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How do I get the number of days between two dates in JavaScript? For example, given two dates in input boxes:

<input id="first" value="1/1/2000"/>
<input id="second" value="1/1/2001"/>

<script>
  alert(datediff("day", first, second)); // what goes here?
</script>
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17 Answers 17

up vote 172 down vote accepted
function parseDate(str) {
    var mdy = str.split('/');
    return new Date(mdy[2], mdy[0]-1, mdy[1]);
}

function daydiff(first, second) {
    return Math.round((second-first)/(1000*60*60*24));
}

alert(daydiff(parseDate($('#first').val()), parseDate($('#second').val())));
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As of this writing, only one of the other answers correctly handles DST (daylight saving time) transitions. Here are the results on a system located in California:

                                        1/1/2013- 3/10/2013- 11/3/2013-
User       Formula                      2/1/2013  3/11/2013  11/4/2013  Result
---------  ---------------------------  --------  ---------  ---------  ---------
Miles                   (d2 - d1) / N   31        0.9583333  1.0416666  Incorrect
some         Math.floor((d2 - d1) / N)  31        0          1          Incorrect
fuentesjr    Math.round((d2 - d1) / N)  31        1          1          Correct
toloco     Math.ceiling((d2 - d1) / N)  31        1          2          Incorrect

N = 86400000

Although Math.round returns the correct results, I think it's somewhat clunky. Instead, by explicitly accounting for changes to the UTC offset when DST begins or ends, we can use exact arithmetic:

function treatAsUTC(date) {
    var result = new Date(date);
    result.setMinutes(result.getMinutes() - result.getTimezoneOffset());
    return result;
}

function daysBetween(startDate, endDate) {
    var millisecondsPerDay = 24 * 60 * 60 * 1000;
    return (treatAsUTC(endDate) - treatAsUTC(startDate)) / millisecondsPerDay;
}

alert(daysBetween($('#first').val(), $('#second').val()));

Explanation

JavaScript date calculations are tricky because Date objects store times internally in UTC, not local time. For example, 3/10/2013 12:00 AM Pacific Standard Time (UTC-08:00) is stored as 3/10/2013 8:00 AM UTC, and 3/11/2013 12:00 AM Pacific Daylight Time (UTC-07:00) is stored as 3/11/2013 7:00 AM UTC. On this day, midnight to midnight local time is only 23 hours in UTC!

Although a day in local time can have more or less than 24 hours, a day in UTC is always exactly 24 hours.1 The daysBetween method shown above takes advantage of this fact by first calling treatAsUTC to adjust both local times to midnight UTC, before subtracting and dividing.

1. JavaScript ignores leap seconds.

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The easiest way to get the difference between two dates:

var diff =  Math.floor(( Date.parse(str2) - Date.parse(str1) ) / 86400000);

You get the difference days (or NaN if one or both could not be parsed). The parse date gived the result in milliseconds and to get it by day you have to divided it by 24 * 60 * 60 * 1000

If you want it divided by days, hours, minutes, seconds and milliseconds:

function dateDiff( str1, str2 ) {
    var diff = Date.parse( str2 ) - Date.parse( str1 ); 
    return isNaN( diff ) ? NaN : {
    	diff : diff,
    	ms : Math.floor( diff            % 1000 ),
    	s  : Math.floor( diff /     1000 %   60 ),
    	m  : Math.floor( diff /    60000 %   60 ),
    	h  : Math.floor( diff /  3600000 %   24 ),
    	d  : Math.floor( diff / 86400000        )
    };
}

Here is my refactored version of James version:

function mydiff(date1,date2,interval) {
    var second=1000, minute=second*60, hour=minute*60, day=hour*24, week=day*7;
    date1 = new Date(date1);
    date2 = new Date(date2);
    var timediff = date2 - date1;
    if (isNaN(timediff)) return NaN;
    switch (interval) {
        case "years": return date2.getFullYear() - date1.getFullYear();
        case "months": return (
            ( date2.getFullYear() * 12 + date2.getMonth() )
            -
            ( date1.getFullYear() * 12 + date1.getMonth() )
        );
        case "weeks"  : return Math.floor(timediff / week);
        case "days"   : return Math.floor(timediff / day); 
        case "hours"  : return Math.floor(timediff / hour); 
        case "minutes": return Math.floor(timediff / minute);
        case "seconds": return Math.floor(timediff / second);
        default: return undefined;
    }
}
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I recommend using the moment.js library (http://momentjs.com/docs/#/displaying/difference/). It handles daylight savings time correctly and in general is great to work with.

