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I am retrieving 9 image thumbnails from a database, each resides in its own div like so:

<div class="post">

<div class="post_desc"></div>
<div class="post_title"></div>
<a href="#" class="linktopost">**<img src="img/thumb.png" class="thumb-img"/>**</a>
<form>
**<input type="hidden" class="postid" value="'.$post_id.'" />**
</form>

</div>

Using Jquery I am trying to post the value that is in the hidden input field when the thumbnail is clicked but I am struggling to select it correctly. The value in the input changes with each of the 9 images.

This is how far I have got with the Jquery:

$(".thumb-img").click(function(){

    $.post("inc/fullpost.php", {postid: ##########.val()},
        function(output){
            $("#gotpostid").html(output).show();
        }).fail(function(x,y,z){ 
            $("#gotpostid").html(x + "<br />" + y + "<br />" + z)
        });

});

So how do I correctly select the value in the input field that resides in the same containing class as the image thumbnail?

share|improve this question
    
Is it .cover-img or .thumb-img ? –  Chandu Jun 10 '12 at 14:40
    
.thumb-img..... –  crm Jun 10 '12 at 14:43

5 Answers 5

up vote 1 down vote accepted

You can use data instead of hidden elements. Remove hidden element,and try like this:

Markup:

<img src="img/thumb.png" class="thumb-img" data-postid="'.$post_id.'"/>

Script:

$(".thumb-img").click(function(){
    $.post("inc/fullpost.php", {postid: $(this).data('postid')},function(output){
            $("#gotpostid").html(output).show();
        }).fail(function(x,y,z){ 
            $("#gotpostid").html(x + "<br />" + y + "<br />" + z)
        });
});
share|improve this answer
1  
+1 for not needing to use a hidden input, thanks. –  crm Jun 10 '12 at 14:59

Try this:

$(".thumb-img").click(function(){
    var postId = $(this).closest(".post").find(".postid").val();
    $.post("inc/fullpost.php", {postid: postId},
        function(output){
            $("#gotpostid").html(output).show();
        }).fail(function(x,y,z){ 
            $("#gotpostid").html(x + "<br />" + y + "<br />" + z)
        });

});
share|improve this answer
    
do you know what is #gotpostid and what is the point of maybe next() in this question? –  Vohuman Jun 10 '12 at 14:46
    
Can you elaborate your question? –  Chandu Jun 10 '12 at 14:49
    
Although not relevant to the question, #gotpostid is the div where the output of fullpost.php will be shown. I send the postid and get all the data related to that post sent back to me. –  crm Jun 10 '12 at 14:55
$(".linktopost").click(
function(){ var ValueToPost= $(this).next("input").val();

$.post("inc/fullpost.php", {postid: ValueToPost},
    function(output){
        $("#gotpostid").attr('type', 'text').val(output);
    }).fail(function(x,y,z){ 
        $("#gotpostid").val(x + "<br />" + y + "<br />" + z)
});



});
share|improve this answer

Try the following

$(yourImage).parent().find('.postid').get(0)

share|improve this answer

Well I don't know if you realised, but instead of selecting a value, what you are doing is in fact setting the value in the #gotpostid element.

To select the value this is the approach:

$value = $('#gotpostid').val();

If you are setting it then:

$('#gotpostid').val($value);
share|improve this answer

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