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I have seen this in our code a couple times and it immediately makes me suspicious. But since I don't know the original intent I am hesitant to remove it.

//requires double indirection which I won't go into
FooClass::FooFunction(void ** param)
{
  //do something
}

SomeClass * A = new SomeClass();
SomeClass **B = &A;
FooFunction( reinterpret_cast<void**>(&*B) );   // what is happening here?

The "&*B" part is the part in question? Feel free to integrate explanation of the reinterpret cast but I am pretty familiar with cast techniques.

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3  
Are you sure that "SomeClass ** A = new A();" doesn't contain a type? Shouldn't it be "SomeClass * A = new A();"? –  Rüdiger Stevens Sep 11 '09 at 16:09
7  
The code you showed cannot be the one you ask about, because it's wrong (SomeClass ** A = new A() won't compile) in a place that's critical for the answer ("what is A?"). You will likely need to fix this in order to get meaningful answers. –  sbi Sep 11 '09 at 16:16
1  
This code is ill-formed. You cannot use class name as identifier for variable. –  Kirill V. Lyadvinsky Sep 11 '09 at 16:59
    
you are correct. Adjusted the code according to your finding. The question is meant for the reference/dereference. –  BuckFilledPlatypus Sep 11 '09 at 17:38
1  
@BuckFilledPlatypus: It does make some sense now. I have removed my down-vote and made an attempt at answering. –  sbi Sep 11 '09 at 17:51

3 Answers 3

up vote 3 down vote accepted

I can see only one reason for this: B has overloaded operator*() to return an X, but whoever wrote the code needed an X*. (Note that in your code, X is A*.) The typical case for this is smart pointers and iterators.

If the above isn't the case, maybe the code was written to be generic enough to deal with smart pointers/iterators. Or it used to use smart pointers and whoever changed it didn't bother changing &*, too? Have you poked through its history to see when this was introduced and what the code looked then?

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@sbi, so in this case would it be pointless to just use reinterpret_cast<void**>(B) ? I am unaware of an overloaded * operator for this particular ptr, so it seems like we are getting a temporary ptr back for something for which we already have double indirection? –  BuckFilledPlatypus Sep 11 '09 at 18:51
    
If B is indeed a naked pointer (of type SomeClass**) as shown in your question, the it's certainly pointless. (But it doesn't hurt either.) –  sbi Sep 11 '09 at 19:32
    
Ok, that answers the question then. If it is not some special case then it is indeed pointless as I am suspecting. –  BuckFilledPlatypus Sep 11 '09 at 19:35

I've done similar things with iterators - dereference the iterator to get a reference, and then do the "&" operator to get a pointer.

I don't see why it would be doing anything here though. If the type to the right of "&*" is a pointer type it does nothing.

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Consider the following sample;

class A {
public:
    int f() { return 55; }
};

class B {
public:
    B( A* a ) : a(a) {}
    A*& operator*() { return a; }

    A* a;
};

int main () {
    A* a = new A();
    B b = a;

    // &* calls operator*, then gets address of A
    void** x = reinterpret_cast<void**>(&*b);
    cout << reinterpret_cast<A*>( *x )->f() << endl; // prints 55

    void** x2 = reinterpret_cast<void**>( b );       // compile error
}

Your last edit of question leads to:

A* a = new A();
A** b = &a;

void** x = reinterpret_cast<void**>(&*b);  // now this is equal to the following
void** x2 = reinterpret_cast<void**>( b ); // so using &* make no sense
share|improve this answer
    
If the p isn't a straight pointer, then yes it makes sense (although I'd type &(*p) as p.get()), but it looks like a straight pointer in the question. –  David Thornley Sep 11 '09 at 16:52
    
If A is a straight pointer here, then OP's question has no sense. –  Kirill V. Lyadvinsky Sep 11 '09 at 16:57
    
Kirill, are you saying here that *p gets the pointer to 'b' and then we are creating a new pointer by adding more indirection through the & operator here? Perhaps I misunderstood with the introduction of shared_ptr. –  BuckFilledPlatypus Sep 11 '09 at 17:54
    
Changed sample to remove misunderstanding with shared_ptr. That was not really good sample. –  Kirill V. Lyadvinsky Sep 11 '09 at 18:28
    
B is just an simulation of smart pointer. –  Kirill V. Lyadvinsky Sep 11 '09 at 19:01

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