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I have these 2 dates stored in mysql :

2012-10-05
2012-10-10

I got the dates returned using php/mysql now I need to find out how many days separate them. in this example it would be 5days. any suggestion of what would be the best way to do it ?

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1  
strtotime() accepts a string and returns an a unix timestamp. If you did strtotime() for each and subtracted, you'd have the difference between the two dates in seconds. Divide appropriately and you're on your way. – jedwards Jun 9 '12 at 5:10
up vote 1 down vote accepted
SELECT DATEDIFF(date1, date2)
FROM yourtable

as per the MySQL docs: http://dev.mysql.com/doc/refman/5.1/en/date-and-time-functions.html#function_datediff

datediff() returns the difference of date1 - date2 in days.

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thanks for this approach I didnt know you could do it through sql, only knew about php. – cppit Jun 9 '12 at 5:13
2  
Better to do it in the database, rather than having to force mysql to convert its internal date format to a string, then force php to convert that string back to a php-native timestamp. pointless round-tripping should be avoided. – Marc B Jun 9 '12 at 5:17
    
true. can I select more than those fields ? like SELECT DATEDIFF(date1, date2),users.email,users.id FROM mytable. I will be emailing the ones where date1-date2 is bigger than 5days – cppit Jun 9 '12 at 5:20
1  
of course, using a function as a field in a query call doesn't prevet you from selecting any other fields/function calls you need. – Marc B Jun 9 '12 at 5:24
$date1 = strtotime("2012-10-05");
$date2 = strtotime("2012-10-10");



$days = floor(abs($date2 - $date1)/ (60*60*24));

printf("%d days",$days);
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$date1 = new DateTime('2012-10-05');
$date2 = new Datetime('2012-10-10');
$interval = $date1->diff($date2);
echo $interval->format('%R%d days');  // +5 days
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Try something like this :

$date1 = "2007-03-24"; $date2 = "2009-06-26";

$diff = abs(strtotime($date2) - strtotime($date1));

$years = floor($diff / (365*60*60*24)); $months = floor(($diff - $years * 365*60*60*24) / (30*60*60*24)); $days = floor(($diff - $years * 365*60*60*24 - $months*30*60*60*24)/ (60*60*24));

printf("%d years, %d months, %d days\n", $years, $months, $days);

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