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I'm trying to use ASIFormDataRequest for iphone to get some values from my mysql database.

From the iphone I do this:

NSURL *url = [NSURL URLWithString: ServerApiURLGet]; 
ASIFormDataRequest *request = [ASIFormDataRequest requestWithURL: url]; 
[request setDelegate:self]; 
[request setPostValue:@"james" forKey:@"name"];

The request is send to a php files, which does this:

$con = mysql_connect("host","user","password");
mysql_select_db("table", $con);

$name = mysql_real_escape_string($_GET['name']); 
$query = mysql_query("SELECT score FROM `active_users` WHERE `nickname` ='$name';"); 

$result = mysql_fetch_array($query); 

sendResponse(200, json_encode($result));

And the response function:

function sendResponse($status = 200, $body = '', $content_type = 'text/html')
{
$status_header = 'HTTP/1.1 ' . $status . ' ' . getStatusCodeMessage($status);
header($status_header);
header('Content-type: ' . $content_type);
echo $body;
}

Back to the iphone, I try to read the information from the callback like this:

- (void)requestFinished:(ASIHTTPRequest *)request
{        
NSDictionary *responseDict = [[request responseString] JSONValue];

NSLog(@"responseString: %@", [request responseString]);
NSLog(@"responseHeaders: %@", [request responseHeaders]);
NSLog(@"responseDict: %@", responseDict );
}

But it doesn't work. I get the error:

2012-03-12 08:33:57.657 Test[1991:707] -JSONValue failed. Error is: Unexpected end of input
2012-03-12 08:33:57.659 Test[1991:707] responseString: 

2012-03-12 08:33:57.660 Test[1991:707] responseHeaders: {
Connection = close;
"Content-Type" = "text/html";
Date = "Mon, 12 Mar 2012 07:33:58 GMT";
Server = "Apache/2.2.6 mod_auth_kerb/5.3 PHP/5.2.17 mod_fcgid/2.3.6";
"Transfer-Encoding" = Identity;
"X-Powered-By" = "PHP/5.2.17";
}
  2012-03-12 08:33:57.661 Test[1991:707] responseDict: (null)

Any help is very appreciated. Thanks

Edit:

Same result if I pass in a simple array:

    $newArray = array(
    "score1" => '1000', 
);

 sendResponse(200, json_encode($newArray)); 

Solved:

When I changed _GET to _POST, it works. Thanks

share|improve this question
    
log the [request responseString], the response from server is not json valid. Add the log here –  Alex Terente Mar 12 '12 at 7:28
    
I updated the code with the log –  BlackMouse Mar 12 '12 at 7:36

1 Answer 1

up vote 2 down vote accepted

You're just sending your result to the iPhone without JSON encoding it, so the JSONValue on the iPhone side fails to understand the result.

Try something like;

sendResponse(200, json_encode($result));

to encode your result before sending it.

share|improve this answer
    
Thanks for reply. I still get the same error though –  BlackMouse Mar 12 '12 at 7:32
    
@user1251004 Then you'll need to add a log what actually shows up on the iPhone side to your question to help. For example, if the query does not give any result, you'll currently probably just encode "false". –  Joachim Isaksson Mar 12 '12 at 7:38
    
I edited in the log. Seems I dont get any responseString. I also tried to pass in a simple array instead of the query from DB: $newArray = array( "score1" => '1000', ); But get the same result –  BlackMouse Mar 12 '12 at 7:48

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