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I'm creating an application which lets you define events with a time frame. I want to automatically fill in the end date when the user selects or changes the start date. I can't quite figure out, however, how to get the difference between the two times, and then how to create a new end Date using that difference.

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10 Answers 10

up vote 32 down vote accepted

In JavaScript, dates can be transformed to the number of milliseconds since the epoc by calling the getTime() method or just using the date in a numeric expression.

So to get the difference, just subtract the two dates.

To create a new date based on the difference, just pass the number of milliseconds in the constructor.

var oldBegin = ...
var oldEnd = ...
var newBegin = ...

var newEnd = new Date(newBegin + oldEnd - oldBegin);

This should just work

EDIT: Fixed bug pointed by @bdukes

EDIT:

For an explanation of the behavior, oldBegin, oldEnd, and newBegin are Date instances. Calling operators + and - will trigger Javascript auto casting and will automatically call the valueOf() prototype method of those objects. It happens that the valueOf() method is implemented in the Date object as a call to getTime().

So basically: date.getTime() === date.valueOf() === (0 + date) === (+date)

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3  
Not clear enough answer. How to apply getTime()? –  Gruber Sep 12 '12 at 13:59
    
Have you tried date.getTime() ? –  Vincent Robert Sep 12 '12 at 15:12
    
What is the format required for .getTime() to work... For example - new Date('22-12-2012 00:00').getTime() will not work... Any ideas? –  Jimmyt1988 Sep 18 '12 at 16:05
1  
For date parsing in JS, I suggest you have a look to this question: stackoverflow.com/questions/1576753/… –  Vincent Robert Sep 19 '12 at 12:13
3  
Are OldBegin, oldEnd, and NewBegin supposed to be Date objects? It's hard to tell what type of object they're supposed to be, since the variable declaration is omitted here. –  Anderson Green Feb 24 '13 at 17:52

If you don't care about the time component, you can use .getDate() and .setDate() to just set the date part.

So to set your end date to 2 weeks after your start date, do something like this:

function GetEndDate(startDate)
{
    var endDate = new Date(startDate.getTime());
    endDate.setDate(endDate.getDate()+14);
    return endDate;
}

To return the difference (in days) between two dates, do this:

function GetDateDiff(startDate, endDate)
{
    return endDate.getDate() - startDate.getDate();
}

Finally, let's modify the first function so it can take the value returned by 2nd as a parameter:

function GetEndDate(startDate, days)
{
    var endDate = new Date(startDate.getTime());
    endDate.setDate(endDate.getDate() + days);
    return endDate;
}
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27  
GetDateDiff() will break across month barriers. For example, 2011/04/26 and 2011/05/01 will return -25, but the offset should be 5 days. –  nfm Apr 26 '11 at 1:40

Thanks @Vincent Robert, I ended up using your basic example, though it's actually newBegin + oldEnd - oldBegin. Here's the simplified end solution:

    // don't update end date if there's already an end date but not an old start date
    if (!oldEnd || oldBegin) {
        var selectedDateSpan = 1800000; // 30 minutes
        if (oldEnd) {
            selectedDateSpan = oldEnd - oldBegin;
        }

       newEnd = new Date(newBegin.getTime() + selectedDateSpan));
    }
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It's good point to explain why you are sometimes using getTime and sometimes not –  Dan Apr 4 '13 at 12:22

Depending on your needs, this function will calculate the difference between the 2 days, and return a result in days decimal.

// This one returns a signed decimal. The sign indicates past or future.

this.getDateDiff = function(date1, date2) {
    return (date1.getTime() - date2.getTime()) / (1000 * 60 * 60 * 24);
}

// This one always returns a positive decimal. (Suggested by Koen below)

this.getDateDiff = function(date1, date2) {
    return Math.abs((date1.getTime() - date2.getTime()) / (1000 * 60 * 60 * 24));
}
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1  
Place it in a Math.abs() call, and you will always get a positive decimal. –  Koen. May 16 '12 at 14:26
1  
Nice suggestion Koen. That gives people 2 options: just the true date diff as you suggested, or a datediff with the sign indicating if the difference is in the past or future. :) –  Spider May 18 '12 at 10:55
    
Please note that in JavaScript you can also add/substract a number in milliseconds to date.getTime() to get time in future/past. `var nextMinute = new Date( someDate.getTime() + 60 * 1000 ); –  Dan Apr 4 '13 at 12:30

JavaScript perfectly supports date difference out of the box

var msMinute = 60*1000, 
    msDay = 60*60*24*1000,
    a = new Date(2012, 2, 12, 23, 59, 59),
    b = new Date("2013 march 12");


console.log(Math.floor((b - a) / msDay) + ' full days between');
console.log(Math.floor(((b - a) % msDay) / msMinute) + ' full minutes between');

Now some pitfalls. Try this:

console.log(a - 10);
console.log(a + 10);

So if you have risk of adding a number and Date, convert Date to number directly.

console.log(a.getTime() - 10);
console.log(a.getTime() + 10);

