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I'm using UISearchBar, and one of its properties, text, is declared as follows:

Abstract: The current or starting search text.
Declaration: @property(nonatomic, copy) NSString *text;

I know that the rule is to release what ever you use +alloc, +new or -copy.

I did:

NSString *searchText = searchBar.text;

And:

[searchText release];

And I got a nice EXC_BAD_ACCESS message. When I removed the release line, the EXC_BAD_ACCESS message stopped to appear, so I assumed that it is the eror source.

The question: Shouldn't I release searchText, since it comes from a property that uses copy?

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up vote 8 down vote accepted

No, you should not use release here. The "copy" in this case refers to how the setter is implemented, not the getter. The call you made (-text) does not include the word "copy" so you should not release the result.

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Well, but... If it's going to be gotten (get'ed?), it must have been set somewhere. I don't think this is really an answer to the question. The question really is: does the copy setter semantic retain the same way the retain one does, consistent with the -copy NSObject method, and the answer is that no it doesn't, what it's saying is, it makes a unique copy that it assigns. – Dan Ray Mar 8 '11 at 16:09
    
@Dan Ray, it may or may not make a unique copy that is assigned. It may do a lot of things. It may retain if the target object is immutable. It might create a completely different type of object having little in common with the one passed (I do this a lot in C++ wrappers). "copy" is a hint to the caller and provides a default implementation if you let the setter be created by @synthesize. But the question was whether to call -release on the result of -searchText, and the answer is no. – Rob Napier Mar 8 '11 at 17:11
    
Thanks. Got it. +1 for the explanation. – ofirbt Mar 9 '11 at 9:05

The copy attribute of the property means that the object is copied before assigning to the instance variable. When you access this property you then get a reference to the copy that was made.

When you set the the text on the searchbar:

NSString* myTextString =  [[NSString alloc] initWithString:@"My Text String"];
mySearchBar.text = myTextString;
[myTextString release];
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Do not use retainCount. The code is fine up to the last line. If you were to actually run that code, the retain count would be -1 (depending on implementation details). – bbum Mar 8 '11 at 17:26
    
Removed the last line after reading Rob Napier's answer. Thanks! – James Bedford Mar 8 '11 at 17:40
    
Cool -- thanks -- I'd suggest removing the comment, too. Whether or not the object is destroyed after that -release is entirely an implementation detail of mySearchBar and not something the caller should consider. – bbum Mar 8 '11 at 18:21
    
Can't I assign NSString by: NSString *str = @"123"; ? – ofirbt Mar 9 '11 at 8:44
    
Yea of course! That's the best way to quickly get hold of a string. I justed used this method as an example. The string you get using the shorthand @"string" notation is an autoreleased string. – James Bedford Mar 9 '11 at 9:33

To elaborate on Rob Napier's correct answer:

NSString *searchText = searchBar.text;

This code assigns a reference to the text property of searchBar to searchText. This is not a copy of the searchText, just another reference to the same NSString object in the searchBar object. Releasing searchText is the same as releasing searchBar.text, which cause your EXC_BAD_ACCESS message.

In this declaration of the text property, the getter method is merely:

- (NSString *)text {
   return text;
}

The more interesting method is the setter method. For this declaration, the setter is similar to:

- (Void)setText:(NSString *)newString {
  if (text != newString) {
    [text release];
    text = [newString copy];
  }
}
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