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I am working on a perl script to add days to a date and display the newdate:

use Time::ParseDate;
use Time::CTime;

my $date = "02/01/2003";
my $numdays = 30;

my $time = parsedate($date);

# add $numdays worth of seconds
my $newtime = $time + ($numdays * 24 * 60 * 60);

my $newdate = strftime("%m/%d/%Y",localtime($newtime));

print "$newdate\n";

    The output will be:

    03/03/2003

Now how do I set the input for the date field to be yyyymmdd Ex: my $date = "20030102"

Also the output will need to be : 20030303

Thanks

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Do you mean yyyyddmm as the format or 60 as the number of days to add? Since adding 30 days to 20030102 (2nd January 2003) is not going to get you to 20030303 (3rd March 2003) –  MkV Oct 29 '12 at 19:11

3 Answers 3

up vote 4 down vote accepted

Convert $date from the input format to the old format:

$date =~ s%(....)(..)(..)%$3/$2/$1%;

If the output format should not be %m/%d/%Y, then do not set it to it. You obviously need %Y%m%d.

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Great...Thanks !!! –  Gallop Oct 29 '12 at 13:54

You can use DateTime + DateTime::Format::Strptime:

#!/usr/bin/perl
use strict;

use DateTime;
use DateTime::Format::Strptime;

my $strp = DateTime::Format::Strptime->new(
    pattern => '%m/%d/%Y'
);

# convert date to 
my $date = '02/01/2003';
my $dt   = $strp->parse_datetime($date);
printf "%s -> %s\n", $date, $dt->add(days => 30)->strftime("%d/%m/%Y");

OUTPUT

02/01/2003 -> 03/03/2003
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You use Time::Piece + Time::Seconds (in core since Perl 5.10),

use Time::Piece ();
use Time::Seconds;
my $date = '20030102';
my $numdays = 60; # 30 doesn't get us to march

my $dt = Time::Piece->strptime( $date, '%Y%m%d');
$dt += ONE_DAY * $numdays;
print $dt->strftime('%Y%m%d');
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