvalue, in which case EXPR
87275199
GS
4734must itself be an lvalue. If you assign something shorter than LENGTH,
4735the string will shrink, and if you assign something longer than LENGTH,
2b5ab1e7 4736the string will grow to accommodate it. To keep the string the same
19799a22 4737length you may need to pad or chop your value using C<sprintf>.
a0d0e21e 4738
87275199
GS
4739If OFFSET and LENGTH specify a substring that is partly outside the
4740string, only the part within the string is returned. If the substring
4741is beyond either end of the string, substr() returns the undefined
4742value and produces a warning. When used as an lvalue, specifying a
4743substring that is entirely outside the string is a fatal error.
4744Here's an example showing the behavior for boundary cases:
4745
4746 my $name = 'fred';
4747 substr($name, 4) = 'dy'; # $name is now 'freddy'
4748 my $null = substr $name, 6, 2; # returns '' (no warning)
4749 my $oops = substr $name, 7; # returns undef, with warning
4750 substr($name, 7) = 'gap'; # fatal error
4751
2b5ab1e7 4752An alternative to using substr() as an lvalue is to specify the
7b8d334a 4753replacement string as the 4th argument. This allows you to replace
2b5ab1e7
TC
4754parts of the EXPR and return what was there before in one operation,
4755just as you can with splice().
7b8d334a 4756
a0d0e21e
LW
4757=item symlink OLDFILE,NEWFILE
4758
4759Creates a new filename symbolically linked to the old filename.
7660c0ab 4760Returns C<1> for success, C<0> otherwise. On systems that don't support
a0d0e21e
LW
4761symbolic links, produces a fatal error at run time. To check for that,
4762use eval:
4763
2b5ab1e7 4764 $symlink_exists = eval { symlink("",""); 1 };
a0d0e21e
LW
4765
4766=item syscall LIST
4767
4768Calls the system call specified as the first element of the list,
4769passing the remaining elements as arguments to the system call. If
4770unimplemented, produces a fatal error. The arguments are interpreted
4771as follows: if a given argument is numeric, the argument is passed as
4772an int. If not, the pointer to the string value is passed. You are
4773responsible to make sure a string is pre-extended long enough to
a3cb178b 4774receive any result that might be written into a string. You can't use a
19799a22 4775string literal (or other read-only string) as an argument to C<syscall>
a3cb178b
GS
4776because Perl has to assume that any string pointer might be written
4777through. If your
a0d0e21e 4778integer arguments are not literals and have never been interpreted in a
7660c0ab 4779numeric context, you may need to add C<0> to them to force them to look
19799a22 4780like numbers. This emulates the C<syswrite> function (or vice versa):
a0d0e21e
LW
4781
4782 require 'syscall.ph'; # may need to run h2ph
a3cb178b
GS
4783 $s = "hi there\n";
4784 syscall(&SYS_write, fileno(STDOUT), $s, length $s);
a0d0e21e 4785
5f05dabc 4786Note that Perl supports passing of up to only 14 arguments to your system call,
a0d0e21e
LW
4787which in practice should usually suffice.
4788
fb73857a 4789Syscall returns whatever value returned by the system call it calls.
19799a22 4790If the system call fails, C<syscall> returns C<-1> and sets C<$!> (errno).
7660c0ab 4791Note that some system calls can legitimately return C<-1>. The proper
fb73857a 4792way to handle such calls is to assign C<$!=0;> before the call and
7660c0ab 4793check the value of C<$!> if syscall returns C<-1>.
fb73857a 4794
4795There's a problem with C<syscall(&SYS_pipe)>: it returns the file
4796number of the read end of the pipe it creates. There is no way
4797to retrieve the file number of the other end. You can avoid this
19799a22 4798problem by using C<pipe> instead.
fb73857a 4799
c07a80fd 4800=item sysopen FILEHANDLE,FILENAME,MODE
4801
4802=item sysopen FILEHANDLE,FILENAME,MODE,PERMS
4803
4804Opens the file whose filename is given by FILENAME, and associates it
4805with FILEHANDLE. If FILEHANDLE is an expression, its value is used as
4806the name of the real filehandle wanted. This function calls the
19799a22 4807underlying operating system's C<open> function with the parameters
c07a80fd 4808FILENAME, MODE, PERMS.
4809
4810The possible values and flag bits of the MODE parameter are
4811system-dependent; they are available via the standard module C<Fcntl>.
ea2b5ef6
JH
4812See the documentation of your operating system's C<open> to see which
4813values and flag bits are available. You may combine several flags
4814using the C<|>-operator.
4815
4816Some of the most common values are C<O_RDONLY> for opening the file in
4817read-only mode, C<O_WRONLY> for opening the file in write-only mode,
4818and C<O_RDWR> for opening the file in read-write mode, and.
4819
adf5897a
DF
4820For historical reasons, some values work on almost every system
4821supported by perl: zero means read-only, one means write-only, and two
4822means read/write. We know that these values do I<not> work under
7c5ffed3 4823OS/390 & VM/ESA Unix and on the Macintosh; you probably don't want to
4af147f6 4824use them in new code.
c07a80fd 4825
19799a22 4826If the file named by FILENAME does not exist and the C<open> call creates
7660c0ab 4827it (typically because MODE includes the C<O_CREAT> flag), then the value of
5a964f20 4828PERMS specifies the permissions of the newly created file. If you omit
19799a22 4829the PERMS argument to C<sysopen>, Perl uses the octal value C<0666>.
5a964f20 4830These permission values need to be in octal, and are modified by your
0591cd52
NT
4831process's current C<umask>.
4832
ea2b5ef6
JH
4833In many systems the C<O_EXCL> flag is available for opening files in
4834exclusive mode. This is B<not> locking: exclusiveness means here that
4835if the file already exists, sysopen() fails. The C<O_EXCL> wins
4836C<O_TRUNC>.
4837
4838Sometimes you may want to truncate an already-existing file: C<O_TRUNC>.
4839
19799a22 4840You should seldom if ever use C<0644> as argument to C<sysopen>, because
2b5ab1e7
TC
4841that takes away the user's option to have a more permissive umask.
4842Better to omit it. See the perlfunc(1) entry on C<umask> for more
4843on this.
c07a80fd 4844
4af147f6
CS
4845Note that C<sysopen> depends on the fdopen() C library function.
4846On many UNIX systems, fdopen() is known to fail when file descriptors
4847exceed a certain value, typically 255. If you need more file
4848descriptors than that, consider rebuilding Perl to use the C<sfio>
4849library, or perhaps using the POSIX::open() function.
4850
2b5ab1e7 4851See L<perlopentut> for a kinder, gentler explanation of opening files.
