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From a custom utility class, I get the format of a date variable in the following format: d-m-Y. My plan is to use Date('Y-m-d', strtotime($myCustomDate)) but I'm not sure that PHP will return me the right date every time. How can I be sure that my approach is safe?

How can I know that 02-03-2013 will not be transformed as mysql equivalent of 03 February 2013, when I need 02 March 2013.

How do you deal with this problem?

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2 Answers 2

The safest way (other than using timestamps, which is a whole different story), would be to use the YYYY-MM-DD format, since there can not be the inverse ( ie YYYY-DD-MM is not defined), and MySQL understands it well.

You can then use PHP to convert it to any other desired format.

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and YYYY-MM-DD is even sortable –  Mark Baker Mar 13 '13 at 15:53
    
@hexbot: isn't Y-m-dthe php equivalent of mysql YYYY-MM-DD? my problem is between php converts –  ctp Mar 13 '13 at 15:59
    
to be safe, once you get it from MySQL convert to timestamp. All PHP functions use timestamps as their source, and you don't have to bother with formatting hassles. –  hexblot Mar 13 '13 at 16:00
    
I need to send it to mysql, not to get it from MySql –  ctp Mar 13 '13 at 16:09
    
strtotime is the key to that, since that will essentially convert your date. See formats available here , they are made not to conflict. –  hexblot Mar 13 '13 at 16:13

If the format is always d-m-Y, then you can use a preg_split function to break the date into its component parts and then reformat it using date

<?PHP 
  $date = "3-13-2013";
  $date_parts = preg_split("/-/",$date);
  $newDate = Date("Y-m-d",mktime(0, 0, 0, $date_parts[0], $date_parts[1], $date_parts[2]));
?>

This will result in $newDate having the value 2013-03-13.

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