Example:

var start = moment("2013-11-04");
var end = moment("2013-11-03");
start.diff(end, "days")
1
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I would go ahead and grab this small utility and in it you will find functions to this for you. Here's a short example:

    	<script type="text/javascript" src="date.js"></script>
    	<script type="text/javascript">
    		var minutes = 1000*60;
    		var hours = minutes*60;
    		var days = hours*24;

    		var foo_date1 = getDateFromFormat("02/10/2009", "M/d/y");
    		var foo_date2 = getDateFromFormat("02/12/2009", "M/d/y");

    		var diff_date = Math.round((foo_date2 - foo_date1)/days);
    		alert("Diff date is: " + diff_date );
    	</script>
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Using Moment.js

 var future = moment('05/02/2015');
 var start = moment('04/23/2015');  
 var d = future.diff(start, 'days') // 9
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Date values in JS are datetime values.

So, direct date computations are inconsistent:

(2013-11-05 00:00:00) - (2013-11-04 10:10:10) < 1 day

for example we need to convert de 2nd date:

(2013-11-05 00:00:00) - (2013-11-04 00:00:00) = 1 day

the method could be truncate the mills in both dates:

start = Math.floor( date1.getTime() / (3600*24*1000)); //days as integer from..
end   = Math.floor( date2.getTime() / (3600*24*1000)); //days as integer from..
daysDiff = end - start; // exact dates
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What about using formatDate from DatePicker widget? You could use it to convert the dates in timestamp format (milliseconds since 01/01/1970) and then do a simple subtraction.

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I found this question when I want do some calculate on two date, but the date have hours and minutes value, I modified @michael-liu 's answer to fit my requirement, and it passed my test.

diff days 2012-12-31 23:00 and 2013-01-01 01:00 should equal 1. (2 hour) diff days 2012-12-31 01:00 and 2013-01-01 23:00 should equal 1. (46 hour)

function treatAsUTC(date) {
    var result = new Date(date);
    result.setMinutes(result.getMinutes() - result.getTimezoneOffset());
    return result;
}

var millisecondsPerDay = 24 * 60 * 60 * 1000;
function diffDays(startDate, endDate) {
    return Math.floor(treatAsUTC(endDate) / millisecondsPerDay) - Math.floor(treatAsUTC(startDate) / millisecondsPerDay);
}
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Better to get rid of DST, Math.ceil, Math.floor etc. by using UTC times:

var firstDate = Date.UTC(2015,01,2);
var secondDate = Date.UTC(2015,04,22);
var diff = Math.abs((firstDate.valueOf() 
    - secondDate.valueOf())/(24*60*60*1000));

This example gives difference 109 days. 24*60*60*1000 is one day in milliseconds.

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Date.prototype.days=function(to){
  return  Math.abs(Math.floor( to.getTime() / (3600*24*1000)) -  Math.floor( this.getTime() / (3600*24*1000)))

}

then :

  new Date('2014/05/20').days(new Date('2014/05/23')) // 3 days

  new Date('2014/05/23').days(new Date('2014/05/20')) // 3 days
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To Calculate days between 2 given dates you can use the following code.Dates I use here are Jan 01 2016 and Dec 31 2016

    <body>
        <h3>DAYS BETWEEN GIVEN DATES</h3>
        <p id="demo"></p>
            <script type="text/javascript">
                var day_start=new Date("Jan 01 2016");
                var day_end=new Date("Dec 31 2016");
                var total_days = (day_end - day_start) / (1000 * 60 * 60 * 24);
                document.getElementById("demo").innerHTML=Math.round(total_days);
            </script>
    </body>
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I think the solutions aren't correct 100% I would use ceil instead of floor, round will work but it isn't the right operation.

