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This is weird, i'm trying to echo out a date like Monday, January 1, 2013, but its echoing out the wrong textual day. I don't have a clue why?

I have:

<?php echo date('l, F n, Y', strtotime($do['dueDate'])); ?>

And $do['dueDate'] is the date from the database of "2013-03-22". Its formatted as DATE in mysql.

When the above echos out it says: Friday, March 3, 2013

But march 3, 2013 is a sunday...

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Check the date manual see what n means. –  sachleen Mar 2 '13 at 5:41

4 Answers 4

up vote 1 down vote accepted

Try like this

echo date('l ,F j ,Y', strtotime($do['dueDate']));
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I'm a freaking moron. Sorry. I looked at the PHP.net docs wrong. Thanks alot. –  Daniel White Mar 2 '13 at 5:43
    
Glad it helps....glad if you accept –  Gautam3164 Mar 2 '13 at 5:44

use this

<?php  
echo date('l, F j, Y', strtotime("2013-03-22"));  // output Friday, March 22, 2013

working example http://codepad.viper-7.com/rF6w1U

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http://php.net/manual/en/function.date.php

n is the numerical representation of the month.

try this:

$date = "2013-03-22";
echo date('l, F j, Y', strtotime($date));

outputs:

Friday, March 22, 2013
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Try this :

n --> Numeric representation of a month, without leading zeros --> 1 through 12
j --> Day of the month without leading zeros                   --> 1 to 31


<?php
 $do['dueDate'] =  "2013-03-22";
 echo date('l, F j, Y', strtotime($do['dueDate']));
?>

Output :

Friday, March 22, 2013
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