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1package Benchmark;
2
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3use strict;
4
5
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6=head1 NAME
7
8a4f6ac2 8Benchmark - benchmark running times of Perl code
431d98c2 9
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10=head1 SYNOPSIS
11
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12 use Benchmark qw(:all) ;
13
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14 timethis ($count, "code");
15
523cc92b 16 # Use Perl code in strings...
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17 timethese($count, {
18 'Name1' => '...code1...',
19 'Name2' => '...code2...',
20 });
21
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22 # ... or use subroutine references.
23 timethese($count, {
24 'Name1' => sub { ...code1... },
25 'Name2' => sub { ...code2... },
26 });
27
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28 # cmpthese can be used both ways as well
29 cmpthese($count, {
30 'Name1' => '...code1...',
31 'Name2' => '...code2...',
32 });
33
34 cmpthese($count, {
35 'Name1' => sub { ...code1... },
36 'Name2' => sub { ...code2... },
37 });
38
39 # ...or in two stages
40 $results = timethese($count,
41 {
42 'Name1' => sub { ...code1... },
43 'Name2' => sub { ...code2... },
44 },
45 'none'
46 );
47 cmpthese( $results ) ;
48
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49 $t = timeit($count, '...other code...')
50 print "$count loops of other code took:",timestr($t),"\n";
51
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52 $t = countit($time, '...other code...')
53 $count = $t->iters ;
54 print "$count loops of other code took:",timestr($t),"\n";
55
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56 # enable hires wallclock timing if possible
57 use Benchmark ':hireswallclock';
58
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59=head1 DESCRIPTION
60
61The Benchmark module encapsulates a number of routines to help you
62figure out how long it takes to execute some code.
63
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64timethis - run a chunk of code several times
65
66timethese - run several chunks of code several times
67
68cmpthese - print results of timethese as a comparison chart
69
70timeit - run a chunk of code and see how long it goes
71
72countit - see how many times a chunk of code runs in a given time
73
74
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75=head2 Methods
76
77=over 10
78
79=item new
80
81Returns the current time. Example:
82
83 use Benchmark;
84 $t0 = new Benchmark;
85 # ... your code here ...
86 $t1 = new Benchmark;
87 $td = timediff($t1, $t0);
a24a9dfe 88 print "the code took:",timestr($td),"\n";
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89
90=item debug
91
92Enables or disable debugging by setting the C<$Benchmark::Debug> flag:
93
523cc92b 94 debug Benchmark 1;
f06db76b 95 $t = timeit(10, ' 5 ** $Global ');
523cc92b 96 debug Benchmark 0;
f06db76b 97
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98=item iters
99
100Returns the number of iterations.
101
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102=back
103
104=head2 Standard Exports
105
523cc92b 106The following routines will be exported into your namespace
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107if you use the Benchmark module:
108
109=over 10
110
111=item timeit(COUNT, CODE)
112
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113Arguments: COUNT is the number of times to run the loop, and CODE is
114the code to run. CODE may be either a code reference or a string to
115be eval'd; either way it will be run in the caller's package.
116
117Returns: a Benchmark object.
118
119=item timethis ( COUNT, CODE, [ TITLE, [ STYLE ]] )
120
121Time COUNT iterations of CODE. CODE may be a string to eval or a
122code reference; either way the CODE will run in the caller's package.
123Results will be printed to STDOUT as TITLE followed by the times.
124TITLE defaults to "timethis COUNT" if none is provided. STYLE
125determines the format of the output, as described for timestr() below.
126
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127The COUNT can be zero or negative: this means the I<minimum number of
128CPU seconds> to run. A zero signifies the default of 3 seconds. For
129example to run at least for 10 seconds:
130
131 timethis(-10, $code)
132
133or to run two pieces of code tests for at least 3 seconds:
134
135 timethese(0, { test1 => '...', test2 => '...'})
136
137CPU seconds is, in UNIX terms, the user time plus the system time of
138the process itself, as opposed to the real (wallclock) time and the
139time spent by the child processes. Less than 0.1 seconds is not
140accepted (-0.01 as the count, for example, will cause a fatal runtime
141exception).
142
143Note that the CPU seconds is the B<minimum> time: CPU scheduling and
144other operating system factors may complicate the attempt so that a
145little bit more time is spent. The benchmark output will, however,
146also tell the number of C<$code> runs/second, which should be a more
147interesting number than the actually spent seconds.
148
149Returns a Benchmark object.
150
523cc92b 151=item timethese ( COUNT, CODEHASHREF, [ STYLE ] )
f06db76b 152
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153The CODEHASHREF is a reference to a hash containing names as keys
154and either a string to eval or a code reference for each value.
