261

If I have two dates, how can I use JavaScript to get the difference between the two dates in minutes?

1
  • are they date objects or just strings? please give an example situatin
    – amosrivera
    Commented Oct 10, 2011 at 7:42

14 Answers 14

309

You may checkout this code:

var today = new Date();
var Christmas = new Date(today.getFullYear() + "-12-25");
var diffMs = (Christmas - today); // milliseconds between now & Christmas
var diffDays = Math.floor(diffMs / 86400000); // days
var diffHrs = Math.floor((diffMs % 86400000) / 3600000); // hours
var diffMins = Math.round(((diffMs % 86400000) % 3600000) / 60000); // minutes
console.log(diffDays + " days, " + diffHrs + " hours, " + diffMins + " minutes until Christmas =)");

or var diffMins = Math.floor((... to discard seconds if you don't want to round minutes.

12
  • 10
    @philk, that's why I value StackOverflow so much. In many message boards, the answer is just a hyperlink. We wouldn't have this great answer if that was the case here. Commented Feb 25, 2015 at 19:11
  • 5
    I found an error when testing this answer: DiffHrs may be wrong If you set the minutes in the Date object. For example if Christmas is "12-25-2015 03:55" and today is "12-25-2015 02:00" then the hourDiff is two hours. Should be one hour.
    – HoffZ
    Commented Jun 17, 2015 at 10:36
  • 51
    Math.round(((diffMs % 86400000) % 3600000) / 60000); is not working when the difference is greater than 60 minutes Commented Sep 3, 2015 at 12:36
  • 9
    Reiterating that this does NOT work properly, at least for minutes. For example, it took a difference of 62 minutes and due to the rounding, thought it was a difference of 2 minutes.
    – Jordan
    Commented Jul 5, 2016 at 22:38
  • 13
    it doesn't answer the question correctly, instead of calculating the difference in ONLY minutes, it difference is calculated as a composite of days, hours and minutes...thus if the difference is 1 day 1 hour 1 minute, it will show 1 day 1 hour 1 minute, instead of 1501 minutes Commented Jan 11, 2017 at 10:51
280

Subtracting two Date objects gives you the difference in milliseconds, e.g.:

var diff = Math.abs(new Date('2011/10/09 12:00') - new Date('2011/10/09 00:00'));

Math.abs is used to be able to use the absolute difference (so new Date('2011/10/09 00:00') - new Date('2011/10/09 12:00') gives the same result).

Dividing the result by 1000 gives you the number of seconds. Dividing that by 60 gives you the number of minutes. To round to whole minutes, use Math.floor or Math.ceil:

var minutes = Math.floor((diff/1000)/60);

In this example the result will be 720.

[edit 2022] Added a more complete demo snippet, using the aforementioned knowledge.

See also

untilXMas();

function difference2Parts(milliseconds) {
  const secs = Math.floor(Math.abs(milliseconds) / 1000);
  const mins = Math.floor(secs / 60);
  const hours = Math.floor(mins / 60);
  const days = Math.floor(hours / 24);
  const millisecs = Math.floor(Math.abs(milliseconds)) % 1000;
  const multiple = (term, n) => n !== 1 ? `${n} ${term}s` : `1 ${term}`;

  return {
    days: days,
    hours: hours % 24,
    hoursTotal: hours,
    minutesTotal: mins,
    minutes: mins % 60,
    seconds: secs % 60,
    secondsTotal: secs,
    milliSeconds: millisecs,
    get diffStr() {
      return `${multiple(`day`, this.days)}, ${
        multiple(`hour`, this.hours)}, ${
        multiple(`minute`, this.minutes)} and ${
        multiple(`second`, this.seconds)}`;
    },
    get diffStrMs() {
      return `${this.diffStr.replace(` and`, `, `)} and ${
        multiple(`millisecond`, this.milliSeconds)}`;
    },
  };
}

