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If I have a couple of strings $startDate and $endDate which are set to (for instance) "2011/07/01" and "2011/07/17" (meaning 1 July 2011 and 17 July 2011). How would I count the days from start date to end date? In the example given, it would be 17 days.

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8 Answers 8

up vote 18 down vote accepted

Here is the raw way to do it

$startTimeStamp = strtotime("2011/07/01");
$endTimeStamp = strtotime("2011/07/17");

$timeDiff = abs($endTimeStamp - $startTimeStamp);

$numberDays = $timeDiff/86400;  // 86400 seconds in one day

// and you might want to convert to integer
$numberDays = intval($numberDays);
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4  
Will not work correctly when you have local dates that include a dayling savings time switchover, because on those dates you have days with 23 or 25 hours. –  Michael Borgwardt Sep 6 '10 at 19:53
    
Thanks. Appears to work for me. –  cannyboy Sep 6 '10 at 21:53
    
Actually, it says 16 days for those dates.. Do I need to make dates ignore daylight saving time..? –  cannyboy Sep 6 '10 at 22:43
    
It should be 16 days because July 1 and July 17 are 16 days apart whereas July 1 and July 18 are 17 days apart –  axsuul Sep 6 '10 at 23:09
    
@MichaelBorgwardt you have two solid dates, I don't see how daylight saving can affect this. –  Andy Mar 19 '14 at 22:30

PHP has a date_diff() function to do this.

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Use DateTime::diff (aka date_diff):

$datetime1 = new DateTime('2009-10-11');
$datetime2 = new DateTime('2009-10-13');
$interval = $datetime1->diff($datetime2);

Or:

$datetime1 = date_create('2009-10-11');
$datetime2 = date_create('2009-10-13');
$interval = date_diff($datetime1, $datetime2);

You can then get the interval as a integer by calling $interval->days.

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That doesn't seem to work with my initial strings of "2011/07/01" and "2011/07/17" ... "Call to undefined function date_diff().." . I'm using PHP 5.2.10 –  cannyboy Sep 6 '10 at 21:40
3  
Per the documentation (linked at the top), this is PHP >= 5.3.0. For next time, please include the PHP version in your question. –  wuputah Sep 6 '10 at 23:13
    
does only work if you don't have a time in your Date Times otherwise it may return 1-2 days to few –  Dukeatcoding Jan 22 '14 at 14:09
    
bug : $interval->days return 6015 days ! And if i use the $interval->format("%d"), it only return the differences between the days, without taking into account the months and years. –  Alex Sep 2 '14 at 14:54

None of the solutions worked for me. For those who are still on PHP 5.2 (DateTime::diff was introduced in 5.3), this solution works:

function howDays($from, $to) {
    $first_date = strtotime($from);
    $second_date = strtotime($to);
    $offset = $second_date-$first_date; 
    return floor($offset/60/60/24);
}
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<?php
$datetime1 = new DateTime('2009-10-11');
$datetime2 = new DateTime('2009-10-13');
$interval = $datetime1->diff($datetime2);
echo $interval->format('%R%a days');
?>

Source: http://www.php.net/manual/en/datetime.diff.php

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In case your DateTime has also hour:minutes:seconds and you still want to have the number of days..

   /**
     * Returns the total number of days between to DateTimes, 
     * if it is within the same year
     * @param $start
     * @param $end
     */
    public function dateTimesToDays($start,$end){
       return intval($end->format('z')) - intval($start->format('z')) + 1;
    }

https://github.com/dukeatcoding/timespan-converter

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If you want to know the number of days (if any), the number of hours (if any), minutues (if any) and seconds, you can do the following:

$previousTimeStamp = strtotime("2011/07/01 21:12:34");
$lastTimeStamp = strtotime("2013/09/17 12:34:11");

$menos=$lastTimeStamp-$previousTimeStamp;

$mins=$menos/60;
if($mins<1){
$showing= $menos . " seconds ago";
}
else{
$minsfinal=floor($mins);
$secondsfinal=$menos-($minsfinal*60);
$hours=$minsfinal/60;
if($hours<1){
$showing= $minsfinal . " minutes and " . $secondsfinal. " seconds ago";

}
else{
$hoursfinal=floor($hours);
$minssuperfinal=$minsfinal-($hoursfinal*60);
$days=$hoursfinal/24;
if($days<1){
$showing= $hoursfinal . "hours, " . $minssuperfinal . " minutes and " . $secondsfinal. " seconds ago";

}
else{
$daysfinal=floor($days);
$hourssuperfinal=$hoursfinal-($daysfinal*24);
$showing= $daysfinal. "days, " .$hourssuperfinal . " hours, " . $minssuperfinal . " minutes and " . $secondsfinal. " seconds ago";
}}}

echo $showing;

You could use the same logic if you want to add months and years.

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Simple way to count is,

$currentdate = date('Y-m-d H:i:s');
$after1yrdate =  date("Y-m-d H:i:s", strtotime("+1 year", strtotime($data)));

$diff = (strtotime($after1yrdate) - strtotime($currentdate)) / (60 * 60 * 24);

echo "<p style='color:red'>The difference is ".round($diff)." Days</p>";
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