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What i'm trying to do is i have an image display on the page and another image lays on top with many frames selection implemented by JQuery from the following tutorial:

http://www.queness.com/post/3036/create-a-custom-jquery-image-gallery-with-jcarousel

With JCarousel, one of the images from many selected will be assigned with "active" class to the

  • and the each of the images are within list, for example

    <li><a href="#"><img src="#" /></a></li>
    

    What i want to do is to get the image src location with "active" state (class) whenever user click or select and pass into php. Does anyone mind to offer some suggestion or tips on how can i do that?

    Thank you for your time reading my Question.

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    1 Answer 1

    up vote 0 down vote accepted

    The following jQuery should select what you want in JavaScript:

    var activeImageSource = $('li.active').find('img').attr('src');
    

    As for passing it to PHP, it depends on how you are submitting information. You could submit the src via an HTTP <form> POST (where the action is the PHP file that is coded to parse the request) or via an AJAX request. You can access the posted data in the PHP $_POST array.

    JavaScript

    var activeImageSource = $('li.active').find('img').attr('src');
    
    $.ajax({
      type: 'POST',
      url: 'some.php',
      data: 'activeImage=' + activeImageSource,
    }).done(function(msg) {
      console.log('Success');
    });
    

    PHP

    <?php
      echo 'activeImage source is ' . htmlspecialchars($_POST['activeImage']);
    ?>
    
    share|improve this answer
    1  
    Thank you for your reply andyb :D i'm really appreciate for your help. However, my problem is i couldn't pass a javascript variable/data to PHP. From my understanding passing variable/data from JavaScript to PHP are impossible, am i correct? anyway, thanks again for helping, i'm really appreciate :) –  user1010073 Oct 24 '11 at 6:24
        
    You could POST a JavaScript variable to PHP via the two methods in my answer. I have edited my answer with an AJAX example. –  andyb Oct 24 '11 at 7:59
    1  
    Thanks andyb, sorry for the late reply. I will give it a try and let you know how it goes. really appreciate with your help. thanks again –  user1010073 Oct 27 '11 at 4:29

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