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Editorial Team
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Asked: 2026-05-23T03:49:57+00:00

struct B { void (B::*pf)(int, int); // data member B () : pf(&B::foo) {}

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struct B
{
  void (B::*pf)(int, int);  // data member
  B () : pf(&B::foo) {}
  void foo (int i, int j) { cout<<"foo(int, int)\n"; } // target method
};

int main ()
{
  B obj;
  // how to call foo() using obj.pf ?
}

In above test code, pf is a data member of B. What’s the grammar rule to invoke it ? It should be straight forward, but I am not getting a proper match. e.g. If I try obj.*pf(0,0); then I get:

error: must use ‘.*’ or ‘->*’ to call pointer-to-member function in ‘pf (...)’, e.g. ‘(... ->* pf) (...)’
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1 Answer

  1. Editorial Team

    Like this:

    (obj.*obj.pf)(0, 1);

    Member access (.) has a higher precedence than a pointer to member operator so this is equivalent to:

    (obj.*(obj.pf))(0, 1);

    Because function call also has higher precedence than a pointer to member operator, you can’t do:

    obj.*obj.pf(0, 1) /* or */ obj.*(obj.pf)(0, 1)

    As that would be equivalent to:

    obj.*(obj.pf(0, 1)) // grammar expects obj.pf to be a callable returning a
                    // pointer to member
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