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Ive stumbled upon this code that really confuses me:

SomeObject->SomeFunction()->AnotherFunction(...);

What is the meaning of the second arrow -> that follows the call to SomeFunction() member function? Thank you!

P.S. SomeFunction() function is declared inside a class just like this:

const int * SomeFunction() {return ipValue;}
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4  
if SomeFunction returns int, that won't even compile –  pezcode Feb 13 '12 at 18:08
    
That should not compile, since an int does not have a AnotherFuntion member function. –  crashmstr Feb 13 '12 at 18:09
1  
Check again, SomeFunction must return a pointer to some class. –  jrok Feb 13 '12 at 18:09
    
it probably returns this. –  Karoly Horvath Feb 13 '12 at 18:10
    
oh my bad, just edited the question to reflect that –  Vis Viva Feb 13 '12 at 18:12
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3 Answers 3

up vote 3 down vote accepted

SomeFunction() returns a pointer to a class which has one of its methods (called AnotherFunction) invoked. If you break it up, it might look like this:

Object* obj = SomeObject->SomeFunction();
obj->AnotherFunction();

As already mentioned, if SomeFunction() returns an int* this won't work.

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2  
As already mentioned, if SomeFunction() returns an int* this won't work. –  Kaganar Feb 13 '12 at 18:11
    
SomeFunction() returns a const int*. It's specified in the question. –  Luchian Grigore Feb 13 '12 at 18:12
    
Thank you very much! That answered my question! –  Vis Viva Feb 13 '12 at 18:15
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That's a compilation error.

int is a basic type, not a class, so you can't call methods on it.

This technique is called method chaining. You can call subsequent methods if the member function returns an object or a pointer to an object. In your case, it doesn't compile since the method returns an int. However, something like the following would work:

class A
{
public:
   A* foo();
   A* goo();
};

A* a = new A;
a->foo()->goo()->foo();
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It means, that the method SomeFunction() returns some kind of pointer or pointer-like object on which then in turn AnotherFunction() is called.

This means, that the -> operator has exactely the same meaning, no matter, where it appears in your expressions.

EDIT:

Since the return type is int (before the edit) the code will not compile as given. As you can see here, the compiler complains about the operand to -> not being a pointer. If you change the return type to a int * it still will not compile, since the operator -> can only be invoked on pointers to class types, but not on pointers to fundamental types such as int. Here is an example with a int * and the appropriate error message.

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Whoops, just noted the return type you gave for SomeFunction(). In that case there are many things wrong. This will not compile, and the const in the return type is absolutely meaningless to the compiler (but might sometimes be used as documentation). –  LiKao Feb 13 '12 at 18:11
    
And here is the proof, that it does not compile the way you described it: ideone.com/9zCTr –  LiKao Feb 13 '12 at 18:15
    
Why was this downvoted? –  LiKao Feb 13 '12 at 18:24
    
2 reasons: 1. SomeFunction() doesn't return a pointer. 2. the -> operator can be overloaded, so it's not necessary to have the same meaning, no matter what. If you correct the answer, I will happily remove the downvote. –  Luchian Grigore Feb 13 '12 at 18:27
    
@Luchian: Point 1 was mentioned in the comment, including a link to prove the comment. Also I was refering to a pointer or pointer like object (i.e. an object which has the -> operator overloaded). Furthermore I did not say that it has the same meaning "no matter what", but no matter where it appears. The syntax of the operator -> is of course a very complicated matter in the presence of operator overloading, but this has nothing to do with the placement within the expression. –  LiKao Feb 13 '12 at 18:32
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