Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm very new to JavaScript, and I have been experimenting with basic jQuery and ajax functions, now I am trying to create a "Like" or "Rep" button for profiles on my website, I have written up a pretty basic code, however it doesn't work, as it doesn't seem to post anything when I click the button.

Here is my JavaScript (I do have the latest jQuery embedded on my page):

<script>
$(function(){
   $(".rep").on("click", function(){

     $.ajax({
       type: "POST",
       url: "add.php",
       data: ({ profile: $(".rep").attr('id') }),
       success: function(data) {
       if(data.status == 'success') {
       $('.rep').html('N');
       } else {
       $('.rep').html('N');
       }
       }
     })
   });
});
</script>

Now my HTML elements:

<div class="rep" id="Username">O</div>

And finally my PHP script:

<?php
include ("config.php");
$to = $_POST["profile"];
$from = $myUser;
$ip = $_SERVER["REMOTE_ADDR"];
$date = date("M j, Y");

if($to !== "" && $from !==""){
    $q = mysql_query("SELECT * FROM rep WHERE to='$to' AND from='$from' AND date = '$date'");
    $n = mysql_num_rows($q);

    if($n == 0){
        $query = mysql_query("INSERT INTO rep (to, from, ip, date) VALUES ('$to', '$from', '$ip', '$date')");
        if($query){
        $data['status'] = 'success';
        } else {
        $data['status'] = 'error';
        }
    } else if($n !== 0){
    $data['status'] = 'error';
    }
}

?>

Really can't get my head around it enough to make this work, so if someone could point me in the right direction whilst explaining what was wrong, that'd be great!

share|improve this question
    
Wouldn't profile: $(".rep").attr('id') only return 'Username'? Try: $(".rep").html() –  Jordan Apr 11 '13 at 17:05
    
It's supposed to return username, that's what I want to post, I will populate that attribute with the actual profile username once the script is complete. –  Engine Apr 11 '13 at 17:07

4 Answers 4

jQuery live() was removed from jQuery as of version 1.9.

http://api.jquery.com/live/

Try click() or on('click')

EDIT (that wasn't the problem)

The php file needs to return a json-encoded string that looks like this:

{name: 'bob', success: true, some_property: 'a string'}

and so forth for all the values you want in the return data.

I generally do this:

$data['success'] = true; // not needed for jquery but if you want to check it
$data['name'] = 'bob';

echo json_encode($data);
exit;

see if that works.

share|improve this answer
    
Sorry, I posted the old code, I've already fixed that and the state of the element changes to "N" as I would like, but it does that for the error too atm (I put "E" to test and it showed that) + the query isn't added to the database. –  Engine Apr 11 '13 at 17:10
    
updated the answer - hopefully that will explain it :) –  Sam Hernandez Apr 11 '13 at 17:24
    
Still doesn't work :( Thanks for trying though –  Engine Apr 11 '13 at 17:41
    
It could be an error in the php file and you might be able to tell if you check the response in the browser. In Chrome you can use View > Developer > Developer Tools, then select Network to see the requests and responses. My hunch is that mysql is throwing an error because the values are not escaped properly. I usually use a database abstraction library or ORM to interact with the database because it takes care of all that stuff. You'll get it sorted :) –  Sam Hernandez Apr 11 '13 at 18:13

use this format

$(document).on("click", ".rep", function () {

var id = $(this).attr('id');
    var s = {
        "profile": d
    };


    $.ajax({

        url: "add.php",
        type: "POST",
        data: s,
        success: function (data) {
          // but what you want  

        },

    });


    return false;
});
share|improve this answer
    
Still the same outcome –  Engine Apr 11 '13 at 17:31
    
<div class="rep" id="Username">like</div> <<<< >>>> but in the id tag the profile and its will be working –  أبو النوف Apr 11 '13 at 17:32
    
I already fixed that where you put id rather than ID and it didn't work still, I think it is my PHP. –  Engine Apr 11 '13 at 17:35
    
make sure for this var $to = $_POST["profile"]; $from = $myUser; –  أبو النوف Apr 11 '13 at 17:40
    
I don't know what you mean... –  Engine Apr 11 '13 at 17:42

first off all, chage .html('n') to .text('n');

add to your ajax function

error: function (error) {
                  console.log(error); //or alert(error);
              }

and you will receive response

share|improve this answer
    
I added this and received nothing in the JavaScript console, it's down to the PHP surely. –  Engine Apr 11 '13 at 17:32
    
So, you have no errors ) Maybe use json_encode for $data['bla'] –  Imp0ssible Apr 11 '13 at 17:35
    
Tried that now and still didn't work, don't get this at all. –  Engine Apr 11 '13 at 17:41
    
how many <div class="rep" id="Username">O</div> you have on form? –  Imp0ssible Apr 11 '13 at 17:47
    
seems to be php,mysql error ) –  Imp0ssible Apr 11 '13 at 17:49

You need to echo out the result in the php file so the javascript receives the right result in the data parameter

share|improve this answer
    
Already used mysql_error() and it just returned "undefined" –  Engine Apr 11 '13 at 17:37

Your Answer

 
discard

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.