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I know it's possible to separate to create a pointer to member function like this

struct K { void func() {} };
typedef void FuncType();
typedef FuncType K::* MemFuncType;
MemFuncType pF = &K::func;

Is there similar way to construct a pointer to a const function? I've tried adding const in various places with no success. I've played around with gcc some and if you do template deduction on something like

template <typename Sig, typename Klass>
void deduce(Sig Klass::*);

It will show Sig with as a function signature with const just tacked on the end. If to do this in code it will complain that you can't have qualifiers on a function type. Seems like it should be possible somehow because the deduction works.

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2 Answers 2

up vote 15 down vote accepted

You want this:

typedef void (K::*MemFuncType)() const;

If you want to still base MemFuncType on FuncType, you need to change FuncType:

typedef void FuncType() const;
typedef FuncType K::* MemFuncType;
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Yes you are right it works! I thought I tried this second one, but guess not, that was another machine though maybe old compiler. Will have to check again tomorrow. –  oldcig Jun 16 '10 at 5:09

A slight refinement showing how to do it without a typedef. In a deduced context like the following, you can't use a typedef.

template <typename Class, typename Field>
Field extract_field(const Class& obj, Field (Class::*getter)() const)
{
   return (obj.*getter)();
}

applied to some class with a const getter:

class Foo {
 public:
  int get_int() const;
};

Foo obj;
int sz = extract_field(obj, &Foo::get_int);
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