function untilXMas() {
  const nextChristmas = new Date(Date.UTC(new Date().getFullYear(), 11, 25));
  const report = document.querySelector(`#nextXMas`);
  const diff = () => {
    const diffs = difference2Parts(nextChristmas - new Date());
    report.innerHTML = `Awaiting next XMas 🙂 (${
      diffs.diffStrMs.replace(/(\d+)/g, a => `<b>${a}</b>`)})<br>
      <br>In other words, until next XMas lasts&hellip;<br>
      In minutes: <b>${diffs.minutesTotal}</b><br>In hours: <b>${
      diffs.hoursTotal}</b><br>In seconds: <b>${diffs.secondsTotal}</b>`;
    setTimeout(diff, 200);
  };
  return diff();
}
body {
  font: 14px/17px normal verdana, arial;
  margin: 1rem;
}
<div id="nextXMas"></div>

4
  • 8
    I think this is the better answer, I noticed the accepted answer fails to convert the difference to minute when the difference is more than 60 mins
    – sani
    Commented Aug 17, 2016 at 11:11
  • This is also wrong. 12:00 can't be the same as 00:00, as these are 12 hours difference...
    – Davatar
    Commented Jan 4, 2018 at 8:23
  • 1
    @Davatar who says they are the same? he just states that 12 hours - 0 hours is the same as 0 hours - 12 hours. Commented Feb 21, 2018 at 11:38
  • 1
    Old answer, but you should never use new Date(string) with a format other than an ISO-8601 format string. See Why does Date.parse give incorrect results?, or just use numbers (e.g., new Date(2011, 9, 9, 12, 0, 0); just remember months are 0 based). Commented Aug 15, 2019 at 14:27
91
var startTime = new Date('2012/10/09 12:00'); 
var endTime = new Date('2013/10/09 12:00');
var difference = endTime.getTime() - startTime.getTime(); // This will give difference in milliseconds
var resultInMinutes = Math.round(difference / 60000);
2
  • 2
    This is nice and simple and worked for me. I did remove the .getTime() from the dates though as it seemed more logical to me seen as the idea is to compare the two dates. Thanks.
    – Yos
    Commented Dec 31, 2013 at 10:11
  • 1
    Old answer, but you should never use new Date(string) with a format other than an ISO-8601 format string. See Why does Date.parse give incorrect results?, or just use numbers (e.g., new Date(2011, 9, 9, 12, 0, 0); just remember months are 0 based). Commented Aug 15, 2019 at 14:27
75

A simple function to perform this calculation:

function getMinutesBetweenDates(startDate, endDate) {
    const diff = endDate.getTime() - startDate.getTime();

    return (diff / 60000);
}
2
  • 1
    Thanks for the simple encapsulation in a function. Here I would however use "let" instead of "var". Commented Nov 22, 2021 at 22:32
  • 4
    const would be better, because we dont overwrite variable "diff"
    – help
    Commented Jul 21, 2022 at 6:50
29

That's should show the difference between the two dates in minutes. Try it in your browser:

const currDate = new Date('Tue Feb 13 2018 13:04:58 GMT+0200 (EET)')
const oldDate  = new Date('Tue Feb 13 2018 12:00:58 GMT+0200 (EET)')


(currDate - oldDate) / 60000 // 64
1
  • 9
    TypeScript will give you the error "The left -hand and right hand side of an arithmetic operation must be of type 'any', 'number' or an enum type". To avoid the error do (currDate.getTime() - oldDate.getTime()) / 60000
    – Homer
    Commented Oct 17, 2019 at 21:08
15

This problem is solved easily with moment.js, like this example:

var difference = mostDate.diff(minorDate, "minutes");

The second parameter can be changed for another parameters, see the moment.js documentation.

e.g.: "days", "hours", "minutes", etc.

http://momentjs.com/docs/

The CDN for moment.js is available here:

https://cdnjs.com/libraries/moment.js

Thanks.

EDIT:

mostDate and minorDate should be a moment type.

EDIT 2:

For those who are reading my answer in 2020+, momentjs is now a legacy project.

If you are still looking for a well-known library to do this job, I would recommend date-fns.

