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I need to be able to add 1, 2 , 5 or 10 days to today's date using jQuery.

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possible duplicate of Add days to DateTime –  nzifnab Jul 31 at 16:37

9 Answers 9

You can use JavaScript, no jQuery required:

var someDate = new Date();
var numberOfDaysToAdd = 6;
someDate.setDate(someDate.getDate() + numberOfDaysToAdd); 

Formatting to dd/mm/yyyy :

var dd = someDate.getDate();
var mm = someDate.getMonth() + 1;
var y = someDate.getFullYear();

var someFormattedDate = dd + '/'+ mm + '/'+ y;
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31  
Like most things javascript, the built-in date processing is extremely powerful, but completely non-intuitive. –  Joel Coehoorn Sep 29 '10 at 1:41
5  
@Joel: agreed, it's a headshaker that setDate(). Non-intuitive is a good descriptor. –  p.campbell Sep 29 '10 at 1:43
1  
Date object for reference. –  Reigel Sep 29 '10 at 1:43
5  
Just for documentation, you can add o substract days with the method setDate. It does not matter if the number you pass to the method is greater than 31, it could be even a negative value. –  cacho Mar 8 '12 at 16:20
6  
I wouldn't call this dd/mm/yyyy format. I call this d/m/yyyy. –  Sam May 22 '13 at 8:52

You could extend the javascript Date object like this

Date.prototype.addDays = function(days) {
    this.setDate(this.getDate() + days);
    return this;
};

and in your javascript code you could call

var currentDate = new Date();
// to add 4 days to current date
currentDate.addDays(4);
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3  
That will not work... adding days will get weird years and months as result. –  Ferry van den heuvel Nov 13 '12 at 12:04
7  
@Ferryvandenheuvel: Not true. The proposed method works perfectly fine. –  Matthijs Bierman Jan 11 '13 at 18:27
    
@Ferryvandenheuvel was right because Krishnas solution needs a minor but important improvement to be safe if the days are given as string instead of an integer: see my comment below stackoverflow.com/a/20468397/2732083 –  Erik Aderhold Sep 4 at 13:40

Why not simply use

function addDays(theDate, days) {
    return new Date(theDate.getTime() + days*24*60*60*1000);
}

var newDate = addDays(new Date(), 5);

or -5 to remove 5 days

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Thanks man .. it works perfectly :) –  Sheikh Muhammad Haris Jul 7 at 1:52
1  
To return a formatted date use this **** return (returndate.getMonth() + 1) + "/" + returndate.getDate() + "/" + returndate.getFullYear(); –  Sheikh Muhammad Haris Jul 7 at 1:55

The accepted answer here gave me unpredictable results, sometimes weirdly adding months and years.

The most reliable way I could find was found here Add days to Javascript Date object, and also increment month

var dayOffset = 20;
var millisecondOffset = dayOffset * 24 * 60 * 60 * 1000;
december.setTime(december.getTime() + millisecondOffset); 

EDIT: Even though it has worked for some people, I don't think it is entirely correct. I would recommend going with a more popular answer or using something like http://momentjs.com/


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1  
This won't work for days with daylight savings changing. Some days aren't 24 hours a day, some are 23, some are 25. I don't know what unpredictable results you got but adding 1 to the day(date) property and let the library work out the rest is usually the best way. –  dalore Nov 20 '12 at 16:52
    
If you are only interested in which day it is could use this solution make sure that the time is something like 12:00. You need to ignore the time of the result though, but the day should be correct. –  Mikael Vandmo May 2 '13 at 8:50
1  
What are the unpredictable results? –  Sam May 22 '13 at 8:51
    
@Sam Sounds like "unpredictable results" == "adding 31 days adds a month"...at least that's what it sounds like to me from he comment. –  saluce May 22 '13 at 14:29
1  
@saluce, I know what you mean, but I don't think I've ever had such problems from the accepted answer's method. I'm curious about whether there really were incorrect results or if this answer is incorrect. –  Sam May 22 '13 at 22:46

The prototype-solution from Krishna Chytanya is very nice, but needs a minor but important improvement. The days param must be parsed as Integer to avoid weird calculations when days is a String like "1". (I needed several hours to find out, what went wrong in my application.)

