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I wrote a toy program to learn AJAX, which is to submit the user registration form to web server, however, the program on the server side cannot receive the data. I guess the error is on the following JS code using jQuery:

$(document).ready(function() {
$('#registerForm').submit(function() {
    var formData = $('#registerForm').serialize();
    $.post('/admin/user/signup', formData, registerResults);
    },

    registerResults: function() {
            console.log("register success!");
        }  // end of registerResults

});  // end of ready

The corresponding html form is as following:

<form class="form-horizontal" role="form" id='registerForm' method='POST' action="/admin/user/signup">
        <div class="form-group">
                    <label class="col-sm-3 control-label" for="fullname">Fullname: </label>
                    <div class="col-sm-5">
                        <input class="form-control" type='text' id="fullname" name='fullname' placeholder="Full Name" />
                    </div>
        </div>

        <div class="form-group">
            <label class="col-sm-3 control-label" for="username">Username: </label>
            <div class="col-sm-5">
                <input class="form-control" type='text' id="username" name='username' placeholder="Username" />
            </div>
        </div>

        <div class="form-group">
            <input type='submit' value="Submit" class="register-form-button" form='user-create-form' />
        </div>
    </form>

can someone help me with my JS code using jQuery? Thanks a lot!

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Your JS code is syntactically invalid. Learn how to debug JavaScript and have a look at a JS tutorial to learn the syntax. –  Felix Kling Jun 4 '14 at 3:17

2 Answers 2

up vote 1 down vote accepted

Like Felix said, your JavaScript syntax is invalid. Open up the JS console and refresh the page, and you'll see syntax errors.

Here's a shot at fixing it:

$(document).ready(function () {

    $('#registerForm').submit(function() {
        var formData = $('#registerForm').serialize();
        $.post('/admin/user/signup', formData)
            .done(registerResults)
            .fail(registerError);
    });

    function registerResults() {
        console.log("register success!");
    }  

    function registerError() {
        console.log("There was an error");
    }

}); 
share|improve this answer
    
thank you all! :) –  TonyGW Jun 4 '14 at 3:31
    
Sure thing! Note that this is using the .done() and .fail() promises instead of the traditional callback as the last parameter, which I think is a much cleaner way to think about handling the results (or failure) of an AJAX request. –  Ryan Erdmann Jun 4 '14 at 17:45

The registerResults function was a namespace function based on the formatting, but you only need a standard function like the below.

$(document).ready(function () {
    $('#registerForm').submit(function () {
        var formData = $('#registerForm').serialize();
        $.post('/admin/user/signup', formData, registerResults);
    });

    function registerResults() {
        console.log("register success!");
    } // end of registerResults

}); // end of ready
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