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Say I have this:

<div id="controller">
 <div id="first">1</div>
 <div id="second>2</div>
</div>

but say I wanted to insert a new div arbitrarily based on an index I supply.

Say I gave the index to insert of 0, the result should be:

<div id="controller">
  <div id="new">new</div>
  <div id="first">1</div>
  <div id="second">2</div>
</div>

and if I have an index to insert of 2 the result would be.

<div id="controller">
  <div id="first">1</div>
  <div id="second">2</div>
  <div id="new">new</div>
</div>

and if I give an index of 1 the result would be:

<div id="controller">
  <div id="first">1</div>
  <div id="new">new</div>
  <div id="second">2</div>
</div>

just forget that last example's format. The simple act of copying and pasting HTML code on this site is horrific enough to make me about scream and pull my hair out and I dont want to spend anymore time messing with it!

share|improve this question

7 Answers 7

up vote 43 down vote accepted

As a function with a little better handling of 0:

function insertAtIndex(i) {
    if(i === 0) {
     $("#controller").prepend("<div>okay things</div>");        
     return;
    }


    $("#controller > div:nth-child(" + (i - 1) + ")").after("<div>great things</div>");
}

EDIT: Added parenthesis in the nth-child selector to avoid NaN errors. @hofnarwillie

share|improve this answer
1  
You might wanna use .before(), instead of .append() ;) –  Reigel Aug 25 '10 at 2:55
    
Fixed - thanks. –  Andy Gaskell Aug 25 '10 at 3:07
2  
You should use $("#controller > div:nth-child(" + i + ")").before("<div>great things</div>"); because otherwise the new element might get inserted multiple times, in childs of childs of #controller –  squarebracket Dec 29 '13 at 18:16
3  
Wouldn't eq(i) serve the same purpose as nth-child(" + i - 1 + ")? –  MCB Jun 6 '14 at 18:29
1  
need to turn :nth-child(" + i - 1 + ")" into :nth-child(" + (i - 1) + ")" otherwise you may get a NaN issue. Added the fix to the answer. –  hofnarwillie Jul 4 '14 at 9:43

I had a similar problem. Unfortunately none of the solutions worked for me. So I coded it this way:

jQuery.fn.insertAt = function(index, element) {
  var lastIndex = this.children().size()
  if (index < 0) {
    index = Math.max(0, lastIndex + 1 + index)
  }
  this.append(element)
  if (index < lastIndex) {
    this.children().eq(index).before(this.children().last())
  }
  return this;
}

Examples for the problem:

$("#controller").insertAt(0, "<div>first insert</div>")
$("#controller").insertAt(-1, "<div>append</div>")
$("#controller").insertAt(1, "<div>insert at second position</div>")

Here are some examples taken from my unittests:

$("<ul/>").insertAt(0, "<li>0</li>")
$("<ul/>").insertAt(0, "<li>0</li>").insertAt(1, "<li>1</li>")
$("<ul/>").insertAt(-1, "<li>-1</li>")
$("<ul/>").insertAt(-1, "<li>-1</li>").insertAt(0, "<li>0</li>")
$("<ul/>").insertAt(0, "<li>0</li>").insertAt(-1, "<li>-1</li>")
$("<ul/>").insertAt(-1, "<li>-1</li>").insertAt(1, "<li>1</li>")
$("<ul/>").insertAt(-1, "<li>-1</li>").insertAt(99, "<li>99</li>")
$("<ul/>").insertAt(0, "<li>0</li>").insertAt(2, "<li>2</li>").insertAt(1, "<li>1</li>")
$("<ul/>").insertAt(0, "<li>0</li>").insertAt(1, "<li>1</li>").insertAt(-1, "<li>-1</li>")
$("<ul/>").insertAt(0, "<li>0</li>").insertAt(1, "<li>1</li>").insertAt(-2, "<li>-2</li>")
$("<ul/>").insertAt(0, "<li>0</li>").insertAt(1, "<li>1</li>").insertAt(-3, "<li>-3</li>")
$("<ul/>").insertAt(0, "<li>0</li>").insertAt(1, "<li>1</li>").insertAt(-99, "<li>-99</li>")

Edit: It handles all negative indizes gracefully now.

share|improve this answer
    
great method! thanks for this. plugged it in and it worked like a charm. –  Brad Goss Feb 14 '12 at 0:22

I found the listed solutions didn't work or were overly complicated. All you have to do is determine the direction you're appending from. Here is something simple written in an OOP manner for jQuery.