28757baa 4852
a0d0e21e
LW
4853=item sysread FILEHANDLE,SCALAR,LENGTH,OFFSET
4854
4855=item sysread FILEHANDLE,SCALAR,LENGTH
4856
4857Attempts to read LENGTH bytes of data into variable SCALAR from the
b43ceaf2 4858specified FILEHANDLE, using the system call read(2). It bypasses stdio,
19799a22
GS
4859so mixing this with other kinds of reads, C<print>, C<write>,
4860C<seek>, C<tell>, or C<eof> can cause confusion because stdio
b43ceaf2
AB
4861usually buffers data. Returns the number of bytes actually read, C<0>
4862at end of file, or undef if there was an error. SCALAR will be grown or
4863shrunk so that the last byte actually read is the last byte of the
4864scalar after the read.
ff68c719 4865
4866An OFFSET may be specified to place the read data at some place in the
4867string other than the beginning. A negative OFFSET specifies
4868placement at that many bytes counting backwards from the end of the
4869string. A positive OFFSET greater than the length of SCALAR results
7660c0ab 4870in the string being padded to the required size with C<"\0"> bytes before
ff68c719 4871the result of the read is appended.
a0d0e21e 4872
2b5ab1e7
TC
4873There is no syseof() function, which is ok, since eof() doesn't work
4874very well on device files (like ttys) anyway. Use sysread() and check
19799a22 4875for a return value for 0 to decide whether you're done.
2b5ab1e7 4876
137443ea 4877=item sysseek FILEHANDLE,POSITION,WHENCE
4878
f86cebdf 4879Sets FILEHANDLE's system position using the system call lseek(2). It
19799a22 4880bypasses stdio, so mixing this with reads (other than C<sysread>),
ac88732c
JH
4881C<print>, C<write>, C<seek>, C<tell>, or C<eof> may cause confusion.
4882FILEHANDLE may be an expression whose value gives the name of the
4883filehandle. The values for WHENCE are C<0> to set the new position to
4884POSITION, C<1> to set the it to the current position plus POSITION,
4885and C<2> to set it to EOF plus POSITION (typically negative). For
4886WHENCE, you may also use the constants C<SEEK_SET>, C<SEEK_CUR>, and
4887C<SEEK_END> (start of the file, current position, end of the file)
ca6e1c26 4888from the Fcntl module.
8903cb82 4889
4890Returns the new position, or the undefined value on failure. A position
19799a22
GS
4891of zero is returned as the string C<"0 but true">; thus C<sysseek> returns
4892true on success and false on failure, yet you can still easily determine
8903cb82 4893the new position.
137443ea 4894
a0d0e21e
LW
4895=item system LIST
4896
8bf3b016
GS
4897=item system PROGRAM LIST
4898
19799a22
GS
4899Does exactly the same thing as C<exec LIST>, except that a fork is
4900done first, and the parent process waits for the child process to
4901complete. Note that argument processing varies depending on the
4902number of arguments. If there is more than one argument in LIST,
4903or if LIST is an array with more than one value, starts the program
4904given by the first element of the list with arguments given by the
4905rest of the list. If there is only one scalar argument, the argument
4906is checked for shell metacharacters, and if there are any, the
4907entire argument is passed to the system's command shell for parsing
4908(this is C</bin/sh -c> on Unix platforms, but varies on other
4909platforms). If there are no shell metacharacters in the argument,
4910it is split into words and passed directly to C<execvp>, which is
4911more efficient.
4912
4913All files opened for output are flushed before attempting the exec().
a2008d6d
GS
4914
4915The return value is the exit status of the program as
19799a22
GS
4916returned by the C<wait> call. To get the actual exit value divide by
4917256. See also L</exec>. This is I<not> what you want to use to capture
54310121 4918the output from a command, for that you should use merely backticks or
d5a9bfb0
IZ
4919C<qx//>, as described in L<perlop/"`STRING`">. Return value of -1
4920indicates a failure to start the program (inspect $! for the reason).
a0d0e21e 4921
19799a22
GS
4922Like C<exec>, C<system> allows you to lie to a program about its name if
4923you use the C<system PROGRAM LIST> syntax. Again, see L</exec>.
8bf3b016 4924
19799a22 4925Because C<system> and backticks block C<SIGINT> and C<SIGQUIT>, killing the
28757baa 4926program they're running doesn't actually interrupt your program.
4927
4928 @args = ("command", "arg1", "arg2");
54310121 4929 system(@args) == 0
4930 or die "system @args failed: $?"
28757baa 4931
5a964f20
TC
4932You can check all the failure possibilities by inspecting
4933C<$?> like this:
28757baa 4934
5a964f20
TC
4935 $exit_value = $? >> 8;
4936 $signal_num = $? & 127;
4937 $dumped_core = $? & 128;
f86702cc 4938
c8db1d39
TC
4939When the arguments get executed via the system shell, results
4940and return codes will be subject to its quirks and capabilities.
4941See L<perlop/"`STRING`"> and L</exec> for details.
bb32b41a 4942
a0d0e21e
LW
4943=item syswrite FILEHANDLE,SCALAR,LENGTH,OFFSET
4944
4945=item syswrite FILEHANDLE,SCALAR,LENGTH
4946
145d37e2
GA
4947=item syswrite FILEHANDLE,SCALAR
4948
a0d0e21e 4949Attempts to write LENGTH bytes of data from variable SCALAR to the
19799a22
GS
4950specified FILEHANDLE, using the system call write(2). If LENGTH
4951is not specified, writes whole SCALAR. It bypasses stdio, so mixing
4952this with reads (other than C<sysread())>, C<print>, C<write>,
4953C<seek>, C<tell>, or C<eof> may cause confusion because stdio
4954usually buffers data. Returns the number of bytes actually written,
4955or C<undef> if there was an error. If the LENGTH is greater than
4956the available data in the SCALAR after the OFFSET, only as much
4957data as is available will be written.
ff68c719 4958
4959An OFFSET may be specified to write the data from some part of the
4960string other than the beginning. A negative OFFSET specifies writing
fb73857a 4961that many bytes counting backwards from the end of the string. In the
4962case the SCALAR is empty you can use OFFSET but only zero offset.
a0d0e21e
LW
4963
4964=item tell FILEHANDLE
4965
4966=item tell
4967
8903cb82 4968Returns the current position for FILEHANDLE. FILEHANDLE may be an
a0d0e21e 4969expression whose value gives the name of the actual filehandle. If
2b5ab1e7
TC
4970FILEHANDLE is omitted, assumes the file last read.
4971
19799a22 4972There is no C<systell> function. Use C<sysseek(FH, 0, 1)> for that.
a0d0e21e
LW
4973
4974=item telldir DIRHANDLE
4975
19799a22
GS
4976Returns the current position of the C<readdir> routines on DIRHANDLE.
4977Value may be given to C<seekdir> to access a particular location in a
a0d0e21e
LW
4978directory. Has the same caveats about possible directory compaction as
4979the corresponding system library routine.
