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I have and NSMutableArray and I want to replace it with another, but if I try to do it like this...

firstArray = secondArray;

...then it seems to erase the entire firstArray and I get this error message..

Terminating app due to uncaught exception 'NSRangeException', reason: '*** -[NSCFArray objectAtIndex:]: index (0) beyond bounds (0)'

...and the bounds should be (6) not (0).

Is there a correct way to replace the array?

PS: I already checked the secondArray and it functions fine.

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2 Answers 2

up vote 0 down vote accepted

You're assigning the firstArray pointer to that of the secondArray pointer, so you lose the reference to the firstArray object, and it gets leaked. If you want to replace the objects in the firstArray object, use something like -replaceObjectsInRange:withObjectsFromArray: or just -release the firstArray object and assign firstArray to [secondArray mutableCopy].

I recommend reading up on C pointers as well as Objective-C memory management rules to make sure you've got a firm grasp on the fundamentals.

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I still get the same error. I even tried... for (int place=0;place<7;place++) { [firstArray replaceObjectAtIndex:place withObject:[secondArray objectAtIndex:place]]; } ...and it still sets the range of firstArray to (0). Anything else. –  Dane Man Jun 14 '10 at 23:24
    
Nevermind, I fixed that problem but now I have a new one. I post on a new question. –  Dane Man Jun 14 '10 at 23:34

If you want to make the firstArray variable into a reference to the second, do this:

[firstArray release];
firstArray = [secondArray retain];

If you want to make firstArray a copy of the second, do:

[firstArray release];
firstArray = [secondArray mutableCopy];

(In both cases, the release presupposes you allocated the array or have previously retain-ed or copy-ed it. If not, you can skip that bit. Either way you do own the new array and must release it at an appropriate time.)

If you want to replace the contents of the first array with those of the second (which isn't much different in consequence from taking a copy, but involves one less object destruction and creation), then I think you'll have to do something like this:

[firstArray removeAllObjects];
[firstArray addObjectsFromArray:secondArray];
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[secondArray copy] will return an immutable copy. –  Preston Jun 14 '10 at 23:07
    
Oops, quite right. Fixed. –  walkytalky Jun 14 '10 at 23:23

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