514

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>

How do I get the number of days between two dates in JavaScript?

7
  • 15
    99% of the cases where the user asks for "number of days between two dates" what she doesn't understand is that she is trying to compare apples with pears. The problem becomes so simple if asked "How many DATES are there in a DATE RANGE?", Or how many squares I have to cross on the calendar. This leaves off time and daylight saving issues etc etc.The confusion is implied on us because of the datetime data structure which is pure nonsense. There is no such thing as datetime there is date and there is time, two very distinct objects in both nature and behavior May 24, 2017 at 17:07
  • For a function that splits the difference into (whole) units of time, use the answer at stackoverflow.com/a/53092438/3787376.
    – Edward
    Oct 31, 2018 at 21:58
  • 1
    I feel this question should be deleted or at least marked "avoid" as most of the answers are either incorrect or dependent on various libraries.
    – RobG
    Mar 16, 2019 at 22:09
  • @RobG libraries are the only option if JavaScript does not provide a built-in way to do it right.
    – MC Emperor
    Dec 12, 2020 at 14:18
  • 3
    @MCEmperor—hardly, the top voted answer is just 3 lines of code, and two of those are for parsing.
    – RobG
    Dec 12, 2020 at 14:35

40 Answers 40

493

Here is a quick and dirty implementation of datediff, as a proof of concept to solve the problem as presented in the question. It relies on the fact that you can get the elapsed milliseconds between two dates by subtracting them, which coerces them into their primitive number value (milliseconds since the start of 1970).

// new Date("dateString") is browser-dependent and discouraged, so we'll write
// a simple parse function for U.S. date format (which does no error checking)
function parseDate(str) {
    var mdy = str.split('/');
    return new Date(mdy[2], mdy[0]-1, mdy[1]);
}

function datediff(first, second) {
    // Take the difference between the dates and divide by milliseconds per day.
    // Round to nearest whole number to deal with DST.
    return Math.round((second-first)/(1000*60*60*24));
}

alert(datediff(parseDate(first.value), parseDate(second.value)));
<input id="first" value="1/1/2000"/>
<input id="second" value="1/1/2001"/>

You should be aware that the "normal" Date APIs (without "UTC" in the name) operate in the local timezone of the user's browser, so in general you could run into issues if your user is in a timezone that you don't expect, and your code will have to deal with Daylight Saving Time transitions. You should carefully read the documentation for the Date object and its methods, and for anything more complicated, strongly consider using a library that offers more safe and powerful APIs for date manipulation.

Also, for illustration purposes, the snippet uses named access on the window object for brevity, but in production you should use standardized APIs like getElementById, or more likely, some UI framework.

8
  • 2
    I think Math.trunc() is more appropriate. Just in case someone uses more precise Date objects (i.e. including hours, minutes and seconds)
    – Jin Wang
    Jul 6, 2016 at 19:46
  • 35
    As the answer that's marked correct and highest voted (as of now), it's worth commenting that this answer doesn't correctly handle Daylight Savings Time. See Michael Liu's answer instead.
    – osullic
    Sep 21, 2016 at 0:01
  • What does parseDate do exactly? Nov 27, 2016 at 9:15
  • 2
    @osullic—this answer handles daylight saving with Math.round, however it does expect to be handed date only strings, not date and time.
    – RobG
    Feb 17, 2017 at 1:00
  • 3
    Just remember that the date is in US format in this example, i.e. MM/DD/YYYY. If you need the UK version, then you need to change the parseDate method to be: return new Date(mdy[2], mdy[1], mdy[0]-1);
    – ViqMontana
    May 18, 2017 at 13:28
241

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.

3
  • 3
    There is no need to use UTC, it's fine to just set the local hours to midnight (or the same value for both dates). The fractional day introduced by daylight saving is only ±0.04 at most (and in some places less), so it rounds out with Math.round. ;-) Relying on the Date constructor to parse strings is not a good idea. If you really want to use UTC values, parse the strings using Date.UTC(...) in the first place.
    – RobG
    Feb 17, 2017 at 1:07
  • 3
    @RobG: As I stated in my answer: "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." Feb 17, 2017 at 1:21
  • 1
    Actually, the times you've represented as "incorrect" are, technically, correct. You aren't changing the DateTimes to UTC... you're just changing the time of each DateTime to get an artificial whole number. Rounding isn't "clunky"... it's exactly the correct approach here because that's what you're doing in your head anyways: you're rounding away the time portion (hours, minutes, seconds) and just trying to get a whole day number.
    – JDB
    Aug 15, 2019 at 14:26
138

