Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I am trying to gather a list (array) of ids in a sector

<div id="mydiv">
 <span id='span1'>
 <span id='span2'>


gives me a jQuery object, but not a real array;

I can do

var array = jQuery.makeArray($("#mydiv").find("span"));

and then use a for loop to put the id attributes into another array

or I can do

$("#mydiv").find("span").each(function(){}); //but i cannot really get the id and assign it to an array that is not with in the scope?(or can I)

Anyhow, I just wanna see if there is a shorthand in jQuery to do that;

Thanks =)

share|improve this question

8 Answers 8

up vote 78 down vote accepted

//but i cannot really get the id and assign it to an array that is not with in the scope?(or can I)

Yes, you can!

var IDs = [];
$("#mydiv").find("span").each(function(){ IDs.push(; });

This is the beauty of closures.

Note that while you were on the right track, sighohwell and cletus both point out more reliable and concise ways of accomplishing this, taking advantage of attribute filters (to limit matched elements to those with IDs) and jQuery's built-in map() function:

var IDs = $("#mydiv span[id]")         // find spans with ID attribute
  .map(function() { return; }) // convert to set of IDs
  .get(); // convert to instance of Array (optional)
share|improve this answer
yeah, I didnt use a real array because technically you can put duplicate ID's in html even though its totally wrong to do that – Chad Grant May 5 '09 at 23:07
@Deviant: true (although if you do that, you've made IDs kinda useless...) Another reason my example isn't suitable for production code is simply that it does no filtering of elements - if Roy has any spans without IDs, he'll end up with empty elements in the array. – Shog9 May 5 '09 at 23:16
I use this function to get only the unique variables(screw duplicate id's, they won't work anyways on the second occurence) $.unique($('[id]').map(function() { return; }).get()); By wrapping it in $.unique it gets nicely filtered keeping your code clean :-) – Michael Dibbets Nov 20 at 8:04

The .get() method will return an array from a jQuery object. In addition you can use .map to project to something before calling get()

var idarray = $("#myDiv")
             .find("span") //Find the spans
             .map(function() { return; }) //Project Ids
             .get(); //ToArray
share|improve this answer

My suggestion?

var arr = $.map($("#mydiv [id]"), function(n, i) {

you could also do this as:

var arr = $.map($("#mydiv span"), function(n, i) {


var arr = $.map($("#mydiv span[id]"), function(n, i) {

or even just:

var arr = $("#mydiv [id]").map(function() {

Lots of ways basically.

share|improve this answer

The best way I can think of to answer this is to make a custom jquery plugin to do this:

jQuery.fn.getIdArray = function() {
  var ret = [];
  $('[id]', this).each(function() {
  return ret;

Then do something like

var array = $("#mydiv").getIdArray();
share|improve this answer

It's a late answer but now there is an easy way. Current version of jquery lets you search if attribute exists. For example


will give you all the elements if they have id. If you want all spans with id starting with span you can use

share|improve this answer

Not a real array, but objs are all associative arrays in javascript.

I chose not to use a real array with [] and [].push because technically, you can have multiple ID's on a page even though that is incorrect to do so. So just another option in case some html has duplicated ID's

$(function() {

       var oArr = {};
       $("*[id]").each(function() {
           var id = $(this).attr('id');
           if (!oArr[id]) oArr[id] = true;

       for (var prop in oArr)

share|improve this answer

You can get the ids of specifict tags and send it to a annother element. For exemple:

$("input").map(function() {
    $( "textarea" ).append("\n");

It will get all input ids and send it to textarea.

share|improve this answer


share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.