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I've tried pretty hard to find an example of this particular conversion (these date formats) using Perl regex, and to no avail. Can someone please help me convert dates between these formats?

Dec 26 2012 12:00AM ==>  201212126

The following was my initial attempt but it runs too slow (obviously, I used substr like 5 times which is ridiculous).

# Format the input time to yyyymmdd from 'Dec 26 2012 12:00AM' like format.
sub formatTime($)
{
    #Get passed in value of format 'Dec 26 2012 12:00AM'.
    my $col = shift; 

    if (substr($col, 4, 1) eq " "){
        substr($col, 4, 1) = "0";
    }

    return substr($col, 7, 4).$months{substr($col, 0, 3)}.substr($col, 4, 2);
}

Note: This is for work, for converting input files to a very large DB ingestion, and unfortunately python is not supported on platform which is my language of choice for scripting. I tried making my own Perl regex, but I just don't have time to read up and figure it out while doing other parts of this. I already wasted most of yesterday writing Perl scripts and learning on the fly for the rest of it, this conversion just it taking me too long.

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3  
A regex alone can't transform Dec into 12. Aren't there any date parsing functions available in Perl? –  Tim Pietzcker Sep 21 '12 at 13:11
5  
Don't roll your own. Date transformations are a solved problem. There are many modules on CPAN to do this for you, such as the DateTime module referenced in the answers. –  Andy Lester Sep 21 '12 at 13:47

3 Answers 3

up vote 19 down vote accepted

I advice you using module DateTime + DateTime::Format::Strptime.

#!/usr/local/bin/perl
use strict;

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

my $strp = DateTime::Format::Strptime->new(
      pattern => '%b %d %Y %l:%M%p',
      locale  => 'en_US',
);

# convert date to 
my $date = 'Dec 26 2012 10:10AM';
my $dt   = $strp->parse_datetime( $date );
printf "%s -> %s\n", $date, $dt->strftime("%Y-%m-%d %H:%M");

Output

Dec 26 2012 10:10AM -> 2012-12-26 10:10
share|improve this answer

So, what parts of Dec 26 2012 12:00AM are interesting?

Dec    26   2012     12:00      AM
$month $day $year $hour:$minute $pm

So we just define the trivial regex, capture the interesting information, and put them into appropriate vars:

my ($month, $day, $year, $hour, $minute, $pm)
  = ($string =~ m{
        (\w{3})   \s+             # 3 word characters
        (\d{1,2}) \s+             # 1 or 2 digits
        (\d{4})   \s+             # 4 digits
        (\d{2}) : (\d{2}) (AM|PM) # the hour, minute and AM/PM context
      }ix;
    );

Next, we make the month numeric and use the AM/PM information:

$month = {
  Jan => 1,
  Feb => 2,
  ...
  Dec => 12,
}->{$month} or die "Unknown month $month";

$hour += $pm =~ /pm/i ? 12 : 0; # if $pm contains "pm", then add 12 h

Then, we build an appropriately zero-padded string via sprintf:

my $format_string = "%04d%02d%02d" . ($include_hour ? "%02d%02d" : "");
my $date = sprintf $format_string,
  $year, $month, $day, $hour, $minute;

If you have the ambition you can easily add timezones as well ;-)

This method will produce weird results when the input is like 16:00PM, as this would output 2800 as a time, which is obviously wrong. If that could be an issue, do the pm correction only if $hour <= 12. However, that only matters if $include_hour is set to a true value.

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use strict;
use warnings;

my $str = "Dec 26 2012 12:00AM";

my %months = (
    Jan => "01",
    [...]
    Dec => "12"
);
$str =~ /^(\w{3}) (\d{1,2}) (\d{4})/; 

print $3.$months{$1}.$2;
share|improve this answer
1  
This is a poor piece of code because it lacks error checking. You need to check that the Regex actually matched before you start using $1, etc. Also, you should check that the three character string you matched is actually a valid month. i.e.: if ($str =~ /^(\w{3}) (\d{1,2}) (\d{4})/ and exists $months{$1}) { print $3.$months{$1}.$2; } else { #error handling } –  dan1111 Sep 21 '12 at 14:25
    
You forgot to mention that [...] is not valid Perl code. –  librarian Sep 22 '12 at 14:24

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