Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Myproblem is when I click my first selectbox, after there is a value, it will trigger the second selectbox. I implement it in Ajax, but successfully render ,but my other textfield value is gone. How could I just render a specific part of the responde html(success ajax call)?

$(document).ready(function(){ 

    if ($('#product_category').val() == 'Choose Category')
        document.getElementById('product_subcategory').disabled = true;

    $('#product_category').change(function () {   
        if ($('#product_category').val() == 'Choose Category')
            document.getElementById('product_subcategory').disabled = true;
        else
            document.getElementById('product_subcategory').disabled = false;


        data = $('#product_category').val();
        //alert(data);

        var param = 'category_name=' + data;
        $.ajax({
          url: MYURL,
          data: param,
          success: function(result) {
            alert('Choose product subcategory');
            alert(param);
            $('body').html('');
            $('body').html(result);
          }
        });
       //   window.location = MYURL?category_name="+data;
    });

    $('#product_subcategory').change(function () {    
        data = $('#product_subcategory').val();
     //     paramCategory = $(document).getUrlParam('category_name');
      //    alert(paramCategory);

        $.get(MYURL, function(data){
            alert("Data Loaded: " + data);
            });
        //window.location = MYURL?subcategory_name=" +  data;
    });

});

in my form, i use $_GET['category_name'] to get my value Ajax return value. I Debug in firebug, and it is successfully. I tried to render again the html, but my previous textarea's value and textfiel's value is gone since what i did is $('body').html(''); $('body').html(result);, So,how could I manage to get the success ajax return value, and use it in the PHP.

any confusion ,please tell me... Thank you for spending ur time.


Hmm, I'm using a div and show the Div when it was return success ajax call.

share|improve this question

4 Answers 4

up vote 0 down vote accepted

You have two ways to do it.

  1. Add the text from PhP while returning the data for Ajax call

  2. Add the data back to the text box after loading the page..

    data = $('#product_category').val(); //alert(data);

    var param = 'category_name=' + data; $.ajax({ url: MYURL, data: param, success: function(result) { alert('Choose product subcategory'); alert(param); $('body').html(''); $('body').html(result); $('#product_category').val(data); } });

share|improve this answer

the problem is here,

$('body').html('');
$('body').html(result);

you are blanking whole body and inserting new result. You have to change it to just

$('#second_select_box_id').html(result);
share|improve this answer
$('body').html('');
$('body').html(result);

This is emptying your page and inserting in it your result, I supose that what you really want to do is to load your second dropdown with the result, for that you'll need to do

$("#product_subcategory").html(result);

Of course, this will depend on what are your ajax function returning on result

share|improve this answer

can you please try this

$(body).html('');
$(body).html(result);
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.