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I'm trying to display a datetime from my MySQL database as an iso 8601 formated string with PHP but it's coming out wrong.

17 Oct 2008 is coming out as: 1969-12-31T18:33:28-06:00 which is clearly not correct (the year should be 2008 not 1969)

This is the code I'm using:

<?= date("c", $post[3]) ?>

$post[3] is the datetime (CURRENT_TIMESTAMP) from my MySQL database.

Any ideas what's going wrong?

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4 Answers 4

up vote 37 down vote accepted

The second argument of date is a UNIX timestamp, not a database timestamp string.

You need to convert your database timestamp with strtotime.

<?= date("c", strtotime($post[3])) ?>
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Thanks Paolo, This worked a treat! –  Matthew James Taylor May 24 '09 at 6:20
    
Please, use classes! Take a look at @John Conde solution, ;) –  antur123 May 28 '13 at 14:13
1  
The date() function decreases accuracy, use John's solution instead! –  Christian Aug 30 '13 at 19:37

Using the DateTime class available in PHP version 5.2 it would be done like this:

$datetime = new DateTime('17 Oct 2008');
echo $datetime->format('c');

See it in action

As of PHP 5.4 you can do this as a one-liner:

echo (new DateTime('17 Oct 2008'))->format('c');
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Lovely object-oriented approach, :) –  antur123 May 28 '13 at 14:12

For pre PHP 5:

function iso8601($time=false) {
    if(!$time) $time=time();
    return date("Y-m-d", $time) . 'T' . date("H:i:s", $time) .'+00:00';
}
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4  
why not escape T sign ... and the !$time condition is not necesary, as current time is used when no time parameter is given or null: date('Y-m-d\TH:i:s\Z', $time);//Z represents current time zone –  gregor Oct 29 '10 at 15:15

Here is the good function for pre PHP 5: I added GMT difference at the end, it's not hardcoded.

function iso8601($time=false) {
    if ($time === false) $time = time();
    $date = date('Y-m-d\TH:i:sO', $time);
    return (substr($date, 0, strlen($date)-2).':'.substr($date, -2));
}
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