4980
4633a7c4 4981=item tie VARIABLE,CLASSNAME,LIST
a0d0e21e 4982
4633a7c4
LW
4983This function binds a variable to a package class that will provide the
4984implementation for the variable. VARIABLE is the name of the variable
4985to be enchanted. CLASSNAME is the name of a class implementing objects
19799a22 4986of correct type. Any additional arguments are passed to the C<new>
8a059744
GS
4987method of the class (meaning C<TIESCALAR>, C<TIEHANDLE>, C<TIEARRAY>,
4988or C<TIEHASH>). Typically these are arguments such as might be passed
19799a22
GS
4989to the C<dbm_open()> function of C. The object returned by the C<new>
4990method is also returned by the C<tie> function, which would be useful
8a059744 4991if you want to access other methods in CLASSNAME.
a0d0e21e 4992
19799a22 4993Note that functions such as C<keys> and C<values> may return huge lists
1d2dff63 4994when used on large objects, like DBM files. You may prefer to use the
19799a22 4995C<each> function to iterate over such. Example:
a0d0e21e
LW
4996
4997 # print out history file offsets
4633a7c4 4998 use NDBM_File;
da0045b7 4999 tie(%HIST, 'NDBM_File', '/usr/lib/news/history', 1, 0);
a0d0e21e
LW
5000 while (($key,$val) = each %HIST) {
5001 print $key, ' = ', unpack('L',$val), "\n";
5002 }
5003 untie(%HIST);
5004
aa689395 5005A class implementing a hash should have the following methods:
a0d0e21e 5006
4633a7c4 5007 TIEHASH classname, LIST
a0d0e21e
LW
5008 FETCH this, key
5009 STORE this, key, value
5010 DELETE this, key
8a059744 5011 CLEAR this
a0d0e21e
LW
5012 EXISTS this, key
5013 FIRSTKEY this
5014 NEXTKEY this, lastkey
8a059744 5015 DESTROY this
a0d0e21e 5016
4633a7c4 5017A class implementing an ordinary array should have the following methods:
a0d0e21e 5018
4633a7c4 5019 TIEARRAY classname, LIST
a0d0e21e
LW
5020 FETCH this, key
5021 STORE this, key, value
8a059744
GS
5022 FETCHSIZE this
5023 STORESIZE this, count
5024 CLEAR this
5025 PUSH this, LIST
5026 POP this
5027 SHIFT this
5028 UNSHIFT this, LIST
5029 SPLICE this, offset, length, LIST
5030 EXTEND this, count
5031 DESTROY this
5032
5033A class implementing a file handle should have the following methods:
5034
5035 TIEHANDLE classname, LIST
5036 READ this, scalar, length, offset
5037 READLINE this
5038 GETC this
5039 WRITE this, scalar, length, offset
5040 PRINT this, LIST
5041 PRINTF this, format, LIST
5042 CLOSE this
5043 DESTROY this
a0d0e21e 5044
4633a7c4 5045A class implementing a scalar should have the following methods:
a0d0e21e 5046
4633a7c4 5047 TIESCALAR classname, LIST
54310121 5048 FETCH this,
a0d0e21e 5049 STORE this, value
8a059744
GS
5050 DESTROY this
5051
5052Not all methods indicated above need be implemented. See L<perltie>,
2b5ab1e7 5053L<Tie::Hash>, L<Tie::Array>, L<Tie::Scalar>, and L<Tie::Handle>.
a0d0e21e 5054
19799a22 5055Unlike C<dbmopen>, the C<tie> function will not use or require a module
4633a7c4 5056for you--you need to do that explicitly yourself. See L<DB_File>
19799a22 5057or the F<Config> module for interesting C<tie> implementations.
4633a7c4 5058
b687b08b 5059For further details see L<perltie>, L<"tied VARIABLE">.
cc6b7395 5060
f3cbc334
RS
5061=item tied VARIABLE
5062
5063Returns a reference to the object underlying VARIABLE (the same value
19799a22 5064that was originally returned by the C<tie> call that bound the variable
f3cbc334
RS
5065to a package.) Returns the undefined value if VARIABLE isn't tied to a
5066package.
5067
a0d0e21e
LW
5068=item time
5069
da0045b7 5070Returns the number of non-leap seconds since whatever time the system
5071considers to be the epoch (that's 00:00:00, January 1, 1904 for MacOS,
5072and 00:00:00 UTC, January 1, 1970 for most other systems).
19799a22 5073Suitable for feeding to C<gmtime> and C<localtime>.
a0d0e21e 5074
68f8bed4
JH
5075For measuring time in better granularity than one second,
5076you may use either the Time::HiRes module from CPAN, or
5077if you have gettimeofday(2), you may be able to use the
5078C<syscall> interface of Perl, see L<perlfaq8> for details.
5079
a0d0e21e
LW
5080=item times
5081
1d2dff63 5082Returns a four-element list giving the user and system times, in
a0d0e21e
LW
5083seconds, for this process and the children of this process.
5084
5085 ($user,$system,$cuser,$csystem) = times;
5086
5087=item tr///
5088
19799a22 5089The transliteration operator. Same as C<y///>. See L<perlop>.
a0d0e21e
LW
5090
5091=item truncate FILEHANDLE,LENGTH
5092
5093=item truncate EXPR,LENGTH
5094
5095Truncates the file opened on FILEHANDLE, or named by EXPR, to the
5096specified length. Produces a fatal error if truncate isn't implemented
19799a22 5097on your system. Returns true if successful, the undefined value
a3cb178b 5098otherwise.
a0d0e21e
LW
5099
5100=item uc EXPR
5101
54310121 5102=item uc
bbce6d69 5103
a0d0e21e 5104Returns an uppercased version of EXPR. This is the internal function
7660c0ab 5105implementing the C<\U> escape in double-quoted strings.
a034a98d 5106Respects current LC_CTYPE locale if C<use locale> in force. See L<perllocale>.
a0ed51b3 5107Under Unicode (C<use utf8>) it uses the standard Unicode uppercase mappings. (It
19799a22 5108does not attempt to do titlecase mapping on initial letters. See C<ucfirst> for that.)
a0d0e21e 5109
7660c0ab 5110If EXPR is omitted, uses C<$_>.
bbce6d69 5111
a0d0e21e
LW
5112=item ucfirst EXPR
5113
54310121 5114=item ucfirst
bbce6d69 5115
a0ed51b3
LW
5116Returns the value of EXPR with the first character
5117in uppercase (titlecase in Unicode). This is
7660c0ab 5118the internal function implementing the C<\u> escape in double-quoted strings.
2b5ab1e7
TC
5119Respects current LC_CTYPE locale if C<use locale> in force. See L<perllocale>
5120and L<utf8>.
a0d0e21e 5121
7660c0ab 5122If EXPR is omitted, uses C<$_>.
bbce6d69 5123
a0d0e21e
LW
5124=item umask EXPR
5125
5126=item umask
5127
2f9daede 5128Sets the umask for the process to EXPR and returns the previous value.
eec2d3df
GS
5129If EXPR is omitted, merely returns the current umask.
