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.

I have this piece of code

$(document).ready(function () {
    $(".rating-stars").ratingbig({
        callback: function (value, link) {
            var element = $(this).parent().parent().parent().attr('id').split("_");
            var tip = $('#rating-result_' + element[1]);
            tip[0].data = value;
            $('#rating-result_' + element[1]).html(ratingMnemos[tip[0].data] || ratingMnemos[0]);
        },
        focus: function (value, link) {
            var element = $(this).parent().parent().parent().attr('id').split("_");
            var tip = $('#rating-result_' + element[1]);
            tip.html(ratingMnemos[value]);
        },
        blur: function (value, link) {
            var element = $(this).parent().parent().parent().attr('id').split("_");
            var tip = $('#rating-result_' + element[1]);
            tip[0].data = value;
            $('#rating-result_' + element[1]).html(ratingMnemos[tip[0].data] || ratingMnemos[0]);
        }
    });
});

And i add some code via ajax to the page. nu the rating is not working on the new added elements in the page. I'm stuck because I can't find a way to trigger the function when the new elements are added in the page.

Thanks in advance

share|improve this question
1  
Have you tried debugging your app with JavaScript debugger like Firebug to see how your Ajax call executes? –  jsalonen Nov 28 '11 at 18:57
    
What does jQuery.fn.ratingbig do? –  Bergi Nov 28 '11 at 18:58
    
It sounds like the problem is that he is adding additional items with a class of rating-stars after document load that need this plugin applied to them. The only solution in this case will be to do it every time a new item is added, such as in the callback of a .load() or .ajax(). –  Kevin B Nov 28 '11 at 19:00

1 Answer 1

I believe your question was what to do when you add new items with the class rating-stars to the page after the initial function call.

The code you provided runs only once, after the initial page load. You will have to call something similar after adding new items to the page in order to apply it to those new items. For example, during your AJAX callback.

Example:

$.ajax({
  // Omitted actual call
  success: function(){
    // Omitted additional callback actions
    applyRatingBig();
  }
});

$(document).ready(function () {
  applyRatingBig();
});

function applyRatingBig() {
// Consider adding code to ensure that this only gets called once per object - for example, you could set a flag once it has been called for a given object

$(".rating-stars").ratingbig({
    callback: function (value, link) {
        var element = $(this).parent().parent().parent().attr('id').split("_");
        var tip = $('#rating-result_' + element[1]);
        tip[0].data = value;
        $('#rating-result_' + element[1]).html(ratingMnemos[tip[0].data] || ratingMnemos[0]);
    },
    focus: function (value, link) {
        var element = $(this).parent().parent().parent().attr('id').split("_");
        var tip = $('#rating-result_' + element[1]);
        tip.html(ratingMnemos[value]);
    },
    blur: function (value, link) {
        var element = $(this).parent().parent().parent().attr('id').split("_");
        var tip = $('#rating-result_' + element[1]);
        tip[0].data = value;
        $('#rating-result_' + element[1]).html(ratingMnemos[tip[0].data] || ratingMnemos[0]);
    }
});
}
share|improve this answer
    
I tried already a solution similar to David suggestion but for some reason was not working. Hoever the solution i found ( very simple) was to simply put the script in a function that already has click delegation with document.on('click', function( ( because the rating function was hidden at the moment of creation) and made visibile after a click event. Thank for your help is very very nice to see that are still people that can help you in these akward moments of "non solutions" –  Ciprian Dobrescu Nov 29 '11 at 6:22

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.