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Its my first time sending JSON to server and I have no idea why my PHP script is not receiving the call.

I think that the problem is in how I am setting the POST variables from the app and I am grabbing the wrong one or not setting $_POST['search'] as intended.

Could anyone point out how would i get the posted data and also how to set the $_POST['search'] properly

My $var return 0 when I look it from the xcode output.

PHP

header('Content-Type: text/json');
$var = (isset($_POST['search']) ? json_decode($_POST['search']) : false);
echo json_encode($var)

Objective-C

 NSDictionary *myJson=@{@"userID": @"1",
                           @"search":@{@"for":@"routine",
                                       @"page":@"1",
                                       @"orderBy":@"new",
                                       @"type":@"1"}
                           };
   NSURL *url = [[NSURL alloc]initWithString:@"http://192.168.1.64/"];
        AFHTTPClient *httpClient = [[AFHTTPClient alloc]initWithBaseURL:url];
        httpClient.parameterEncoding = AFJSONParameterEncoding;
        NSDictionary *params = myJson;
        NSURLRequest *request = [httpClient requestWithMethod:@"POST" path:@"http://192.168.1.64/igym/bootstrap.php" parameters:params];

        AFJSONRequestOperation *operation = [AFJSONRequestOperation JSONRequestOperationWithRequest:request
                                                                                            success:^(NSURLRequest *request, NSHTTPURLResponse *response, id JSON){
                                                                                                NSLog(@"Inside the success block %@",JSON);
                                                                                            }
                                                                                            failure:^(NSURLRequest *request, NSHTTPURLResponse *response, NSError *error, id JSON){
                                                                                                NSLog(@"json text is: %@", JSON);
                                                                                                NSLog(@"Request failed with error: %@, %@", error, error.userInfo);
                                                                                            }];
        [operation start];
share|improve this question
    
Have you tried using $_GET? –  Undo Jun 1 '13 at 16:52
    
I am supposedly sending it as a POST. The get shows the same results –  Jonathan Thurft Jun 1 '13 at 16:54

2 Answers 2

up vote 2 down vote accepted

The problem is that you are encoding ALL PARAMETERS (including "search") as json:

httpClient.parameterEncoding = AFJSONParameterEncoding;

So, you can't access it in php using

$_POST['search'];

the data are not sent via post in this case

You can do two things:

  • encode only the content of the search dictionary as JSON (and not all parameters)
  • access the data through:

:

$post = json_decode(file_get_contents('php://input'));

$post will contain all your posted data json-encoded like this:

{
    search =     {
        for = routine;
        orderBy = new;
        page = 1;
        type = 1;
    };
    userID = 1;
}
share|improve this answer
    
I've taken the httpClient.parameterEncoding = AFJSONParameterEncoding; and now it works like a charm. thanks! :) –  Jonathan Thurft Jun 1 '13 at 17:53

The problem is probably here:

path:@"http://192.168.1.64/igym/bootstrap.php"

You have already specified the client's base URL, so you don't have to put it in the path string. Try to replace this code with the following:

path:@"igym/bootstrap.php"

Beside this, the other problem is in the way you are posting your params. You should send them like this:

NSString *jsonParam = @"{\"userID\": \"1\",
                           \"search\":{\"for\":\"routine\",
                                       \"page\":\"1\",
                                       \"orderBy\":\"new\",
                                       \"type\":\"1\"}
                           }";
NSDictionary *params = [NSDictionary dictionaryWithObject:jsonParam forKey:@"search"];

Your param is named "search" in the PHP script and its value is a JSON string.

Please note I'm using backslashes to escape quotes in the NSString.

share|improve this answer
    
Aame result I get 0. Also the example string is wrong... first, you dont need to scape.... just use ' "a": "b" ' ... and second... you are pasing non search parameters(like userID) as search. what you are doing there is the same as what I did.... –  Jonathan Thurft Jun 1 '13 at 17:46

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