6

I have two date pickers that calculates the number of days there are between the two dates. At the moment I'm outputting the number of days (see code below) which is kind of meaningless. I want to output that number in years, months, days. How can I do that?

E.g So 01/01/14 to 01/02/15 = 397 days which then becomes 1 year(s), 1 month(s), 1 day(s)

var diff = endDate - startDate;
dayCount = diff / ( 60 * 60 * 24 * 1000 ); // secs * mins * hours * milliseconds
dayCount = Math.round( dayCount ) + this.options.countAdjust;
return dayCount;
  • 1
    @George how the F it relates to the question ? prettyDate("2008-01-14T22:24:17Z") // => "2 weeks ago" – Royi Namir Oct 2 '14 at 10:55
  • @RoyiNamir Whoops, I misunderstood. Thanks for pointing that out. – George Oct 2 '14 at 10:57
  • How it is 1 month ????? it is 0 month ! (M/d/y) – Royi Namir Oct 2 '14 at 11:09
  • Most users use the standard d/m/y format Royi – Kloar Oct 2 '14 at 11:11
  • @Kloar so the day should be 0 then ! – Royi Namir Oct 2 '14 at 11:11
8

You have a bug in your calculation : it's 0 month. And if you mean d/m/y then 1 year, 1 month, and 0 day old.

you said between the two dates ( not include) - look here

Anyway here is the right code which include actually count each month - how many days it has ! ( leap year consideration):

notice :

I instantiated it as d/m/yyy. feel free to send right pattern in :

alert(getAge( new Date(2014,0,1),new Date(2015,0,2)))

function getAge(date_1, date_2)
{
  
//convert to UTC
var date2_UTC = new Date(Date.UTC(date_2.getUTCFullYear(), date_2.getUTCMonth(), date_2.getUTCDate()));
var date1_UTC = new Date(Date.UTC(date_1.getUTCFullYear(), date_1.getUTCMonth(), date_1.getUTCDate()));


var yAppendix, mAppendix, dAppendix;


//--------------------------------------------------------------
var days = date2_UTC.getDate() - date1_UTC.getDate();
if (days < 0)
{

    date2_UTC.setMonth(date2_UTC.getMonth() - 1);
    days += DaysInMonth(date2_UTC);
}
//--------------------------------------------------------------
var months = date2_UTC.getMonth() - date1_UTC.getMonth();
if (months < 0)
{
    date2_UTC.setFullYear(date2_UTC.getFullYear() - 1);
    months += 12;
}
//--------------------------------------------------------------
var years = date2_UTC.getFullYear() - date1_UTC.getFullYear();




if (years > 1) yAppendix = " years";
else yAppendix = " year";
if (months > 1) mAppendix = " months";
else mAppendix = " month";
if (days > 1) dAppendix = " days";
else dAppendix = " day";


return years + yAppendix + ", " + months + mAppendix + ", and " + days + dAppendix + " old.";
}


function DaysInMonth(date2_UTC)
{
var monthStart = new Date(date2_UTC.getFullYear(), date2_UTC.getMonth(), 1);
var monthEnd = new Date(date2_UTC.getFullYear(), date2_UTC.getMonth() + 1, 1);
var monthLength = (monthEnd - monthStart) / (1000 * 60 * 60 * 24);
return monthLength;
}


alert(getAge(new Date(2014, 0, 1), new Date(2015, 1, 1)))

  • 1
    Note that the "convert to UTC" expression is misleading. ECMAScript Dates are UTC, no conversion required. The expression is equivalent to date2.setUTCHours(0,0,0,0). The DaysInMonth function is unnecessarily complex (Get number days in a specified month). – RobG Feb 3 '16 at 23:47
  • this logic will not yield the accurate output because of miscalculated getUTCMonth() and getMonth() it must be added by +1 to make it right since it is counted as index from 0(jan) to 11(dec). – Roel Apr 10 '17 at 12:09
  • @robg what exactly does setutchours 0 0 0 0 0 do ? Didnt find that in the docs (0 values) – Royi Namir May 26 '18 at 7:23
  • setUTCHours sets the UTC time to 00:00:00.000, see § 20.3.4.30 Date.prototype.setUTCHours ( hour [ , min [ , sec [ , ms ] ] ] ). – RobG May 26 '18 at 23:25
  • @Robg that's not what i meant. Why do you say that convert to utc is not required? And how's does setutchoyrs reolves that? – Royi Namir May 27 '18 at 6:22
1

