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If I have a NSMutableArray:

NSMutableArray *principalTable;

and I have a other NSMutableArray:

NSMutableArray *secondTable;

and I do this:

[secondTable addObject:@"string"];

[principalTable addObject: secondTable];

[secondTable removeAllObjects];

The principalTable has 1 object, but this object has nothing inside. So my question is:

  • When I add a object in a array, the array point on the object, or copy the object in the array?
  • And is it the same thing when I add in a nsmutabledictionnary?
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2 Answers 2

up vote 2 down vote accepted
[secondTable addObject:@"string"];

[principalTable addObject: secondTable];

[secondTable removeAllObjects];

When you do the above, principalTable will contain a reference to the secondTable NSMutableArray instance and will not directly contain the string. Thus, when you removeAllObjects, you are emptying secondTable and principalTable will continue to hold a reference to that now-empty mutable array.

None of your code copies anything.

NSMutableDictionary copies keys. Not values.

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So if I'm in a loop I must create a new table each time and add it to principalTable? – alex Aug 27 '10 at 19:55
Depends on your needs; if you want an array of arrays then you would need a new array each pass. If you want an array of strings, you don't need the second array at all. – bbum Aug 27 '10 at 22:31

The array contains a reference (i.e. a pointer) to the object that you added. Thus when you removed all objects from secondTable, you removed the from the same array that is an element of principle table.

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