Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need to return an array in php and use it in javascript. When I print the returned value it prints empty string. How do I make mistake?

$.ajax({
     type: "POST",
     url: "sort2.php",    
     success: function(result){      

     alert(result[0]);                                            

    }
});

//sort2.php

$data[0] = "book";
$data[1] = "pen";
$data[2] = "school";
echo json_encode($data);
share|improve this question
    
what happens when you alert(result) –  Toby Allen Apr 9 '12 at 7:18
    
it gives an empty string –  user1077300 Apr 9 '12 at 7:19

4 Answers 4

up vote 1 down vote accepted

You have to parse the JSON data

$.ajax({
     type: "POST",
     url: "sort2.php",    
     success: function(result){      

     //Parse Json to Array 
     result = jQuery.parseJSON(result);
     alert(result) // would output the result array                                      

    }
});
share|improve this answer
    
Not necessary; see alex's answer. –  Greg Pettit Apr 9 '12 at 7:12

You can change the dataType of your $.ajax() request to json and have jQuery automatically decode your JSON object from string.

Alternatively, you could add to your PHP header('Content-Type: application/json') and jQuery should also automatically decode your JSON string.

share|improve this answer
    
with no dataType set, it should default to auto. Is the particular formatting being returned such that it won't auto detect the JSON? –  Greg Pettit Apr 9 '12 at 7:08
    
@GregPettit I believe auto looks at the MIME type to try and guess the format. If the response's MIME is text/html (PHP's default MIME type response), it is going to guess wrong. –  alex Apr 9 '12 at 7:09
    
I've always explicitly set dataType myself (it makes for better readability, too), but I was curious. Certainly it wouldn't hurt to be explicit! –  Greg Pettit Apr 9 '12 at 7:10
    
I have written as dataType: 'json', success: function(result){ alert(result[0]);... but doesnt work –  user1077300 Apr 9 '12 at 7:44
    
@user1077300 doesn't work doesn't help anyone. Did you get an error? What was produced? What does result look like? –  alex Apr 9 '12 at 7:46

In your sort2.php file, change the following code:

echo json_encode($data);

to

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

What it does is tell the client browser to treat the response as JSON data and parse accordingly and not as HTML, which is the default.

Also, make sure sort2.php file is in the same folder as the html file from where you are making the ajax call.

Hope this helps.

share|improve this answer

you also can use the $.post method by jQuery, which would look like this: (so you don't need to change your php script, see here: jQuery Post).

$.post(
    'sort2.php', //script you request
    {}, //post-data you want to send
    function(result) {
        alert(result[0]); /*i like more: console.log(result); this way you can see it in firebug e.g.) */
    },
    'json' //data-type you expect
);
share|improve this answer
    
when I run this code in server it works. but in my local it gives en error in the alert(result[0]) line as it is null, or doesnt an object. what can be the problem? –  user1077300 Apr 9 '12 at 8:16
    
try 'alert(result);' or better with 'console.log(result);' (which will be displayed in firebug->console). And check with firebug what the php script returns in firebug (might be the problem of local php). Php error won't be displayed when using ajax everytime. link –  Mohammer Apr 9 '12 at 8:22
    
alert(result); gives "undefined", when I write console.log it says console "undefined" –  user1077300 Apr 9 '12 at 8:26
    
then there is a problem with your php. Need to know what your phpscript returns –  Mohammer Apr 9 '12 at 8:28
    
when I run php script, it prints nothing. json_encode doesnt work in my local then. –  user1077300 Apr 9 '12 at 8:32

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.