155

I want to calculate date difference in days, hours, minutes, seconds, milliseconds, nanoseconds. How can I do it?

14 Answers 14

194

Assuming you have two Date objects, you can just subtract them to get the difference in milliseconds:

var difference = date2 - date1;

From there, you can use simple arithmetic to derive the other values.

  • 34
    This is so the right answer. Eg: to get difference in days do Math.floor((date2 - date1) / (1000*60*60*24)) -- for difference in any other unit, adjust the denominator (the base value is in ms). – trisweb Oct 22 '13 at 19:54
  • 27
    There is no "simple" arithmetic for converting milliseconds to years. You must be aware of bissextile year, of timezone, and some days have 23 or 25 hours. Some years have 365,25 days, so there is no simple arithmetic here (still looking for an accurate solution). – Alexandre Salomé May 20 '14 at 12:50
  • 5
    @Alexandre: The question never asked for years. Indeed, calculating year differences is nontrivial. For days, however, it is correct, supposing the dates are in the same timezone (a not-unreasonable assumption). As far as I know, a day is defined as 24 hours, and any 'variation' in that due to Daylight Savings Time is actually a switch of timezones. If you don't distinguish between timezones already, trying to figure out a time difference is going to put you in a world of hurt, not least because the DST switchover 'repeats' time. Stay in one timezone, though, and it all works. – icktoofay May 21 '14 at 5:40
  • 11
    @trisweb—even something as simple as getting a difference in days is more complex than your comment. How many days between 10pm Tuesday and 9am Wednesday? Your algorithm says 0. Others might think 1. – RobG Oct 19 '15 at 1:53
  • @RobG relativists might even think more than 1 or less than 0. It all depends on the observer. – Innocent Bystander Jun 25 '18 at 21:59
68
var DateDiff = {

    inDays: function(d1, d2) {
        var t2 = d2.getTime();
        var t1 = d1.getTime();

        return parseInt((t2-t1)/(24*3600*1000));
    },

    inWeeks: function(d1, d2) {
        var t2 = d2.getTime();
        var t1 = d1.getTime();

        return parseInt((t2-t1)/(24*3600*1000*7));
    },

    inMonths: function(d1, d2) {
        var d1Y = d1.getFullYear();
        var d2Y = d2.getFullYear();
        var d1M = d1.getMonth();
        var d2M = d2.getMonth();

        return (d2M+12*d2Y)-(d1M+12*d1Y);
    },

    inYears: function(d1, d2) {
        return d2.getFullYear()-d1.getFullYear();
    }
}

var dString = "May, 20, 1984";

var d1 = new Date(dString);
var d2 = new Date();

document.write("<br />Number of <b>days</b> since "+dString+": "+DateDiff.inDays(d1, d2));
document.write("<br />Number of <b>weeks</b> since "+dString+": "+DateDiff.inWeeks(d1, d2));
document.write("<br />Number of <b>months</b> since "+dString+": "+DateDiff.inMonths(d1, d2));
document.write("<br />Number of <b>years</b> since "+dString+": "+DateDiff.inYears(d1, d2));

Code sample taken from here.

  • 2
    A more accurate solution: stackoverflow.com/a/15289883/351947 – Rafi B. Jun 16 '13 at 11:43
  • This only returns the date difference in the given format if used as a single counter. For example if you want 3 months 4 days and 5 hours it will NOT produce those results. More in the line of 3 months 96 days and a lot of hours. – Joris Kroos Oct 27 '17 at 9:02
27

Another solution is convert difference to a new Date object and get that date's year(diff from 1970), month, day etc.

var date1 = new Date(2010, 6, 17);
var date2 = new Date(2013, 12, 18);
var diff = new Date(date2.getTime() - date1.getTime());
// diff is: Thu Jul 05 1973 04:00:00 GMT+0300 (EEST)

console.log(diff.getUTCFullYear() - 1970); // Gives difference as year
// 3

console.log(diff.getUTCMonth()); // Gives month count of difference
// 6

console.log(diff.getUTCDate() - 1); // Gives day count of difference
// 4

So difference is like "3 years and 6 months and 4 days". If you want to take difference in a human readable style, that can help you.

  • It is not the meaning! We want the WHOLE difference! In this examp, the differene in days is 1281, not 4! – chaim.dev Mar 11 '14 at 6:44
  • 3
    @chaim.dev "If you want to take difference in a human readable style, that can help you." – Murat Çorlu Apr 12 '15 at 8:30
  • 4
    This is not reliable. It fails to take into account varying month lengths, or leap years and other anomalies. – Marc Durdin Jul 13 '15 at 1:03
  • 1
    Thanks Murat, This solution has solved my issue. What I really want that It must be work in same way like php does. – Ritesh Patadiya Nov 7 '17 at 6:44
23

Expressions like "difference in days" are never as simple as they seem. If you have the following dates:

d1: 2011-10-15 23:59:00
d1: 2011-10-16 00:01:00

the difference in time is 2 minutes, should the "difference in days" be 1 or 0? Similar issues arise for any expression of the difference in months, years or whatever since years, months and days are of different lengths and different times (e.g. the day that daylight saving starts is 1 hour shorter than usual and two hours shorter than the day that it ends).

