Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have noticed, that even that my code is working great, something strange happen.

Assume I have two arrays: passwordEntered and tempPasswordEntered.

After I get a new passwordEntered, I do this each time:

 tempPasswordEntered=[passwordEntered mutableCopy]; 

Then I clean :

 [passwordEntered  removeAllObjects];

then, next time I again do this (for the new passwordEntered):

 tempPasswordEntered=[passwordEntered mutableCopy]; 

So tempPasswordEntered has only the last passwordEntered, and not both of them. if first time it had 4 places in array,the second time it still has 4 places, so my question is, does the copy REPLACE the array ? its not added to the last place of it as when you addObject ?

Another thing: should I use retain instead?

share|improve this question
    
Post more code, better whole class, it's unclear and not enough info. Do you use ARC or retain/release, ...? How passwordEntered and tempPasswordEntered is defined, ... –  Robert Vojta Sep 5 '12 at 9:35
    
Have tried : tempPasswordEntered=[NSMutableArray arrayWithArray: passwordEntered]; –  V-Xtreme Sep 5 '12 at 9:39
    
mutableCopy of NSArray does work in this way - it creates new array, which is mutable (even if origin NSArray wasn't mutable) and all objects inside the array are not copied -> shallow copy, not deep copy. All objects are retained in the new array as well. When you do release the origin array, all objects in the new mutable copy are still alive and they do exist. When you do tempPasswordEntered = [passwordEntered mutableCopy] it assigns new array to the tempPasswordEntered and previous array in this ivar is trashed if you do use ARC. Provide more info ... –  Robert Vojta Sep 5 '12 at 9:39
    
@VXtreme [NSMutableArray arrayWithArray:array] does the same thing as [array mutableCopy]. No need to try this. –  Robert Vojta Sep 5 '12 at 9:40
add comment

2 Answers

up vote 0 down vote accepted
NSArray *retVal = [[NSArray alloc] initWithArray:fetchResults];
NSArray *retVal = [[NSArray alloc] initWithArray:[fetchResults copy]];
NSArray *retVal = [[NSArray alloc] initWithArray:[fetchResults retain]];

The latter two are simple leaks. The first is one way of making a copy, but retVal = [fetchResults copy]; is a better way to make a copy.

But, of course, you don't need a copy at all. That isn't the problem. You go on to say that the only thing that doesn't crash is an empty result set.

That indicates one of two things; either your result set is corrupt (unlikely) or you are accessing the result set incorrectly (likely).

share|improve this answer
add comment

The line tempPasswordEntered=[passwordEntered mutableCopy]; is a variable assignment, and like other assignments it changes the value of the variable completely. In this case, tempPasswordEntered now points to a copy of passwordEntered, which has only a single object in it. So yes, it does replace the array, like any other assignment would.

If you wanted to add the objects in passwordEntered to tempPasswordEntered, try [tempPasswordEntered addObjectsFromArray:passwordEntered].

It sounds like what you want is mutableCopy, not retain, but I don't really know what your requirements are exactly so I can't say much more. You should probably be using ARC anyways :)

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.