Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.


I'm using jquery to hide, post, then echo the results of a php query to two separate divs. I then want to be able to swap the resulting images across these divs. The first part works fine, but I'm unable to get any other jquery scripts to work on these divs (e.g. sortable, droppable, etc).

I'm new to scripting within the past few weeks. I think I need to json encode the php stuff before I send it, but I'm having trouble finding clear guidance online about how to do this. Any help much appreciated, whether either descriptive, referral to specific intro resources (e.g. not, or with code itself.

I am including relevant scripts below. This one works:

<script type='text/javascript'> 

function ajax_search(){     
  $( "#search_results").show(); 
  var search_val = $("#search_term").val();
  var search_valb = $("#search_theme").val(); 
  $.post( "./find.php", {search_term : search_val, search_theme : search_valb}, function(data){
       if (data.length>0){ 
         $( "#search_results").html(data);  
         $( ".portfolio_container").hide();
         $( ".portfolio_draggables").hide();
         $( "ul.clickable_container li").click(function(){
             $( ".portfolio_draggables").hide();
             var activeImage = $(this).find("a").attr('href'); 
             $( ".portfolio_container").show();
             $( activeImage).show(); 
             return false;           


This is the html form that I'm using.

<div id="lettersearchform" class = "lettersearchform">
        <form id="searchform" method="post">          
        <label for="search_term">Enter your word here!</label> 
        <input type="text" name="search_term[]" id="search_term" /> 
        <!--<input type="submit" value="search" id="search_button" />-->

<div id="search_results"></div>

The "search_results" are generated successfully with this script:

$alpharray = array();
    while($row = mysqli_fetch_assoc($result)){      
        $alpharray[$row['letter']][] = $row;

$first = $second = array();
foreach( str_split( $_POST['search_term']) as $alpha)
    $first[] = "<li><a href = '#$alpha'><img class='imgs_clickable_droppable' img src='../Letterproject/images/{$alpharray[$alpha][0]['photoPath']}' width='100' height='140'></src></a></li>";
    $editable = array("<div id='$alpha' class='portfolio_draggables'>");
    foreach ($alpharray[$alpha] as $tempvar)
         $editable[] = "<a href ='findall.php'><img src='../Letterproject/images/{$tempvar['photoPath']}' width='70' height='110'></src></a>";                                                         
    $editable[] = '</div>';
    $second[] = implode( '', $editable);

    echo '<ul id = "clickable" class="clickable_container">';
        echo implode( '', $first);
        echo '</ul>';

    echo '<div id="portfolio" class = "portfolio_container">';
        echo implode( '', $second);
    echo '</div>';

So here's where the problem enters: This sortable script is more limited than the cross-div I want, but this type of thing won't work.

$(function() {

    $("ul.clickable li").draggable({
        containment: 'parent',
        revert: 'invalid',
        opacity: '0.91',
        cursor: 'crosshair'

For those interested in more context, I'm using jquery to post the input from a form. A Php script matches the characters inputted to a corresponding letter image in a mysql db. It then echoes a list of these images to one div and echoes the whole portfolio of all images of that letter to another div. The idea is that a user could drag images from this second output to replace a letter image in the other div.

Thanks so much!

share|improve this question

1 Answer 1

up vote 0 down vote accepted
$("ul.clickable li") 

does not correctly select an element with an HTML id of clickable and a class of clickable container. Either change the class of the element (which is selected with . in jQuery/CSS) or the id (which is selected with #)


should work.

Additionally, /src is unnecessary as src is not a tag. Writing out HTML directly in PHP script is not the cleanest way of doing this. I highly recommend you check out Head First HTML/CSS or HF HTML5 to augment some of your understanding.

share|improve this answer
Thanks for spotting that. I think there's something more fundamentally wrong though. I've tried to select the elements a million ways, including the way you suggested, and it's not working. Really, I submitted this question b/c I'm wondering if there's something more fundamentally wrong with how I'm thinking here. Like the jquery isn't even 'seeing' the php since it's being echoed after the page loads. That sort of thing. Either way, thanks for your time. And I'll check out that book you request. There are so many out there so it's good to get a rec. –  Peter Nov 14 '11 at 2:39
The jQuery never sees PHP. It sees the response HTML that the PHP produces. Since you are doing an AJAX call to find.php, you get an HTML snippet back on the client side that your jQuery should be fully able to manipulate inside of its data object. That's what the working search piece is doing. I suspect your main issue is simply with the way you're selecting your elements. Using with the AJAX API to post complete code might help diagnose your problem. –  Visionary Software Solutions Nov 14 '11 at 7:17
Also, since what you're trying to do is essentially drag & drop, and you're already using jQuery UI Draggable, I'm not sure why you're not trying to follow the Droppable example at –  Visionary Software Solutions Nov 14 '11 at 7:18
Thanks for the tips. Appreciate it much. Drag/drop eventually, sortables just for this testing. Meant to write HTML in my last msg, not Php. Just wondering if the echoed html might not be seen by the jquery, since it's fired before the forms are entered. Thanks again. I'll close this thread since your answer is technically correct. I just goofed the question. –  Peter Nov 14 '11 at 19:12
Finally figured out it had to do with the order in which jquery libraries were loading. I apologize for taking up your time on an issue that was invisible based on what I posted. Your other recs are still appreciated. Will look through your other postings for tips as well. Thanks –  Peter Nov 14 '11 at 20:53

Your Answer


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.