Here is a function for a difference in days that ignores the time, i.e. for the above dates it returns 1.

/*
   Get the number of days between two dates - not inclusive.

   "between" does not include the start date, so days
   between Thursday and Friday is one, Thursday to Saturday
   is two, and so on. Between Friday and the following Friday is 7.

   e.g. getDaysBetweenDates( 22-Jul-2011, 29-jul-2011) => 7.

   If want inclusive dates (e.g. leave from 1/1/2011 to 30/1/2011),
   use date prior to start date (i.e. 31/12/2010 to 30/1/2011).

   Only calculates whole days.

   Assumes d0 <= d1
*/
function getDaysBetweenDates(d0, d1) {

  var msPerDay = 8.64e7;

  // Copy dates so don't mess them up
  var x0 = new Date(d0);
  var x1 = new Date(d1);

  // Set to noon - avoid DST errors
  x0.setHours(12,0,0);
  x1.setHours(12,0,0);

  // Round to remove daylight saving errors
  return Math.round( (x1 - x0) / msPerDay );
}

This can be more concise:

/*  Return number of days between d0 and d1.
**  Returns positive if d0 < d1, otherwise negative.
**
**  e.g. between 2000-02-28 and 2001-02-28 there are 366 days
**       between 2015-12-28 and 2015-12-29 there is 1 day
**       between 2015-12-28 23:59:59 and 2015-12-29 00:00:01 there is 1 day
**       between 2015-12-28 00:00:01 and 2015-12-28 23:59:59 there are 0 days
**        
**  @param {Date} d0  - start date
**  @param {Date} d1  - end date
**  @returns {number} - whole number of days between d0 and d1
**
*/
function daysDifference(d0, d1) {
  var diff = new Date(+d1).setHours(12) - new Date(+d0).setHours(12);
  return Math.round(diff/8.64e7);
}

// Simple formatter
function formatDate(date){
  return [date.getFullYear(),('0'+(date.getMonth()+1)).slice(-2),('0'+date.getDate()).slice(-2)].join('-');
}

// Examples
[[new Date(2000,1,28), new Date(2001,1,28)],  // Leap year
 [new Date(2001,1,28), new Date(2002,1,28)],  // Not leap year
 [new Date(2017,0,1),  new Date(2017,1,1)] 
].forEach(function(dates) {
  document.write('From ' + formatDate(dates[0]) + ' to ' + formatDate(dates[1]) +
                 ' is ' + daysDifference(dates[0],dates[1]) + ' days<br>');
});

  • great work, thx – jason Apr 28 '13 at 3:29
  • Doesn't seem to work in firefox or IE. Only works in chrome – jzm May 17 '13 at 2:59
  • 1
    @rudeovskizebear—tested in IE, Firefox and Safari, works fine. It uses basic ECMAScript that I'd expect to work in any browser, what doesn't work for you? – RobG May 17 '13 at 5:27
  • I put it on a test page, and it worked fine in chrome, but i kept getting null back in IE9 and the latest FF – jzm May 17 '13 at 5:31
  • 1
    @IgorKudryashov—sorry, I'm just not getting it. 2000 is a leap year, so 28 Feb 2000 to 28 Feb 2001 is 366 days. In a non-leap year, it's 365 days. I've added some more examples. – RobG Jul 5 '17 at 23:21
18
<html lang="en">
<head>
<script>
function getDateDiff(time1, time2) {
  var str1= time1.split('/');
  var str2= time2.split('/');

  //                yyyy   , mm       , dd
  var t1 = new Date(str1[2], str1[0]-1, str1[1]);
  var t2 = new Date(str2[2], str2[0]-1, str2[1]);

  var diffMS = t1 - t2;    
  console.log(diffMS + ' ms');

  var diffS = diffMS / 1000;    
  console.log(diffS + ' ');

  var diffM = diffS / 60;
  console.log(diffM + ' minutes');

  var diffH = diffM / 60;
  console.log(diffH + ' hours');

  var diffD = diffH / 24;
  console.log(diffD + ' days');
  alert(diffD);
}

//alert(getDateDiff('10/18/2013','10/14/2013'));
</script>
</head>
<body>
  <input type="button" 
       onclick="getDateDiff('10/18/2013','10/14/2013')" 
       value="clickHere()" />

</body>
</html>
  • This one really helped me..thanks !! – rach Dec 1 '14 at 21:47
  • Doesn't help me. Can't extend this to months or years in the same approach. – tomazahlin Jan 18 '16 at 15:34
9

use Moment.js for all your JavaScript related date-time calculation

Answer to your question is:

var a = moment([2007, 0, 29]);   
var b = moment([2007, 0, 28]);    
a.diff(b) // 86400000  

