Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I tried to follow Bjarne Stroustups explanation of the function template. I specifically played with the interchangability of c-function-pointers, functors, lambdas and member-function-pointers

Given the defintions:

struct IntDiv { // functor
  float operator()(int x, int y) const
    { return ((float)x)/y; }
};

// function pointer
float cfunc(int x, int y) { return (float)x+y; }

struct X { // member function
  float mem(int x, int y) const { return ...; }
};
using namespace placeholders; // _1, _2, ...

I want to assign to function<float(int,int)> everything possible:

int main() {
  // declare function object
  function<float (int x, int y)> f;
  //== functor ==
  f = IntDiv{};  // OK
  //== lambda ==
  f = [](int x,int y)->float { return ((float)y)/x; }; // OK
  //== funcp ==
  f = &cfunc; // OK

  // derived from bjarnes faq:
  function<float(X*,int,int)> g; // extra argument 'this'
  g = &X::mem; // set to memer function      
  X x{}; // member function calls need a 'this'
  cout << g(&x, 7,8); // x->mem(7,8), OK.

  //== member function ==
  f = bind(g, &x,_2,_3); // ERROR
}

And the last line gives a typical unreadable compiler-template-error. sigh.

I want to bind f to an existing x instances member function, so that only the signature float(int,int) is left.

What should be the line instead of

f = bind(g, &x,_2,_3);

...or where else is the error?


Background:

Here comes Bjarnes example for using bind and function with a member function:

struct X {
    int foo(int);
};
function<int (X*, int)> f;
f = &X::foo;        // pointer to member
X x;
int v = f(&x, 5);   // call X::foo() for x with 5
function<int (int)> ff = std::bind(f,&x,_1)

I thought bind is used this way: The un-assigned places get placeholders, the rest is filled in the bind. Should _1 nut get this, then`? And therefore the last line be:

function<int (int)> ff = std::bind(f,&x,_2)

On Howards suggestion below I tried it :-) order of args in bind

share|improve this question
    
Why not just use a lambda? –  Puppy May 29 '11 at 19:41
    
Nice! :-) ....... –  Howard Hinnant May 31 '11 at 13:14

1 Answer 1

up vote 8 down vote accepted
f = bind(g, &x,_1,_2); // OK

The placeholders refer to the argument positions in the returned bind object. The don't index g's parameters.

share|improve this answer
    
Oh, amazing I missed that until now. I think I need to make drawing for that, for when I need to explain it myself. –  towi May 30 '11 at 8:04
    
If you figure out how to publish that drawing back here that would be great! I'm sure it would help a lot of people! :-) –  Howard Hinnant May 31 '11 at 1:33

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.