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I have the following class:

class DXStartupEncoder {
public:
   void EncodeA(unsigned char*& message) const;
   void EncodeB(unsigned char*& message) const;
   void EncodeC(unsigned char*& message) const;
   void EncodeD(unsigned char*& message) const;
};

<type> dn_sequence[] = {&DXStartupEncoder::EncodeA, &DXStartupEncoder::EncodeB, &DXStartupEncoder::EncodeC, &DXStartupEncoder::EncodeD };

But what is the type of this array of function pointers?

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up vote 7 down vote accepted

Use a typedef if you are not sure.

typedef void (DXStartupEncoder::*Encoder)(unsigned char*&) const;
Encoder dn_sequence[] = { .... };

In C++11 you could use decltype to deduce the type from value, so you don't even need to know how to write the type of a member function pointer (auto can't work, because the right hand side is an initializer_list):

decltype(&DXStartupEncoder::EncodeA) dn_sequence[] = { ... };

If you need to avoid the typedef, by the way, you'll write it as:

void (DXStartupEncoder::*dn_sequence[])(unsigned char*&) const = { ... };
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  1. You don't have function pointers. You have pointers-to-member-function.

  2. You're not asking for the type of the array; rather, you're asking for the underlying type of the array.

  3. The underlying type is:

    void (DXStartupEncoder::*)(unsigned char * &)
    
  4. The (incomplete) array type is thus:

    void (DXStartupEncoder::*[])(unsigned char * &)
    
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The type is called a Pointer-to-member.

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You can declare the array as:

void (DXStartupEncoder::*dn_sequence[])(unsigned char *&) const = {...};

This is obvious from declaration-reflects-use; given an index i, a const DXStartupEncoder & reference enc, and an unsigned char *& reference c, you would write:

(enc.*dn_sequence[i])(c)

yielding a value of type void:

     (enc             .* dn_sequence[i])(c               )
void (DXStartupEncoder::*dn_sequence[] )(unsigned char *&) const
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