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I have a problem. I want to send 3-4 variables from a PHP File to my AJAX request (over json)... and I'm sure that my code is right, it doesn't work. It is doing nothing. If I'm doing just a normal "echo" everything works finde, but json is not working?

Here is my JS-code:

$.ajax({
       type: "POST",
       url: "test.php",
       data: "varA=" + varA + "&varB=" + varB,
       dataType: json,
       cache: false,
       success: function(data1){

       alert(data1.b);

       if (data1.a == "success"){
       alert("OK");

       location.href = "index.html";
       }

       else{
       alert("Not OK");
       }

       }
       });

And here is my PHP-code:

...
    $qry="SELECT * FROM database1 WHERE varA='".$_POST['varA']."' AND varB='".$_POST['varB']."'";
$result=mysql_query($qry);

if($result) {
    if(mysql_num_rows($result) == 1) {
        $test = mysql_fetch_assoc($result);
        echo json_encode(array('a' => 'success', 'b' => $test['database_entry']));
...

I don't have a clue why this AJAX code would not be fired! Hope you could help me, THANKS!

share|improve this question
    
you data is not in the correct json format. it must be in name value pair –  Rohit Kumar Choudhary May 7 '12 at 13:16
    
define "is not working" output the error message, also what did you debug with? Chrome inspector? firebug? etc; –  Jakub May 7 '12 at 13:17
    
I hope that you escape $_POST['varA'] and $_POST['varB']! Please use mysql_real_escape_string($str) in order to prevent executing any SQL commands by a hacker. –  ComFreek May 7 '12 at 13:17
    
@Jakub: it's doing nothing. i'm working in xcode, and with my debugging method it is not even going into the ajax-request. –  John Brunner May 7 '12 at 13:25
1  
Even better than the old mysql_* functions, either use mysqli_* or change to PDO, the old mysql_* functions are going to be deprecated, and they are more vulnerable than using PDO –  Brendan May 7 '12 at 13:28

3 Answers 3

up vote 1 down vote accepted

You are maiking a mistake by writing

dataType: json,

here json is supposed to be in a string

dataType: 'json',

In your code it is trying to search for the variable json which is not available and hence undefined, and hence no ajax call is made

share|improve this answer
    
maaaaaan (or woman), thanks. now it works like a charm. thank you! –  John Brunner May 7 '12 at 13:39
    
man it is. glad it helped..., please use firebug in firefox, chrome inspector where it clearly mentions what the error is.. and you can simply fix it... all the best for future prospects –  swapnilsarwe May 7 '12 at 13:42

Send your data as a JSON object, not a self-generated query string:

data:  {"varA":  varA, "varB": varB},
dataType: json,
cache: false,
share|improve this answer
    
thanks. but that is also not working. is it in the php file possible to get the variables like $bla = $_POST['varA']; or should I do that in another way? –  John Brunner May 7 '12 at 13:28

The data you are sending to your ajax call is a string, wheras it should be an object or an array.

data: "varA=" + varA + "&varB=" + varB,

should be

data: {"varA":varA,"varB":varB},
share|improve this answer
    
thanks. but that is also not working. is it in the php file possible to get the variables like $bla = $_POST['varA']; or should I do that in another way? –  John Brunner May 7 '12 at 13:28
    
try to print_r($_REQUEST) , to see if the variables pass in the first place. –  Rodik May 7 '12 at 13:37

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