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I need to change following format 20:35:20 Feb 24, 2012 PST to Feb 23, 2013. I needed it to be generic as it might be used for many years to come.

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What's the corellation between these two dates? Are you sure you need regex to do this? =) – Andrew Logvinov Feb 25 '12 at 9:23
1  
You need to convert it, add a year, and subtract a day? – Josh Feb 25 '12 at 9:24
1  
You do not want to use regex for this. Use PHP's date/time manipulation functions. – Mat Feb 25 '12 at 9:25
    
Gift Certificates purchased date and GC expiry date. it's 1yr valid. Any solution appreciated. Thanks guys ;) – daniel.tosaba Feb 25 '12 at 9:25
    
@Mat: thanks Mat. if you are familiar do you mind dropping me a quick line of code? – daniel.tosaba Feb 25 '12 at 9:26
up vote 1 down vote accepted

Regex isn't necessary here. You can simply use date() and strtotime().

$input = "20:35:20 Feb 24, 2012";

// Convert to timestamp, add a year, subtract a day
echo date("M j, Y", strtotime($input . " + 1 Year - 1 Day"));

// Outputs: Feb 23, 2013
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thanks man, this is just fine. – daniel.tosaba Feb 25 '12 at 9:40

\d{2}:\d{2}\d{2}\s+([A-Z]+\s+\d{1,2}\s+\d{4})\s+[A-Z]+

The date will be in the first group. If you want the regex to match the entire string (rather than match a date in the middle of the string), put ^ at the start and $ at the end. This regex is meant to be used with case-insensitive matching.

If any parts of your example date/time are optional, let me know, and I can modify this.

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Was trying to delete this but I guess I'll let it sit. I didn't realize the dates were different. – DarkTygur Feb 25 '12 at 9:31
$pattern = "/[0-9]+:[0-9]+:[0-9]+ ([A-Za-z]+) ([0-9]+), ([0-9]{4})/";
preg_match_all($pattern, $old_date, $arr, PREG_PATTERN_ORDER);
$new_date = $arr[][0] ." ". $arr[1][0]-1 .", ". $arr[2][0]+1;
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will analyze tomorrow.. to tired. nice power there ;) – daniel.tosaba Feb 25 '12 at 9:41

See live example: http://codepad.org/xDCbKZxV

function isLeapYear($year)
{
  return ((($year % 4) == 0) && (($year % 100) != 0) || (($year % 400) == 0));
}

$date = strtotime('20:35:20 Feb 24, 2012 PST');

if ( isLeapYear(date('Y', $date)) )
  $date += (60*60*24*366);  // One year (leap year!)
else
  $date += (60*60*24*365); // One year
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nice one too, it reminds of me high school ;) – daniel.tosaba Feb 25 '12 at 9:41

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