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This is my code.

NSString* seats = @"NEWS";
NSMutableString *sp = [[NSMutableString alloc] initWithString:@"             "];
NSArray *dials=@[@[sp, sp, sp, sp], @[sp, sp, sp, sp]];
[dials[0][2] replaceCharactersInRange:NSMakeRange(5, 1) withString:[seats substringWithRange:NSMakeRange(3,1)]];
NSLog(@"dial 0 0 : %@",dials[0][0]);
NSLog(@"dial 0 1 : %@",dials[0][1]);
NSLog(@"dial 0 2 : %@",dials[0][2]);
NSLog(@"dial 0 3 : %@",dials[0][3]);

This is my console readout.

2013-02-08 08:23:26.114 [29075:11303] dial 0 0 :      S       
2013-02-08 08:23:26.115 [29075:11303] dial 0 1 :      S       
2013-02-08 08:23:26.115 [29075:11303] dial 0 2 :      S       
2013-02-08 08:23:26.115 [29075:11303] dial 0 3 :      S       

How can I instead get the following readout, which is what I want?

2013-02-08 08:23:26.114 [29075:11303] dial 0 0 :              
2013-02-08 08:23:26.115 [29075:11303] dial 0 1 :              
2013-02-08 08:23:26.115 [29075:11303] dial 0 2 :      S       
2013-02-08 08:23:26.115 [29075:11303] dial 0 3 :              
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closed as too broad by WDUK, Parag Bafna, Monolo, Abizern, Tim B Mar 8 at 17:56

There are either too many possible answers, or good answers would be too long for this format. Please add details to narrow the answer set or to isolate an issue that can be answered in a few paragraphs.If this question can be reworded to fit the rules in the help center, please edit the question.

1 Answer 1

up vote 3 down vote accepted

By just doing this:

NSArray *dials=@[@[sp, sp, [sp mutableCopy], sp], @[sp, sp, sp, sp]];

Got why? If you think well that array just contains duplicate objects. Every pointer is pointing to the same object except dials[0][2], which points to a copied object.

Putting duplicate objects in the same array is allowed, but it may be conceptually wrong. So also consider copying all the objects.

Another solution would be to replace your immutable array with mutable strings with a mutable array with immutable strings, and in this case you could also put duplicate objects, and to change an object you should replace it:

NSString *sp = @"             ";
NSArray*dials=@[[@[sp, sp, sp, sp]mutableCopy], [@[sp, sp, sp, sp]mutableCopy]];
NSString* replace= [dials[0][2] stringByReplacingCharactersInRange:NSMakeRange(5, 1) withString:[seats substringWithRange:NSMakeRange(3,1)]];
[dials[0] replaceObjectAtIndex: 2 withObject: replace];
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1  
Good answer! However it's a set which cannot have the same object multiple times and I don't see any issue with duplicate objects within an array (other than how the OP has used it in this case). –  trojanfoe Feb 8 '13 at 14:07
    
Yes, I agree it can have multiple objects, but I'm saying it's conceptually debatable. –  Ramy Al Zuhouri Feb 8 '13 at 14:10
    
Because I want to edit every individual space, altho I just showed the one position to make my point, do you mean that dials needs to be created with [sp mutableCopy] in every position? And, is there some trick to doing that other than a brute force definition like the one I am using? Also if you have the time, I would like to define the whole dial in another class BSParam.h/.mto be included here, but have been unable to do that. Could you say how? How's that for adding questions? –  zerowords Feb 8 '13 at 14:14
    
Yes: immutable array with mutable strings. Or the other, IMHO classy solution would be a mutable array with immutable strings, so that every time that you want to change a string you just replace it. –  Ramy Al Zuhouri Feb 8 '13 at 14:21
1  
It hasn't this method because it's immutable. Use stringByReplacingCharactersInRange to create another object and replace it. Added an example in the edited answer. –  Ramy Al Zuhouri Feb 8 '13 at 14:29

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