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If I have 3 NSMutableArray's, how can I get an array where the element at each index is the sum of the elements at that same index in each of the original arrays?


MutableArrayOne  = [NSMutableArray arrayWithObjects:@"1",@"2",@"3",@"4",@"5", nil];

MutableArrayTwo  = [NSMutableArray arrayWithObjects:@"1",@"2",@"3",@"4",@"5", nil];

MutableArrayThree  = [NSMutableArray arrayWithObjects:@"1",@"2",@"3",@"4",@"5", nil];

How do I sum them to an array like:

MutableArrayThree  = [NSMutableArray arrayWithObjects:@"3",@"6",@"9",@"12",@"15", nil];
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May I ask why it is a mutable array? – Joe Aug 10 '12 at 22:19
Cause there's other coding before that.. that have to use NSMutableArray – Lollo Aug 10 '12 at 22:54
Well, you have a slight problem since you have strings rather than numbers in the arrays. But otherwise this is trivial -- a simple loop. – Hot Licks Nov 24 '13 at 1:46

1 Answer 1

up vote 3 down vote accepted

Assuming all arrays are of the same size...

NSMutableArray *sums = [NSMutableArray arrayWithCapacity:MutableArrayOne.count];
for(NSInteger i = 0; i < MutableArrayOne.count; i++)
    NSInteger element1 = [[MutableArrayOne objectAtIndex:i] integerValue];
    NSInteger element2 = [[MutableArrayTwo objectAtIndex:i] integerValue];
    NSInteger element3 = [[MutableArrayThree objectAtIndex:i] integerValue];
    NSInteger sum = element1 + element2 + element3;
    [sums addObject:[NSString stringWithFormat:@"%lu", sum]];
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NSInteger is supposed to be cast as long, the %lu specifier is correct. – Joe Aug 10 '12 at 22:51

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