$.fn.insertIndex = function (i) {
    // The element we want to swap with
    var $target = this.parent().children().eq(i);

    // Determine the direction of the appended index so we know what side to place it on
    if (this.index() > i) {
        $target.before(this);
    } else {
        $target.after(this);
    }

    return this;
};

You can simply use the above with some simple syntax.

$('#myListItem').insertIndex(2);

Currently using this on a visual editor project moving tons of data around via drag and drop. Everything is working great.


Edit: I've added a live interactive CodePen demo where you can play with the above solution http://codepen.io/ashblue/full/ktwbe

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1  
I love the simplicity of your solution Ash – nice job. It's working well for me too. –  Graham Ashton Aug 19 '14 at 11:17
    
I've updated the above example to include a CodePen demo codepen.io/ashblue/full/ktwbe –  Ash Blue Aug 20 '14 at 17:18

Use my simple plugin Append With Index :

$.fn.appendToWithIndex=function(to,index){
        if(! to instanceof jQuery){
            to=$(to);
        };
        if(index===0){
            $(this).prependTo(to)
        }else{
            $(this).insertAfter(to.children().eq(index-1));
        }
    };*

Now :

$('<li>fgdf</li>').appendToWithIndex($('ul'),4)

Or :

$('<li>fgdf</li>').appendToWithIndex('ul',0)
share|improve this answer

If you need to do this a lot, you can wrap it in a little function:

​var addit = function(n){
  $('#controller').append('<div id="temp">AAA</div>')
    .stop()
    .children('div:eq('+n+')')
    .before( $('#temp') );
} 

addit(2); // adds a new div at position 2 (zero-indexed)
addit(10); // new div always last if n greater than number of divs
addit(0); // new div is the only div if there are no child divs

If you're concerned about that temporary ID, you can add a final step to remove it.

Edit: Updated to handle cases of zero children, and specified n > current number of divs.

share|improve this answer
    
the problem would be if the $('#controller') doesn't have any children, then this function would not work... addit(0) –  Reigel Aug 25 '10 at 3:02
    
Reigel, that's true. For fun, I really wanted to try to avoid any (native) conditional. This updated one seems to work for the border cases. –  Ken Redler Aug 25 '10 at 3:19
//jQuery plugin insertAtIndex included at bottom of post   

//usage:
$('#controller').insertAtIndex(index,'<div id="new">new</div>');

//original:
<div id="controller">
  <div id="first">1</div>
  <div id="second>2</div>
</div>

//example: use 0 or -int          
$('#controller').insertAtIndex(0,'<div id="new">new</div>');
  <div id="controller">
    <div id="new">new</div>
    <div id="first">1</div>
    <div id="second>2</div>
  </div>

//example: insert at any index     
$('#controller').insertAtIndex(1,'<div id="new">new</div>');
     <div id="controller">
        <div id="first">1</div>
        <div id="new">new</div>
        <div id="second>2</div>
     </div>

//example: handles out of range index by appending        
$('#controller').insertAtIndex(2,'<div id="new">new</div>');
      <div id="controller">
          <div id="first">1</div>
          <div id="second>2</div>
          <div id="new">new</div>
      </div>

/**!
 * jQuery insertAtIndex
 * project-site: https://github.com/oberlinkwebdev/jQuery.insertAtIndex
 * @author: Jesse Oberlin
 * @version 1.0
 * Copyright 2012, Jesse Oberlin
 * Dual licensed under the MIT or GPL Version 2 licenses.
*/

(function ($) { 
$.fn.insertAtIndex = function(index,selector){
    var opts = $.extend({
        index: 0,
        selector: '<div/>'
    }, {index: index, selector: selector});
    return this.each(function() {
        var p = $(this);  
        var i = ($.isNumeric(opts.index) ? parseInt(opts.index) : 0);
        if(i <= 0)
            p.prepend(opts.selector);
        else if( i > p.children().length-1 )
            p.append(opts.selector);
        else
            p.children().eq(i).before(opts.selector);       
    });
};  
})( jQuery );
share|improve this answer

You could always use prepend('#div');

ex.

$(document).ready(function(){

$('#first').prepend('<div id="new">New</div>');

});​

That would put "#new" before "#first" Not sure if that's what you want.

share|improve this answer
1  
That takes care of the 0th case. What about the 2nd position? He wants to be able to specify by number where to insert the div in the list o' divs –  Tommy Aug 25 '10 at 3:02

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