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Here is a repro case:

#include <iostream>

template< class MessageType >
class Augmented
{
public:
    Augmented( const MessageType& message ) 
        : m_message( message )
    {}

    const MessageType* operator->() const { return &m_message; }

private:
    const MessageType& m_message;
};

template< class MessageType >
Augmented<MessageType> augmented( MessageType&& message )
{
    return Augmented<MessageType>( std::forward<MessageType>(message) );
}

class Test
{
public:
    void print() const {  std::cout << "Hello World" << std::endl; }
};


int main()
{
    Test test;

    auto augmented_test = augmented( test );
    augmented_test->print();

    return 0;
}

I'm using VS2011 (update 1). When I try to use code that use the -> operator, I get this error:

error C2528: '->' : pointer to reference is illegal

I understand the error, but what I don't find is how to avoid it in this specific case. I just need a pointer to the object inferred by the member reference. I tried several different syntaxes which all resulted in the same error.

Any idea how to write this operator correctly?


Note to keep the focus on the question: I'm voluntarly using a reference to avoid a copy that should never occur in the very specific and isolated context this helper code is used; the question isn't about the design of the class.


LAST EDIT: replaced the question code with a full repro case. DeadMG is spot on so I accept his answer. To be more precise: the helper function (augmented()) forward MessageType as Test& instead of Test, which is wrong. There are several ways to fix this, the simplest being to make the helper function not forwarding the type but just take a const MesssageType&.

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1  
Looks good to me. The error is unrelated to your reference. How are you using the operator? –  Konrad Rudolph Dec 17 '12 at 15:48
    
Right, updated with more infos. –  Klaim Dec 17 '12 at 15:56
    
But with the wrong info. This code still works. Could you create an MWE? –  Konrad Rudolph Dec 17 '12 at 15:57
    
Yes sorry, I added how the function is called, I think the problem migh t be the helper function... –  Klaim Dec 17 '12 at 16:00
    
Works for me. Now, the MWE would be really helpful please. –  Konrad Rudolph Dec 17 '12 at 16:04
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1 Answer

up vote 3 down vote accepted

This code is quite legal for any particular value type. However, I suspect that you have instantiated it with a reference. This would lead to const MessageType* expanding to const (T&)*, which is not legal. You need to check that the template parameter is not a reference.

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const typename std::remove_reference<MessageType>type* operator->() const { return &m_message; } maybe. (#include <type_traits>, C++11 header, pretty common nowadays) –  Yakk Dec 17 '12 at 15:52
    
@DeadNG I added the calling code and the helper function I use to create the object. –  Klaim Dec 17 '12 at 15:56
    
@DeadMG I think the helpfer function to create the object might be wrong... maybe removing the perfect forwarding? Or even removing the function... –  Klaim Dec 17 '12 at 16:02
    
@DeadMG: ha ha, you guessed wrong about the calling code. now the OP has added it, the problem is exposed as simply calling o->m where o is not a pointer. lol :-) –  Cheers and hth. - Alf Dec 17 '12 at 16:20
1  
@Cheersandhth.-Alf ? He was correct. I don't understand your remark. The problem was the MessageType being a reference instead of a type. –  Klaim Dec 17 '12 at 16:22
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