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<?php
// Convert MMDDYY to YYYY-MM-DD date format to be INSERTed
// into MySQL TABLE.
// If it can't convert the data because of an error, it returns 0000-00-00.
date_default_timezone_set('America/New_York');

function date_convert($date_input) {
    try {
    $date = new DateTime($date_input);
    $date_processed = $date->format('Y-m-d'); 
    } catch(Exception $e) {
    echo "Wrong date format $date_input" . "\n";
    $date_processed = "0000-00-00";
}
    return $date_processed;
}

// MMDDYY (January 1, 2000)
$TRANSACTION_DATE_MMDDYY_raw = "010100";
echo date_convert($TRANSACTION_DATE_MMDDYY_raw) . "\n";
?>

Output: 2013-06-28

I'm expecting it to return 2000-01-01, but it's returning today's date. What am I missing? How can I fix this? Thanks!

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I posted my answer just for you: stackoverflow.com/questions/17373007/… –  Jari Jun 28 '13 at 21:03

3 Answers 3

up vote 1 down vote accepted

PHP has no way to know your date is formated like MMDDYY. There are two ways to solve this:

  • use one of the 'valid formats'. You can eather change your input value, or parse it to a valid format with some string functions or a regex.
  • use the static createFromFormat method that comes with the DateTime class.

As I presume changing the input is not an option, and parsing the input seems a bit far fetched, using the second method seems the most appropriate here, and would result in changing this:

$date = new DateTime($date_input);  

into this:

$date = DateTime::createFromFormat('mdy', $date_input);
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You should be using the createFromFormat method. See: http://us2.php.net/manual/en/datetime.createfromformat.php

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Is createFromFormat allowing to specify the input format and if it doesn't match it fails? –  Edward Jun 28 '13 at 21:12
1  
createFromFormat tells the DateTime class which format to expect and parse. Your format, MMDDYY would be DateTime::createFromFormat("mdy", $date_input); would be your best solution for creating the $date object in your date_convert function. –  Half Crazed Jun 28 '13 at 21:14
1  
Also, according to the docs (php.net/manual/en/datetime.createfromformat.php), createFromFormat will indeed return FALSE if some error occurs, instead of a valid DateTime instance. –  CmdrMoozy Jun 28 '13 at 21:23
    
^ +1. Good point; you'll need to rewrite your date_convert function a little differently and do a type check.. ex: if(false === $date) { bad date } else { do something } –  Half Crazed Jun 28 '13 at 21:24

The format you specified can't be converted/isnt recognized to be a proper format. Try '2000-01-01'

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But the data I'm getting to convert is in MMDDYY format. –  Edward Jun 28 '13 at 21:08

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