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I'm receiving an error of undefined when I try and retrieve values in the JSON. I'm new to ajax / js etc and trying to create an 'elegant' drop down login down.

I've tried various things and read a few of the posts that I've found here but I notice that the layout has changed somewhat and I also notice that I'm using success and now that deprecated.

So could I ask for help in firstly understanding what the problem is and how i solve the undefined issue and secondly what is the best way to achieve this. I'd prefer not to use deprecated code if I can help it.

I've also noticed that since changing the code so that it gets to the 'success' park of the ajax call, the drop down box no longer rolls back up or displays the error messages. -.-

Thanks in advance.

The Ajax

function validLogin(){
$('.error').hide();
var username = $('#username').val();
if(username == ""){
    $('label#usernameError').show();
    $('input#username').focus();
    return false;
}
$('.error').hide();
var password = $('#password').val();
if(password == ""){
    $('label#passwordError').show();
    $('input#password').focus();
    return false;
}

var params = {username: username, password: password};
var url = "../js/loginProcessAjax.php";

$("#statusLogin").show();
$("#statusLogin").fadeIn(400).html('<img src="images/loading.gif" />');

$.ajax({
    type: 'POST',
    url: url,
    data: params,
    datatype: 'json',
    beforeSend: function() {
        document.getElementById("statusLogin").innerHTML= 'checking...' ;
    },

    success: function(data) {
        alert("success Area ofAjax");

        $("#statusLogin").hide();

        if(data.success == true){
            alert("if data.success Area of Ajax");
            alert(data.message);

        }else{
            alert("data.message... " + data.message);//undefined
            $("#errorConsole").html(data.message);
        }

    },
    error: function( error ) {
        console.log(error);
    }
}, 'json');
}

PHP

<?php

if($_POST){

 if($users->userExists($username) === false){
    $data['message'] = "User doesn't exist";
    $data['success'] = false;

}else if($users->userExists($username) === false){
    $data['message'] = 'That username does not exist';
    $data['success'] = false;

}else if($users->emailActivated($username) === false){
    $data['message'] = 'You need to activate the account, please check your email.';
    $data['success'] = false;

}else{

    $login = $users->login($username, $password);

    if($login === false){

        $data['message'] = 'Incorrect Password or username';
        $data['success'] = false;
    }else{
        $data['success'] = true;
        //destroy old session and create new - prevents session fixation attacks
        session_regenerate_id(true);
        //all details are correct - the method returns the id to be sotred as a session
        $_SESSION['id'] = $login;
    }

    echo json_decode($data);
}

}

Markup:

<form method="post" action="" id="ourLoginFormID_JS">
                    <div class="ourContactFormElement2">
                        <label for="username">Username:</label>
                        <input type="text" id="username"  name="username" autocomplete="off" class="required" value="<?php if(isset($_POST['username'])) echo htmlentities($_POST['username']); ?>"  />
                    </div>

                    <div class="ourContactFormElement2">
                        <label for="password">Password:</label>
                        <input type="password" id="password" name="password" autocomplete="off" class="required"/>
                    </div>

                    <div class="ourContactFormElement2">
                        <label> &nbsp; </label>
                        <input type="submit" name="loginButton" id="loginButton" value="Login!" onclick="validLogin(); return false;"/>
                    </div>

                    <div id="statusLogin"></div>
                </form>
share|improve this question
    
console.log(error) in your error handler can't be undefined... that's the xhr. – Kevin B Jul 19 '13 at 15:23

Your if/else/else/else chain only outputs json if the final else block executes. You need to move the json_encode call outside the block:

if (...) {
} else if (...) {
} else if (...) {
} else {
 ...
}
echo json_encode($data);

This way your code will output the encoded $data, no matter WHICH of the various if() clauses actually executed.

share|improve this answer
    
FFS! Sleep deprivation -.- – Steve Green Jul 19 '13 at 15:19
    
still undefined though. – Steve Green Jul 19 '13 at 15:20
    
As this answer shows, you should encode the json, not decode it ;) – Mike Lewis Jul 19 '13 at 15:21
    
apologies, it's been a long couple of days. Changed to encode, cleared cache, reloaded, still undefined. – Steve Green Jul 19 '13 at 15:24

The problem with your undefined error is this:

datatype: 'json',

Javascript is case sensitive and the property is dataType not datatype. Because of this, jQuery is not being told to automatically parse the JSON and so you're just getting the JSON string, causing the undefined error on data.message.

Also I don't see where you access $_POST['username'] or where you instantiate the $users object, I see $username but not $_POST['username'].

share|improve this answer
    
thanks for pointing out the typo. I changed that, no undefined message but it doesn't do much else at the moment. in the console i see object and all it's methods but it doesn't seem to get anywhere. – Steve Green Jul 19 '13 at 15:30
    
the users object is instantiated in an init.php. username and password are gained at the start before the ajax is called. Or, have I got something there completely wrong? – Steve Green Jul 19 '13 at 15:32
    
In the ajax success function, is it going into the if or else? – MrCode Jul 19 '13 at 15:34
    
At the moment it doesn't get to the success part. It seems to freeze at : beforeSend: function() { document.getElementById("statusLogin").innerHTML= 'checking...' ; }, – Steve Green Jul 19 '13 at 15:36
    
Does the error function fire? – MrCode Jul 19 '13 at 15:36

A couple of things. You might want to explicitly use contentType parameter of application/json here so that it is clear that you are both sending and receiving JSON.

The main issue is that when sending POST data to PHP that is not form-encoded, $_POST will not be populated automitically. You need to read http raw input like this:

$json = file_get_contents('php://input');

if(!empty($json)) { // replace your if($_POST) with this
    $object = json_decode($json);
    $username = $object->username;
    $password = $object->password;

    // the rest of your code

}
share|improve this answer
1  
Setting the content type of the response is not required, jQuery does a good job figuring out what the response data type is. Also, jQuery's ajax function automatically uses the form encoded content type for post requests. Reading from the raw stream isn't going to solve a javascript error... this answer doesn't seem to address the error described in the question at all. It isn't "wrong", per se, just not the solution here (or even related). The lack of json_encode is the problem, not problems with $_POST – Chris Baker Jul 19 '13 at 15:25
    
@Chris The response datatype is already specified by his parameters as JSON so autodetect wouldn't be attempted in this case. You are correct that the contentType defaults to application/x-www-form-urlencoded. I was just commenting on perhaps making it clear as to what datatype you are working with on the request as well. From the code snippet it wasn't clear to me that he was actually trying to access the $_POST variables as would be populated when form encoded contentType was used. – Mike Brant Jul 19 '13 at 15:30

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