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My MySQL structure:

startdate
2012-01-01 04:00:00
enddate
2012-12-05 21:55:00

My PHP

$startDate=row['startdate'];
$endDate=row['enddate]';

$days="";
$days=date("Y-m-d H:i:s");
$days=($startDate-$endDate);
echo $days;
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I know date_diff works but that is not on time too. –  TheBlackBenzKid Jan 5 '12 at 22:03

3 Answers 3

up vote 3 down vote accepted

Try this simple one-liner:

<?php
    echo round((strtotime($row['enddate'])-strtotime($row['startdate']))/86400);
?>

You could have a look in the PHP manual for strtotime() at http://php.net/manual/en/function.strtotime.php.

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Brilliant. Like it a lot. –  TheBlackBenzKid Jan 6 '12 at 18:10
  1. Why not use DATE_DIFF, a built-in, MySQL function?
  2. If you want to stick with PHP: first use strtotime() on both dates (convert to unix timestamp), then subtract, then format.
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I already said DATE_DIFF does not include for time according to PHP site. Examples? I don't want too much code. Looking for a one liner here. –  TheBlackBenzKid Jan 5 '12 at 22:09
    
strtotime($endDate)-strtotime($startDate))/86400 this will give you diff in days. –  mcmajkel Jan 5 '12 at 22:18

You could use the strtotime() function to convert the start and end dates into seconds, subtract the start date from the end date, then use a bit of maths to convert seconds into days, and finally round off with the number of days with the floor() function. Here is a bit of code that I have written and tested.

<?php
$startDate = row['startdate'];
$endDate = row['enddate]';
$seconds_left = (strtotime($endDate) - strtotime($startDate));
$days_left = floor($seconds_left / 3600 / 24);
echo $days_left;
?>
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Have you tried this with dates in a timezone with DST for the end date but not the start date? Since you are using floor() (instead of round() as my earlier solution, this might return one day shorter than the interval actually is. –  Richard86 Jan 5 '12 at 22:41

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