155For each (KEY, VALUE) pair in the CODEHASHREF, this routine will
156call
f06db76b 157
523cc92b 158 timethis(COUNT, VALUE, KEY, STYLE)
f06db76b 159
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160The routines are called in string comparison order of KEY.
161
162The COUNT can be zero or negative, see timethis().
6ee623d5 163
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164Returns a hash of Benchmark objects, keyed by name.
165
523cc92b 166=item timediff ( T1, T2 )
f06db76b 167
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168Returns the difference between two Benchmark times as a Benchmark
169object suitable for passing to timestr().
f06db76b 170
6ee623d5 171=item timestr ( TIMEDIFF, [ STYLE, [ FORMAT ] ] )
f06db76b 172
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173Returns a string that formats the times in the TIMEDIFF object in
174the requested STYLE. TIMEDIFF is expected to be a Benchmark object
175similar to that returned by timediff().
176
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177STYLE can be any of 'all', 'none', 'noc', 'nop' or 'auto'. 'all' shows
178each of the 5 times available ('wallclock' time, user time, system time,
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179user time of children, and system time of children). 'noc' shows all
180except the two children times. 'nop' shows only wallclock and the
181two children times. 'auto' (the default) will act as 'all' unless
182the children times are both zero, in which case it acts as 'noc'.
3c6312e9 183'none' prevents output.
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184
185FORMAT is the L<printf(3)>-style format specifier (without the
186leading '%') to use to print the times. It defaults to '5.2f'.
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187
188=back
189
190=head2 Optional Exports
191
192The following routines will be exported into your namespace
193if you specifically ask that they be imported:
194
195=over 10
196
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197=item clearcache ( COUNT )
198
199Clear the cached time for COUNT rounds of the null loop.
200
201=item clearallcache ( )
f06db76b 202
523cc92b 203Clear all cached times.
f06db76b 204
8962dfd6 205=item cmpthese ( COUNT, CODEHASHREF, [ STYLE ] )
ac8eabc1 206
d1083c7a 207=item cmpthese ( RESULTSHASHREF, [ STYLE ] )
ac8eabc1 208
d1083c7a 209Optionally calls timethese(), then outputs comparison chart. This:
ac8eabc1 210
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211 cmpthese( -1, { a => "++\$i", b => "\$i *= 2" } ) ;
212
213outputs a chart like:
214
215 Rate b a
216 b 2831802/s -- -61%
217 a 7208959/s 155% --
218
219This chart is sorted from slowest to fastest, and shows the percent speed
220difference between each pair of tests.
221
222c<cmpthese> can also be passed the data structure that timethese() returns:
223
224 $results = timethese( -1, { a => "++\$i", b => "\$i *= 2" } ) ;
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225 cmpthese( $results );
226
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227in case you want to see both sets of results.
228
229Returns a reference to an ARRAY of rows, each row is an ARRAY of cells from the
230above chart, including labels. This:
231
232 my $rows = cmpthese( -1, { a => '++$i', b => '$i *= 2' }, "none" );
233
234returns a data structure like:
235
236 [
237 [ '', 'Rate', 'b', 'a' ],
238 [ 'b', '2885232/s', '--', '-59%' ],
239 [ 'a', '7099126/s', '146%', '--' ],
240 ]
241
242B<NOTE>: This result value differs from previous versions, which returned
243the C<timethese()> result structure. If you want that, just use the two
244statement C<timethese>...C<cmpthese> idiom shown above.
245
246Incidently, note the variance in the result values between the two examples;
247this is typical of benchmarking. If this were a real benchmark, you would
248probably want to run a lot more iterations.
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249
250=item countit(TIME, CODE)
251
252Arguments: TIME is the minimum length of time to run CODE for, and CODE is
253the code to run. CODE may be either a code reference or a string to
254be eval'd; either way it will be run in the caller's package.
255
256TIME is I<not> negative. countit() will run the loop many times to
257calculate the speed of CODE before running it for TIME. The actual
258time run for will usually be greater than TIME due to system clock
259resolution, so it's best to look at the number of iterations divided
260by the times that you are concerned with, not just the iterations.
261
262Returns: a Benchmark object.
263
523cc92b 264=item disablecache ( )
f06db76b 265
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266Disable caching of timings for the null loop. This will force Benchmark
267to recalculate these timings for each new piece of code timed.
268
269=item enablecache ( )
270
271Enable caching of timings for the null loop. The time taken for COUNT
272rounds of the null loop will be calculated only once for each
273different COUNT used.
f06db76b 274
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275=item timesum ( T1, T2 )
276
277Returns the sum of two Benchmark times as a Benchmark object suitable
278for passing to timestr().
