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Heylo,

I want to calculate (using the default Perl installation only) the number of days between two dates. The format of both the dates are like so 04-MAY-09. (DD-MMM-YY)

I couldn't find any tutorials that discussed that date format. Should I be building a custom date checker for this format? Further reading of the Date::Calc on CPAN it looks unlikely that this format is supported.

Thanks.

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2  
can't you just convert the dates to seconds, and calculate the difference? –  TStamper May 4 '09 at 19:05

6 Answers 6

If you care about accuracy, keep in mind that not all days have 86400 seconds. Any solution based on that assumption will not be correct for some cases.

Here's a snippet I keep around to calculate and display date/time differences a few different ways using the DateTime library. The last answer printed is the one you want, I think.

#!/usr/bin/perl -w

use strict;

use DateTime;
use DateTime::Format::Duration;

# XXX: Create your two dates here
my $d1 = DateTime->new(...);
my $d2 = DateTime->new(...);

my $dur = ($d1 > $d2 ? ($d1->subtract_datetime_absolute($d2)) : 
                       ($d2->subtract_datetime_absolute($d1)));

my $f = DateTime::Format::Duration->new(pattern => 
  '%Y years, %m months, %e days, %H hours, %M minutes, %S seconds');

print $f->format_duration($dur), "\n";

$dur = $d1->delta_md($d2);

my $dy = int($dur->delta_months / 12);
my $dm = $dur->delta_months % 12;
print "$dy years $dm months ", $dur->delta_days, " days\n";
print $dur->delta_months, " months ", $dur->delta_days, " days\n";
print $d1->delta_days($d2)->delta_days, " days\n";
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1  
This doesn't always work accurately, see my answer. –  Juan A. Navarro Aug 18 '11 at 18:43

If your dates also have time (e.g., hours and seconds) and you want to accurately measure the number of days (made up of 24 hours) between two timestamps, use DateTime as follows

my $d1 = DateTime->new(...); # create your DateTime objects
my $d2 = DateTime->new(...);
my $days = int($d1->subtract_datetime_absolute($d2)->delta_seconds / (24*60*60));

Note that just using days, delta_days or in_units('days') wont work, because—as the documentation of subtract_datetime_absolute states:

This is the only way to accurately measure the absolute amount of time between two datetimes.

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1  
I'm not sure that calling int on the number of days to round toward zero is right, but since it depends what he is doing with it, I wouldn't know what is right, either. I can see sometimes wanting the floor() (which for positives gives the same as you got), sometimes the ceil(), sometimes sprintf "%.0f", and sometimes just keeping the float. But those are easy to adjust according to his needs. The hard thing is saying you can't use CPAN but can solicit code. Find: the code requires that he suck all of DateTime into his program with cut and paste, the worst kind of code reuse. Alas! –  tchrist Aug 19 '11 at 1:28

Time::ParseDate will handle that format just fine:

use Time::ParseDate qw(parsedate);

$d1="04-MAR-09";
$d2="06-MAR-09";

printf "%d days difference\n", (parsedate($d2) - parsedate($d1)) / (60 * 60 * 24);
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Time::ParseDate is not part of Core Perl –  Chas. Owens May 4 '09 at 20:12
1  
Obviously the mention of Date::Calc in the question implies CPAN's fair game. –  Michael Cramer May 4 '09 at 20:21
    
The question also says "using default perl installation only" –  Chas. Owens May 4 '09 at 20:28
    
won't work if month,day etc value is of length = 1. i.e., $d1="2014-5-29 9:0:00"; and $d2="2014-5-29 10:0:00"; –  Bharat May 29 at 12:28

Date::Calc has Decode_Date_EU (and US etc)

#!/usr/bin/perl
use Date::Calc qw(Delta_Days Decode_Date_EU);

($year1,$month1,$day1) = Decode_Date_EU('02-MAY-09');
($year2,$month2,$day2) = Decode_Date_EU('04-MAY-09');

print "Diff = " . Delta_Days($year1,$month1,$day1, $year2,$month2,$day2);
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Date::Calc is not part of Core Perl –  Chas. Owens May 4 '09 at 20:13

You could convert the dates into the long integer format, which is the number of seconds since the epoch (some date in 1970 I think). You then have two variables that are the dates in seconds; subtract the smaller from the larger. Now you have a time span in seconds; divide it by the number of seconds in 24 hours.

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The UNIX/C epoch is January 1, 1970 00:00:00 UTC. –  Powerlord May 4 '09 at 19:15
    
This will give you the number of 86400-seconds blocks of time between two dates, which is not the same thing as the number of (calendar) days between two dates. (Okay, it's actually not even the same thing as 86400-second blocks either, due to leap seconds...) –  John Siracusa May 5 '09 at 0:27
    
@John: The DST flag turning on and off is worse than leap seconds. –  tchrist Aug 19 '11 at 1:29

Convert the two dates to seconds and then do the math:

#!/usr/bin/perl

use strict;
use warnings;
use POSIX qw/mktime/;

{

    my %mon = (
    	JAN => 0,
    	FEB => 1,
    	MAR => 2,
    	APR => 3,
    	MAY => 4,
    	JUN => 5,
    	JUL => 6,
    	AUG => 7,
    	SEP => 8,
    	OCT => 9,
    	NOV => 10,
    	DEC => 11,
    );

    sub date_to_seconds {
    	my $date = shift;
    	my ($day, $month, $year) = split /-/, $date;

    	$month = $mon{$month};
    	if ($year < 50) { #or whatever your cutoff is
    		$year += 100; #make it 20??
    	}

    	#return midnight on the day in question in 
    	#seconds since the epoch
    	return mktime 0, 0, 0, $day, $month, $year;
    }
}

my $d1 = "04-MAY-99";
my $d2 = "04-MAY-00";

my $s1 = date_to_seconds $d1;
my $s2 = date_to_seconds $d2;

my $days = int(($s2 - $s1)/(24*60*60));

print "there are $days days between $d1 and $d2\n";
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