5130
0591cd52
NT
5131The Unix permission C<rwxr-x---> is represented as three sets of three
5132bits, or three octal digits: C<0750> (the leading 0 indicates octal
b5a41e52 5133and isn't one of the digits). The C<umask> value is such a number
0591cd52
NT
5134representing disabled permissions bits. The permission (or "mode")
5135values you pass C<mkdir> or C<sysopen> are modified by your umask, so
5136even if you tell C<sysopen> to create a file with permissions C<0777>,
5137if your umask is C<0022> then the file will actually be created with
5138permissions C<0755>. If your C<umask> were C<0027> (group can't
5139write; others can't read, write, or execute), then passing
19799a22 5140C<sysopen> C<0666> would create a file with mode C<0640> (C<0666 &~
0591cd52
NT
5141027> is C<0640>).
5142
5143Here's some advice: supply a creation mode of C<0666> for regular
19799a22
GS
5144files (in C<sysopen>) and one of C<0777> for directories (in
5145C<mkdir>) and executable files. This gives users the freedom of
0591cd52
NT
5146choice: if they want protected files, they might choose process umasks
5147of C<022>, C<027>, or even the particularly antisocial mask of C<077>.
5148Programs should rarely if ever make policy decisions better left to
5149the user. The exception to this is when writing files that should be
5150kept private: mail files, web browser cookies, I<.rhosts> files, and
5151so on.
5152
f86cebdf 5153If umask(2) is not implemented on your system and you are trying to
eec2d3df 5154restrict access for I<yourself> (i.e., (EXPR & 0700) > 0), produces a
f86cebdf 5155fatal error at run time. If umask(2) is not implemented and you are
eec2d3df
GS
5156not trying to restrict access for yourself, returns C<undef>.
5157
5158Remember that a umask is a number, usually given in octal; it is I<not> a
5159string of octal digits. See also L</oct>, if all you have is a string.
a0d0e21e
LW
5160
5161=item undef EXPR
5162
5163=item undef
5164
54310121 5165Undefines the value of EXPR, which must be an lvalue. Use only on a
19799a22
GS
5166scalar value, an array (using C<@>), a hash (using C<%>), a subroutine
5167(using C<&>), or a typeglob (using <*>). (Saying C<undef $hash{$key}>
20408e3c
GS
5168will probably not do what you expect on most predefined variables or
5169DBM list values, so don't do that; see L<delete>.) Always returns the
5170undefined value. You can omit the EXPR, in which case nothing is
5171undefined, but you still get an undefined value that you could, for
5172instance, return from a subroutine, assign to a variable or pass as a
5173parameter. Examples:
a0d0e21e
LW
5174
5175 undef $foo;
f86cebdf 5176 undef $bar{'blurfl'}; # Compare to: delete $bar{'blurfl'};
a0d0e21e 5177 undef @ary;
aa689395 5178 undef %hash;
a0d0e21e 5179 undef &mysub;
20408e3c 5180 undef *xyz; # destroys $xyz, @xyz, %xyz, &xyz, etc.
54310121 5181 return (wantarray ? (undef, $errmsg) : undef) if $they_blew_it;
2f9daede
TP
5182 select undef, undef, undef, 0.25;
5183 ($a, $b, undef, $c) = &foo; # Ignore third value returned
a0d0e21e 5184
5a964f20
TC
5185Note that this is a unary operator, not a list operator.
5186
a0d0e21e
LW
5187=item unlink LIST
5188
54310121 5189=item unlink
bbce6d69 5190
a0d0e21e
LW
5191Deletes a list of files. Returns the number of files successfully
5192deleted.
5193
5194 $cnt = unlink 'a', 'b', 'c';
5195 unlink @goners;
5196 unlink <*.bak>;
5197
19799a22 5198Note: C<unlink> will not delete directories unless you are superuser and
a0d0e21e
LW
5199the B<-U> flag is supplied to Perl. Even if these conditions are
5200met, be warned that unlinking a directory can inflict damage on your
19799a22 5201filesystem. Use C<rmdir> instead.
a0d0e21e 5202
7660c0ab 5203If LIST is omitted, uses C<$_>.
bbce6d69 5204
a0d0e21e
LW
5205=item unpack TEMPLATE,EXPR
5206
19799a22 5207C<unpack> does the reverse of C<pack>: it takes a string
2b6c5635 5208and expands it out into a list of values.
19799a22 5209(In scalar context, it returns merely the first value produced.)
2b6c5635
GS
5210
5211The string is broken into chunks described by the TEMPLATE. Each chunk
5212is converted separately to a value. Typically, either the string is a result
5213of C<pack>, or the bytes of the string represent a C structure of some
5214kind.
5215
19799a22 5216The TEMPLATE has the same format as in the C<pack> function.
a0d0e21e
LW
5217Here's a subroutine that does substring:
5218
5219 sub substr {
5a964f20 5220 my($what,$where,$howmuch) = @_;
a0d0e21e
LW
5221 unpack("x$where a$howmuch", $what);
5222 }
5223
5224and then there's
5225
5226 sub ordinal { unpack("c",$_[0]); } # same as ord()
5227
2b6c5635 5228In addition to fields allowed in pack(), you may prefix a field with
61eff3bc
JH
5229a %<number> to indicate that
5230you want a <number>-bit checksum of the items instead of the items
2b6c5635
GS
5231themselves. Default is a 16-bit checksum. Checksum is calculated by
5232summing numeric values of expanded values (for string fields the sum of
5233C<ord($char)> is taken, for bit fields the sum of zeroes and ones).
5234
5235For example, the following
a0d0e21e
LW
5236computes the same number as the System V sum program:
5237
19799a22
GS
5238 $checksum = do {
5239 local $/; # slurp!
5240 unpack("%32C*",<>) % 65535;
5241 };
a0d0e21e
LW
5242
5243The following efficiently counts the number of set bits in a bit vector:
5244
5245 $setbits = unpack("%32b*", $selectmask);
5246
951ba7fe 5247The C<p> and C<P> formats should be used with care. Since Perl
3160c391
GS
5248has no way of checking whether the value passed to C<unpack()>
5249corresponds to a valid memory location, passing a pointer value that's
5250not known to be valid is likely to have disastrous consequences.
5251
2b6c5635
GS
5252If the repeat count of a field is larger than what the remainder of
5253the input string allows, repeat count is decreased. If the input string
5254is longer than one described by the TEMPLATE, the rest is ignored.
5255
851646ae 5256See L</pack> for more examples and notes.
5a929a98 5257
98293880
JH
5258=item untie VARIABLE
5259
19799a22 5260Breaks the binding between a variable and a package. (See C<tie>.)
98293880 5261
a0d0e21e
LW
5262=item unshift ARRAY,LIST
5263
19799a22 5264Does the opposite of a C<shift>. Or the opposite of a C<push>,
a0d0e21e
LW
5265depending on how you look at it. Prepends list to the front of the
5266array, and returns the new number of elements in the array.
5267
5268 unshift(ARGV, '-e') unless $ARGV[0] =~ /^-/;
5269
5270Note the LIST is prepended whole, not one element at a time, so the
19799a22 5271prepended elements stay in the same order. Use C<reverse> to do the
a0d0e21e
LW
5272reverse.
