6

In JavaScript I want to get first date of the week and last date of the week by week number and year only.

For example if I my input is:

2(week),2012

Then my output should be:

2012-01-08 and 2012-01-14

  • How about if I give 2 for year 2013? What should it return? – James Jithin Jan 10 '12 at 12:27
  • it should return the second week of the first date and last date.... – balaphp Jan 10 '12 at 12:29
  • @balaphp actually it will return first and last date of 2nd week of the year 2013..m i right. ? – Chandresh M Jan 10 '12 at 12:32
8

Try this:

var year = 2012;
var week = 2;
var d = new Date("Jan 01, " + year + " 01:00:00");
var w = d.getTime() + 604800000 * (week - 1);
var n1 = new Date(w);
var n2 = new Date(w + 518400000)

console.log(n1);
console.log(n2);

n1 contains the first day of the week
n2 contains the last day of the week

As for the constants:
604800000 is one week in milliseconds
518400000 is six days

  • 4
    Incorrect, n1 is not necessarily the monday and n2 is not necessarily the sunday. – Mark Buikema Sep 11 '14 at 21:25
5

A little change to @bardiir 's answer, if the first day of the year is not Sunday(or Monday) that result is not correct. You should minus the number of the first day.

Changed code

firstDay = new Date(2015, 0, 1).getDay();
console.log(firstDay);
var year = 2015;
var week = 67;
var d = new Date("Jan 01, " + year + " 01:00:00");
var w = d.getTime() - (3600000 * 24 * (firstDay - 1)) + 604800000 * (week - 1)
var n1 = new Date(w);
var n2 = new Date(w + 518400000)

console.log(n1);
console.log(n2);

if you wish the first is Sunday, change the (firstDay-1) to

1

you can check and try with below link.

How to get first and last day of the week in JavaScript

It will may helpful to you.

Thanks.

  • i had checked it already.. its returning values by date but i want same results by week number and year... – balaphp Jan 10 '12 at 12:34
-1
   dt = new Date();
   var firstDateOfWeek=(dt.setDate(dt.getDate()-dt.getDay()));
   var lastDateOfWeek=(dt.setDate(dt.getDate()+6-dt.getDay()));

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