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This must be quite basic, but I was wondering how to add an integer to an array?

I know I can add strings like this:

NSMutableArray *trArray = [[NSMutableArray alloc] init];
[trArray addObject:@"0"];
[trArray addObject:@"1"];
[trArray addObject:@"2"];
[trArray addObject:@"3"];

But I guess I can't simply add integers like so:

NSMutableArray *trArray = [[NSMutableArray alloc] init];
[trArray addObject:0];
[trArray addObject:1];
[trArray addObject:2];
[trArray addObject:3];

At least the compiler isn't happy with that and tells me that I'm doing a cast without having told it so.

Any explanations would be very much appreciated.

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3 Answers

up vote 17 down vote accepted

Yes that's right. The compiler won't accept your code like this. The difference is the following:

If you write @"a String", it's the same as if you created a string and autoreleased it. So you create an object by using @"a String".

But an array can only store objects (more precise: pointers to object). So you have to create objects which store your integer.

NSNumber *anumber = [NSNumber numberWithInteger:4];
[yourArray addObject:anumber];

To retrive the integer again, do it like this

NSNumber anumber = [yourArray objectAtIndex:6];
int yourInteger = [anumber intValue];

I hope my answer helps you to understand why it doesn't work. You can't cast an integer to a pointer. And that is the warning you get from Xcode.

EDIT:

It is now also possible to write the following

[yourArray addObject:@3];

which is a shortcut to create a NSNumber. The same syntax is available for arrays

@[@1, @2];

will give you an NSArray containing 2 NSNumber objects with the values 1 and 2.

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Thanks, I think I understand this now. Your explanation is very good! –  n.evermind Apr 29 '11 at 20:58
    
Thank you. The answer of mservidio is absolutly correct. But I always like to have an explanation. ;-) –  Sandro Meier Apr 29 '11 at 21:00
    
Just a follow-up question: Is 'number' stored in my array an integer (int) or an NSInteger? Or doesn't this really matter? –  n.evermind Apr 29 '11 at 21:04
    
As far as I know the difference is only a difference in the size which is used to store that value. I normally use int. The only reason for me: it's less to write. ;-) Perhaps there's someone around here who can explain the differnce. I can't. –  Sandro Meier Apr 29 '11 at 21:21
    
This is wrong, string literals aren't autoreleased. They have static storage duration and the highest possible reference count (which indicates that their refcount can't even be decreased by release). –  user529758 Jan 3 at 12:48
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You have to use NSNumbers I think, try adding these objects to your array: [NSNumber numberWithInteger:myInt];

NSMutableArray *trArray = [[NSMutableArray alloc] init];     
NSNumber *yourNumber = [[NSNumber alloc] numberWithInt:5];

[trArray addObject: yourNumber];
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mservidio is correct. I believe the way to think of this is because @"2" is a NSString object. However 2 by itself is a value, not an object. –  dredful Apr 29 '11 at 20:50
1  
to expand, you basically create an instance of the NSNumber object that is a object version of the primitive int or whatever and then adds this object to the array. Also, to get the primitive value back out of the array, use [[myArray objectAtIndex:0] intValue]; –  Jesse Naugher Apr 29 '11 at 20:52
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You can also use this if you want to use strings:

NSMutableArray *array = [[NSMutableArray alloc] init];
[array addObject:[NSString stringWithFormat:@"%d",1]];
[[array objectAtIndex:0] intValue];
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