Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

How to find number of days between two dates using PHP?

share|improve this question
What format are you days in? – Tatu Ulmanen Jan 11 '10 at 8:10
The following SO questions might be of some help: - How to calculate the date difference between 2 dates using php - Dates difference with php - Calculate the difference between date/times in PHP - Date Difference in php? - [Getting the difference betwee – Philip Morton Jan 11 '10 at 8:28

19 Answers 19

up vote 391 down vote accepted

     $now = time(); // or your date as well
     $your_date = strtotime("2010-01-01");
     $datediff = $now - $your_date;
     echo floor($datediff/(60*60*24));

share|improve this answer
It should also be noted that $now - $your_date could be negative. That line should read: $datediff = abs($now - $your_date); to be safe. – Andrew May 24 '11 at 16:35
I think returning a negative number of days provides relevant information. And you should be using $your_date-$now, if you want a future date to return a positive integer. – Tim Mar 2 '12 at 18:49
What about leap seconds? Not all days have exactly 24*60*60 seconds. This code might be sufficient for practical purposes but it's not exact in sone extremely rare edge cases. – Benjamin Brizzi Aug 1 '12 at 8:15
Forget leap seconds (no, actually consider those too) but this does NOT account for Daylight Saving Time changes! It can be off by an entire day over those boundaries every year. You need to use the DateTime classes. – Levi Dec 4 '12 at 3:34
@billynoah Sorry, I never came back to update my comment. You have to be careful with daylight saving time zones. If you compare a date with daylight saving agains a date without it, instead of for example return 7 days it returns 6.9 days. Taking the floor returns 6 instead of 7. – Alex Angelico Jul 23 '14 at 22:45

If you're using PHP 5.3 >, this is by far the most accurate way of calculating the difference:

$date1 = new DateTime("2010-07-06");
$date2 = new DateTime("2010-07-09");

$diff = $date2->diff($date1)->format("%a");
share|improve this answer
Note that because we're talking about time intervals not specific points in time, the format syntax is different from the date() and strftime() syntax. The time interval syntax can be found here: – Andrew Jun 4 '13 at 7:56
or in my case the number of days between is $date2->diff($date1)->format("%a") - 1 – morgunder Feb 21 '14 at 2:07
Keep in mind that if you have times in your dates, this won't work as you might expect. For example, if you have an interval of 23:30 hours... and they are on different days, the difference will be 0. – Layke May 12 '14 at 9:47
If you need a relative number of days (negative when $date1 is anterior to $date2), then use $diff = $date2->diff($date1)->format("%r%a"); instead. – Socce Apr 24 at 9:06

Convert your dates to unix timestamps, then substract one from the another. That will give you the difference in seconds, which you divide by 86400 (amount of seconds in a day) to give you an approximate amount of days in that range.

If your dates are in format 25.1.2010, 01/25/2010 or 2010-01-25, you can use the strtotime function:

$start = strtotime('2010-01-25');
$end = strtotime('2010-02-20');

$days_between = ceil(abs($end - $start) / 86400);

Using ceil rounds the amount of days up to the next full day. Use floor instead if you want to get the amount of full days between those two dates.

If your dates are already in unix timestamp format, you can skip the converting and just do the $days_between part. For more exotic date formats, you might have to do some custom parsing to get it right.

share|improve this answer
What about DST? – toon81 Feb 6 '13 at 10:38
@toon81 - we use Unix timestamps to avoid such messes! ;) – Alastair Sep 18 '13 at 4:57
Let me elaborate: let's say that this morning at 3AM, almost all of Europe moved the clock back an hour. That means that today has an extra 3600 seconds, and that ought to be reflected in the UNIX timestamps. If it is, then that means that today will count for two days with the above way of computing the number of days. And I'm not even starting about leap seconds since neither PHP nor UNIX seem to account for those (which is IMO actually understandable). TL;DR: not all days are 86,400 seconds long. – toon81 Sep 18 '13 at 8:59

From PHP Version > 5 below new date/time functions added to get difference:

$datetime1 = new DateTime("2010-06-20");

$datetime2 = new DateTime("2011-06-22");

$difference = $datetime1->diff($datetime2);

echo 'Difference: '.$difference->y.' years, ' 
                   .$difference->m.' months, ' 
                   .$difference->d.' days';


Result as below:

Difference: 1 years, 0 months, 2 days

DateInterval Object
    [y] => 1
    [m] => 0
    [d] => 2
    [h] => 0
    [i] => 0
    [s] => 0
    [invert] => 0
    [days] => 367