5273
f6c8478c
GS
5274=item use Module VERSION LIST
5275
5276=item use Module VERSION
5277
a0d0e21e
LW
5278=item use Module LIST
5279
5280=item use Module
5281
da0045b7 5282=item use VERSION
5283
a0d0e21e
LW
5284Imports some semantics into the current package from the named module,
5285generally by aliasing certain subroutine or variable names into your
5286package. It is exactly equivalent to
5287
5288 BEGIN { require Module; import Module LIST; }
5289
54310121 5290except that Module I<must> be a bareword.
da0045b7 5291
dd629d5b 5292VERSION, which can be specified as a literal of the form v5.6.1, demands
44dcb63b
GS
5293that the current version of Perl (C<$^V> or $PERL_VERSION) be at least
5294as recent as that version. (For compatibility with older versions of Perl,
5295a numeric literal will also be interpreted as VERSION.) If the version
5296of the running Perl interpreter is less than VERSION, then an error
5297message is printed and Perl exits immediately without attempting to
5298parse the rest of the file. Compare with L</require>, which can do a
5299similar check at run time.
16070b82 5300
dd629d5b
GS
5301 use v5.6.1; # compile time version check
5302 use 5.6.1; # ditto
5303 use 5.005_03; # float version allowed for compatibility
16070b82
GS
5304
5305This is often useful if you need to check the current Perl version before
5306C<use>ing library modules that have changed in incompatible ways from
5307older versions of Perl. (We try not to do this more than we have to.)
da0045b7 5308
19799a22 5309The C<BEGIN> forces the C<require> and C<import> to happen at compile time. The
7660c0ab 5310C<require> makes sure the module is loaded into memory if it hasn't been
19799a22
GS
5311yet. The C<import> is not a builtin--it's just an ordinary static method
5312call into the C<Module> package to tell the module to import the list of
a0d0e21e 5313features back into the current package. The module can implement its
19799a22
GS
5314C<import> method any way it likes, though most modules just choose to
5315derive their C<import> method via inheritance from the C<Exporter> class that
5316is defined in the C<Exporter> module. See L<Exporter>. If no C<import>
10696ff6 5317method can be found then the call is skipped.
cb1a09d0
AD
5318
5319If you don't want your namespace altered, explicitly supply an empty list:
5320
5321 use Module ();
5322
5323That is exactly equivalent to
5324
5a964f20 5325 BEGIN { require Module }
a0d0e21e 5326
da0045b7 5327If the VERSION argument is present between Module and LIST, then the
71be2cbc 5328C<use> will call the VERSION method in class Module with the given
5329version as an argument. The default VERSION method, inherited from
44dcb63b 5330the UNIVERSAL class, croaks if the given version is larger than the
f6c8478c
GS
5331value of the variable C<$Module::VERSION>.
5332
5333Again, there is a distinction between omitting LIST (C<import> called
5334with no arguments) and an explicit empty LIST C<()> (C<import> not
5335called). Note that there is no comma after VERSION!
da0045b7 5336
a0d0e21e
LW
5337Because this is a wide-open interface, pragmas (compiler directives)
5338are also implemented this way. Currently implemented pragmas are:
5339
5340 use integer;
4633a7c4 5341 use diagnostics;
4438c4b7
JH
5342 use sigtrap qw(SEGV BUS);
5343 use strict qw(subs vars refs);
5344 use subs qw(afunc blurfl);
5345 use warnings qw(all);
a0d0e21e 5346
19799a22 5347Some of these pseudo-modules import semantics into the current
5a964f20
TC
5348block scope (like C<strict> or C<integer>, unlike ordinary modules,
5349which import symbols into the current package (which are effective
5350through the end of the file).
a0d0e21e 5351
19799a22
GS
5352There's a corresponding C<no> command that unimports meanings imported
5353by C<use>, i.e., it calls C<unimport Module LIST> instead of C<import>.
a0d0e21e
LW
5354
5355 no integer;
5356 no strict 'refs';
4438c4b7 5357 no warnings;
a0d0e21e 5358
19799a22 5359If no C<unimport> method can be found the call fails with a fatal error.
55497cff 5360
a0d0e21e
LW
5361See L<perlmod> for a list of standard modules and pragmas.
5362
5363=item utime LIST
5364
5365Changes the access and modification times on each file of a list of
5366files. The first two elements of the list must be the NUMERICAL access
5367and modification times, in that order. Returns the number of files
46cdf678 5368successfully changed. The inode change time of each file is set
19799a22 5369to the current time. This code has the same effect as the C<touch>
a3cb178b 5370command if the files already exist:
a0d0e21e
LW
5371
5372 #!/usr/bin/perl
5373 $now = time;
5374 utime $now, $now, @ARGV;
5375
aa689395 5376=item values HASH
a0d0e21e 5377
1d2dff63
GS
5378Returns a list consisting of all the values of the named hash. (In a
5379scalar context, returns the number of values.) The values are
ab192400
GS
5380returned in an apparently random order. The actual random order is
5381subject to change in future versions of perl, but it is guaranteed to
19799a22 5382be the same order as either the C<keys> or C<each> function would
ab192400
GS
5383produce on the same (unmodified) hash.
5384
2b5ab1e7
TC
5385Note that you cannot modify the values of a hash this way, because the
5386returned list is just a copy. You need to use a hash slice for that,
5387since it's lvaluable in a way that values() is not.
5388
5389 for (values %hash) { s/foo/bar/g } # FAILS!
5390 for (@hash{keys %hash}) { s/foo/bar/g } # ok
5391
5392As a side effect, calling values() resets the HASH's internal iterator.
19799a22 5393See also C<keys>, C<each>, and C<sort>.
a0d0e21e
LW
5394
5395=item vec EXPR,OFFSET,BITS
5396
e69129f1
GS
5397Treats the string in EXPR as a bit vector made up of elements of
5398width BITS, and returns the value of the element specified by OFFSET
5399as an unsigned integer. BITS therefore specifies the number of bits
5400that are reserved for each element in the bit vector. This must
5401be a power of two from 1 to 32 (or 64, if your platform supports
5402that).
c5a0f51a 5403
c73032f5
IZ
5404If BITS is 8, "elements" coincide with bytes of the input string.
5405
5406If BITS is 16 or more, bytes of the input string are grouped into chunks
5407of size BITS/8, and each group is converted to a number as with
5408pack()/unpack() with big-endian formats C<n>/C<N> (and analoguously
5409for BITS==64). See L<"pack"> for details.
5410
5411If bits is 4 or less, the string is broken into bytes, then the bits
5412of each byte are broken into 8/BITS groups. Bits of a byte are
5413numbered in a little-endian-ish way, as in C<0x01>, C<0x02>,
5414C<0x04>, C<0x08>, C<0x10>, C<0x20>, C<0x40>, C<0x80>. For example,
5415breaking the single input byte C<chr(0x36)> into two groups gives a list
5416C<(0x6, 0x3)>; breaking it into 4 groups gives C<(0x2, 0x1, 0x3, 0x0)>.