// How many minutes are between 2 July 2014 12:07:59 and 2 July 2014 12:20:00?
var result = differenceInMinutes(
  new Date(2014, 6, 2, 12, 20, 0),
  new Date(2014, 6, 2, 12, 7, 59)
)
//=> 12
0
14

You can do as follows:

  1. Get difference of dates(Difference will be in milliseconds)
  2. Convert milliseconds into minutes i-e ms/1000/60

The Code:

let dateOne = new Date("2020-07-10");
let dateTwo = new Date("2020-07-11");

let msDifference =  dateTwo - dateOne;
let minutes = Math.floor(msDifference/1000/60);
console.log("Minutes between two dates =",minutes);
13

For those that like to work with small numbers

const today = new Date();
const endDate = new Date(startDate.setDate(startDate.getDate() + 7));
const days = parseInt((endDate - today) / (1000 * 60 * 60 * 24));
const hours = parseInt(Math.abs(endDate - today) / (1000 * 60 * 60) % 24);
const minutes = parseInt(Math.abs(endDate.getTime() - today.getTime()) / (1000 * 60) % 60);
const seconds = parseInt(Math.abs(endDate.getTime() - today.getTime()) / (1000) % 60); 
0
1

Here's some fun I had solving something similar in node.

function formatTimeDiff(date1, date2) {
  return Array(3)
    .fill([3600, date1.getTime() - date2.getTime()])
    .map((v, i, a) => {
      a[i+1] = [a[i][0]/60, ((v[1] / (v[0] * 1000)) % 1) * (v[0] * 1000)];
      return `0${Math.floor(v[1] / (v[0] * 1000))}`.slice(-2);
    }).join(':');
}

const millis = 1000;
const utcEnd = new Date(1541424202 * millis);
const utcStart = new Date(1541389579 * millis);
const utcDiff = formatTimeDiff(utcEnd, utcStart);

console.log(`Dates:
  Start   : ${utcStart}
  Stop    : ${utcEnd}
  Elapsed : ${utcDiff}
  `);

/*
Outputs:

Dates:
  Start   : Mon Nov 05 2018 03:46:19 GMT+0000 (UTC)
  Stop    : Mon Nov 05 2018 13:23:22 GMT+0000 (UTC)
  Elapsed : 09:37:02
*/

You can see it in action at https://repl.it/@GioCirque/TimeSpan-Formatting

1

The following code worked for me,

function timeDiffCalc(dateNow,dateFuture) {
    var newYear1 = new Date(dateNow);
    var newYear2 = new Date(dateFuture);

        var dif = (newYear2 - newYear1);
        var dif = Math.round((dif/1000)/60);
        console.log(dif);

}
0

It works easily:

var endTime = $("#ExamEndTime").val();
var startTime = $("#ExamStartTime").val();

//create date format          
var timeStart = new Date("01/01/2007 " + startTime);
var timeEnd = new Date("01/01/2007 " + endTime);
                
var  msInMinute = 60 * 1000;

var difference =  Math.round(Math.abs(timeEnd - timeStart) / msInMinute);

$("#txtCalculate").val(difference);
-1

const firstDate = new Date("2023-03-30 18:03:48")

const lastDate = new Date("2023-03-31 10:03:48")

const nbMinuteBetwenToDate = Math.floor((lastDate.getTime() - firstDate.getTime()) / 60000)

1
  • Please elaborate on how you have answered OP's question and how your code works
    – Rojo
    Commented Mar 30, 2023 at 13:07
-1

you should use Moment or Luxon if you want to make your work easier

Moment

let endDateTime   = moment('2024-02-26 13:37:00', 'YYYY-MM-DD HH:mm:ss');
let startDateTime = moment('2024-02-06 20:07:00', 'YYYY-MM-DD HH:mm:ss');

diffInMinutes = endDateTime.diff(startDateTime, 'minutes');

Luxon

var endDateTime = DateTime.fromISO('2024-02-26 13:37:00');
var startDateTime = DateTime.fromISO('2024-02-06 20:07:00');

var diffInMinutes = endDateTime.diff(startDateTime, 'minutes');
diffInMinutes.toObject();
-3

this will work

duration = moment.duration(moment(end_time).diff(moment(start_time)))
0

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