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when i want to convert a date so that i can "feed" it to MySQL (mm/dd/yyyy -> yyyy-mm-dd) this preg_match works fine

$new_date = preg_replace("!([01][0-9])/([0-9]{2})/([0-9]{4})!", "$3-$1-$2", $data[$c]);

with dates like

04/02/2012, 12/31/2012

but it fails when i get input like

12/1/2011, 1/4/2011

how to fix it due to i'm total noob to regex... :(

Thanks a lot for your help.

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4 Answers 4

up vote 1 down vote accepted

Try:

!(\d{1,2})/(\d{1,2})/(\d{4})!

\d means a digit, and I think it's handier than [0-9], and they are almost equivalent.

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works smooth.. thanks –  Michael Grenzer Nov 16 '12 at 0:31
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Try:

!([01]?[0-9])/([0-9]{1,2})/([0-9]{4})!

The {1,2} on the second group means 1 or 2 digits between 0-9. I also made the first part accept 1 or 2 digits so you can match 3/12/2012 and 03/12/2012.

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Thanks for the explanation :D i think i should rly take some lessons in regex due to i think i will need them more often in future to validate user input –  Michael Grenzer Nov 16 '12 at 0:33
    
Check out www.regular-expressions.info which is a great site for learning. Here is the PCRE reference from php.net which goes into some basics about regex, modifiers, and patterns as well. –  drew010 Nov 16 '12 at 0:50
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It's easier just to work with dates then use regexes. The DateTime object makes this easy:

$date = new DateTime('1/1/2013');
$new_date = $date->format('Y-m-d'); // Outputs 2013-01-01
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how it will know which is mm or dd 1st or 2nd? –  Michael Grenzer Nov 16 '12 at 0:29
    
The format() method handles all of that for you. –  John Conde Nov 16 '12 at 0:29
    
I think he means in the constructor. –  Madbreaks Nov 16 '12 at 0:32
    
kk thanks... but in this case cause in the script is already the regex so i can simply exchange the pattern without changing smth else –  Michael Grenzer Nov 16 '12 at 0:32
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Try:

$date = date("Y-m-d", strtotime($input));

strtotime works with almost any format.

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