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I have some pages that i acces by jquery $.post like this:

$.post(url, {name: name}, function(data)
{
    var htmldata = $(data);
    if($('#ok', htmldata).val() == "1")
    {
        //some things carried out
    }
});

$('#ok', htmldata).val() is allways undefined so where is the problem?

UPDATE: htmldata = <input id=\"ok\" type=\"hidden\" value=\"1\" /> and another 2-3 hidden input.

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Could you provide a real example of what is contained in htmldata variable? –  antur123 Oct 24 '11 at 11:50
    
this is contained it htmldata and another 2-3 hidden inputs: <input id=\"ok\" type=\"hidden\" value=\"1\" /> –  Sp3ct3R Oct 24 '11 at 11:52

4 Answers 4

up vote 1 down vote accepted

$('#ok', htmldata) will look for all descendants of htmldata that have the id of ok.

You need to change $('#ok', htmldata) to htmldata.filter('#ok')

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I totally agree. Then, your source code would look like this: $.post(url, {name: name}, function(data) { var htmldata = $(data); if ($(htmldata).filter('#ok').val() == '1') { //some things carried out } }); –  antur123 Oct 24 '11 at 12:11

Because data in htmldata is not initialized in DOM, if you want that work inject this into DOM in hidden div for example.

But better approach is return JSON from AJAX and then check for status is very easy.

Of Course you can always parse using regex :)

Example of first case (not tested) - put this into callback function:

$("#ajaxData").remove();
$('body').append('<div id="ajaxData">' + htmldata + '</div>');
if(parseInt($('#ok').val()) == "1")
{

}
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could you give me an example... this is my first jquery/ajax page:D –  Sp3ct3R Oct 24 '11 at 11:55

Actually no need to use $ in the following line:

var htmldata = $(data);

Use directly var htmldata = data; and try to check whether any ata is there in htmldata.If yes then proceed further.

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You can use find():

$.post(url, {name: name}, function(data)
{
    var htmldata = $(data);
    if(htmldata.find('#ok').val() == "1")
    {
        //some things carried out
    }
});
share|improve this answer
    
You are making a jQuery object from a freshly created jQuery object :) –  Lapple Oct 24 '11 at 12:00
    
@Lapple: Fixed, thanks :) –  Sarfraz Oct 24 '11 at 12:02

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