279
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280=back
281
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282=head2 :hireswallclock
283
284If the Time::HiRes module has been installed, you can specify the
285special tag C<:hireswallclock> for Benchmark (if Time::HiRes is not
286available, the tag will be silently ignored). This tag will cause the
287wallclock time to be measured in microseconds, instead of integer
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288seconds. Note though that the speed computations are still conducted
289in CPU time, not wallclock time.
e3d6de9a 290
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291=head1 NOTES
292
293The data is stored as a list of values from the time and times
523cc92b 294functions:
f06db76b 295
431d98c2 296 ($real, $user, $system, $children_user, $children_system, $iters)
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297
298in seconds for the whole loop (not divided by the number of rounds).
299
300The timing is done using time(3) and times(3).
301
302Code is executed in the caller's package.
303
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304The time of the null loop (a loop with the same
305number of rounds but empty loop body) is subtracted
306from the time of the real loop.
307
3c6312e9 308The null loop times can be cached, the key being the
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309number of rounds. The caching can be controlled using
310calls like these:
311
523cc92b 312 clearcache($key);
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313 clearallcache();
314
523cc92b 315 disablecache();
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316 enablecache();
317
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318Caching is off by default, as it can (usually slightly) decrease
319accuracy and does not usually noticably affect runtimes.
320
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321=head1 EXAMPLES
322
323For example,
324
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325 use Benchmark qw( cmpthese ) ;
326 $x = 3;
327 cmpthese( -5, {
328 a => sub{$x*$x},
329 b => sub{$x**2},
330 } );
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331
332outputs something like this:
333
334 Benchmark: running a, b, each for at least 5 CPU seconds...
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335 Rate b a
336 b 1559428/s -- -62%
337 a 4152037/s 166% --
338
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339
340while
341
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342 use Benchmark qw( timethese cmpthese ) ;
343 $x = 3;
344 $r = timethese( -5, {
345 a => sub{$x*$x},
346 b => sub{$x**2},
347 } );
348 cmpthese $r;
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349
350outputs something like this:
351
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352 Benchmark: running a, b, each for at least 5 CPU seconds...
353 a: 10 wallclock secs ( 5.14 usr + 0.13 sys = 5.27 CPU) @ 3835055.60/s (n=20210743)
354 b: 5 wallclock secs ( 5.41 usr + 0.00 sys = 5.41 CPU) @ 1574944.92/s (n=8520452)
355 Rate b a
356 b 1574945/s -- -59%
357 a 3835056/s 144% --
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358
359
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360=head1 INHERITANCE
361
362Benchmark inherits from no other class, except of course
363for Exporter.
364
365=head1 CAVEATS
366
80eab818 367Comparing eval'd strings with code references will give you
431d98c2 368inaccurate results: a code reference will show a slightly slower
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369execution time than the equivalent eval'd string.
370
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371The real time timing is done using time(2) and
372the granularity is therefore only one second.
373
374Short tests may produce negative figures because perl
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375can appear to take longer to execute the empty loop
376than a short test; try:
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377
378 timethis(100,'1');
379
380The system time of the null loop might be slightly
381more than the system time of the loop with the actual
a24a9dfe 382code and therefore the difference might end up being E<lt> 0.
f06db76b 383
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384=head1 SEE ALSO
385
386L<Devel::DProf> - a Perl code profiler
387
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388=head1 AUTHORS
389
5aabfad6 390Jarkko Hietaniemi <F<jhi@iki.fi>>, Tim Bunce <F<Tim.Bunce@ig.co.uk>>
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391
392=head1 MODIFICATION HISTORY
393
394September 8th, 1994; by Tim Bunce.
395
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396March 28th, 1997; by Hugo van der Sanden: added support for code
397references and the already documented 'debug' method; revamped
398documentation.
f06db76b 399
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400April 04-07th, 1997: by Jarkko Hietaniemi, added the run-for-some-time
401functionality.
402
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403September, 1999; by Barrie Slaymaker: math fixes and accuracy and
404efficiency tweaks. Added cmpthese(). A result is now returned from
431d98c2 405timethese(). Exposed countit() (was runfor()).
3c6312e9 406
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407December, 2001; by Nicholas Clark: make timestr() recognise the style 'none'
408and return an empty string. If cmpthese is calling timethese, make it pass the
409style in. (so that 'none' will suppress output). Make sub new dump its
410debugging output to STDERR, to be consistent with everything else.
411All bugs found while writing a regression test.
412
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413September, 2002; by Jarkko Hietaniemi: add ':hireswallclock' special tag.
414
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415February, 2004; by Chia-liang Kao: make cmpthese and timestr use time
416statistics for children instead of parent when the style is 'nop'.