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;
    }
}
4
  • 8
    Bad answer. Math.floor() will lose you a day when clocks go forwards in daylight savings. Math.round() will give the right answer in most situations but there's better options in other answer too.
    – Phil B
    Aug 29, 2018 at 10:40
  • @some Where do you see James version? Who's James?
    – stomy
    Dec 1, 2020 at 21:32
  • @stomy Looks like that version was deleted-
    – some
    Jan 5, 2021 at 6:57
  • Using Math.abs may meet your needs.
    – Penny Liu
    Sep 1, 2021 at 8:50
128

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("2013-11-03");
var end = moment("2013-11-04");
end.diff(start, "days")
1
2
  • 24
    Just as a warning while momentjs is great, it is quite a large dependency Dec 3, 2016 at 0:16
  • It should really be end.diff(start,"days") although the code as written will work because the start date is after the end date!
    – gordon613
    Jun 28, 2017 at 11:09
87

Steps

  1. Set start date
  2. Set end date
  3. Calculate difference
  4. Convert milliseconds to days

Native JS

const startDate  = '2020-01-01';
const endDate    = '2020-03-15';

const diffInMs   = new Date(endDate) - new Date(startDate)
const diffInDays = diffInMs / (1000 * 60 * 60 * 24);

Comment

I know this is not part of your questions but in general, I would not recommend doing any date calculation or manipulation in vanilla JavaScript and rather use a library like date-fns, Luxon or moment.js for it due to many edge cases.


Using a library

Date-fns

https://date-fns.org/v2.16.1/docs/differenceInDays

const differenceInDays = require('date-fns/differenceInDays');

const startDate  = '2020-01-01';
const endDate    = '2020-03-15';

const diffInDays = differenceInDays(new Date(endDate), new Date(startDate));

Luxon

https://moment.github.io/luxon/docs/class/src/datetime.js~DateTime.html#instance-method-diff

const { DateTime } = require('luxon');

const startDate  = '2020-01-01';
const endDate    = '2020-03-15';

const diffInDays = DateTime.fromISO(endDate).diff(DateTime.fromISO(startDate), 'days').toObject().days;

Moment.js

https://momentjs.com/docs/#/displaying/difference/

const moment = require('moment');

const startDate  = '2020-01-01';
const endDate    = '2020-03-15';

const diffInDays = moment(endDate).diff(moment(startDate), 'days');

Examples on RunKit

https://runkit.com/marcobiedermann/5f573e211e85e7001a37ab00

6
  • 8
    I appreciate answers like these: short, simple and no random dependencies required! Cheers.
    – daCoda
    Jan 24, 2019 at 9:10
  • 2
    Is it just me that has timeDiffreturned in the negative? Shouldn't timeDiff be (new Date(endDate)) - (new Date(startDate)); ? Aug 4, 2019 at 1:17
  • @feyisayo-sonubi depends in which order you pass in you start and end date. In this example (new Date('2017-11-08')) - (new Date('2017-10-01')) // 3283200000 Aug 4, 2019 at 9:58
  • const timeDiff = +(new Date(start)) - +(new Date(end)); Apr 19, 2020 at 0:59
  • Great. Although I prefer return (Date.UTC(yr2, mo2-1, dy2) - Date.UTC(yr1, mo1-1, dy1)) / 86400000;
    – dcromley
    May 20, 2020 at 16:15
42

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>
1
  • The provided link for the utility is dead. Apr 12 at 16:38
17

Using Moment.js

var future = moment('05/02/2015');
var start = moment('04/23/2015');
var d = future.diff(start, 'days'); // 9
console.log(d);
<script src="https://cdnjs.cloudflare.com/ajax/libs/moment.js/2.17.1/moment-with-locales.min.js"></script>

1
  • 1
    moment.js is really handy for things like YTD diff counts var now = moment(), yearStart = moment().startOf('year'); var ytdDays = now.diff(yearStart, 'days'); // this can be years, months, weeks, days, hours, minutes, and seconds console.log(ytdDays); more here: momentjs.com
    – Sharif
    Jul 12, 2017 at 21:04
13

Try This

let today = new Date().toISOString().slice(0, 10)

const startDate  = '2021-04-15';
const endDate    = today;

const diffInMs   = new Date(endDate) - new Date(startDate)
const diffInDays = diffInMs / (1000 * 60 * 60 * 24);


alert( diffInDays  );

11

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

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);
<h3>DAYS BETWEEN GIVEN DATES</h3>
<p id="demo"></p>

