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I have some unix timestamps (i.e. 1357810480, so they're mainly in the past). How can I transform them into a readable date-format using perl?

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5 Answers 5

up vote 6 down vote accepted

You can use localtime for that.

($sec,$min,$hour,$mday,$mon,$year,$wday,$yday,$isdst) = localtime($unix_timestamp);
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thanks, but i'd like to store the –  hurley Feb 25 '13 at 10:08
    
Yeah, that would put the array in $time. After that the hour is in $time[2] for example. –  Andomar Feb 25 '13 at 10:09
    
thanks, but i'd like to store the formatted date directly in a single variable. do you see any possibility for this? my current solution seems to save the current date, no matter how old the given timestamp is –  hurley Feb 25 '13 at 10:11
    
One way is $formatted_time = scalar(localtime($unix_timestamp)), or using Date::Format‌​, $formatted_time = time2str("%D", $unix_timestamp); –  Andomar Feb 25 '13 at 10:13
    
@hurley, it returns data for the given timestamp, not the "current date". –  ikegami Feb 25 '13 at 10:17

A perfect use for Time::Piece (standard in Perl since 5.10).

use 5.010;
use Time::Piece;

my $unix_timestamp = 1e9; # for example;

my $date = localtime($unix_timestamp)->strftime('%F %T'); # adjust format to taste

say $date; # 2001-09-09 02:46:40
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You could use

my ($S,$M,$H,$d,$m,$Y) = localtime($time);
$m += 1;
$Y += 1900;
my $dt = sprintf("%04d-%02d-%02d %02d:%02d:%02d", $Y,$m,$d, $H,$M,$S);

but it's a bit simpler with strftime.

use POSIX qw( strftime );
my $dt = strftime("%Y-%m-%d %H:%M:%S", localtime($time));

localtime($time) can be substituted with gmtime($time) if it's more appropriate.

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Quick shell one-liner:

perl -le 'print scalar localtime 1357810480;'
Thu Jan 10 10:34:40 2013

Or, if you happen to have the timestamps in a file, one per line:

perl -lne 'print scalar localtime $_;' <timestamps
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elegant and simple –  Olivier Dulac Oct 22 '13 at 17:00

Or, if you have a file with embedded timestamps, you can convert them in place with:

$ cat [file] | perl -pe 's/([\d]{10})/localtime $1/eg;'
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