417
523cc92b 418=cut
a0d0e21e 419
3f943bd9 420# evaluate something in a clean lexical environment
53aa2791 421sub _doeval { no strict; eval shift }
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422
423#
424# put any lexicals at file scope AFTER here
425#
426
4aa0a1f7 427use Carp;
a0d0e21e 428use Exporter;
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429
430our(@ISA, @EXPORT, @EXPORT_OK, %EXPORT_TAGS, $VERSION);
431
432@ISA=qw(Exporter);
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433@EXPORT=qw(timeit timethis timethese timediff timestr);
434@EXPORT_OK=qw(timesum cmpthese countit
435 clearcache clearallcache disablecache enablecache);
f36484b0 436%EXPORT_TAGS=( all => [ @EXPORT, @EXPORT_OK ] ) ;
a0d0e21e 437
33e4b5a9 438$VERSION = 1.06;
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439
440# --- ':hireswallclock' special handling
441
442my $hirestime;
443
444sub mytime () { time }
8a4f6ac2 445
359218de 446init();
a0d0e21e 447
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448sub BEGIN {
449 if (eval 'require Time::HiRes') {
450 import Time::HiRes qw(time);
451 $hirestime = \&Time::HiRes::time;
452 }
453}
454
455sub import {
456 my $class = shift;
457 if (grep { $_ eq ":hireswallclock" } @_) {
458 @_ = grep { $_ ne ":hireswallclock" } @_;
459 *mytime = $hirestime if defined $hirestime;
460 }
461 Benchmark->export_to_level(1, $class, @_);
462}
463
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464our($Debug, $Min_Count, $Min_CPU, $Default_Format, $Default_Style,
465 %_Usage, %Cache, $Do_Cache);
466
a0d0e21e 467sub init {
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468 $Debug = 0;
469 $Min_Count = 4;
470 $Min_CPU = 0.4;
471 $Default_Format = '5.2f';
472 $Default_Style = 'auto';
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473 # The cache can cause a slight loss of sys time accuracy. If a
474 # user does many tests (>10) with *very* large counts (>10000)
475 # or works on a very slow machine the cache may be useful.
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476 disablecache();
477 clearallcache();
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478}
479
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480sub debug { $Debug = ($_[1] != 0); }
481
482sub usage {
483 my $calling_sub = (caller(1))[3];
484 $calling_sub =~ s/^Benchmark:://;
485 return $_Usage{$calling_sub} || '';
486}
487
bba8fca5 488# The cache needs two branches: 's' for strings and 'c' for code. The
359218de 489# empty loop is different in these two cases.
53aa2791 490
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491$_Usage{clearcache} = <<'USAGE';
492usage: clearcache($count);
493USAGE
494
495sub clearcache {
496 die usage unless @_ == 1;
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497 delete $Cache{"$_[0]c"}; delete $Cache{"$_[0]s"};
498}
499
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500$_Usage{clearallcache} = <<'USAGE';
501usage: clearallcache();
502USAGE
503
504sub clearallcache {
505 die usage if @_;
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506 %Cache = ();
507}
508
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509$_Usage{enablecache} = <<'USAGE';
510usage: enablecache();
511USAGE
512
513sub enablecache {
514 die usage if @_;
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515 $Do_Cache = 1;
516}
517
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518$_Usage{disablecache} = <<'USAGE';
519usage: disablecache();
520USAGE
521
522sub disablecache {
523 die usage if @_;
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524 $Do_Cache = 0;
525}
526
a0d0e21e 527
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528# --- Functions to process the 'time' data type
529
e3d6de9a 530sub new { my @t = (mytime, times, @_ == 2 ? $_[1] : 0);
53aa2791 531 print STDERR "new=@t\n" if $Debug;
6ee623d5 532 bless \@t; }
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533
534sub cpu_p { my($r,$pu,$ps,$cu,$cs) = @{$_[0]}; $pu+$ps ; }
535sub cpu_c { my($r,$pu,$ps,$cu,$cs) = @{$_[0]}; $cu+$cs ; }
536sub cpu_a { my($r,$pu,$ps,$cu,$cs) = @{$_[0]}; $pu+$ps+$cu+$cs ; }
537sub real { my($r,$pu,$ps,$cu,$cs) = @{$_[0]}; $r ; }
431d98c2 538sub iters { $_[0]->[5] ; }
a0d0e21e 539
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540
541$_Usage{timediff} = <<'USAGE';
542usage: $result_diff = timediff($result1, $result2);
543USAGE
544
523cc92b 545sub timediff {
a0d0e21e 546 my($a, $b) = @_;
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547
548 die usage unless ref $a and ref $b;