11

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:

var date1 = new Date('2013/11/04 00:00:00');
var date2 = new Date('2013/11/04 10:10:10'); //less than 1
var start = Math.floor(date1.getTime() / (3600 * 24 * 1000)); //days as integer from..
var end = Math.floor(date2.getTime() / (3600 * 24 * 1000)); //days as integer from..
var daysDiff = end - start; // exact dates
console.log(daysDiff);

date2 = new Date('2013/11/05 00:00:00'); //1

var start = Math.floor(date1.getTime() / (3600 * 24 * 1000)); //days as integer from..
var end = Math.floor(date2.getTime() / (3600 * 24 * 1000)); //days as integer from..
var daysDiff = end - start; // exact dates
console.log(daysDiff);

10

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.

1
  • It's worth to add that if you want current date in UTC you can do this: var now = new Date(); var utcNow = Date.UTC(now.getUTCFullYear(), now.getUTCMonth(), now.getUTCDate()) Mar 30, 2021 at 11:02
9

It is possible to calculate a full proof days difference between two dates resting across different TZs using the following formula:

var start = new Date('10/3/2015');
var end = new Date('11/2/2015');
var days = (end - start) / 1000 / 60 / 60 / 24;
console.log(days);
// actually its 30 ; but due to daylight savings will show 31.0xxx
// which you need to offset as below
days = days - (end.getTimezoneOffset() - start.getTimezoneOffset()) / (60 * 24);
console.log(days);

1
  • This is the most correct answer, you have to take DST in consideration! Thanks Oct 7, 2019 at 20:50
8

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);
}
7

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.

1
  • The simplest solutions are always the best solutions. Wish I could vote +100 Aug 8, 2020 at 18:48
7
var start= $("#firstDate").datepicker("getDate");
var end= $("#SecondDate").datepicker("getDate");
var days = (end- start) / (1000 * 60 * 60 * 24);
 alert(Math.round(days));

jsfiddle example :)

1
7

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)
    };
}
1
  • 4
    Days can have more than 24 hours and minutes can have more than 60 seconds. Using Math.ceil() would overcount in these cases. Apr 7, 2012 at 22:28
5

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.

0
5

function timeDifference(date1, date2) {
  var oneDay = 24 * 60 * 60; // hours*minutes*seconds
  var oneHour = 60 * 60; // minutes*seconds
  var oneMinute = 60; // 60 seconds
  var firstDate = date1.getTime(); // convert to milliseconds
  var secondDate = date2.getTime(); // convert to milliseconds
  var seconds = Math.round(Math.abs(firstDate - secondDate) / 1000); //calculate the diffrence in seconds
  // the difference object
  var difference = {
    "days": 0,
    "hours": 0,
    "minutes": 0,
    "seconds": 0,
  }
  //calculate all the days and substract it from the total
  while (seconds >= oneDay) {
    difference.days++;
    seconds -= oneDay;
  }
  //calculate all the remaining hours then substract it from the total
  while (seconds >= oneHour) {
    difference.hours++;
    seconds -= oneHour;
  }
  //calculate all the remaining minutes then substract it from the total 
  while (seconds >= oneMinute) {
    difference.minutes++;
    seconds -= oneMinute;
  }
  //the remaining seconds :
  difference.seconds = seconds;
  //return the difference object
  return difference;
}
console.log(timeDifference(new Date(2017,0,1,0,0,0),new Date()));

3
  • 1
    May I request you to please add some more context around your answer. Code-only answers are difficult to understand. It will help the asker and future readers both if you can add more information in your post.
    – RBT
    Jan 22, 2017 at 0:13
  • i wanted to edit but i was getting errors i could submit the edit :( . Jan 22, 2017 at 16:15
  • 2
    @N.Belhadj you can replace all those while loops with simple div and mod (%) operations May 24, 2017 at 16:46
5

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


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

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

0
5

Simple, easy, and sophisticated. This function will be called in every 1 sec to update time.

const year = (new Date().getFullYear());
const bdayDate = new Date("04,11,2019").getTime(); //mmddyyyy

// countdown
let timer = setInterval(function () {

    // get today's date
    const today = new Date().getTime();

    // get the difference
    const diff = bdayDate - today;

    // math
    let days = Math.floor(diff / (1000 * 60 * 60 * 24));
    let hours = Math.floor((diff % (1000 * 60 * 60 * 24)) / (1000 * 60 * 60));
    let minutes = Math.floor((diff % (1000 * 60 * 60)) / (1000 * 60));
    let seconds = Math.floor((diff % (1000 * 60)) / 1000);

}, 1000);
4

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;
};
4

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
4

Be careful when using milliseconds.

