58

Trying to find div element with id="result" in returned data from .ajax() using .find(). Unfortunately, alert(result) doesn't return div#result.

Here is my code:

$.ajax({
    url: url, 
    cache: false,
    success: function(response) {
        result = $(response).find("#result");
        alert(response); // works as expected (returns all html)
        alert(result); // returns [object Object]
    }
});
2
  • does the response come in the fist place: alert(response)?
    – Sarfraz
    Commented Jul 21, 2010 at 14:34
  • I don't know how to fix your code in the way you did, but I think it will work if you first put the content inside a div tag with display none and then find the #result tag inside this div. Like: $('#div-content').html(result); $('#div-content').find('#result'); Commented Jul 21, 2010 at 14:35

17 Answers 17

111

To answer your question specifically, it seems to be working correctly. You said that it returns [object Object], which is what jQuery will return with the find("#result") method. It returns a jQuery element that matches the find query.

Try getting an attribute of that object, like result.attr("id") - it should return result.


In general, this answer depends on whether or not #result is the top level element.

If #result is the top level element,

<!-- #result as top level element -->
<div id="result">
  <span>Text</span>
</div>
<div id="other-top-level-element"></div>

find() will not work. Instead, use filter():

var $result = $(response).filter('#result');

If #result is not the top level element,

<!-- #result not as top level element -->
<div>
  <div id="result">
    <span>Text</span>
  </div>
</div>

find() will work:

var $result = $(response).find('#result');
7
  • 1
    Was just figuring out how to do this on my own - this definitely has saved me some time :)
    – Rob
    Commented Nov 4, 2013 at 8:49
  • This saved me as well.
    – derekshull
    Commented Apr 3, 2014 at 15:07
  • 1
    Thanks for explaining, I found a simple comparison that can be helpful mkyong.com/jquery/difference-between-filter-and-find-in-jquery
    – CrandellWS
    Commented Apr 22, 2014 at 1:46
  • 4
    so this will always work. $("<div>"+response+"</div>").find('#result');
    – ceed
    Commented Feb 5, 2016 at 10:35
  • Arg, the behavior difference between .find and .filter really bothers me sometimes. But thank you for this answer which covers both and why to use one or need one. Commented Jun 7, 2018 at 17:38
29

I just spent 3 hours to solve a similar problem. This is what worked for me.

The element that I was attempting to retrieve from my $.get response was a first child element of the body tag. For some reason when I wrapped a div around this element, it became retrievable through $(response).find('#nameofelement').

No idea why but yeah, retrievable element cannot be first child of body... that might be helpful to someone :)

4
  • 2
    Actually i think this should have been validated as the correct answer
    – Cata Cata
    Commented Apr 19, 2012 at 7:43
  • 1
    this is a better solution stackoverflow.com/a/13875063/1404348 and worked for me.
    – MTVS
    Commented Feb 15, 2013 at 17:38
  • this solution worked for me as i had 2 divs being returned as parents. after wrapping them in a single container, the returned html became searchable and traversable.
    – Lazerblade
    Commented Feb 18, 2013 at 21:39
  • Wrapping the element around a div did the trick, this should be the correct answer!
    – DirtyBit
    Commented Mar 30, 2018 at 6:37
21

try this:

result = $("#result", response);

btw alert is a rough way to debug things, try console.log

1
  • Don't know why but $("#result").replaceWith($(html).find("#result")); didn't work and your answer worked nicely !
    – Julien
    Commented Feb 4, 2019 at 11:49
8

this is your answer:

<div class="test">Hello</div>
<div class="one">World</div>    

The following jQuery Won't work:

$(data).find('div.test');    

as the divs are top level elements and data isn't an element but a string, to make it work you need to use .filter

$(data).filter('div.test');    

Another same question: Use Jquery Selectors on $.AJAX loaded HTML?

2
  • I think, this is the best answer
    – MTVS
    Commented Feb 15, 2013 at 17:36
  • This also seems to work if .find() gives you too many or wrong results. Commented Nov 8, 2016 at 13:09
6

do not forget to do it with parse html. like:

$.ajax({
    url: url, 
    cache: false,
    success: function(response) {
        var parsed = $.parseHTML(response);
        result = $(parsed).find("#result");
    }
});

has to work :)

4

This worked for me, you just need to put .html() on the end of - $(response).find("#result")

1
  • People have not written this useful .html() method to prevent [object object] in alert box. you have mentioned it and this worked 4 me. Thanks.
    – prashant
    Commented Jul 18, 2017 at 6:16
3

The jQuery find() is returning a jQuery object that wraps the DOM object. You should be able to work with that object to do what you'd like with the div.

1
  • stjowa beat me to it. It looks like it's working as expected.
    – Ryan
    Commented Jul 21, 2010 at 14:48
2

The thing is that your ajax response is returning a string, so if you use directly $(response) it would return JQUERY: Uncaught Error: Syntax error, unrecognized expression in the console. In order to use it properly you need to use first a JQUERY built-in function called $.parseHTML(response). As what the function name implies you need to parse the string first as an html object. Just like this in your case:

$.ajax({
    url: url, 
    cache: false,
    success: function(response) {
        var parsedResponse = $.parseHTML(response);
        var result = $(parsedResponse).find("#result");

        alert(response); // returns as string in console
        alert(parsedResponse); // returns as object HTML in console
        alert(result); // returns as object that has an id named result 
    }
});
1

Specify dataType: "html".

If you do not jQuery will guess the requested data type (check: http://api.jquery.com/jQuery.ajax/). My guess is that in your case response was a String rather than a DOMObject. Obviously DOM methods won't work on a String.

You could test that with console.log("type of response: " + typeof response) (or alert("type of response:" + typeof response), in case you don't run Firebug)

1

You can do it in this way to find any div and get its attributes or anything you want.

$(response).filter('#elementtobefindinresponse').attr("id");

or

$(response).filter('img#test').attr("src");
0
0

Is #result in the response HTML? Try the following. jQuery will still return an empty object if it doesn't find anything.

alert(result.length);
1
  • return 1 but how to get html of that div Commented Jun 24, 2015 at 7:44
0

You should add dataType: "html" to the request. Im quite sure you wont be able to search the DOM of the returned html if it doesnt know it is html.

1
  • I had a related problem that this didn't solve. I was retrieving an entire web page via AJAX, and either due to a <!doctype> tag or some other malformed issue, jQuery saw the response as a array of text nodes instead of a proper DOM tree. The solution for me was simplifying the response nodes.
    – Eric_WVGG
    Commented Jun 2, 2015 at 13:10
0

you just use the following code

var response= $(result);

$(response).find("#id/.class").html(); [or] $($(result)).find("#id/.class").html();
0
$.ajax({
    url: url,
    cache: false,
    success: function(response) {
        $('.element').html(response);
    }
});

< span class = "element" >
    //response
    < div id = "result" >
        Not found 
    </div> 
</span>

var result = $("#result:contains('Not found')").text();
console.log(result); // output: Not found
0

try if( $(response).filter('#result').length ) // do something

0

To view the content in alert use:

alert( $(response).find("#result").html() );

-1

You might have to do something like

var content= (typeof response.d) == 'string' ? eval('(' + response.d + ')') : response.d

then you should be able to use

result = $(content).find("#result")
1
  • This will work for sure if you are using a web service, and your data type is 'json'
    – drusnov
    Commented Jul 21, 2010 at 14:36

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