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I am doing a website where I needed to calculate the time left somewhere.both time(), and $endTime work properly individually but this calculation doesn't seem to work (it always shows 02:00:00):

$timeLeft = date('H:i:s',max(($endTime - time()) , 0));

Where is the problem?

edit: $endTime = 1296727200

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What is the value for $endTime? –  Sarfraz Feb 19 '11 at 16:07
2  
Needs basic debugging. What does $endTime contain? If the result is a negative value, you will always get 0 which translates to January 1970, 02:00:00 in your time zone. Also this will break with countdown values > 24 hours –  Pekka 웃 Feb 19 '11 at 16:08
    
some unix time (1296727200) –  The GiG Feb 19 '11 at 16:08
    
that's a date in the past so the result will always be negative... Can you use PHP 5.3? The DateInterval class is great for stuff like this (php.net/manual/en/datetime.diff.php) –  Pekka 웃 Feb 19 '11 at 16:09

3 Answers 3

This may solve your problem: http://www.geekpedia.com/code169_Display-Time-Left-To-a-Date.html

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Interesting. Although this assumes that every month is 30 days long, and every year is 365 days long which most of us know is wrong. –  kmkaplan Feb 19 '11 at 16:22

The function date expects an timestamp (a number of seconds since 1970/1/1) as argument while $endTime - time() is a duration. You can compute the number of minutes and hours that duration represents as:

$seconds = $endTime - time();
$minutes = $seconds / 60;
$seconds = $seconds - $minutes * 60;
$hours = $minutes / 60;
$minutes = $minutes - $hours * 60;
$timeLeft = sprintf('%02d:%02d:%02d', $hours, $minutes, $seconds);

Of course $endTime should not be in the past…

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up vote -1 down vote accepted

found the answer thanks to the comments, the problem is that the $endTime was already smaller then time(), and then date(0)= January 1970, 02:00:00 in my timezone so it will be 02:00:00

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As mentionned by Pekka, this breaks for durations of more than one day. –  kmkaplan Feb 19 '11 at 17:09

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