5417
81e118e0
JH
5418C<vec> may also be assigned to, in which case parentheses are needed
5419to give the expression the correct precedence as in
22dc801b 5420
5421 vec($image, $max_x * $x + $y, 8) = 3;
a0d0e21e 5422
fac70343
GS
5423If the selected element is off the end of the string, the value 0 is
5424returned. If an element off the end of the string is written to,
5425Perl will first extend the string with sufficiently many zero bytes.
5426
5427Strings created with C<vec> can also be manipulated with the logical
5428operators C<|>, C<&>, C<^>, and C<~>. These operators will assume a bit
5429vector operation is desired when both operands are strings.
c5a0f51a 5430See L<perlop/"Bitwise String Operators">.
a0d0e21e 5431
7660c0ab 5432The following code will build up an ASCII string saying C<'PerlPerlPerl'>.
19799a22 5433The comments show the string after each step. Note that this code works
cca87523
GS
5434in the same way on big-endian or little-endian machines.
5435
5436 my $foo = '';
5437 vec($foo, 0, 32) = 0x5065726C; # 'Perl'
e69129f1
GS
5438
5439 # $foo eq "Perl" eq "\x50\x65\x72\x6C", 32 bits
5440 print vec($foo, 0, 8); # prints 80 == 0x50 == ord('P')
5441
cca87523
GS
5442 vec($foo, 2, 16) = 0x5065; # 'PerlPe'
5443 vec($foo, 3, 16) = 0x726C; # 'PerlPerl'
5444 vec($foo, 8, 8) = 0x50; # 'PerlPerlP'
5445 vec($foo, 9, 8) = 0x65; # 'PerlPerlPe'
5446 vec($foo, 20, 4) = 2; # 'PerlPerlPe' . "\x02"
f86cebdf
GS
5447 vec($foo, 21, 4) = 7; # 'PerlPerlPer'
5448 # 'r' is "\x72"
cca87523
GS
5449 vec($foo, 45, 2) = 3; # 'PerlPerlPer' . "\x0c"
5450 vec($foo, 93, 1) = 1; # 'PerlPerlPer' . "\x2c"
f86cebdf
GS
5451 vec($foo, 94, 1) = 1; # 'PerlPerlPerl'
5452 # 'l' is "\x6c"
cca87523 5453
19799a22 5454To transform a bit vector into a string or list of 0's and 1's, use these:
a0d0e21e
LW
5455
5456 $bits = unpack("b*", $vector);
5457 @bits = split(//, unpack("b*", $vector));
5458
7660c0ab 5459If you know the exact length in bits, it can be used in place of the C<*>.
a0d0e21e 5460
e69129f1
GS
5461Here is an example to illustrate how the bits actually fall in place:
5462
5463 #!/usr/bin/perl -wl
5464
5465 print <<'EOT';
5466 0 1 2 3
5467 unpack("V",$_) 01234567890123456789012345678901
5468 ------------------------------------------------------------------
5469 EOT
5470
5471 for $w (0..3) {
5472 $width = 2**$w;
5473 for ($shift=0; $shift < $width; ++$shift) {
5474 for ($off=0; $off < 32/$width; ++$off) {
5475 $str = pack("B*", "0"x32);
5476 $bits = (1<<$shift);
5477 vec($str, $off, $width) = $bits;
5478 $res = unpack("b*",$str);
5479 $val = unpack("V", $str);
5480 write;
5481 }
5482 }
5483 }
5484
5485 format STDOUT =
5486 vec($_,@#,@#) = @<< == @######### @>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>
5487 $off, $width, $bits, $val, $res
5488 .
5489 __END__
5490
5491Regardless of the machine architecture on which it is run, the above
5492example should print the following table:
5493
5494 0 1 2 3
5495 unpack("V",$_) 01234567890123456789012345678901
5496 ------------------------------------------------------------------
5497 vec($_, 0, 1) = 1 == 1 10000000000000000000000000000000
5498 vec($_, 1, 1) = 1 == 2 01000000000000000000000000000000
5499 vec($_, 2, 1) = 1 == 4 00100000000000000000000000000000
5500 vec($_, 3, 1) = 1 == 8 00010000000000000000000000000000
5501 vec($_, 4, 1) = 1 == 16 00001000000000000000000000000000
5502 vec($_, 5, 1) = 1 == 32 00000100000000000000000000000000
5503 vec($_, 6, 1) = 1 == 64 00000010000000000000000000000000
5504 vec($_, 7, 1) = 1 == 128 00000001000000000000000000000000
5505 vec($_, 8, 1) = 1 == 256 00000000100000000000000000000000
5506 vec($_, 9, 1) = 1 == 512 00000000010000000000000000000000
5507 vec($_,10, 1) = 1 == 1024 00000000001000000000000000000000
5508 vec($_,11, 1) = 1 == 2048 00000000000100000000000000000000
5509 vec($_,12, 1) = 1 == 4096 00000000000010000000000000000000
5510 vec($_,13, 1) = 1 == 8192 00000000000001000000000000000000
5511 vec($_,14, 1) = 1 == 16384 00000000000000100000000000000000
5512 vec($_,15, 1) = 1 == 32768 00000000000000010000000000000000
5513 vec($_,16, 1) = 1 == 65536 00000000000000001000000000000000
5514 vec($_,17, 1) = 1 == 131072 00000000000000000100000000000000
5515 vec($_,18, 1) = 1 == 262144 00000000000000000010000000000000
5516 vec($_,19, 1) = 1 == 524288 00000000000000000001000000000000
5517 vec($_,20, 1) = 1 == 1048576 00000000000000000000100000000000
5518 vec($_,21, 1) = 1 == 2097152 00000000000000000000010000000000
5519 vec($_,22, 1) = 1 == 4194304 00000000000000000000001000000000
5520 vec($_,23, 1) = 1 == 8388608 00000000000000000000000100000000
5521 vec($_,24, 1) = 1 == 16777216 00000000000000000000000010000000
5522 vec($_,25, 1) = 1 == 33554432 00000000000000000000000001000000
5523 vec($_,26, 1) = 1 == 67108864 00000000000000000000000000100000
5524 vec($_,27, 1) = 1 == 134217728 00000000000000000000000000010000
5525 vec($_,28, 1) = 1 == 268435456 00000000000000000000000000001000
5526 vec($_,29, 1) = 1 == 536870912 00000000000000000000000000000100
5527 vec($_,30, 1) = 1 == 1073741824 00000000000000000000000000000010
5528 vec($_,31, 1) = 1 == 2147483648 00000000000000000000000000000001
5529 vec($_, 0, 2) = 1 == 1 10000000000000000000000000000000
5530 vec($_, 1, 2) = 1 == 4 00100000000000000000000000000000
5531 vec($_, 2, 2) = 1 == 16 00001000000000000000000000000000
5532 vec($_, 3, 2) = 1 == 64 00000010000000000000000000000000
5533 vec($_, 4, 2) = 1 == 256 00000000100000000000000000000000
5534 vec($_, 5, 2) = 1 == 1024 00000000001000000000000000000000
5535 vec($_, 6, 2) = 1 == 4096 00000000000010000000000000000000
5536 vec($_, 7, 2) = 1 == 16384 00000000000000100000000000000000
5537 vec($_, 8, 2) = 1 == 65536 00000000000000001000000000000000
5538 vec($_, 9, 2) = 1 == 262144 00000000000000000010000000000000
5539 vec($_,10, 2) = 1 == 1048576 00000000000000000000100000000000