function dateDiff( str1, str2 ) {
    var diff = Date.parse( str2 ) - Date.parse( str1 ); 
    return isNaN( diff ) ? NaN : {
        diff : diff,
        ms : Math.ceil( diff            % 1000 ),
        s  : Math.ceil( diff /     1000 %   60 ),
        m  : Math.ceil( diff /    60000 %   60 ),
        h  : Math.ceil( diff /  3600000 %   24 ),
        d  : Math.ceil( diff / 86400000        )
    };
}
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3  
Days can have more than 24 hours and minutes can have more than 60 seconds. Using Math.ceil() would overcount in these cases. – Rich Dougherty Apr 7 '12 at 22:28

This may not be the most elegant solution, but it seems to answer the question with a relatively simple bit of code, I think. Can't you use something like this:

function dayDiff(startdate, enddate) {
  var dayCount = 0;

  while(enddate >= startdate) {
    dayCount++;
    startdate.setDate(startdate.getDate() + 1);
  }

return dayCount; 
}

This is assuming you are passing date objects as parameters.

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I had the same issue in Angular. I do the copy because else he will overwrite the first date. Both dates must have time 00:00:00 (obviously)

 /*
* Deze functie gebruiken we om het aantal dagen te bereken van een booking.
* */
$scope.berekenDagen = function ()
{
    $scope.booking.aantalDagen=0;

    /*De loper is gelijk aan de startdag van je reservatie.
     * De copy is nodig anders overschijft angular de booking.van.
     * */
    var loper = angular.copy($scope.booking.van);

    /*Zolang de reservatie beschikbaar is, doorloop de weekdagen van je start tot einddatum.*/
    while (loper < $scope.booking.tot) {
        /*Tel een dag op bij je loper.*/
        loper.setDate(loper.getDate() + 1);
        $scope.booking.aantalDagen++;
    }

    /*Start datum telt natuurlijk ook mee*/
    $scope.booking.aantalDagen++;
    $scope.infomsg +=" aantal dagen: "+$scope.booking.aantalDagen;
};
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If you have two unix timestamps, you can use this function (made a little more verbose for the sake of clarity):

// Calculate number of days between two unix timestamps
// ------------------------------------------------------------
var daysBetween = function(timeStampA, timeStampB) {
    var oneDay = 24 * 60 * 60 * 1000; // hours * minutes * seconds * milliseconds
    var firstDate = new Date(timeStampA * 1000);
    var secondDate = new Date(timeStampB * 1000);
    var diffDays = Math.round(Math.abs((firstDate.getTime() - secondDate.getTime())/(oneDay)));
    return diffDays;
};

Example:

daysBetween(1096580303, 1308713220); // 2455
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   function validateDate() {
        // get dates from input fields
        var startDate = $("#startDate").val();
        var endDate = $("#endDate").val();
        var sdate = startDate.split("-");
        var edate = endDate.split("-");
        var diffd = (edate[2] - sdate[2]) + 1;
        var leap = [ 0, 31, 29, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31 ];
        var nonleap = [ 0, 31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31 ];
        if (sdate[0] > edate[0]) {
            alert("Please enter End Date Year greater than Start Date Year");
            document.getElementById("endDate").value = "";
            diffd = "";
        } else if (sdate[1] > edate[1]) {
            alert("Please enter End Date month greater than Start Date month");
            document.getElementById("endDate").value = "";
            diffd = "";
        } else if (sdate[2] > edate[2]) {
            alert("Please enter End Date greater than Start Date");
            document.getElementById("endDate").value = "";
            diffd = "";
        } else {
            if (sdate[0] / 4 == 0) {
                while (sdate[1] < edate[1]) {
                    diffd = diffd + leap[sdate[1]++];
                }
            } else {
                while (sdate[1] < edate[1]) {
                    diffd = diffd + nonleap[sdate[1]++];
                }
            }
            document.getElementById("numberOfDays").value = diffd;
        }
    }
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