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i'm having trouble implement jquery into my like button script. Can someone explain why. I'm fairly new to coding. Thanks. The relevant code is below. id refers to id of the item being favourited.

<script type="text/javascript">

$('#fav').click(function(e){
$.post('favbuttonchange.php?id=<? echo $id; ?>',
        function() {
if($('#fav').hasClass('unfavoritebutton')){
        $(this).toggleClass('favoritebutton');
    } else {
        $(this).toggleClass('unfavoritebutton');
    }
    e.preventDefault(e);
     });
});

</script>

<span class="productlike">
<?php

 $favquery1=mysql_query("SELECT fav_id FROM favourites WHERE products_products_id='$id' AND products_users_user_id='$user_id'")or die ("Could not select database because ".mysql_error());
$favcount=mysql_num_rows($favquery1);
if ($favcount == 1){ ?>
    <form class='likefav' >
    <input id='fav' class='unfavoritebutton' type='submit' name='unfavourite' value=''/>
    </form>
<?php }
elseif($favcount == 0) { ?>

    <form class='likefav'>
    <input id='fav' class='favoritebutton' type='submit' name='favourite' value='' />
    </form>
<?php }
?>
</span><br />

then here is my favbuttonchange.php

    $id= (int)strip_tags($_GET['id']);

$favquery1=mysql_query("SELECT fav_id FROM favourites WHERE products_products_id='$id' AND products_users_user_id='$user_id'")or die ("Could not select database because ".mysql_error());
$favcount=mysql_num_rows($favquery1);

if ($favcount == 0){

    $favquery2=mysql_query("INSERT INTO favourites (products_products_id, products_users_user_id) VALUES ('$id', '$user_id')")or die ("Could not select database because ".mysql_error());

}
if($favcount ==1) {

$favquery3=mysql_query("DELETE FROM favourites WHERE products_products_id = '$id' AND products_users_user_id = '$user_id'");

}
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What's not working? –  ceejayoz Feb 28 '12 at 20:45
    
when i click the favourite/unfavourite button. it goes to a url: product.php?favorite= for some reason. and nothing works, either php or jquery. without the jquery, php works fine tho –  Anonymous Feb 28 '12 at 20:53

1 Answer 1

Bad synatx. No if statement. Simply call $('#fav').hasClass(..) to set each element with this class.

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