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I have a problem absurd.

I have the values ​​of different type, which insert in a dictionary. The problem is that the value out of the dictionary is valid, inside is null.

 NSString *name = [NSString stringWithFormat:@"%@",_nameTextField.text];
 NSString *icon = [NSString stringWithFormat:@"%i",itemIcon];

 NSDictionary *dictionary = [[NSDictionary alloc]initWithObjectsAndKeys:name,@"name",
icon,@"icon", nil];

NSLog(@"string %@ dictionary %@",icon,[dictionary objectForKey:@"icon"]);

LOG

string 18 dictionary (null)

This problem only occurs on the second value, the first "name" does not. Yet the process is the same.

What is more strange, this piece of code, I am using in another class, identical and it works well.

Now I wonder. Can be a problem in Xcode?

Thanks a lot

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4  
What is itemIcon? And can you try to print the dictionary in NSLog and post that. –  iDev Feb 23 '13 at 0:49
2  
Please provide a complete example. Best guess is that dictionary is not being created because the name (or possibly item) is bad. –  Zaph Feb 23 '13 at 0:55
2  
Please don't misuse stringWithFormat:. The 1st line should be: NSString *name = _nameTextField.text;. –  rmaddy Feb 23 '13 at 0:56
2  
Log dictionary. If name is nil, nothing will be added to the dictionary. –  rmaddy Feb 23 '13 at 0:57
1  
I found the problem maybe. To simplify the question, I have included only two values ​​in the dictionary (are 6 values). In reality I noticed that a specific value invalidates those later. The value in question is an entity of Core-Data. If this is null, even after those are null. –  Vins Feb 23 '13 at 0:59
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1 Answer

up vote 7 down vote accepted

When you create a dictionary using initWithObjectsAndKeys (or dictionaryWithObjectsAndKeys:), a nil value indicates the end of the arguments.

This is true whether you enter an explicit nil in the argument list (like everyone does at the end), or if any variable with a nil value is used.

NSSString *name = nil;
NSDictionary *dictionary = [NSDictionary dictionaryWithObjectsAndKeys:name, @"name", nil];

This gives you an empty dictionary because the first argument is nil. None of the other arguments are even looked at.

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