549
523cc92b 550 my @r;
3f943bd9 551 for (my $i=0; $i < @$a; ++$i) {
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552 push(@r, $a->[$i] - $b->[$i]);
553 }
554 bless \@r;
555}
556
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557$_Usage{timesum} = <<'USAGE';
558usage: $sum = timesum($result1, $result2);
559USAGE
560
705cc255 561sub timesum {
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562 my($a, $b) = @_;
563
564 die usage unless ref $a and ref $b;
565
566 my @r;
567 for (my $i=0; $i < @$a; ++$i) {
705cc255 568 push(@r, $a->[$i] + $b->[$i]);
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569 }
570 bless \@r;
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571}
572
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573
574$_Usage{timestr} = <<'USAGE';
575usage: $formatted_result = timestr($result1);
576USAGE
577
523cc92b 578sub timestr {
a0d0e21e 579 my($tr, $style, $f) = @_;
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580
581 die usage unless ref $tr;
582
523cc92b 583 my @t = @$tr;
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584 warn "bad time value (@t)" unless @t==6;
585 my($r, $pu, $ps, $cu, $cs, $n) = @t;
ce9550df 586 my($pt, $ct, $tt) = ($tr->cpu_p, $tr->cpu_c, $tr->cpu_a);
53aa2791 587 $f = $Default_Format unless defined $f;
a0d0e21e 588 # format a time in the required style, other formats may be added here
53aa2791 589 $style ||= $Default_Style;
0e74ff8e 590 return '' if $style eq 'none';
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591 $style = ($ct>0) ? 'all' : 'noc' if $style eq 'auto';
592 my $s = "@t $style"; # default for unknown style
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593 my $w = $hirestime ? "%2g" : "%2d";
594 $s=sprintf("$w wallclock secs (%$f usr %$f sys + %$f cusr %$f csys = %$f CPU)",
ce9550df 595 $r,$pu,$ps,$cu,$cs,$tt) if $style eq 'all';
e3d6de9a 596 $s=sprintf("$w wallclock secs (%$f usr + %$f sys = %$f CPU)",
7be077a2 597 $r,$pu,$ps,$pt) if $style eq 'noc';
e3d6de9a 598 $s=sprintf("$w wallclock secs (%$f cusr + %$f csys = %$f CPU)",
7be077a2 599 $r,$cu,$cs,$ct) if $style eq 'nop';
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600 $s .= sprintf(" @ %$f/s (n=$n)", $n / ( $style eq 'nop' ? $cu + $cs : $pu + $ps ))
601 if $n && ($style eq 'nop' ? $cu+$cs : $pu+$ps);
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602 $s;
603}
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604
605sub timedebug {
a0d0e21e 606 my($msg, $t) = @_;
53aa2791 607 print STDERR "$msg",timestr($t),"\n" if $Debug;
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608}
609
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610# --- Functions implementing low-level support for timing loops
611
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612$_Usage{runloop} = <<'USAGE';
613usage: runloop($number, [$string | $coderef])
614USAGE
615
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616sub runloop {
617 my($n, $c) = @_;
4aa0a1f7
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618
619 $n+=0; # force numeric now, so garbage won't creep into the eval
523cc92b 620 croak "negative loopcount $n" if $n<0;
53aa2791 621 confess usage unless defined $c;
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622 my($t0, $t1, $td); # before, after, difference
623
624 # find package of caller so we can execute code there
523cc92b
CS
625 my($curpack) = caller(0);
626 my($i, $pack)= 0;
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627 while (($pack) = caller(++$i)) {
628 last if $pack ne $curpack;
629 }
630
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631 my ($subcode, $subref);
632 if (ref $c eq 'CODE') {
633 $subcode = "sub { for (1 .. $n) { local \$_; package $pack; &\$c; } }";
634 $subref = eval $subcode;
635 }
636 else {
637 $subcode = "sub { for (1 .. $n) { local \$_; package $pack; $c;} }";
638 $subref = _doeval($subcode);
639 }
4aa0a1f7 640 croak "runloop unable to compile '$c': $@\ncode: $subcode\n" if $@;
53aa2791 641 print STDERR "runloop $n '$subcode'\n" if $Debug;
a0d0e21e 642
3c6312e9
BS
643 # Wait for the user timer to tick. This makes the error range more like
644 # -0.01, +0. If we don't wait, then it's more like -0.01, +0.01. This
645 # may not seem important, but it significantly reduces the chances of
646 # getting a too low initial $n in the initial, 'find the minimum' loop
431d98c2 647 # in &countit. This, in turn, can reduce the number of calls to
bba8fca5
BS
648 # &runloop a lot, and thus reduce additive errors.
