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I'm brand new to Objective-C, I've got a decent understanding though of Ruby.

I want to have a list/array of numbers going from 1, 2, 3, ... all the way to x (x being a maximum defined elsewhere in my code).

What is the best way to do it (x can be a high number in the millions, so entering each integer manually would be undesirable). The numbers are in normal sequence.

In Ruby, I'd write it something like this:

y = [1..x]
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1 Answer 1

Do you truly need an NSArray, or do you just need an object that represents this range? If it's the latter, you can use an NSIndexSet, as in

NSIndexSet *idxSet = [NSIndexSet indexSetWithIndexesInRange:NSMakeRange(1, x-1)];

If you do need an NSArray then Josh Caswell's links are probably your best bet.

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That NSIndexSet looks promising, but it seems I can't do a proper enumeration (at least the way I know how) in a "for ... in" block. I'm going to use that for (int i = 1; i < x; ++i) { [anArray addObject:[NSNumber numberWithInt:i]]; } that Josh linked. But thank you :) –  cyehia Jul 27 '12 at 19:25
    
@cyehia: for ... in only works when the value is objects. But NSIndexSet supports other enumeration, notably block-based enumeration with -enumerateIndexesUsingBlock: and related methods. –  Kevin Ballard Jul 27 '12 at 19:30
    
@cyehia Could you not just do something like: for (int x = tIndexSet.firstIndex; x <= tIndexSet.lastIndex; x++)? –  FreeAsInBeer Jul 27 '12 at 20:11
    
@FreeAsInBeer: Not if the index set has gaps. Your increment step needs to say x = [tIndexSet indexGreaterThanIndex:x]. And if you use that then the condition step should be x != NSNotFound –  Kevin Ballard Jul 27 '12 at 20:12
    
@KevinBallard Well, I assumed from the way the OP phrased his question that there were no gaps. –  FreeAsInBeer Jul 27 '12 at 20:13

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