Hope it helps !

share|improve this answer
Yes, this seems better than accepted answer, which doesn't work in some cases. Like: $from='2014-03-01'; $to='2014-03-31'; – MBozic May 30 '14 at 14:51
@MBozic: Hey, thanks for the appreciations :) Really happy to read it ! – Aditya P Bhatt Jun 4 '14 at 8:36
I agree, so easy to follow and works great!!! Just don't forget to use the date_default_timezone_set() function or it will give you strange results based on UTC time. – zeckdude Apr 23 at 4:50

Used this :)

$days = (strtotime($endDate) - strtotime($startDate)) / (60 * 60 * 24);
print $days;

Now it works

share|improve this answer
Now accept an answer. – zmbush Jan 11 '10 at 8:18
Muhammad, this is not a forum. You shouldn't post answers to your own question unless someone else was unable to answer it for you, which is not the case in this situation. You'll want to make use of the comment feature to get clarification on individual answers. Also, you can always edit your original question. – Justin Johnson Jan 11 '10 at 8:21
Very old comment above, but it is incorrect. StackOverflow does allow you to answer your own question (even when you ask your question). Answering the question yourself after somebody already posted the same solution is however considered rude. – Maarten Bodewes May 19 '14 at 18:37

Easy to using date_diff

echo $diff->format('%R%a days');
share|improve this answer
$start = '2013-09-08';
$end = '2013-09-15';
$diff = (strtotime($end)- strtotime($start))/24/3600; 
echo $diff;
share|improve this answer

I'm using Carbon in my composer projects for this and similar purposes.

It'd be as easy as this:

$dt = Carbon::parse('2010-01-01');
echo $dt->diffInDays(Carbon::now());
share|improve this answer

Object oriented style:

$datetime1 = new DateTime('2009-10-11');
$datetime2 = new DateTime('2009-10-13');
$interval = $datetime1->diff($datetime2);
echo $interval->format('%R%a days');

Procedural style:

$datetime1 = date_create('2009-10-11');
$datetime2 = date_create('2009-10-13');
$interval = date_diff($datetime1, $datetime2);
echo $interval->format('%R%a days');
share|improve this answer
$datediff = floor(strtotime($date1)/(60*60*24)) - floor(strtotime($date2)/(60*60*24));

and, if needed:

share|improve this answer

If you have the times in seconds (I.E. unix time stamp) , then you can simply subtract the times and divide by 86400 (seconds per day)

share|improve this answer
What about DST? – toon81 Feb 6 '13 at 10:43
function howManyDays($startDate,$endDate) {

    $date1  = strtotime($startDate." 0:00:00");
    $date2  = strtotime($endDate." 23:59:59");
    $res    =  (int)(($date2-$date1)/86400);        

return $res;
share|improve this answer

TL;DR do not use UNIX timestamps. If you do, be prepared.

Most of the answers using UNIX timestamps make two mistakes that put together can lead to wrong results and subtle bugs that may be difficult to track, even days, weeks or months after a successful deployment.

First mistake is thinking that a day is a period of time - which is true, but on the scale of UNIX timestamps a day would be better thought of as an instant in time (possibly, an instant one second wide). So when asked, "How many days passed since yesterday?", a computer might truthfully answer zero if between the present and the instant indicated by "yesterday" less than one whole day has passed.

Usually when converting a "day" to a UNIX timestamp, what is obtained is the timestamp for the midnight of that particular day.

Second mistake is equating one day to 86400 seconds. This is almost always true. But the distance in seconds between two consecutive midnights is surely not 86400 at least twice a year when daylight saving time comes into play.

So the formula

 (unix_timestamp(DATE2) - unix_timestamp(DATE1)) / 86400

will return, say, 17 when DATE1 and DATE2 are in the same DST segment of the year; but it may return 17.042, and worse still, 16.958. The use of floor() or any implicit truncation to integer will then convert what should have been a 17 to a 16.

And things grow even uglier since such code is not portable across platforms, because some of them may apply leap seconds and some might not. On those platforms that do, the difference between two dates will not be 86400 but 86401, or maybe 86399. So code that worked in May and actually passed all tests will break next June when 12.99999 days are considered 12 days instead of 13.

So if you really want to use UNIX timestamps:

  • use round() function wisely.

