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I cannot figure it out how can i get the value of a hidden input which has been appended before.I mean i have something like this:

$(document).ready(function () {
    $(".form").append('<input type="hidden" id="inputhidden1" value="myvalue"> ');
    $(".form").submit(function () {
        console.debug($("#inputhidden1").val())
    });
});

The following code, when the form is submited will debug me the value as undefined. Why?

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2  
Your code has syntax errors, since the " are not escaped properly. Are you sure it is the same as your code? – nhahtdh Dec 20 '12 at 6:51
    
Try this: $(".form").append('<input type="hidden" id="inputhidden1" value="myvalue">'); – nhahtdh Dec 20 '12 at 6:52
    
Also your input tag is missing a close. – jacob Dec 20 '12 at 6:54
    
it is not the same code , i've written this fast... – Stack Overfolow Dec 20 '12 at 7:02
    
one of the significant aspects of jQuery.. is that you can chain your selectors.. like instead of calling $('.form') multiple times you can do this: $('.form').append(....').submit(function() { } – self Dec 20 '12 at 7:10

Your script has syntax errors, try this way

$(document).ready(function(){// missing function
     $(".form").append("<input type='hidden' id='inputhidden1' value='myvalue'>");//missing closing tag, quotes error
     $(".form").submit(function()
        {
            console.debug($("#inputhidden1").val())
        });
});​

Working DEMO

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It does not work .... – Stack Overfolow Dec 20 '12 at 7:01
    
@StackOverfolow its working, did you check in the console?? – Sibu Dec 20 '12 at 7:01
    
@StackOverfolow check ths jsfiddle.net/fsNZt/1 – Sibu Dec 20 '12 at 7:02

there is an error in your code, you are not using document.ready correctly and you are using double quote inside double quote. Is your form has a class named "form"?

Give your form an id, lets say you gave

<form id="formid" action="#">
       <input type="submit" value="Click Me"/>
</form>

now try this code in script:

<script type="text/javascript">

    $(document).ready(function(){
          $("#formid").append("<input type='hidden' id='inputhidden1' value='myvalue'/>");
          $("#formid").submit(function(){
              console.debug($("#inputhidden1").val());
          });
    });
</script>

its printing the value = myvalue on debug console of firebug..

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