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As the title suggests, I want a form to be submitted via post to an external php file, have the data added to the db, and then have a success message be outputted.

As it stands, when I click submit on the form the page refreshes but nothing is added to the database. I don't get any message.

Here's my code:

jQuery:

  $(document).ready(function(){
            $("form#submit").submit(function() {
            // we want to store the values from the form input box, then send via ajax below
            var value = $("#dropdown").val();

    $.ajax({
        type: "POST",
        url: "add_to_shelf.php",
        data: "shelf="+ value +"&bookID="+ $_GET['id'],
        success: function(){
            $('form#submit').hide(function(){$('div.success').fadeIn();});

        }
    });
return false;
});
    });

HTML:

<form id="add_to_shelf_form" method="POST">
                    <select name="shelves" id="shelves">
                            <option value="1">Read</option>
                            <option value="2">Currently reading</option>
                            <option value="3">Want to read</option>
                     </select>  
                     <input type="submit" id="shelf_button" value="Submit" />
                     <p class="success">Shelf was successfully updated!</p>
            </form>

add_to_shelf.php:

include "base.php"; 
    include "session.php";

// SHELF INFORMATION
    $bookID = $_POST['bookID'];
$shelfID = $_POST['value']; 
    $userID = $_SESSION['user_id'];

$add_to_shelf  = "INSERT INTO books_on_shelves (bookID,shelfID,userID) VALUES ('$bookID','$shelfID','$userID')";
mysql_query($add_to_shelf) or die(mysql_error());
share|improve this question
1  
First of all, you really need to escape the input data to avoid SQL-injections. Have a look at PHPs mysql_real_escape_string() Second, what happens? Do you get any JS- or PHP-errors? – Christofer Eliasson Feb 23 '12 at 21:16
    
No, nothing happens. I get nothing. I click 'submit' and the page refreshes, but nothing happens. – Brian Byrne Feb 23 '12 at 21:18
    
I'm not concerned with sql injection right now - just want to get the code working :) – Brian Byrne Feb 23 '12 at 21:18

The page refresh might be because the event isn't firing. The return false should take care of that.

First, I would change $("form#submit").submit to $("#add_to_shelf_form").submit That should at least get the event firing.

Also, you're definitely going to want to escape that input. Don't insert user-supplied data into your database raw. In the php, change this:

$bookID = $_POST['bookID'];

to:

$bookID = mysql_real_escape_string($_POST['bookID']);
share|improve this answer
    
Ok, I've changed that, and nothing new is happening. Could it be an issue with the dropdown? I can get regular input fields to work fine, but not this for some reason. – Brian Byrne Feb 23 '12 at 21:31
    
If your jquery is configured correctly, the page will not refresh when you click "submit". So, until that happens, the event is not attaching to your form. The next step is to look at the developer console of the browser you're using to see if there is a javascript error. @brian, could you recreate this issue on jsfiddle? – menacingly Feb 23 '12 at 21:33
    
jsfiddle.net/hYrrV Does that appear to be working to you? – Brian Byrne Feb 23 '12 at 21:38
    
at your level of learning, you should really be doing everything in as few steps as possible. Do the absolute simplest step, and then add more once you know that's working. If you look here you can see the code just showing "alert" when the form is submitted. Do that, then move on to making the ajax request. Also, things like sanitizing user input for sql, and properly indenting the code are good habits you should start forming now – menacingly Feb 23 '12 at 21:47
    
Right, the event is now triggering. But it doesn't add the data to the db... – Brian Byrne Feb 23 '12 at 21:55

Your selector to catch the submit is incorrect. The id of your form according to the HTML you've posted is add_to_shelf_form, not submit which you use in your selector form#submit.

Try this instead:

$("#add_to_shelf_form").submit(...

Update

The reason it didn't work on fiddle was because of your PHP $_GET[".."] in the data, which broke the JS. I also added the data as an object instead of a variable, I believe it is a lot more readable.

I've updated your fiddle so that it works: http://jsfiddle.net/hYrrV/4/

In your page you will need to change the data object to from my static bookId to your dynamic generated by PHP:

data: { shelf: value, bookID: <?php echo $_GET['id']; ?> }

So your final code will be:

$(document).ready(function(){
    $("form#submit").submit(function() {
    // we want to store the values from the form input box, then send via ajax below
    var value = $("#dropdown").val();

    $.ajax({
        type: "POST",
        url: "add_to_shelf.php",
        data: { shelf: value, bookID: <?php echo $_GET['id']; ?> },
        success: function(){
            $('form#submit').hide(function(){$('div.success').fadeIn();});

        }
    });

    return false;
    });
});
share|improve this answer
    
Still not working. – Brian Byrne Feb 23 '12 at 21:33
    
@BrianByrne Updated my answer with a working fiddle – Christofer Eliasson Feb 23 '12 at 21:46
    
@BrianByrne Another update about the data object. – Christofer Eliasson Feb 23 '12 at 21:51
    
How can I get $_GET data then? – Brian Byrne Feb 23 '12 at 21:52
    
@BrianByrne See my yet again updated answer with the final, complete code. – Christofer Eliasson Feb 23 '12 at 21:55

Your mistake is that you have attached method to the submit button with id "submit" and that is not the case in your form. Id f button is "shelf_button" so it should be

$("#shelf_button").click(function() { ....

or you can attach event only on form.

share|improve this answer
    
It's still not working. – Brian Byrne Feb 23 '12 at 21:32

change $("form#submit").submit(function() { to $("form").submit(function() {

share|improve this answer
    
Still not working. – Brian Byrne Feb 23 '12 at 21:33

try

var value = $("#dropdown option:selected").val();

instead of

var value = $("#dropdown").val();

because you are using select box. and another one thing try to get data value by this

data: dataString,

and before make sure get dataString value something like this

var dataString = 'shelves='+ shelves;

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