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I'm trying to convert NSData from an external JSON file into NSArray to display it in a UITableView object.

This returns null:

    NSURLRequest *request = [NSURLRequest requestWithURL:[NSURL URLWithString:@"http://www.domain.com/json.php"]];
    NSData *response = [NSURLConnection sendSynchronousRequest:request returningResponse:nil error:nil];
    NSArray *responseArray = [NSJSONSerialization JSONObjectWithData:response options:0 error:NULL];
    NSLog(@"%@", responseArray);

This returns Terminating app due to uncaught exception 'NSInvalidArgumentException', reason: '*** -[NSKeyedUnarchiver initForReadingWithData:]: incomprehensible archive:

    NSURLRequest *request = [NSURLRequest requestWithURL:[NSURL URLWithString:@"http://www.domain.com/json.php"]];
    NSData *response = [NSURLConnection sendSynchronousRequest:request returningResponse:nil error:nil];
    NSLog(@"%@", response);
    NSArray *responseArray = [NSKeyedUnarchiver unarchiveObjectWithData:response];
    NSLog(@"%@", responseArray);

My JSON formats like this:

["The Savoy", "London"]["The Ritz", "London"]["Hilton", "New York"]["Marriott", "San Francisco"]

I have a feeling it's my JSON formatting causing the problem, but I'm not sure...

Edit

Thanks very much for your replies. My JSON and error handling now look like this but I'm getting the same null response:

[{"name":"The Savoy", "city":"London}]
[{"name":"The Ritz", "city":"London}]
[{"name":"Hilton", "city":"New York}]
[{"name":"Marriott", "city":"San Francisco}]

Objective-C:

NSError *error = nil;
NSArray *responseArray = [NSJSONSerialization JSONObjectWithData:response options:0 error:&error];
NSLog(@"%@", responseArray);
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closed as off-topic by Hot Licks, Andrew Madsen, iandotkelly, Paul Beusterien, Wukerplank Jan 24 '14 at 5:26

This question appears to be off-topic. The users who voted to close gave these specific reasons:

  • "This question was caused by a problem that can no longer be reproduced or a simple typographical error. While similar questions may be on-topic here, this one was resolved in a manner unlikely to help future readers. This can often be avoided by identifying and closely inspecting the shortest program necessary to reproduce the problem before posting." – iandotkelly, Wukerplank
  • "This question appears to be off-topic because it lacks sufficient information to diagnose the problem. Describe your problem in more detail or include a minimal example in the question itself." – Hot Licks, Andrew Madsen, Paul Beusterien
If this question can be reworded to fit the rules in the help center, please edit the question.

2  
That's not valid JSON. If you want an array of array you need to add one set of square brackets around the whole thing. –  rmaddy Jan 23 '14 at 22:45
    
Would it be valid if I just had a single array with those values in? That's what I originally tried and it didn't work. –  Sebastian Jan 23 '14 at 22:46
1  
BTW - you should make use of the error parameter in the call to JSONObjectWithData so you can find out what the actual problem is. –  rmaddy Jan 23 '14 at 22:46
    
Thanks for your feedback - I've updated my question –  Sebastian Jan 23 '14 at 23:21
1  
Please, please, please go to json.org and spend 5 minutes studying the JSON syntax. Then you will understand the error of your ways. –  Hot Licks Jan 23 '14 at 23:24

1 Answer 1

Your JSON is wrong - instead of

["The Savoy", "London"]["The Ritz", "London"]["Hilton", "New York"]["Marriott", "San Francisco"]

use

[["The Savoy", "London"],["The Ritz", "London"],["Hilton", "New York"],["Marriott", "San Francisco"]]
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better [["hotel_name":"The Savoy", "hotel_location":"London"],…] if you can change the server. –  vikingosegundo Jan 23 '14 at 23:57

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