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I need to get the UTC offset of the current time zone in Perl in a cross platform (Windows and various flavors of Unix) way. It should meet this format:

zzzzzz, which represents ±hh:mm in relation to UTC

It looks like I should be able to get it via strftime(), but it doesn't appear to be consistent.

Unix:

Input: perl -MPOSIX -e "print strftime(\"%z\", localtime());"
Output: -0700

Windows:

Input: perl -MPOSIX -e "print strftime(\"%z\", localtime());"
Output: Mountain Standard Time

While it appears that Unix is giving me what I want (or at least something close), Windows is not. I'm pretty sure I can do it with Date::Time or similar, but I'd really like to not have any dependencies that I can't guarantee a user will have due to our wide install base.

Am I missing something obvious here? Thanks in advance.

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4 Answers 4

up vote 8 down vote accepted

Time::Local should do the trick

use Time::Local;
@t = localtime(time);
$gmt_offset_in_seconds = timegm(@t) - timelocal(@t);
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1  
Time::Local is a core module in all Perl 5 distributions. –  mob Jan 27 '10 at 0:06
    
This is a great solution; only gave it a rudimentary test, but it seems to work just as it should. Thanks. –  Morinar Jan 27 '10 at 16:30

"I'd really like to not have any dependencies that I can't guarantee a user will have due to our wide install base"

How about including a custom copy of Date::Time (we'll call it My::Date::Time) in your installation? For example,

use lib 'my-module/dependencies/';

use My::Date::Time;
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You can compute the difference between localtime($t) and gmtime($t). Here is my version inspired by mob's answer:

use strict;
use warnings;    

sub tz_offset
{
    my $t = shift;
    my @l = localtime($t);
    my @g = gmtime($t);

    my $minutes = ($l[2] - $g[2] + ((($l[5]<<9)|$l[7]) <=> (($g[5]<<9)|$g[7])) * 24) * 60 + $l[1] - $g[1];
    return $minutes unless wantarray;
    return (int($minutes / 60), $minutes % 60);
}

push @ARGV, time;
foreach my $t (@ARGV) {
    printf "%s (%d): %+03d%02u\n", scalar localtime($t), $t, tz_offset($t);
}
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A portable way is to compare the output of localtime with gmtime

    $t = time;
    @a = localtime($t);
    @b = gmtime($t);

    $hh = $a[2] - $b[2];
    $mm = $a[1] - $b[1];
    # in the unlikely event that localtime and gmtime are in different years
    if ($a[5]*366+$a[4]*31+$a[3] > $b[5]*366+$b[4]*31+$b[3]) {
      $hh += 24;
    } elsif ($a[5]*366+$a[4]*31+$a[3] < $b[5]*366+$b[4]*31+$b[3]) {
      $hh -= 24;
    }
    if ($hh < 0 && $mm > 0) {
      $hh++;
      $mm = 60-$mm;
    }
    printf "%+03d:%02d\n", $hh, $mm;

Someone pointing out that this is already implemented in a module somewhere in 5, 4, 3, ...

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Can you explain the calculation in the if statment -- why multiply the year by the number of days in a leap year? why Month * 31? Why add the day? Thanks. –  Kevin Friedheim Sep 14 '10 at 18:21
    
@Kevin Friedman - it is a test to see if @a[5,4,3] and @b[5,4,3] represent the same day. I combine year, month, and day into a single number so I can get by with one comparison instead of three. You could use larger numbers than 366 and 31 and you would still get the right result. –  mob Sep 14 '10 at 20:05
    
You should use bit fields instead of multiplication if you want to be fast: ($a[5]<<13)|($a[4]<<5)|$a[3]. Also, the <=> operator that could be used to replace the if statement. –  dolmen Jun 21 '11 at 12:03
    
Even faster: ($a[5]<<9)|$a[7] ($a[7] is the day number in the year) –  dolmen Jun 21 '11 at 12:53

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