34

I have a UserControl. Ex:

<div id="divItem">
some html
</div>

The ajax request return new html of this UC from server. Ex:

<div id="divItem">
    new html
</div>

I want to replace the old html by the new one. How could I do that. Thanks.

2
  • 1
    Have you tried the jQuery Docs? Nov 24, 2011 at 9:27
  • If you include the starting and ending tags, it's called outerHTML. The part you want to replace is innerHTML Dec 1, 2021 at 16:33

5 Answers 5

54

If you also return the div divItem

$("#divItem").replaceWith("NEW HTML");

Put the new HTML on the spot or replace the innerHTML, since they got the same container:

$("#divItem").html($("NEW HTML").html());

If you dont return the div divItem

Just put the new html:

$("#divItem").html("NEW HTML");
2
  • @roman Yes, because if I see yours, mine wans't the best way, and I like to provide a complete correct answer. But you got a +1.
    – Niels
    Nov 24, 2011 at 9:45
  • You should cleanup this answer is it offers two answers when Jin was looking to replace old html with new. You should emphasize with .replaceWith and you'll get my +1 Mar 26, 2012 at 20:34
16

I guess replaceWith is what you search.

$('#divItem').replaceWith(serverResponse);
0
1

Placing data from AJAX calls into a DOM element can be done using .load().

$('#divItem').load('somePage.html');
0

If you want to replace 1 item with multiple items. You can try:

var item_1 = $('<div>').text('item 1');
var item_2 = $('<div>').text('item 2');
var item_3 = $('<div>').text('item 3');

// 1/.
// dont' use this way because it's hard to read
$('#divItem').prop('outerHTML', item_1.prop('outerHTML') + item_2.prop('outerHTML') + item_3.prop('outerHTML'));

// 2/.
// dont' use this way because it's same to the first's
$('#divItem')[0].outerHTML = item_1.prop('outerHTML') + item_2.prop('outerHTML') + item_3.prop('outerHTML');

// 3/.
// if you use this way, how can we continue replace "#divItem" with "item_2"?
var obj = $('#divItem').replaceWith(item_1);

// "replaceWith" returns an object which was replaced with "item_1"
// there is no way to continue with "item_2" and "item_3"
// sure, if you DON'T want to write a new line
item_1.after(item_2);

// or
item_2.insertAfter(item_1);

// 4/.
// if we write this, the result should be: "item 3item 2item 1"
$('#divItem').after(item_1).after(item_2).after(item_3);

// so, the correct **inline** solution should be:
$('#divItem').after(item_3).after(item_2).after(item_1).remove();
-2

You just need

$('#divItem').html('new html');

This just replaces the div's innerHTML: http://api.jquery.com/html/

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