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I've fed some MySQL data back to the application by using the code below, of course not everything is there, only what is required. I can't seem to grab the value of 'cash' despite having successfully returned the JSON from my PHP file. I'm using Touch JSON.

Please help?

NSString *urlString = [NSString stringWithFormat:@"http://REMOVED/REMOVED.php?login_key=%@&username=%@",login_key,username];

NSString *strResponse = [self stringWithUrl:[NSURL URLWithString:urlString]];
NSLog(@"%@", strResponse);


NSData *jsonData = [strResponse dataUsingEncoding:NSUTF8StringEncoding];
NSError *error = nil;
NSDictionary *dictionary = [[CJSONDeserializer deserializer] deserializeAsDictionary:jsonData error:&error];
NSLog(@"Cash: %@", [dictionary objectForKey:@"cash"]);

This returns the log below:

2011-05-29 10:10:35.493 test1[623:207] [[[{"uid":"0","username":"admin","password":"REMOVED","email":"REMOVED","cash":"925071","exp":"117500","level":"1","clan":"YES","clanid":"1"}]]]

2011-05-29 10:10:35.495 test1[623:207] Cash: (null)
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1  
Did you check whether dictionary was successfully created at all? –  Josh Caswell May 29 '11 at 9:18
    
How would you suggest doing that? :O –  buzzkip May 29 '11 at 9:22

3 Answers 3

up vote 4 down vote accepted

Your JSON data contains an array as the top-level object, hence you cannot deserialise it as a dictionary:

[
  [
    [
      {
        "cash" : "925071",
        "clan" : "YES",
        "clanid" : "1",
        "email" : "REMOVED",
        "exp" : "117500",
        "level" : "1",
        "password" : "REMOVED",
        "uid" : "0",
        "username" : "admin"
      }
    ]
  ]
]

Try this instead:

NSArray *array = [[CJSONDeserializer deserializer] deserializeAsArray:jsonData
                                                                error:&error];

Also, note that there are three arrays in your JSON data, and only the innermost array contains an object (a dictionary). It’s not clear why there are three nested arrays and what would be the other elements in the arrays, so it’s hard to give a generic parsing solution for your problem. One possibility is:

for (NSArray *innerArray2 in array) {
    for (NSArray *innerArray3 in innerArray2) {
        for (NSDictionary *dictionary in innerArray3) {
            NSString *cash = [dictionary objectForKey:@"cash"];
            NSLog(@"Cash = %@", cash);
        }
    }
}
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Not the prettiest solution but it should work! :) Nice job! –  Julian May 29 '11 at 9:36
    
Thank you! Perfect :D –  buzzkip May 29 '11 at 9:40

two things I would check:

  1. Your json is correctly produced

  2. The encoding you specify is the right one.

Specifically, I would try and use NSASCIIStringEncoding instead of NSUTF8StringEncoding (I am suggesting that only because it's often the reason of problems as far as I saw )

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Check that your dictionary isn't nil!

A simple way of doing that would be:

if(!dictionary)NSLog(@"dictionary is nil!");
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It's nil! :( Any ideas on what I've done wrong? –  buzzkip May 29 '11 at 9:27
    
@buzzkip: Check the error: if( !dictionary ){ NSLog(@"%@", error); } –  Josh Caswell May 29 '11 at 9:30
    
This is not a real solution but I would suggest trying code.google.com/p/json-framework I've used it numerous times and it always worked like a charm :) –  Julian May 29 '11 at 9:32
    
Another thing you could do is inputting another simple JSON String and try deserializing that. If this works you can narrow the error down. –  Julian May 29 '11 at 9:34

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