649 my $tbase = Benchmark->new(0)->[1];
277427cf 650 while ( ( $t0 = Benchmark->new(0) )->[1] == $tbase ) {} ;
a0d0e21e 651 &$subref;
6ee623d5 652 $t1 = Benchmark->new($n);
a0d0e21e 653 $td = &timediff($t1, $t0);
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654 timedebug("runloop:",$td);
655 $td;
656}
657
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658$_Usage{timeit} = <<'USAGE';
659usage: $result = timeit($count, 'code' ); or
660 $result = timeit($count, sub { code } );
661USAGE
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662
663sub timeit {
664 my($n, $code) = @_;
665 my($wn, $wc, $wd);
666
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667 die usage unless defined $code and
668 (!ref $code or ref $code eq 'CODE');
669
670 printf STDERR "timeit $n $code\n" if $Debug;
3c6312e9 671 my $cache_key = $n . ( ref( $code ) ? 'c' : 's' );
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MS
672 if ($Do_Cache && exists $Cache{$cache_key} ) {
673 $wn = $Cache{$cache_key};
523cc92b 674 } else {
6bf773bc 675 $wn = &runloop($n, ref( $code ) ? sub { } : '' );
3c6312e9
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676 # Can't let our baseline have any iterations, or they get subtracted
677 # out of the result.
678 $wn->[5] = 0;
53aa2791 679 $Cache{$cache_key} = $wn;
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680 }
681
682 $wc = &runloop($n, $code);
683
684 $wd = timediff($wc, $wn);
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685 timedebug("timeit: ",$wc);
686 timedebug(" - ",$wn);
687 timedebug(" = ",$wd);
688
689 $wd;
690}
691
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692
693my $default_for = 3;
694my $min_for = 0.1;
695
3c6312e9 696
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697$_Usage{countit} = <<'USAGE';
698usage: $result = countit($time, 'code' ); or
699 $result = countit($time, sub { code } );
700USAGE
701
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702sub countit {
703 my ( $tmax, $code ) = @_;
6ee623d5 704
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705 die usage unless @_;
706
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707 if ( not defined $tmax or $tmax == 0 ) {
708 $tmax = $default_for;
709 } elsif ( $tmax < 0 ) {
710 $tmax = -$tmax;
711 }
712
431d98c2 713 die "countit($tmax, ...): timelimit cannot be less than $min_for.\n"
6ee623d5
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714 if $tmax < $min_for;
715
3c6312e9 716 my ($n, $tc);
6ee623d5 717
bba8fca5 718 # First find the minimum $n that gives a significant timing.
3c6312e9
BS
719 for ($n = 1; ; $n *= 2 ) {
720 my $td = timeit($n, $code);
721 $tc = $td->[1] + $td->[2];
722 last if $tc > 0.1;
723 }
6ee623d5 724
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725 my $nmin = $n;
726
727 # Get $n high enough that we can guess the final $n with some accuracy.
728 my $tpra = 0.1 * $tmax; # Target/time practice.
729 while ( $tc < $tpra ) {
730 # The 5% fudge is to keep us from iterating again all
731 # that often (this speeds overall responsiveness when $tmax is big
732 # and we guess a little low). This does not noticably affect
733 # accuracy since we're not couting these times.
734 $n = int( $tpra * 1.05 * $n / $tc ); # Linear approximation.
735 my $td = timeit($n, $code);
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736 my $new_tc = $td->[1] + $td->[2];
737 # Make sure we are making progress.
738 $tc = $new_tc > 1.2 * $tc ? $new_tc : 1.2 * $tc;
6ee623d5
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739 }
740
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741 # Now, do the 'for real' timing(s), repeating until we exceed
742 # the max.
743 my $ntot = 0;
744 my $rtot = 0;
745 my $utot = 0.0;
746 my $stot = 0.0;
747 my $cutot = 0.0;
748 my $cstot = 0.0;
749 my $ttot = 0.0;
750
751 # The 5% fudge is because $n is often a few % low even for routines
752 # with stable times and avoiding extra timeit()s is nice for
753 # accuracy's sake.
754 $n = int( $n * ( 1.05 * $tmax / $tc ) );
755
756 while () {
757 my $td = timeit($n, $code);
758 $ntot += $n;
759 $rtot += $td->[0];
760 $utot += $td->[1];
761 $stot += $td->[2];
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762 $cutot += $td->[3];
763 $cstot += $td->[4];
3c6312e9
BS
764 $ttot = $utot + $stot;
765 last if $ttot >= $tmax;
6ee623d5 766
c5d57293 767 $ttot = 0.01 if $ttot < 0.01;
3c6312e9 768 my $r = $tmax / $ttot - 1; # Linear approximation.