Date.prototype.addDays = function(days) {
    this.setDate(this.getDate() + parseInt(days));
    return this;
};

Even if you do not use this prototype function: Always be sure to have an Integer when using setDate().

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This is for 5 days:

    var myDate = new Date(new Date().getTime()+(5*24*60*60*1000)));

You not need JQuery, you can do it in Javascript, Hope you get it.

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You can use this library "Datejs open-source JavaScript Date Library".

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I've found this to be a pain in javascript. Check out this link that helped me. Have you ever thought of extending the date object.

http://pristinecoder.com/Blog/post/javascript-formatting-date-in-javascript

/*
 * Date Format 1.2.3
 * (c) 2007-2009 Steven Levithan <stevenlevithan.com>
 * MIT license
 *
 * Includes enhancements by Scott Trenda <scott.trenda.net>
 * and Kris Kowal <cixar.com/~kris.kowal/>
 *
 * Accepts a date, a mask, or a date and a mask.
 * Returns a formatted version of the given date.
 * The date defaults to the current date/time.
 * The mask defaults to dateFormat.masks.default.
 */

var dateFormat = function () {
    var token = /d{1,4}|m{1,4}|yy(?:yy)?|([HhMsTt])\1?|[LloSZ]|"[^"]*"|'[^']*'/g,
        timezone = /\b(?:[PMCEA][SDP]T|(?:Pacific|Mountain|Central|Eastern|Atlantic) (?:Standard|Daylight|Prevailing) Time|(?:GMT|UTC)(?:[-+]\d{4})?)\b/g,
        timezoneClip = /[^-+\dA-Z]/g,
        pad = function (val, len) {
            val = String(val);
            len = len || 2;
            while (val.length < len) val = "0" + val;
            return val;
        };

    // Regexes and supporting functions are cached through closure
    return function (date, mask, utc) {
        var dF = dateFormat;

        // You can't provide utc if you skip other args (use the "UTC:" mask prefix)
        if (arguments.length == 1 && Object.prototype.toString.call(date) == "[object String]" && !/\d/.test(date)) {
            mask = date;
            date = undefined;
        }

        // Passing date through Date applies Date.parse, if necessary
        date = date ? new Date(date) : new Date;
        if (isNaN(date)) throw SyntaxError("invalid date");

        mask = String(dF.masks[mask] || mask || dF.masks["default"]);

        // Allow setting the utc argument via the mask
        if (mask.slice(0, 4) == "UTC:") {
            mask = mask.slice(4);
            utc = true;
        }

        var _ = utc ? "getUTC" : "get",
            d = date[_ + "Date"](),
            D = date[_ + "Day"](),
            m = date[_ + "Month"](),
            y = date[_ + "FullYear"](),
            H = date[_ + "Hours"](),
            M = date[_ + "Minutes"](),
            s = date[_ + "Seconds"](),
            L = date[_ + "Milliseconds"](),
            o = utc ? 0 : date.getTimezoneOffset(),
            flags = {
                d:    d,
                dd:   pad(d),
                ddd:  dF.i18n.dayNames[D],
                dddd: dF.i18n.dayNames[D + 7],
                m:    m + 1,
                mm:   pad(m + 1),
                mmm:  dF.i18n.monthNames[m],
                mmmm: dF.i18n.monthNames[m + 12],
                yy:   String(y).slice(2),
                yyyy: y,
                h:    H % 12 || 12,
                hh:   pad(H % 12 || 12),
                H:    H,
                HH:   pad(H),
                M:    M,
                MM:   pad(M),
                s:    s,
                ss:   pad(s),
                l:    pad(L, 3),
                L:    pad(L > 99 ? Math.round(L / 10) : L),
                t:    H < 12 ? "a"  : "p",
                tt:   H < 12 ? "am" : "pm",
                T:    H < 12 ? "A"  : "P",
                TT:   H < 12 ? "AM" : "PM",
                Z:    utc ? "UTC" : (String(date).match(timezone) || [""]).pop().replace(timezoneClip, ""),
                o:    (o > 0 ? "-" : "+") + pad(Math.floor(Math.abs(o) / 60) * 100 + Math.abs(o) % 60, 4),
                S:    ["th", "st", "nd", "rd"][d % 10 > 3 ? 0 : (d % 100 - d % 10 != 10) * d % 10]
            };