The date.getTime() returns milliseconds and doing math operation with milliseconds requires to include

  • Daylight Saving Time (DST)
  • checking if both dates have the same time (hours, minutes, seconds, milliseconds)
  • make sure what behavior of days diff is required: 19 September 2016 - 29 September 2016 = 1 or 2 days difference?

The example from comment above is the best solution I found so far https://stackoverflow.com/a/11252167/2091095 . But use +1 to its result if you want the to count all days involved.

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;
}

var diff = daysBetween($('#first').val(), $('#second').val()) + 1;
0
3

I used below code to experiment the posting date functionality for a news post.I calculate the minute or hour or day or year based on the posting date and current date.

var startDate= new Date("Mon Jan 01 2007 11:00:00");
var endDate  =new Date("Tue Jan 02 2007 12:50:00");
var timeStart = startDate.getTime();
var timeEnd = endDate.getTime();
var yearStart = startDate.getFullYear();
var yearEnd   = endDate.getFullYear();
if(yearStart == yearEnd)
 {
  var hourDiff = timeEnd - timeStart; 
  var secDiff = hourDiff / 1000;
  var minDiff = hourDiff / 60 / 1000; 
  var hDiff = hourDiff / 3600 / 1000; 
  var myObj = {};
  myObj.hours = Math.floor(hDiff);
  myObj.minutes = minDiff  
  if(myObj.hours >= 24)
   {
    console.log(Math.floor(myObj.hours/24) + "day(s) ago")
   } 
 else if(myObj.hours>0)
  {
   console.log(myObj.hours +"hour(s) ago")
  }
 else
  {
   console.log(Math.abs(myObj.minutes) +"minute(s) ago")
  }
}
else
{
var yearDiff = yearEnd - yearStart;
console.log( yearDiff +" year(s) ago");
}
3
  • Please explain your code and you solved the problem, just pasting code is considered a bad answer. Jul 21, 2016 at 13:51
  • 2
    While this code may answer the question, providing additional context regarding how and/or why it solves the problem would improve the answer's long-term value. Jul 21, 2016 at 16:47
  • Thanks @MarcoScabbiolo,@Michael Parker for the comments.Since i am new to Stackoverflow in terms of answering,I was not aware of how the solution should be proivided Jul 22, 2016 at 16:07
3

if you wanna have an DateArray with dates try this:

<script>
        function getDates(startDate, stopDate) {
        var dateArray = new Array();
        var currentDate = moment(startDate);
        dateArray.push( moment(currentDate).format('L'));

        var stopDate = moment(stopDate);
        while (dateArray[dateArray.length -1] != stopDate._i) {
            dateArray.push( moment(currentDate).format('L'));
            currentDate = moment(currentDate).add(1, 'days');
        }
        return dateArray;
      }
</script>

DebugSnippet

3

The simple way to calculate days between two dates is to remove both of their time component i.e. setting hours, minutes, seconds and milliseconds to 0 and then subtracting their time and diving it with milliseconds worth of one day.

var firstDate= new Date(firstDate.setHours(0,0,0,0));
var secondDate= new Date(secondDate.setHours(0,0,0,0));
var timeDiff = firstDate.getTime() - secondDate.getTime();
var diffDays =timeDiff / (1000 * 3600 * 24);
1
  • problem with your solution is, you are assuming firstDate and secondDate to be dates which then there is no need to change them to date again, and if they are not date *which are not) you'll get error on setHours. to correct this, you need to move setHours out of new Date
    – AaA
    Feb 24, 2020 at 3:27
3

One-Liner and small

const diff=(e,t)=>Math.floor((new Date(e).getTime()-new Date(t).getTime())/1000*60*60*24);

// or

const diff=(e,t)=>Math.floor((new Date(e)-new Date(t))/864e5);

// or

const diff=(a,b)=>(new Date(a)-new Date(b))/864e5|0; 

// use
diff('1/1/2001', '1/1/2000')