  • as an alternative, do not calculate differences between D1-M1-YYY1 and D2-M2-YYY2. Those dates will be really considered as D1-M1-YYY1 00:00:00 and D2-M2-YYY2 00:00:00. Rather, convert between D1-M1-YYY1 22:30:00 and D2-M2-YYY2 04:30:00. You will always get a remainder of about twenty hours. This may become twenty-one hours or nineteen, and maybe eighteen hours, fifty-nine minutes thirty-six seconds. No matter. It is a large margin which will stay there and stay positive for the foreseeable future. Now you can truncate it with floor() in safety.

The correct solution though is to

  • use a time library (Datetime, Carbon, whatever); don't roll your own

  • write comprehensive test cases using really evil date choices - across DST boundaries, across leap years, across leap seconds, and so on, as well as commonplace dates. Ideally (calls to datetime are fast!) generate four whole years' worth of dates by assembling them from strings, sequentially, and ensure that the difference between the first day and the day being tested increases steadily by one. This will ensure that if anything changes in the low-level routines and leap seconds fixes try to wreak havoc, at least you will know.

  • run those tests regularly together with the rest of the test suite. They're a matter of milliseconds, and may save you literally hours of head scratching.

share|improve this answer
    // Change this to the day in the future
$day = 15;

// Change this to the month in the future
$month = 11;

// Change this to the year in the future
$year = 2012;

// $days is the number of days between now and the date in the future
$days = (int)((mktime (0,0,0,$month,$day,$year) - time(void))/86400);

echo "There are $days days until $day/$month/$year";
share|improve this answer

If you want to echo all days between the start and end date, I came up with this :

$startdatum = $_POST['start']; // starting date
$einddatum = $_POST['eind']; // end date

$now = strtotime($startdatum);
$your_date = strtotime($einddatum);
$datediff = $your_date - $now;
$number = floor($datediff/(60*60*24));

for($i=0;$i <= $number; $i++)
    echo date('d-m-Y' ,strtotime("+".$i." day"))."<br>";
share|improve this answer

If you are using MySql

function daysSince($date, $date2){
$q = "SELECT DATEDIFF('$date','$date2') AS days;";
$result = execQ($q);
$row = mysql_fetch_array($result,MYSQL_BOTH);
return ($row[0]);


function execQ($q){
$result = mysql_query( $q);
if(!$result){echo ('Database error execQ' . mysql_error());echo $q;}    
return $result;


share|improve this answer

Here is my improved version which shows 1 Year(s) 2 Month(s) 25 day(s) if the 2nd parameter is passed.

class App_Sandbox_String_Util {
     * Usage: App_Sandbox_String_Util::getDateDiff();
     * @param int $your_date timestamp
     * @param bool $hr human readable. e.g. 1 year(s) 2 day(s)
     * @see
     * @see
    static public function getDateDiff($your_date, $hr = 0) {
        $now = time(); // or your date as well
        $datediff = $now - $your_date;
        $days = floor( $datediff / ( 3600 * 24 ) );

        $label = '';

        if ($hr) {
            if ($days >= 365) { // over a year
                $years = floor($days / 365);
                $label .= $years . ' Year(s)';
                $days -= 365 * $years;

            if ($days) {
                $months = floor( $days / 30 );
                $label .= ' ' . $months . ' Month(s)';
                $days -= 30 * $months;

            if ($days) {
                $label .= ' ' . $days . ' day(s)';
        } else {
            $label = $days;

        return $label;
share|improve this answer

Try using Carbon

$d1 = \Carbon\Carbon::now()->subDays(92);
$d2 = \Carbon\Carbon::now()->subDays(10);
$days_btw = $d1->diffInDays($d2);

Also you can use


to create an object of Carbon date using given timestamp string.

share|improve this answer
Can you please tell what's the difference between this and my answer ? – Arda Jul 29 at 14:30

Well, the selected answer is not the most correct one because it will fail outside UTC. Depending on the timezone (list) there could be time adjustments creating days "without" 24 hours, and this will make the (60*60*24)

Here it is an example of it:

$time1 = strtotime('2016-03-27');
$time2 = strtotime('2016-03-29');
echo floor( ($time2-$time1) /(60*60*24));
 ^-- the output will **1**

So the correct solution will be using DateTime

$date1 = new DateTime("2016-03-27");
$date2 = new DateTime("2016-03-29");

echo $date2->diff($date1)->format("%a");
 ^-- the output will **2**
share|improve this answer
Thats cool, thanks – Lafif Astahdziq Oct 7 at 5:48

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.