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I've got a problem with inserting a birthday to a Date field in my database. it always returns 0000-00-00 when i check the date that was stored in the database.

I use the followin code:

$dob = date('Y-m-d', strtotime($_POST['registration_dob_year']."/".$_POST['registration_dob_month']."/".$_POST['registration_dob_day']));

I know for a fact that my $_POST['registration_dob_year'], $_POST['registration_dob_month'] and $_POST['registration_dob_day'] variables are correct, because if i use the following code

echo $dob;

It prints something like 1986-01-07 on my page.

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7  
05-01-1989 is not a valid DATETIME value. MySQL expects YYYY-MM-DD... however, the code you show above should output that. Can you verify what is actually shown? –  Pekka 웃 Jun 11 '12 at 2:50
    
i know, i just mistyped the output.corrected it –  Gabi Barrientos Jun 11 '12 at 2:53
    
Can you post a query? –  Okonomiyaki3000 Jun 11 '12 at 2:53
    
@Okonomiyaki3000 "Can you post a query?" - what do you mean by that? if you mean if my registration script actually queries to mysql, and stores all other data in my database, yes. it works correctly. –  Gabi Barrientos Jun 11 '12 at 2:57
    
Why the heck are you using str_replace() on a concatenated string!! Sorry, but I'm sending that to CSI:PHP –  Jason McCreary Jun 11 '12 at 2:58

1 Answer 1

Why are you complicating things? Just use:

$dob = $_POST['registration_dob_year']."-".$_POST['registration_dob_month']."-".$_POST['registration_dob_day'];
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