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my problem is that I can not solve this problem

If I call the php script, all I get is an undefined error

this is the code I use for testing AND

this is the original code from the creator that is giving me a headache

function startJsonSession(){     
    $.ajax({        url: "jsontest.php?action=startjson",       
    	cache: false,     
        dataType: "json",   
         complete: function(data) {             
    	     username = data.username;               
    		  alert(username);      
    	 }    
    });
}

//phpscript

if ($_GET['action'] == "startjson") { startJson(); } 


    function startJson() {   

header('Content-type: application/json'); 
    $items = '';     
echo json_encode(array(          
     "username" => "bob",    
    "items" => array( "item1" => "sandwich",   
    "item2" => "applejuice"  
    )     
    )); 


 }

thanks, Richard

edited my question because:
this function returns the json data in a different way and therefore the solution presented below, does not have the same outcome.

function startChatSession() {
    $items = '';
    if (!empty($_SESSION['openChatBoxes'])) {
    	foreach ($_SESSION['openChatBoxes'] as $chatbox => $void) {
    		$items .= chatBoxSession($chatbox);
    	}
    }


    if ($items != '') {
    	$items = substr($items, 0, -1);
    }

header('Content-type: application/json');
?>
{
    	"username": "<?php echo $_SESSION['username'];?>",
    	"items": [
    		<?php echo $items;?>
        ]
}

<?php


    exit(0);
}
share|improve this question
    
are you getting an error message at all? –  Marcel Tjandraatmadja Jun 24 '09 at 7:58
    
are you calling the function named by 'action' (in the $_POST) dynamically because action==startjson and function==startjsonSession(). Just trying to rule it out... –  Dave Archer Jun 24 '09 at 8:00
    
I should have clarified, your querystring is url: "jsontest.php?action=startjson" and the php function is startjsonSession, so if your php handling looks like return $_POST['action']() kinda thing then it won't call the function –  Dave Archer Jun 24 '09 at 8:15
    
edited my question, but you where faster –  Richard Jun 24 '09 at 8:16
    
could be mistaken, but i think $.ajax is a $_POST, so try looking if $_POST['action'] === "startjson" –  Dave Archer Jun 24 '09 at 8:19

4 Answers 4

I recreated with your code and figured it out. The object being returned is of type XMLHttpRequest. Its got a property called responseText holding a json string with the data.

so this works..

var decodedData = eval("(" + data.responseText + ")");
             	username = decodedData.username;               
	                  alert(username);

A bit messy but it does the trick :-)

p.s If it helps, I figured it out using firebug in firefox and sticking a breakpoint in the js code

Edited below: Without wanting to do the eval, you could use this and it works:

$.getJSON("json.php?action=startjson",       

	        function(data) {             
             	username = data.username;               
	                  alert(username);      
	         }    
	    );

Edited to show what I did with the success function:

    $.ajax({        url: "json.php?action=startjson",       
	        cache: false,     
	        dataType: "json",   
	         success: function(data) {             

             	username = data.username;               
	                  alert(username);      
	         }    
	    });
share|improve this answer
    
Thanks, but isn't that like a bad workaround. I read eval is not always relyable with json. I will try your solution to see if I can get the whole chatcode to work. If you are interested. I put the link to the original code from the creator in my question. I hope I don't have to change a lot in the original code. –  Richard Jun 24 '09 at 9:52
    
eval() is not safe, i.e if you don't trust the source. if you look at json.org then you can find some parsers, like code.google.com/p/json-sans-eval –  Dave Archer Jun 24 '09 at 10:08
    
see my edited answer –  Dave Archer Jun 24 '09 at 10:11
    
I looked at the original and the difference is instead of specifying a "complete" function, it specifies a "success". That seems to do any eval'ing or whatever beforehand, then the "data" is already a js object –  Dave Archer Jun 24 '09 at 10:41
    
Ok, but that one returns undefined also –  Richard Jun 24 '09 at 10:42

Is username a global variable? If not you should prepend the "var" keyword.

username = data.username -> var username = data.username;

share|improve this answer
    
username is only used inside the completion function, so this shouldn't be a problem? –  Dave Archer Jun 24 '09 at 8:07
    
This could lead to "undefined" errors in IE and break the current page. –  Christophe Eblé Jun 30 '09 at 10:09

At the end I got it working.

I installed firebug and saw that the php script was returning html headers instead off json.

All off the sudden it started working, I really would like to know what the problem was, but I can't tell you.

Anyway, thanks for sticking so long, David

share|improve this answer
    
glad you got it :-) –  Dave Archer Jun 26 '09 at 12:22

also what I don't understand is that it breaks out off php mode, instead of echoing it back like it's done with xml

?>
{
        "username": "<?php echo $_SESSION['username'];?>",
        "items": [
            <?php echo $items;?>
        ]
}

<?php

is this the same as above (object array containing literal array)?

echo json_encode(array(          
             "username" => "bob",    
             "items" => $items
        )     
             ));  
 }
share|improve this answer
    
i think thats just the same as e.g spitting out literal chars same as with html. Just a different style of doing the same thing –  Dave Archer Jun 24 '09 at 11:23
    
edited my last post –  Richard Jun 24 '09 at 11:56
    
yes thats manually doing what the json_encode function does. Obviously safer to use json_encode since handwriting can caws errurs :-) –  Dave Archer Jun 24 '09 at 12:22

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