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I have the following jquery ajax request

$(document).ready(function(){
                 var friendrequest =  $(".friendrequest").val();
                $(".afriendreq").click(function(){
                   $(".afriendreq").hide();
                    $.ajax({  type: "POST", url:"functions/ajaxfriends.php", data:"friendrequest" ,success:function(result){
                            $(".cfriendreq").show();
                        }});
                });
            });

And it gets the input from here

       while ($row = mysql_fetch_array($search)) {
                        d
                        ?> 
                        <div id="search_container">
                            <div id="search_image"><img src="<?php echo $row['picture'] ?>"></img></div> 
                            <input type="hidden" value="<?php echo $row['id'] ?>" id="friendrequest" ></input>
                            <div id="search_name"><a href="profile.php?id=<?php echo $row['bigid'] ?>.'"> <?php echo $row['first_name'] . " " . $row['last_name']; ?></a> </div>
                            <div id="search_friend"><a  class="afriendreq">Send Friend Request</a><a class="cfriendreq" style="display:none;">Cancel Friend Request</div>
                        </div><?php
                    echo "<br />";
                }
                    ?>

Unfortunately it's not working though. Can anyone find the problem because it's bugging me? Also the functions/ajaxfriends.php is

<?php 
include 'functions.php';
if (isset($_POST['friendrequest'])){
$friendrequest= $_POST['friendrequest'];
$friendrequest= filter ($_POST['friendrequest']);
$sql_connectfriend = " INSERT INTO friends (`useridone` ,`useridtwo` ,`request`) VALUES ('$_SESSION[user_id]', '$friendrequest', '1' ";
$search = mysql_query($sql_connectfriend, $link) or die("Insertion Failed:" . mysql_error());
}
?>

Can anyone see why? Thanks in advance.

share|improve this question
    
data:"friendrequest" ? what will this pass to the form ? You should rather serialize form values or build a string url and use that for data . –  Pit Digger Jul 5 '11 at 21:16
    
This will just pass this the $row['id'] from here <input type="hidden" value="<?php echo $row['id'] ?>" id="friendrequest" ></input> –  viper Jul 5 '11 at 21:19

1 Answer 1

Try:

$.ajax({
    url: 'functions/ajaxfriends.php',
    type: 'POST',
    data: { friendrequest: friendrequest },
    success: function(result) {
        $('.cfriendreq').show();
    }
});
share|improve this answer
    
nop unfortunately it didn't work :( I'm thinking maybe it's because it is inside the $(".afriendreq") element but it doesn't make sense. –  viper Jul 5 '11 at 21:13
    
@Simos Mikelatos, if .afriendreq is a link you might need to cancel the default action by returning false from the .click handler or the AJAX request might not have time to execute. –  Darin Dimitrov Jul 5 '11 at 21:16
    
nop it's not a link. I just put <a> tag long time ago when it was a link and just stayed like <a> . Actually the $('.cfriendreq').show(); is executed but I can't see any new record in the database. –  viper Jul 5 '11 at 21:18

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