For TypeScript

const diff=(e,t)=>Math.floor((new Date(e).getTime()-new Date(t).getTime())/86400000);
2
function formatDate(seconds, dictionary) {
    var foo = new Date;
    var unixtime_ms = foo.getTime();
    var unixtime = parseInt(unixtime_ms / 1000);
    var diff = unixtime - seconds;
    var display_date;
    if (diff <= 0) {
        display_date = dictionary.now;
    } else if (diff < 60) {
        if (diff == 1) {
            display_date = diff + ' ' + dictionary.second;
        } else {
            display_date = diff + ' ' + dictionary.seconds;
        }
    } else if (diff < 3540) {
        diff = Math.round(diff / 60);
        if (diff == 1) {
            display_date = diff + ' ' + dictionary.minute;
        } else {
            display_date = diff + ' ' + dictionary.minutes;
        }
    } else if (diff < 82800) {
        diff = Math.round(diff / 3600);
        if (diff == 1) {
            display_date = diff + ' ' + dictionary.hour;
        } else {
            display_date = diff + ' ' + dictionary.hours;
        }
    } else {
        diff = Math.round(diff / 86400);
        if (diff == 1) {
            display_date = diff + ' ' + dictionary.day;
        } else {
            display_date = diff + ' ' + dictionary.days;
        }
    }
    return display_date;
}
2

I took some inspiration from other answers and made the inputs have automatic sanitation. I hope this works well as an improvement over other answers.

//use best practices by labeling your constants.
let MS_PER_SEC = 1000
  , SEC_PER_HR = 60 * 60
  , HR_PER_DAY = 24
  , MS_PER_DAY = MS_PER_SEC * SEC_PER_HR * HR_PER_DAY
;

//let's assume we get Date objects as arguments, otherwise return 0.
function dateDiffInDays(date1, date2) {
    if (!date1 || !date2) {
      return 0;
    }
    return Math.round((date2.getTime() - date1.getTime()) / MS_PER_DAY);
}

// new Date("dateString") is browser-dependent and discouraged, so we'll write
// a simple parse function for U.S. date format. (by @Miles)
function parseDate(str) {
    if (str && str.length > 7 && str.length < 11) {
      let mdy = str.split('/');
      return new Date(mdy[2], mdy[0]-1, mdy[1]);
    }
    return null;
}

function calcInputs() {
  let date1 = document.getElementById("date1")
    , date2 = document.getElementById("date2")
    , resultSpan = document.getElementById("result")
  ;
  if (date1 && date2 && resultSpan) {
    //remove non-date characters
    let date1Val = date1.value.replace(/[^\d\/]/g,'')
      , date2Val = date2.value.replace(/[^\d\/]/g,'')
      , result = dateDiffInDays(parseDate(date1Val), parseDate(date2Val))
    ;
    date1.value = date1Val;
    date2.value = date2Val;
    resultSpan.innerHTML = result + " days";
  }
}
window.onload = function() { calcInputs(); };

//some code examples
console.log(dateDiffInDays(parseDate("1/15/2019"), parseDate("1/30/2019")));
console.log(dateDiffInDays(parseDate("1/15/2019"), parseDate("2/30/2019")));
console.log(dateDiffInDays(parseDate("1/15/2000"), parseDate("1/15/2019")));
<input id="date1" type="text" value="1/1/2000" size="6" onkeyup="calcInputs();" />
<input id="date2" type="text" value="1/1/2019" size="6" onkeyup="calcInputs();"/>
Result: <span id="result"></span>

1
  • Instead of using 'date1.getTime()' and 'date2.getTime()' I use 'Date.UTC' to prevent difference between dates that does not belong to the same day saving time (i.e. March 10, 2021 and March 16, 2021) the following function may help: function getUTCTime(date) { // If use 'Date.getTime()' it doesn't compute the right amount of days // if there is a 'day saving time' change between dates return Date.UTC(date.getFullYear(), date.getMonth(), date.getDate()); }
    – Chesare
    Mar 16, 2021 at 20:52
2

I recently had the same question, and coming from a Java world, I immediately started to search for a JSR 310 implementation for JavaScript. JSR 310 is a Date and Time API for Java (standard shipped as of Java 8). I think the API is very well designed.

Fortunately, there is a direct port to Javascript, called js-joda.

First, include js-joda in the <head>:

<script
    src="https://cdnjs.cloudflare.com/ajax/libs/js-joda/1.11.0/js-joda.min.js"
    integrity="sha512-piLlO+P2f15QHjUv0DEXBd4HvkL03Orhi30Ur5n1E4Gk2LE4BxiBAP/AD+dxhxpW66DiMY2wZqQWHAuS53RFDg=="
    crossorigin="anonymous"></script>

Then simply do this:

let date1 = JSJoda.LocalDate.of(2020, 12, 1);
let date2 = JSJoda.LocalDate.of(2021, 1, 1);
let daysBetween = JSJoda.ChronoUnit.DAYS.between(date1, date2);

Now daysBetween contains the number of days between. Note that the end date is exclusive.

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