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The following code:

NSMutableArray *kkk = [NSMutableArray arrayWithCapacity: 20];
[kkk replaceObjectAtIndex:10 withObject: @"cat"];

yields this

Terminating app due to uncaught exception 'NSRangeException', reason: ' -
[NSMutableArray replaceObjectAtIndex:withObject:]: index 10 beyond bounds for empty array' Call stack at first throw:

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The problem here is you are trying to replace an object which doesn't exist. –  EmptyStack Jul 14 '11 at 5:53

2 Answers 2

arrayWithCapacity: allocates the required memory but it doesn't fill the array with objects. nil isn't a valid object to fill the array. So if you need an array with empty objects, you will have to do something like this,

int size = 20;
NSMutableArray *kkk = [NSMutableArray arrayWithCapacity:size];
for ( int i = 0; i < size; i++ ) {
    [kkk addObject:[NSNull null]];
}

Now you can safely replace objects,

[kkk replaceObjectAtIndex:10 withObject: @"cat"];
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Getting an array with that capacity does not fill it with elements; it's still an empty array when you try to replace the object at index 10. If you provide more detail as to the context in which this is happening, I can try to suggest a way around the problem.

EDIT: if you must have an array with objects right away, try this:

NSMutableArray *kkk = [NSMutableArray arraywithObjects: @"", @"", @"", @"", nil];

except with 20 @""'s instead of four. Then you get an array of 20 strings. Be sure to put retain on the end of it if you're using it outside the immediate scope, though, since arrayWithObjects returns an autoreleased array.

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I am trying to avoid dynamically building an array by specifying it's size up front. After that, then I will fill the array. Maybe there are better routines to call to fill? –  Kristen Martinson Jul 14 '11 at 4:53
    
Why are you trying to avoid dynamically building it? Can you explain what it's going to hold, and how it's being filled? –  Mr. Jefferson Jul 14 '11 at 4:54
    
For time purpose, I don't want to dynamically build. I want to init the size upfront and specify the elements to place at each index. –  Kristen Martinson Jul 14 '11 at 4:58
    
See my edit for an idea. –  Mr. Jefferson Jul 14 '11 at 5:00
    
if you are specifying the elements to place at each index, then you can start with index 0 by using addObject: method. –  Robin Jul 14 '11 at 5:01

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