bba8fca5 769 $n = int( $r * $ntot );
6ee623d5 770 $n = $nmin if $n < $nmin;
6ee623d5
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771 }
772
773 return bless [ $rtot, $utot, $stot, $cutot, $cstot, $ntot ];
774}
775
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776# --- Functions implementing high-level time-then-print utilities
777
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778sub n_to_for {
779 my $n = shift;
780 return $n == 0 ? $default_for : $n < 0 ? -$n : undef;
781}
782
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783$_Usage{timethis} = <<'USAGE';
784usage: $result = timethis($time, 'code' ); or
785 $result = timethis($time, sub { code } );
786USAGE
787
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788sub timethis{
789 my($n, $code, $title, $style) = @_;
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MS
790 my($t, $forn);
791
792 die usage unless defined $code and
793 (!ref $code or ref $code eq 'CODE');
6ee623d5
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794
795 if ( $n > 0 ) {
796 croak "non-integer loopcount $n, stopped" if int($n)<$n;
797 $t = timeit($n, $code);
798 $title = "timethis $n" unless defined $title;
799 } else {
53aa2791 800 my $fort = n_to_for( $n );
431d98c2 801 $t = countit( $fort, $code );
6ee623d5
GS
802 $title = "timethis for $fort" unless defined $title;
803 $forn = $t->[-1];
804 }
523cc92b 805 local $| = 1;
523cc92b 806 $style = "" unless defined $style;
3c6312e9 807 printf("%10s: ", $title) unless $style eq 'none';
53aa2791 808 print timestr($t, $style, $Default_Format),"\n" unless $style eq 'none';
6ee623d5
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809
810 $n = $forn if defined $forn;
523cc92b 811
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812 # A conservative warning to spot very silly tests.
813 # Don't assume that your benchmark is ok simply because
814 # you don't get this warning!
815 print " (warning: too few iterations for a reliable count)\n"
53aa2791 816 if $n < $Min_Count
a0d0e21e 817 || ($t->real < 1 && $n < 1000)
53aa2791 818 || $t->cpu_a < $Min_CPU;
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819 $t;
820}
821
53aa2791
MS
822
823$_Usage{timethese} = <<'USAGE';
824usage: timethese($count, { Name1 => 'code1', ... }); or
825 timethese($count, { Name1 => sub { code1 }, ... });
826USAGE
827
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828sub timethese{
829 my($n, $alt, $style) = @_;
53aa2791
MS
830 die usage unless ref $alt eq 'HASH';
831
523cc92b
CS
832 my @names = sort keys %$alt;
833 $style = "" unless defined $style;
3c6312e9 834 print "Benchmark: " unless $style eq 'none';
6ee623d5
GS
835 if ( $n > 0 ) {
836 croak "non-integer loopcount $n, stopped" if int($n)<$n;
3c6312e9 837 print "timing $n iterations of" unless $style eq 'none';
6ee623d5 838 } else {
3c6312e9 839 print "running" unless $style eq 'none';
6ee623d5 840 }
3c6312e9 841 print " ", join(', ',@names) unless $style eq 'none';
6ee623d5
GS
842 unless ( $n > 0 ) {
843 my $for = n_to_for( $n );
df7779cf
T
844 print ", each" if $n > 1 && $style ne 'none';
845 print " for at least $for CPU seconds" unless $style eq 'none';
6ee623d5 846 }
3c6312e9 847 print "...\n" unless $style eq 'none';
523cc92b
CS
848
849 # we could save the results in an array and produce a summary here
a0d0e21e 850 # sum, min, max, avg etc etc
3c6312e9 851 my %results;
4dbb2df9 852 foreach my $name (@names) {
3c6312e9 853 $results{$name} = timethis ($n, $alt -> {$name}, $name, $style);
4dbb2df9 854 }
3c6312e9
BS
855
856 return \%results;
a0d0e21e
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857}
858
53aa2791
MS
859
860$_Usage{cmpthese} = <<'USAGE';
861usage: cmpthese($count, { Name1 => 'code1', ... }); or
862 cmpthese($count, { Name1 => sub { code1 }, ... }); or
863 cmpthese($result, $style);
864USAGE
865
3c6312e9 866sub cmpthese{
53aa2791
MS
867 my ($results, $style);
868
869 if( ref $_[0] ) {
870 ($results, $style) = @_;
871 }
872 else {
873 my($count, $code) = @_[0,1];
874 $style = $_[2] if defined $_[2];
875
876 die usage unless ref $code eq 'HASH';
877
878 $results = timethese($count, $code, ($style || "none"));
879 }
3c6312e9 880
d1083c7a 881 $style = "" unless defined $style;
3c6312e9
BS
882
883 # Flatten in to an array of arrays with the name as the first field
884 my @vals = map{ [ $_, @{$results->{$_}} ] } keys %$results;
885
886 for (@vals) {
887 # The epsilon fudge here is to prevent div by 0. Since clock
888 # resolutions are much larger, it's below the noise floor.
