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 know there are a LOT of this question on here. I took a whole day to search the same question. Nothing could answer mine! So please, don't close this saying that I'm just duplicating.
I have a PHP file that is called on the same page as another js file, this PHP file encodes an array and echoes it on the same page (that's when it's called from an ajax request) like that:

$data = array(  
    "status" => $status,  
    "message" => $message,
);  

echo json_encode($data);

The values of $status and $message are determined by some conditions above them (which are not really important here). This PHP file is called at the top of the index file, so that means that the JSON is echoed before the <!doctype html> tag. Now, in the js file, here is the part in which I try to handle this JSON:

$.post($formUrl, $formData, function(data) {
  $data = $.parseJSON(data);
  alert($data.status);
});

Don't worry about the variables, they are not the problem. The only problem here is the $data = $.parseJSON(data); part. When I run this code. Nothing happens on success, but in the PHP file, there is an insertion command to the database which performs correctly. Everything works fine, except this JSON, I CAN'T GET IT! When I try this:

$.post($formUrl, $formData, function() {
  $str = '{"a":1,"b":2,"c":3,"d":4}';
  $data = $.parseJSON($str);
  alert($data.a);
});

It works as expected, it alerts 1. So what I think the problem is, it's that the $.parseJSON() can't parse HTML files with JSON in them because as I told you, the PHP file echoes the JSON right before the < !doctype html > .
I'm so desperate right now. Can anybody help?

share|improve this question
    
Can you post the response from the server? –  Tanzeeb Khalili Aug 4 '12 at 4:36
1  
any errors in the firebug console or the chrome dev tools –  3nigma Aug 4 '12 at 4:43

3 Answers 3

up vote 0 down vote accepted

Try doing a die right after the json_encode. You could wrap the whole thing up in an if statement which will check that the $_POST is not empty. So on the first load, you'd just get the html, but on ajax post you'd get just the json.

Also try using this:

$.ajax({
    url: $url,
    data: $formData,
    type: "POST",
    dataType: "json", // this tells jquery to expect json back, and parses it automatically
    success: function(data) { alert(data.status) }  
})
share|improve this answer
    
Yes yes yes yes yes!!! Thank you very much buddy! This is the right answer! In the PHP file, I added "die()" right after "echo json_encode($data);" then in the js file I used: $.post($formUrl, $formData, function(data) { alert(data.status); }, 'json'); and it alerted the right key. Thanks a lot! –  Troy Aug 4 '12 at 9:58

The problem here is that you are outputting JSON from your PHP script on a page that also echoes HTML. You need a PHP script that exclusively echoes JSON. Also, in your PHP file,you may want to send a JSON MIME-type:

header("Content-type: application/json");
share|improve this answer
    
+1, but header is not necessary since $.parseJSON is being used. –  The Alpha Aug 4 '12 at 4:52
    
I might use that when I'll have a script outputting the JSON on another page. –  Troy Aug 4 '12 at 10:40

I think you can do it easily..

Send fourth parameter as json to $.post() for dataType.

$.post($formUrl, $formData, function(data) {

  // after specifying the dataType you 
  // don't need to parse is manually by $.parseJSON()
  // jQuery will parse it for you

  // $data = $.parseJSON(data); //  remove this line

  console.log(data);

}, 'json');

Syntax of $.post() is:

$.post( url [, data] [, success(data, textStatus, jqXHR)] [, dataType] )

you've to specify the last parameter dataType.

share|improve this answer
    
Yours was good too. I had to specify the datatype. Thanks :) –  Troy Aug 4 '12 at 10:39

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.