5540 vec($_,11, 2) = 1 == 4194304 00000000000000000000001000000000
5541 vec($_,12, 2) = 1 == 16777216 00000000000000000000000010000000
5542 vec($_,13, 2) = 1 == 67108864 00000000000000000000000000100000
5543 vec($_,14, 2) = 1 == 268435456 00000000000000000000000000001000
5544 vec($_,15, 2) = 1 == 1073741824 00000000000000000000000000000010
5545 vec($_, 0, 2) = 2 == 2 01000000000000000000000000000000
5546 vec($_, 1, 2) = 2 == 8 00010000000000000000000000000000
5547 vec($_, 2, 2) = 2 == 32 00000100000000000000000000000000
5548 vec($_, 3, 2) = 2 == 128 00000001000000000000000000000000
5549 vec($_, 4, 2) = 2 == 512 00000000010000000000000000000000
5550 vec($_, 5, 2) = 2 == 2048 00000000000100000000000000000000
5551 vec($_, 6, 2) = 2 == 8192 00000000000001000000000000000000
5552 vec($_, 7, 2) = 2 == 32768 00000000000000010000000000000000
5553 vec($_, 8, 2) = 2 == 131072 00000000000000000100000000000000
5554 vec($_, 9, 2) = 2 == 524288 00000000000000000001000000000000
5555 vec($_,10, 2) = 2 == 2097152 00000000000000000000010000000000
5556 vec($_,11, 2) = 2 == 8388608 00000000000000000000000100000000
5557 vec($_,12, 2) = 2 == 33554432 00000000000000000000000001000000
5558 vec($_,13, 2) = 2 == 134217728 00000000000000000000000000010000
5559 vec($_,14, 2) = 2 == 536870912 00000000000000000000000000000100
5560 vec($_,15, 2) = 2 == 2147483648 00000000000000000000000000000001
5561 vec($_, 0, 4) = 1 == 1 10000000000000000000000000000000
5562 vec($_, 1, 4) = 1 == 16 00001000000000000000000000000000
5563 vec($_, 2, 4) = 1 == 256 00000000100000000000000000000000
5564 vec($_, 3, 4) = 1 == 4096 00000000000010000000000000000000
5565 vec($_, 4, 4) = 1 == 65536 00000000000000001000000000000000
5566 vec($_, 5, 4) = 1 == 1048576 00000000000000000000100000000000
5567 vec($_, 6, 4) = 1 == 16777216 00000000000000000000000010000000
5568 vec($_, 7, 4) = 1 == 268435456 00000000000000000000000000001000
5569 vec($_, 0, 4) = 2 == 2 01000000000000000000000000000000
5570 vec($_, 1, 4) = 2 == 32 00000100000000000000000000000000
5571 vec($_, 2, 4) = 2 == 512 00000000010000000000000000000000
5572 vec($_, 3, 4) = 2 == 8192 00000000000001000000000000000000
5573 vec($_, 4, 4) = 2 == 131072 00000000000000000100000000000000
5574 vec($_, 5, 4) = 2 == 2097152 00000000000000000000010000000000
5575 vec($_, 6, 4) = 2 == 33554432 00000000000000000000000001000000
5576 vec($_, 7, 4) = 2 == 536870912 00000000000000000000000000000100
5577 vec($_, 0, 4) = 4 == 4 00100000000000000000000000000000
5578 vec($_, 1, 4) = 4 == 64 00000010000000000000000000000000
5579 vec($_, 2, 4) = 4 == 1024 00000000001000000000000000000000
5580 vec($_, 3, 4) = 4 == 16384 00000000000000100000000000000000
5581 vec($_, 4, 4) = 4 == 262144 00000000000000000010000000000000
5582 vec($_, 5, 4) = 4 == 4194304 00000000000000000000001000000000
5583 vec($_, 6, 4) = 4 == 67108864 00000000000000000000000000100000
5584 vec($_, 7, 4) = 4 == 1073741824 00000000000000000000000000000010
5585 vec($_, 0, 4) = 8 == 8 00010000000000000000000000000000
5586 vec($_, 1, 4) = 8 == 128 00000001000000000000000000000000
5587 vec($_, 2, 4) = 8 == 2048 00000000000100000000000000000000
5588 vec($_, 3, 4) = 8 == 32768 00000000000000010000000000000000
5589 vec($_, 4, 4) = 8 == 524288 00000000000000000001000000000000
5590 vec($_, 5, 4) = 8 == 8388608 00000000000000000000000100000000
5591 vec($_, 6, 4) = 8 == 134217728 00000000000000000000000000010000
5592 vec($_, 7, 4) = 8 == 2147483648 00000000000000000000000000000001
5593 vec($_, 0, 8) = 1 == 1 10000000000000000000000000000000
5594 vec($_, 1, 8) = 1 == 256 00000000100000000000000000000000
5595 vec($_, 2, 8) = 1 == 65536 00000000000000001000000000000000
5596 vec($_, 3, 8) = 1 == 16777216 00000000000000000000000010000000
5597 vec($_, 0, 8) = 2 == 2 01000000000000000000000000000000
5598 vec($_, 1, 8) = 2 == 512 00000000010000000000000000000000
5599 vec($_, 2, 8) = 2 == 131072 00000000000000000100000000000000
5600 vec($_, 3, 8) = 2 == 33554432 00000000000000000000000001000000
5601 vec($_, 0, 8) = 4 == 4 00100000000000000000000000000000
5602 vec($_, 1, 8) = 4 == 1024 00000000001000000000000000000000
5603 vec($_, 2, 8) = 4 == 262144 00000000000000000010000000000000
5604 vec($_, 3, 8) = 4 == 67108864 00000000000000000000000000100000
5605 vec($_, 0, 8) = 8 == 8 00010000000000000000000000000000
5606 vec($_, 1, 8) = 8 == 2048 00000000000100000000000000000000
5607 vec($_, 2, 8) = 8 == 524288 00000000000000000001000000000000
5608 vec($_, 3, 8) = 8 == 134217728 00000000000000000000000000010000
5609 vec($_, 0, 8) = 16 == 16 00001000000000000000000000000000
5610 vec($_, 1, 8) = 16 == 4096 00000000000010000000000000000000
5611 vec($_, 2, 8) = 16 == 1048576 00000000000000000000100000000000
5612 vec($_, 3, 8) = 16 == 268435456 00000000000000000000000000001000
5613 vec($_, 0, 8) = 32 == 32 00000100000000000000000000000000
5614 vec($_, 1, 8) = 32 == 8192 00000000000001000000000000000000
5615 vec($_, 2, 8) = 32 == 2097152 00000000000000000000010000000000
5616 vec($_, 3, 8) = 32 == 536870912 00000000000000000000000000000100
5617 vec($_, 0, 8) = 64 == 64 00000010000000000000000000000000
5618 vec($_, 1, 8) = 64 == 16384 00000000000000100000000000000000
5619 vec($_, 2, 8) = 64 == 4194304 00000000000000000000001000000000
5620 vec($_, 3, 8) = 64 == 1073741824 00000000000000000000000000000010
5621 vec($_, 0, 8) = 128 == 128 00000001000000000000000000000000
5622 vec($_, 1, 8) = 128 == 32768 00000000000000010000000000000000
5623 vec($_, 2, 8) = 128 == 8388608 00000000000000000000000100000000
5624 vec($_, 3, 8) = 128 == 2147483648 00000000000000000000000000000001
5625
a0d0e21e
LW
5626=item wait
5627
2b5ab1e7
TC
5628Behaves like the wait(2) system call on your system: it waits for a child
5629process to terminate and returns the pid of the deceased process, or
19799a22 5630C<-1> if there are no child processes. The status is returned in C<$?>.
