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I have a like/unlike post on my website, and when I click the like button I would like the value of check2 to show beside like without me having to refresh the page to see it. Currently I'll click like and it inserts the data but only shows on a page refresh. I'm hopeless with this kind of stuff.

Here is the code in the order it executes.

Thanks for any help.

POST LIKE

echo "<div class='stream_option'><a id='likecontext_".$streamitem_data['streamitem_id']."' style='cursor:pointer;' onClick=\"likestatus(".$streamitem_data['streamitem_id'].",this.id);\">";
if($checklikes>0){
echo "Unlike";
}else{
echo "Like";
}
echo "</a> ";
$check2 = user_core::print_like_count($streamitem_data['streamitem_id']);
if($check2>0){
echo "(".$check2.")";
}

Ajax Function

function likestatus(postid,contextid){
var obj = document.getElementById(contextid);
if(obj.innerHTML=="Like"){
obj.innerHTML="Unlike";
}else{
obj.innerHTML="Like";
}
$.post("../include/like_do.php", { streamitem_id: postid} );
}

LIKE_DO

$check = user_core::check_liked($_SESSION['id'],$_POST['streamitem_id'],1);

user_core::do_like($_SESSION['id'],$_POST['streamitem_id'],1);

    if($check==0){
    ?>
    <?php
    }else{
    ?>
    <?php
    }
}
else{
echo "<script>alert('Error liking post');</script>";
}
?>

USER_CORE

 function check_liked($id,$streamid,$value){

            $check      =   "SELECT feedback_id FROM streamdata_feedback WHERE feedback_streamid=$streamid AND feedback_userid=$id AND feedback_rating=$value";
            $check1     =    mysql_query($check);
            $check2     =    mysql_num_rows($check1);
        return $check2;
        }

        function print_like_count($streamid){
                $check      =   "SELECT feedback_id FROM streamdata_feedback WHERE feedback_streamid=$streamid AND feedback_rating=1";
                $check1     =    mysql_query($check);
                $check2     =    mysql_num_rows($check1);
                if($check2>0){
                echo "(".$check2.")";
                }
        }
share|improve this question
    
so what's the current issue? – Dagon Jul 26 '12 at 20:39
    
It doesn't show the like count unless you refresh the page. I would just like it to show once clicked. – dave Jul 26 '12 at 20:48
up vote 1 down vote accepted

What you're looking for is an AJAX submission using DHTML to change the value of the likes.

<script language="javascript">
    $(".likeButton").click(function() {
        $.post("likeProcessor.php", {
            id: $(this).attr('id')
        }, function(data) {
            $("#likeIndicator" + $(this).attr('id')).html(data);
        });
</script>

Then your likeProcessor script will simply return the number of likes for that item.

NOTE: This is pseudo-code to give you an idea of what needs to happen. For further info on jQuery and Ajax, RTFM at http://www.w3schools.com/jquery/default.asp and http://www.w3schools.com/ajax/default.asp respectively.

share|improve this answer
    
@dave you MUST include the success callback for it to update anything on your page. – Matt Jul 26 '12 at 20:45
    
Cheer Matt, will give it ago. And yes, I noticed the missing success. Will add that into it. Thank you. :) – dave Jul 26 '12 at 20:47
    
The id: $(this).attr('id') Do I need to change this? – dave Jul 26 '12 at 21:08
    
@dave id will be POSTed to likeProcessor.php. It can be whatever you need it to be, but $(this).attr('id) will return the value of the id attribute of the "like" button which was clicked. – Matt Jul 26 '12 at 21:10
    
So in my case 'postid' and I add post id into the click function(postid) like so.. I don't really use Ajax, so in honesty, it goes over ones head. Trying to grasp it tho by reading around and asking straight forward questions, whilst trying to teach myself. – dave Jul 26 '12 at 21:12

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