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I have been scanning the interwebs for many days now, and have tried just about everything posted to resolve the issue. What i am trying to do is (like many other posts), send a remote mysql query via remote validation.. there has been much debate on the proper format of the return data (like json_encode or not) and i have tried both suggestions to no avail.

Jquery Code

    $('#register-form-step-1').validate({  // initialize plugin
    rules:
    {
        confirmEmail:
        {
            equalTo: "#clientEmailAddress"
        },
        clientPassword:
        {
            rangelength: [6,32],
            required: true
        },
        clientUserName:
        {
            minlength: 4,
            required: true,
            remote:
            {
                async:false,
                type:'POST',
                url:'<?php echo base_url("home/checkusername")?>',
                data: {
                clientUserName: function() {
                return $("#clientUserName").val();
                }},
                success: function(data)
                {
                    console.log(data);
                    if (String(data) === String('true'))
                    {
                        //not registered
                        console.log("Not registered");
                        return true;
                    }
                    else
                    {
                    console.log(data);
                        //already registered
                        console.log("Already registered");
                    }
                },
                error: function()
                {
                    console.log("There was an error");
                }
            }
        },
        clientEmailAddress:
        {
            async:false,
            required: true,
            email: true,
            remote:
            {
                type:'POST',
                url:'<?php echo base_url("home/checkemail")?>',
                data: {
                clientEmailAddress: function() {
                return $("#clientEmailAddress").val();
                }},
                success: function(data)
                {
                    console.log(data);
                    if (String(data) === String('true'))
                    {
                        //not registered
                        console.log("Not registered");
                        return true;
                    }
                    else
                    {
                        //already registered
                        console.log("already registered");
                    }
                },
                error: function()
                {
                    console.log("There was an error");
                }
            }       
        }
    },
    submitHandler: function ()
    {
        $.ajax({
            type: 'POST',
            url: '<?php echo base_url("home/register")?>',
            data: $('#register-form-step-1').serialize(),
            success: function ()
            {
                alert('success')
                console.log('form was submitted');
                $("#register-form-1").modal('hide');
                $("#register-form-2").modal('show');
            },
            error: function(data, textStatus, jqXHR) {
                  alert('error')
            }
        });

        return false; // ajax used, block the normal submit
    }
});

PHP CODE

    public function checkemail()
{

    $email = mysql_real_escape_string($_POST['clientEmailAddress']);

    $qResult = $this->db->query('
    SELECT clientEmailAddress FROM clientdata WHERE clientEmailAddress = "'.$email.'" limit 1
    ');

    $result = true;

    if ($qResult->num_rows == 1)
    {
        $result = false;
    }

    header('Content-Type: application/json');
    echo json_encode($result);

}
share|improve this question

2 Answers 2

Replace the line in php

echo json_encode($result);

by

echo json_encode(array($result));

and add datatype as json in js

Otherwise you can simply try

echo 1 or 0; return;
share|improve this answer
    
thanks you for the quick response. . I adjusted the code as you suggested, the form is still not valdiating.. no errors are returned as usual.. console shows [true] or [false] now but is does not validate the form –  user2612987 Jul 24 '13 at 5:08
    
As you enclosed it in square brackets means it is an array.Right??? If yes, then cast it. –  Rohan Kumar Jul 24 '13 at 5:10
    
right.. an array, i wasnt sure how "precise" the reply should be :) i will try to cast the return the data. –  user2612987 Jul 24 '13 at 5:18
    
ok ... so the return data is an array .. using jsonParse in the js script should strip out the data.. the part I am stuck on ... the json_encode data is what "validating" the form. so why would casting the array matter at all on the other end "after" it has been validated/not –  user2612987 Jul 24 '13 at 5:45
    
Still having issues with this .. was doing some more work on remote and php echo data from json_encode to a jquery handler ... i keep getting UNDEFINED when using any form of parseJSON or just trying to return the object... could this be part of the problem in that the returned json data is empty or being interpreted as invalid? –  user2612987 Jul 28 '13 at 21:20

Before the line :

header('Content-Type: application/json');

Add :

header("HTTP/1.1 200 OK");
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