My fist example demonstrates the power of Date object but it actually appears to be a time bomb

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function compare()
{
  var end_actual_time    = $('#date3').val();

  start_actual_time = new Date();
  end_actual_time = new Date(end_actual_time);

  var diff = end_actual_time-start_actual_time;

  var diffSeconds = diff/1000;
  var HH = Math.floor(diffSeconds/3600);
  var MM = Math.floor(diffSeconds%3600)/60;

  var formatted = ((HH < 10)?("0" + HH):HH) + ":" + ((MM < 10)?("0" + MM):MM)
  getTime(diffSeconds);
}
function getTime(seconds) {
  var days = Math.floor(leftover / 86400);

  //how many seconds are left
  leftover = leftover - (days * 86400);

  //how many full hours fits in the amount of leftover seconds
  var hours = Math.floor(leftover / 3600);

  //how many seconds are left
  leftover = leftover - (hours * 3600);

  //how many minutes fits in the amount of leftover seconds
  var minutes = leftover / 60;

  //how many seconds are left
  //leftover = leftover - (minutes * 60);
  alert(days + ':' + hours + ':' + minutes);
}
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If you use Date objects and then use the getTime() function for both dates it will give you their respective times since Jan 1, 1970 in a number value. You can then get the difference between these numbers.

If that doesn't help you out, check out the complete documentation: http://www.w3schools.com/jsref/jsref_obj_date.asp

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1  
I don't think referencing to w3schools.com is too good: w3fools.com –  Koen. May 16 '12 at 14:27
    
Oh, yea, didn't notice, answers below this one are at most half a year old. –  Koen. May 19 '12 at 13:26
function checkdate() {
    var indate = new Date()
    indate.setDate(dat)
    indate.setMonth(mon - 1)
    indate.setFullYear(year)

    var one_day = 1000 * 60 * 60 * 24
    var diff = Math.ceil((indate.getTime() - now.getTime()) / (one_day))
    var str = diff + " days are remaining.."
    document.getElementById('print').innerHTML = str.fontcolor('blue')
}
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this code fills the duration of study years when you input the start date and end date(qualify accured date) of study and check if the duration less than a year if yes the alert a message take in mind there are three input elements the first txtFromQualifDate and second txtQualifDate and third txtStudyYears

it will show result of number of years with fraction

function getStudyYears()
    {
        if(document.getElementById('txtFromQualifDate').value != '' && document.getElementById('txtQualifDate').value != '')
        {
            var d1 = document.getElementById('txtFromQualifDate').value;

            var d2 = document.getElementById('txtQualifDate').value;

            var one_day=1000*60*60*24;

            var x = d1.split("/");
            var y = d2.split("/");

            var date1=new Date(x[2],(x[1]-1),x[0]);

            var date2=new Date(y[2],(y[1]-1),y[0])

            var dDays = (date2.getTime()-date1.getTime())/one_day;

            if(dDays < 365)
            {
                alert("the date between start study and graduate must not be less than a year !");

                document.getElementById('txtQualifDate').value = "";
                document.getElementById('txtStudyYears').value = "";

                return ;
            }

            var dMonths = Math.ceil(dDays / 30);

            var dYears = Math.floor(dMonths /12) + "." + dMonths % 12;

            document.getElementById('txtStudyYears').value = dYears;
        }
    }
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1  
Never ever parse date strings to find year because string appearence (esp. separators) differs among browsers. Use getFullYear which was designed for that. ------- See datejs library on googlecode which possibly supports most corner cases –  Dan Apr 4 '13 at 12:06
    
thanks for advice @Dan but it worked and tested for me on real goverment project (different browsers) is it that weak programming practive ? :) –  shareef Apr 4 '13 at 13:10

I would like to point out an error that i encountered due to date format from a date picker. Using a format like dd/mm/yyyy wont give the correct date. Use the following

    t1="01/11/2011" ;
    t2="28/11/2011";
    var one_day=1000*60*60*24; 

Here we need to split the inputed dates to convert them into standard format

    var x=t1.split("/");     
    var y=t2.split("/");

Date format(Fullyear,month,date) . This will

    var date1=new Date(x[2],(x[1]-1),x[0]);  
    var date2=new Date(y[2],(y[1]-1),y[0]);
    var month1=x[1]-1;
    var month2=y[1]-1;        

Calculate difference between the two dates, and convert to days

    _Diff=Math.ceil((date2.getTime()-date1.getTime())/(one_day)); 

_Diff gives the diffrence between the two dates.

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3  
This doesn't appear to be an answer to the question, and only tangentially related to the topic (this questions is about dealing with Date objects in JavaScript, not with parsing text to create Date objects). If this is an actual answer that you're posting with a differing method from the other answers, it isn't clear what that difference is. This may best be represented by a comment instead of an answer, or by another question altogether. If you have questions about what content belongs where, stackoverflow.com/faq might be helpful to you. Hope you enjoy the site! –  bdukes Nov 28 '11 at 19:28

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