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I have a MySQL database with a date column.

I create a variable of the value in PHP like this:

$query = mysql_query ("SELECT customer_date FROM customers WHERE customer_id = {$_SESSION['session_id']}");

while ($result = mysql_fetch_object($query)) {
    $date = $result->customer_date;

I need to convert the $datefrom YYYY-MM-DD to three variables

  • $yearvalue (for example 2012)
  • $monthname (for example August)
  • $dayvalue (for example 10)

And I need to be able to echo out anywhere in my code... How would I do this in a fancy way? I'm pretty new to coding...

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2 Answers 2

up vote 3 down vote accepted


while ($result = mysql_fetch_object($query)) {
  $date = $result->customer_date;
  $yearvalue = date("Y", strtotime($date) );
  $monthname = date("F", strtotime($date) );
  $dayvalue = date("d", strtotime($date) );

It'll only work/store the value of these values for the last row outputted from the $result.

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Thank's! Works like a charm – David Jul 14 '12 at 1:01
@David : If it worked like a charm then would you mind accepting answer? This is how SO works. – Fahim Parkar Jul 14 '12 at 1:11
Yes, but I had to wait for 8 minutes before I could do that. – David Jul 14 '12 at 1:17

how about this?

while ($result = mysql_fetch_object($query)) {
    $date = $result->customer_date;

Also read this. You will need to play with Y-F-d-h-i-s as per your requirement.

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Year, month (full month, ie. August) and day. – Gabriel Jul 14 '12 at 1:03
@GabrielSantos : I don't get you... – Fahim Parkar Jul 14 '12 at 1:05
@FahimParkar it'll be date('Y-F-d'... – hjpotter92 Jul 14 '12 at 1:06
@Nerd-Herd : Thanks for catch,,, Edited the same.. OP will need to play with that... – Fahim Parkar Jul 14 '12 at 1:07
@FahimParkar now you get =) – Gabriel Jul 14 '12 at 1:08

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