You can use link shown below , it has more detailed explanation. JSFIDDLE The detailed code is -

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 d1 = new Date("01/01/14");
var d2 = new Date("01/02/15");
var months= DateDiff.inYears(d1, d2)*12 ;
var month = DateDiff.inMonths(d1, d2) - months;
var days = DateDiff.inYears(d1, d2)*365;
var dy = DateDiff.inDays(d1, d2) - days;
alert(DateDiff.inYears(d1, d2) + " Year " + month + " Month "+ dy + " Days");

Link

  • So if it makes a duplicate post, flag the question as a duplicate, it is useless to post an answer like that – Nicolas R Oct 2 '14 at 11:15
  • @NicolasR , done with flagging, I have never realized that, Thanks! – Arindam Nayak Oct 2 '14 at 11:22
  • that's not what he wants .look at the comments to sean – Royi Namir Oct 2 '14 at 11:48
  • @RoyiNamir , got it, modified code - jsfiddle.net/Arindamnayak/xskmf8y9 – Arindam Nayak Oct 2 '14 at 11:59
  • 1
    Got your point completely – Arindam Nayak Oct 2 '14 at 12:12
0

This has been answered several times befoore: See https://stackoverflow.com/a/17733753/550198

You can modify the following method quite easily to suit your purposes:

today = new Date()
past = new Date(2010,05,01) // remember this is equivalent to 06 01 2010
//dates in js are counted from 0, so 05 is june

function calcDate(date1,date2) {
    var diff = Math.floor(date1.getTime() - date2.getTime());
    var day = 1000 * 60 * 60 * 24;

    var days = Math.floor(diff/day);
    var months = Math.floor(days/31);
    var years = Math.floor(months/12);

    var message = date2.toDateString();
    message += " was "
    message += days + " days " 
    message += months + " months "
    message += years + " years ago \n"

    return message
    }


a = calcDate(today,past)
console.log(a) // returns Tue Jun 01 2010 was 1143 days 36 months 3 years ago
  • that's not what he wants – Royi Namir Oct 2 '14 at 11:01
  • @RoyiNamir It is precisely what he asked for. What part of it does not answer the question? – Seany84 Oct 2 '14 at 11:41
  • running your code : Tue Jun 01 2010 was 1584 days 51 months 4 years ago . but he wants the reminders in each part ! not the translation to each time section ! – Royi Namir Oct 2 '14 at 11:42
  • 51 month should add 4 years (51 /12) ! look at my solution – Royi Namir Oct 2 '14 at 11:44
0

When you want to get the year and month between two date:

     var dateFrom = '2017-08-10'; 
     var dateTo ='2019-04-23';
     var date1 = new Date(dateFrom);
     var date2 = new Date(dateTo);
     var diff=0;
     var month=31;
     var days=1000*60*60*24;
     diff=date2-date1; 
     var day=(Math.floor(diff/days));   
     var years = (Math.floor(day/365));
     var months = Math.round(day % 365)/month;
    document.write(years+"year-"+months);
  • when you want to get the year and month between two date. – Ajay Kumar Gupta Apr 24 at 7:02
-1

This will give you the difference between two dates, in milliseconds

var diff = Math.abs(date1 - date2);

In your example, it'd be

var diff = Math.abs(new Date() - compareDate);

You need to make sure that compareDate is a valid Date object.

Something like this will probably work for you

var diff = Math.abs(new Date() - new Date(dateStr.replace(/-/g,'/')));

i.e. turning "2011-02-07 15:13:06" into new Date('2011/02/07 15:13:06'), which is a format the Date constructor can comprehend.

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