33e4b5a9
CK
889 my $rate = $_->[6] / (( $style eq 'nop' ? $_->[4] + $_->[5]
890 : $_->[2] + $_->[3]) + 0.000000000000001 );
3c6312e9
BS
891 $_->[7] = $rate;
892 }
893
894 # Sort by rate
895 @vals = sort { $a->[7] <=> $b->[7] } @vals;
896
897 # If more than half of the rates are greater than one...
d598cef2 898 my $display_as_rate = @vals ? ($vals[$#vals>>1]->[7] > 1) : 0;
3c6312e9
BS
899
900 my @rows;
901 my @col_widths;
902
903 my @top_row = (
904 '',
905 $display_as_rate ? 'Rate' : 's/iter',
906 map { $_->[0] } @vals
907 );
908
909 push @rows, \@top_row;
910 @col_widths = map { length( $_ ) } @top_row;
911
912 # Build the data rows
913 # We leave the last column in even though it never has any data. Perhaps
914 # it should go away. Also, perhaps a style for a single column of
915 # percentages might be nice.
916 for my $row_val ( @vals ) {
917 my @row;
918
919 # Column 0 = test name
920 push @row, $row_val->[0];
921 $col_widths[0] = length( $row_val->[0] )
922 if length( $row_val->[0] ) > $col_widths[0];
923
924 # Column 1 = performance
925 my $row_rate = $row_val->[7];
926
927 # We assume that we'll never get a 0 rate.
53aa2791 928 my $rate = $display_as_rate ? $row_rate : 1 / $row_rate;
3c6312e9
BS
929
930 # Only give a few decimal places before switching to sci. notation,
931 # since the results aren't usually that accurate anyway.
932 my $format =
53aa2791 933 $rate >= 100 ?
3c6312e9 934 "%0.0f" :
53aa2791 935 $rate >= 10 ?
3c6312e9 936 "%0.1f" :
53aa2791 937 $rate >= 1 ?
3c6312e9 938 "%0.2f" :
53aa2791 939 $rate >= 0.1 ?
3c6312e9
BS
940 "%0.3f" :
941 "%0.2e";
942
943 $format .= "/s"
944 if $display_as_rate;
53aa2791
MS
945
946 my $formatted_rate = sprintf( $format, $rate );
947 push @row, $formatted_rate;
948 $col_widths[1] = length( $formatted_rate )
949 if length( $formatted_rate ) > $col_widths[1];
3c6312e9
BS
950
951 # Columns 2..N = performance ratios
952 my $skip_rest = 0;
953 for ( my $col_num = 0 ; $col_num < @vals ; ++$col_num ) {
954 my $col_val = $vals[$col_num];
955 my $out;
956 if ( $skip_rest ) {
957 $out = '';
958 }
959 elsif ( $col_val->[0] eq $row_val->[0] ) {
960 $out = "--";
961 # $skip_rest = 1;
962 }
963 else {
964 my $col_rate = $col_val->[7];
965 $out = sprintf( "%.0f%%", 100*$row_rate/$col_rate - 100 );
966 }
967 push @row, $out;
968 $col_widths[$col_num+2] = length( $out )
969 if length( $out ) > $col_widths[$col_num+2];
970
971 # A little wierdness to set the first column width properly
972 $col_widths[$col_num+2] = length( $col_val->[0] )
973 if length( $col_val->[0] ) > $col_widths[$col_num+2];
974 }
975 push @rows, \@row;
976 }
977
d1083c7a
BS
978 return \@rows if $style eq "none";
979
3c6312e9
BS
980 # Equalize column widths in the chart as much as possible without
981 # exceeding 80 characters. This does not use or affect cols 0 or 1.
982 my @sorted_width_refs =
983 sort { $$a <=> $$b } map { \$_ } @col_widths[2..$#col_widths];
984 my $max_width = ${$sorted_width_refs[-1]};
985
277427cf 986 my $total = @col_widths - 1 ;
3c6312e9
BS
987 for ( @col_widths ) { $total += $_ }
988
989 STRETCHER:
990 while ( $total < 80 ) {
991 my $min_width = ${$sorted_width_refs[0]};
992 last
993 if $min_width == $max_width;
994 for ( @sorted_width_refs ) {
995 last
996 if $$_ > $min_width;
997 ++$$_;
998 ++$total;
999 last STRETCHER
1000 if $total >= 80;
1001 }
1002 }
1003
1004 # Dump the output
1005 my $format = join( ' ', map { "%${_}s" } @col_widths ) . "\n";
1006 substr( $format, 1, 0 ) = '-';
1007 for ( @rows ) {
1008 printf $format, @$_;
1009 }
1010
d1083c7a 1011 return \@rows ;
3c6312e9
BS
1012}
1013
1014
a0d0e21e 10151;