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What's the most efficient way to get the current date in ISO format (e.g. "2010-10-06") using Perl?

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Why are you worried about efficiency? Has your profiler told you that this section of your code is a hotspot? –  Daenyth Oct 6 '10 at 17:57
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5 Answers

up vote 23 down vote accepted

Most efficient for you or the computer?

For you:

use POSIX qw/strftime/;

print strftime("%Y-%m-%d", localtime), "\n";

For the Computer:

my @t = localtime;
$t[5] += 1900;
$t[4]++;

printf "%04d-%02d-%02d", @t[5,4,3];
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There are plenty of modules in the Date:: namespace, many of which can help you do what you need. Or, you can just roll your own:

my ($day, $mon, $year) = (localtime)[3..5];
printf "%04d-%02d-%02d\n", 1900+$year, 1+$mon, $day;

Resources

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Don't forget DateTime! –  CanSpice Oct 6 '10 at 18:06
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Or you can use the DateTime module which seems to be the de facto standard date handling module these days. Need to install it from CPAN.

use DateTime;
my $now = DateTime->now->ymd;
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standardizing on DateTime certainly makes things simpler for this programmer, and consistently using one fairly comprehensive module for everything seems a good idea in an area with many gotchas and inconsistencies such as date and time calculations –  plusplus Oct 7 '10 at 9:04
    
Use DateTime->now->iso8601 if you want the time included as well. –  Flimm Aug 1 '13 at 15:32
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You can use the Time::Piece module (bundled with Perl 5.10 and up, or you can download from CPAN), as follows:

use strict;
use warnings;
use Time::Piece;

my $today = localtime->ymd();        # Local time zone
my $todayUtc = gmtime->ymd();        # UTC
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This doesn't create any temporary variables:

printf "%d-%02d-%02d", map { $$_[5]+1900, $$_[4]+1, $$_[3] } [localtime];
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Huh, I had never considered that use for map before. I don't know if I like it, but it is certainly clever. –  Chas. Owens Mar 28 at 9:08
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