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Here is the method declaration midway in Apple's documentation: Learning Objective-C: A Primer

- (void)insertObject:(id) anObject atIndex:(NSUInteger) index

Why is there no * right after NSUInteger. I thought all objects were pointer types and all strongly typed pointers had to have a * character after it.

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Don't confuse NSInteger/NSUInteger with NSNumber. NSInteger is (roughly) equivalent to CFIndex/ssize_t and NSUInteger is (roughly) equivalent to size_t. I'm not sure why they don't just use standard types, but there you go. – tc. Jun 11 '10 at 18:34
up vote 11 down vote accepted

NSUInteger is not an object type, it is a typedef to unsigned int.

The only reason that you would actually want to use a * in this context would be if you wanted to get the address of an int and store something in it. (Some libraries do this with error messaging). An example of this:

-(void) methodName: (NSUInteger *) anInt {
    *anInt = 5;
}

NSUInteger a;
[obj methodName: &a]; //a is now 5
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2  
Two errors: NSInteger/NSUInteger/CFindex are 64-bit types on 64-bit systems, since they're used to represent stuff like lengths/counts/offsets of stuff in memory. Also, you mean *anInt = 5. – tc. Jun 11 '10 at 18:33
    
I think the line NSUInteger *a is wrong, it should be without the *. As it stands, you end up with a local variable of pointer type (and whose value is unspecified), and in the line below you apply the & operator on this local variable, giving an expression which is a pointer to a pointer to something. This is different from what your method expects, namely just a pointer. – harms Jul 18 '10 at 11:13
    
@harms, you are right. It was either defining it as a pointer and passing it directly or defining it normally and using the & (address-of) operator. – Jacob Relkin Jul 18 '10 at 11:22

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