Complete details can be found here

  • 3
    And embrace the extra 400+ Kb for a mere date difference. – Romeo Mihalcea Dec 19 '18 at 4:59
  • @RomeoMihalcea Current minified moment.js 2.22.2 with one locale is 53 KB, 17 KB gzipped. I understand your concern though. It's a huge library to use for one simple function, but it takes care of so many date/time related quirks that it's often worth it. – HeikoS Jan 23 at 8:41
7
function DateDiff(date1, date2) {
    date1.setHours(0);
    date1.setMinutes(0, 0, 0);
    date2.setHours(0);
    date2.setMinutes(0, 0, 0);
    var datediff = Math.abs(date1.getTime() - date2.getTime()); // difference 
    return parseInt(datediff / (24 * 60 * 60 * 1000), 10); //Convert values days and return value      
}
  • Thanks for the solutions :) – bhagirathi Jul 18 '13 at 9:57
  • Most solutions that I found either don't work or too long winded. Your solution is the simplest so far and works exactly as intended! Cheers :) – Bruce Mar 9 '15 at 4:19
  • what if I want to know difference with more precise than one hour? in the post question there is hours and seconds, what for all this zerosettings? – 2oppin Sep 4 '18 at 11:29
7

With momentjs it's simple:

moment("2016-04-08").fromNow();
  • 1
    moment.js is awesome! :) – Kami May 25 '17 at 17:06
  • moment saves the lifes of many javascripters – Victor Oct 10 '18 at 17:08
  • Nice answer, but probably overkill for this specific situation. – HappyDog Sep 16 at 10:16
6
var d1=new Date(2011,0,1); // jan,1 2011
var d2=new Date(); // now

var diff=d2-d1,sign=diff<0?-1:1,milliseconds,seconds,minutes,hours,days;
diff/=sign; // or diff=Math.abs(diff);
diff=(diff-(milliseconds=diff%1000))/1000;
diff=(diff-(seconds=diff%60))/60;
diff=(diff-(minutes=diff%60))/60;
days=(diff-(hours=diff%24))/24;

console.info(sign===1?"Elapsed: ":"Remains: ",
             days+" days, ",
             hours+" hours, ",
             minutes+" minutes, ",
             seconds+" seconds, ",
             milliseconds+" milliseconds.");
4

Sorry but flat millisecond calculation is not reliable Thanks for all the responses, but few of the functions I tried are failing either on 1. A date near today's date 2. A date in 1970 or 3. A date in a leap year.

Approach that best worked for me and covers all scenario e.g. leap year, near date in 1970, feb 29 etc.

var someday = new Date("8/1/1985");
var today = new Date();
var years = today.getFullYear() - someday.getFullYear();

// Reset someday to the current year.
someday.setFullYear(today.getFullYear());

// Depending on when that day falls for this year, subtract 1.
if (today < someday)
{
    years--;
}
document.write("Its been " + years + " full years.");
3

If you are using moment.js then it is pretty simple to find date difference.

var now  = "04/09/2013 15:00:00";
var then = "04/09/2013 14:20:30";

moment.utc(moment(now,"DD/MM/YYYY HH:mm:ss").diff(moment(then,"DD/MM/YYYY HH:mm:ss"))).format("HH:mm:ss")
3
function DateDiff(b, e)
{
    let
        endYear = e.getFullYear(),
        endMonth = e.getMonth(),
        years = endYear - b.getFullYear(),
        months = endMonth - b.getMonth(),
        days = e.getDate() - b.getDate();
    if (months < 0)
    {
        years--;
        months += 12;
    }
    if (days < 0)
    {
        months--;
        days += new Date(endYear, endMonth, 0).getDate();
    }
    return [years, months, days];
}

[years, months, days] = DateDiff(
    new Date("October 21, 1980"),
    new Date("July 11, 2017")); // 36 8 20
2

This is how you can implement difference between dates without a framework.

function getDateDiff(dateOne, dateTwo) {
        if(dateOne.charAt(2)=='-' & dateTwo.charAt(2)=='-'){
            dateOne = new Date(formatDate(dateOne));
            dateTwo = new Date(formatDate(dateTwo));
        }
        else{
            dateOne = new Date(dateOne);
            dateTwo = new Date(dateTwo);            
        }
        let timeDiff = Math.abs(dateOne.getTime() - dateTwo.getTime());
        let diffDays = Math.ceil(timeDiff / (1000 * 3600 * 24));
        let diffMonths = Math.ceil(diffDays/31);
        let diffYears = Math.ceil(diffMonths/12);

        let message = "Difference in Days: " + diffDays + " " +
                      "Difference in Months: " + diffMonths+ " " + 
                      "Difference in Years: " + diffYears;
        return message;
     }

    function formatDate(date) {
         return date.split('-').reverse().join('-');
    }

    console.log(getDateDiff("23-04-2017", "23-04-2018"));
0

I think this should do it.

let today = new Date();
let form_date=new Date('2019-10-23')
let difference=form_date>today ? form_date-today : today-form_date
let diff_days=Math.floor(difference/(1000*3600*24))

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