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I computed the difference of two ISO 8601 dates after coverting them to epoch. How can I get the difference of them in number of days? My code is

my $ResolvedDate = "2014-06-04T10:48:07.124Z";
my $currentDate = "2014-06-04T06:03:36-04:00"

my $resolved_epoch = &convert_time_epoch($ResolvedDate);
my $current_epoch = &convert_time_epoch($currentDate);

if (($resolvedDate - $currentDate) > $noOfDays) {
    print "Difference in greater than x\n";
    $built = 0;
    return ($built);
} else {
    print "Difference in smaller than x \n";
    $built = 1;
    return ($built);
}

sub convert_time_epoch {
    my $time_c = str2time(@_);
    my @time_l = localtime($time_c);
    my $epoch = strftime("%s", @time_l);

    return($epoch);
}

Here in addition to $built I also want to return exact number of days, Resolved date is greater than Current date.

share|improve this question
1  
First you need to define what variant of "day" you are using. For example, is it based on the local date (so two times could be 1 second apart, but if that is locally over midnight, then they are also 1 day apart)? – Neil Slater Jun 4 '14 at 10:49
    
Also what about leap seconds? If you want to account for stuff like that, using DateTime instead of naive "seconds since the epoch" will save you a lot of work. – DeVadder Jun 4 '14 at 10:51
    
@DeVadder: Unix epoch deals with leap seconds by not incrementing, so that date maths should work just fine without accounting for them. Unless you want to unambiguously identify a leap second, which is not possible using the epoch. – Neil Slater Jun 4 '14 at 10:59
    
@NeilSlater Hmm, right, but i stand with suggesting DateTime. ^^ – DeVadder Jun 4 '14 at 11:17
    
Please don't use & to call subroutines. They aren't necessary and can have potentially confusing side-effects. – Dave Cross Jun 4 '14 at 11:20

"number of days" is awkward, because this is localtime and DST exists (or at least, may exist).

By simply dividing by 86400 you can easily obtain the number of 24-hour periods, which may be sufficient for your purposes.

If you want the true number of times that the mday field has changed, this may be slightly different from the value obtained by this simple division, however.

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If the dates are in epoch seconds, take the difference and divide it by the number of seconds in a day (which is 86400). Like so:

my $days_difference = int(($time1 - $time2) / 86400);

If you use DateTime then

my $duration = $dt1->delta_days($dt2); #$dt1 and $dt2 are DateTime objects.
print $duration->days;
share|improve this answer
    
Re "the number of seconds in a day (which is 86400)", That's not true. Not all days have 86400 seconds. – ikegami Jun 4 '14 at 13:20
    
thank u so much – user3616128 Jun 4 '14 at 16:56
    
If you are satisfied with any answer here then mark that as accepted (i.stack.imgur.com/uqJeW.png). LeoNerd's answers is better I think. – Chankey Pathak Jun 4 '14 at 17:01
use DateTime::Format::ISO8601 qw( );

my $ResolvedDate = "2014-06-04T10:48:07.124Z";
my $currentDate = "2014-06-04T06:03:36-04:00";

my $format = DateTime::Format::ISO8601->new();

my $dt_resolved = $format->parse_datetime($ResolvedDate);
my $dt_current  = $format->parse_datetime($currentDate);

my $dur = $dt_resolved->delta_days($dt_current);
my $days = $dur->in_units('days');
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