2b5ab1e7
TC
5631Note that a return value of C<-1> could mean that child processes are
5632being automatically reaped, as described in L<perlipc>.
a0d0e21e
LW
5633
5634=item waitpid PID,FLAGS
5635
2b5ab1e7
TC
5636Waits for a particular child process to terminate and returns the pid of
5637the deceased process, or C<-1> if there is no such child process. On some
5638systems, a value of 0 indicates that there are processes still running.
5639The status is returned in C<$?>. If you say
a0d0e21e 5640
5f05dabc 5641 use POSIX ":sys_wait_h";
5a964f20 5642 #...
2b5ab1e7
TC
5643 do {
5644 $kid = waitpid(-1,&WNOHANG);
5645 } until $kid == -1;
a0d0e21e 5646
2b5ab1e7
TC
5647then you can do a non-blocking wait for all pending zombie processes.
5648Non-blocking wait is available on machines supporting either the
5649waitpid(2) or wait4(2) system calls. However, waiting for a particular
5650pid with FLAGS of C<0> is implemented everywhere. (Perl emulates the
5651system call by remembering the status values of processes that have
5652exited but have not been harvested by the Perl script yet.)
a0d0e21e 5653
2b5ab1e7
TC
5654Note that on some systems, a return value of C<-1> could mean that child
5655processes are being automatically reaped. See L<perlipc> for details,
5656and for other examples.
5a964f20 5657
a0d0e21e
LW
5658=item wantarray
5659
19799a22
GS
5660Returns true if the context of the currently executing subroutine is
5661looking for a list value. Returns false if the context is looking
54310121 5662for a scalar. Returns the undefined value if the context is looking
5663for no value (void context).
a0d0e21e 5664
54310121 5665 return unless defined wantarray; # don't bother doing more
5666 my @a = complex_calculation();
5667 return wantarray ? @a : "@a";
a0d0e21e 5668
19799a22
GS
5669This function should have been named wantlist() instead.
5670
a0d0e21e
LW
5671=item warn LIST
5672
19799a22 5673Produces a message on STDERR just like C<die>, but doesn't exit or throw
774d564b 5674an exception.
5675
7660c0ab
A
5676If LIST is empty and C<$@> already contains a value (typically from a
5677previous eval) that value is used after appending C<"\t...caught">
19799a22
GS
5678to C<$@>. This is useful for staying almost, but not entirely similar to
5679C<die>.
43051805 5680
7660c0ab 5681If C<$@> is empty then the string C<"Warning: Something's wrong"> is used.
43051805 5682
774d564b 5683No message is printed if there is a C<$SIG{__WARN__}> handler
5684installed. It is the handler's responsibility to deal with the message
19799a22 5685as it sees fit (like, for instance, converting it into a C<die>). Most
774d564b 5686handlers must therefore make arrangements to actually display the
19799a22 5687warnings that they are not prepared to deal with, by calling C<warn>
774d564b 5688again in the handler. Note that this is quite safe and will not
5689produce an endless loop, since C<__WARN__> hooks are not called from
5690inside one.
5691
5692You will find this behavior is slightly different from that of
5693C<$SIG{__DIE__}> handlers (which don't suppress the error text, but can
19799a22 5694instead call C<die> again to change it).
774d564b 5695
5696Using a C<__WARN__> handler provides a powerful way to silence all
5697warnings (even the so-called mandatory ones). An example:
5698
5699 # wipe out *all* compile-time warnings
5700 BEGIN { $SIG{'__WARN__'} = sub { warn $_[0] if $DOWARN } }
5701 my $foo = 10;
5702 my $foo = 20; # no warning about duplicate my $foo,
5703 # but hey, you asked for it!
5704 # no compile-time or run-time warnings before here
5705 $DOWARN = 1;
5706
5707 # run-time warnings enabled after here
5708 warn "\$foo is alive and $foo!"; # does show up
5709
5710See L<perlvar> for details on setting C<%SIG> entries, and for more
2b5ab1e7
TC
5711examples. See the Carp module for other kinds of warnings using its
5712carp() and cluck() functions.
a0d0e21e
LW
5713
5714=item write FILEHANDLE
5715
5716=item write EXPR
5717
5718=item write
5719
5a964f20 5720Writes a formatted record (possibly multi-line) to the specified FILEHANDLE,
a0d0e21e 5721using the format associated with that file. By default the format for
54310121 5722a file is the one having the same name as the filehandle, but the
19799a22 5723format for the current output channel (see the C<select> function) may be set
184e9718 5724explicitly by assigning the name of the format to the C<$~> variable.
a0d0e21e
LW
5725
5726Top of form processing is handled automatically: if there is
5727insufficient room on the current page for the formatted record, the
5728page is advanced by writing a form feed, a special top-of-page format
5729is used to format the new page header, and then the record is written.
5730By default the top-of-page format is the name of the filehandle with
5731"_TOP" appended, but it may be dynamically set to the format of your
184e9718 5732choice by assigning the name to the C<$^> variable while the filehandle is
a0d0e21e 5733selected. The number of lines remaining on the current page is in
7660c0ab 5734variable C<$->, which can be set to C<0> to force a new page.
a0d0e21e
LW
5735
5736If FILEHANDLE is unspecified, output goes to the current default output
5737channel, which starts out as STDOUT but may be changed by the
19799a22 5738C<select> operator. If the FILEHANDLE is an EXPR, then the expression
a0d0e21e
LW
5739is evaluated and the resulting string is used to look up the name of
5740the FILEHANDLE at run time. For more on formats, see L<perlform>.
5741
19799a22 5742Note that write is I<not> the opposite of C<read>. Unfortunately.
a0d0e21e
LW
5743
5744=item y///
5745
7660c0ab 5746The transliteration operator. Same as C<tr///>. See L<perlop>.
a0d0e21e
LW
5747
5748=back