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I am usign jason_encode in php_ajax file, but I am having error message in consol, "Ajax error: 200 parsererror", Can You please review my code ?? I have one index file that show the status message on runtime using ajax and jason, this is my ajax file that send the true and false to my index with error message if exist otherwise it show the ok message if each check goes good.

$validateValue=$_REQUEST['fieldValue'];
$validateId=$_REQUEST['fieldId'];

$emailaddress = $validateValue;

$validateError= "email is not correct";
$validateSuccess= "email is correct";


$arrayToJs = array();  // creating array
$arrayToJs[0] = $validateId;  
$arrayToJs[1] = $validateId;

if($numrow > 0)  // where $numrow is getting data from database.

    //if($validateValue !=="raza@gmail.com")  // this check can also be used
        {       // validate??
            for($x=0;$x<1000000;$x++){
                if($x == 990000){
                    $arrayToJs[1] = false;                      
                    echo json_encode($arrayToJs);       // RETURN ARRAY WITH ERROR
                    //return false;
                }
            }
        }
        else
        {
            $arrayToJs[1] = true;           // RETURN TRUE
            echo json_encode($arrayToJs);           // RETURN ARRAY WITH success
    ## Check for the ggg mail       
        }

        if($validateValue == "ggg@gmail.com")       
    //check the second check
        {       // validate??
            for($x=0;$x<1000000;$x++){
                if($x == 990000){
                    $arrayToJs[2] = false;                      
                    echo json_encode($arrayToJs);       // RETURN ARRAY WITH ERROR
                    //return false;
                }
            }
        }
        else
        {
            $arrayToJs[2] = true;           // RETURN TRUE
            echo json_encode($arrayToJs);           // RETURN ARRAY WITH success

        }
share|improve this question
    
Are you setting the correct content-type? –  Rune Jan 18 '13 at 11:10
    
have you looked at the actual output using the browser? (eg open the URL directly, or use devtools/firebug to examine it) You might see something you don't expect, which may lead you to the solution. –  Spudley Jan 18 '13 at 12:14

1 Answer 1

up vote 0 down vote accepted

Please Try This

$validateValue=$_REQUEST['fieldValue'];
$validateId=$_REQUEST['fieldId'];

$emailaddress = $validateValue;

$validateError= "deze naam wordt geblokkeerd";
$validateSuccess= "valid name";



    /* RETURN VALUE */
    $arrayToJs = array();
    $arrayToJs[0] = $validateId;

    ## check email Already Exist

        if($numrow > 0 ) // this should return your value from database

        //if($validateValue !=="raza@gmail.com")
            {       // validate??
                for($x=0;$x<50;$x++){
                    if($x == 9){
                        $arrayToJs[1] = false;                      
                        echo json_encode($arrayToJs);       // RETURN ARRAY WITH ERROR
                        return false;
                    }
                }
            }

            ### Second Step
        /// if you will use elseif  instead of sigle if else statement it will work because it get only one message in array in a single time.
        elseif($validateValue == "ggg@gmail.com") 
            {       // validate??
                for($x=0;$x<1000000;$x++){
                    if($x == 990000){
                        $arrayToJs[1] = false;                      
                        echo json_encode($arrayToJs);       // RETURN ARRAY WITH ERROR
                        return false;
                    }
                }
            }
            else
            {
                $arrayToJs[1] = true;           // RETURN TRUE
                echo json_encode($arrayToJs);           // RETURN ARRAY WITH success

            }
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