        return mask.replace(token, function ($0) {
            return $0 in flags ? flags[$0] : $0.slice(1, $0.length - 1);
        });
    };
}();

// Some common format strings
dateFormat.masks = {
    "default":      "ddd mmm dd yyyy HH:MM:ss",
    shortDate:      "m/d/yy",
    mediumDate:     "mmm d, yyyy",
    longDate:       "mmmm d, yyyy",
    fullDate:       "dddd, mmmm d, yyyy",
    shortTime:      "h:MM TT",
    mediumTime:     "h:MM:ss TT",
    longTime:       "h:MM:ss TT Z",
    isoDate:        "yyyy-mm-dd",
    isoTime:        "HH:MM:ss",
    isoDateTime:    "yyyy-mm-dd'T'HH:MM:ss",
    isoUtcDateTime: "UTC:yyyy-mm-dd'T'HH:MM:ss'Z'"
};

// Internationalization strings
dateFormat.i18n = {
    dayNames: [
        "Sun", "Mon", "Tue", "Wed", "Thu", "Fri", "Sat",
        "Sunday", "Monday", "Tuesday", "Wednesday", "Thursday", "Friday", "Saturday"
    ],
    monthNames: [
        "Jan", "Feb", "Mar", "Apr", "May", "Jun", "Jul", "Aug", "Sep", "Oct", "Nov", "Dec",
        "January", "February", "March", "April", "May", "June", "July", "August", "September", "October", "November", "December"
    ]
};

// For convenience...
Date.prototype.format = function (mask, utc) {
    return dateFormat(this, mask, utc);
};
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I found that JavaScript can return a correct date when you use new Date(nYear, nMonth, nDate); with the over days of that month. Try to see the result of a dDate variable when you use this:

var dDate = new Date(2012, 0, 34); // the result is 3 Feb 2012


I have a SkipDate function to share:

    function DaysOfMonth(nYear, nMonth) {
        switch (nMonth) {
            case 0:     // January
                return 31; break;
            case 1:     // February
                if ((nYear % 4) == 0) {
                    return 29;
                }
                else {
                    return 28;
                };
                break;
            case 2:     // March
                return 31; break;
            case 3:     // April
                return 30; break;
            case 4:     // May
                return 31; break;
            case 5:     // June
                return 30; break;
            case 6:     // July
                return 31; break;
            case 7:     // August
                return 31; break;
            case 8:     // September
                return 30; break;
            case 9:     // October
                return 31; break;
            case 10:     // November
                return 30; break;
            case 11:     // December
                return 31; break;
        }
    };

    function SkipDate(dDate, skipDays) {
        var nYear = dDate.getFullYear();
        var nMonth = dDate.getMonth();
        var nDate = dDate.getDate();
        var remainDays = skipDays;
        var dRunDate = dDate;

        while (remainDays > 0) {
            remainDays_month = DaysOfMonth(nYear, nMonth) - nDate;
            if (remainDays > remainDays_month) {
                remainDays = remainDays - remainDays_month - 1;
                nDate = 1;
                if (nMonth < 11) { nMonth = nMonth + 1; }
                else {
                    nMonth = 0;
                    nYear = nYear + 1;
                };
            }
            else {
                nDate = nDate + remainDays;
                remainDays = 0;
            };
            dRunDate = Date(nYear, nMonth, nDate);
        }
        return new Date(nYear, nMonth, nDate);
    };
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1  
That isn't how you calculate a leap year - it nees to take account of % 4, % 100 and % 400 to be right. –  Jerry Jeremiah Sep 18 at 2:49

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