15

This seems to work on the platforms I have tried:

#include <iostream>

// extern "C" linkage
extern "C" void foo(void (*fn_ptr)(int));

namespace {
  struct bar {
    static void f(int);
  };
}

int main() {
  // Usually works on most platforms, not guaranteed though:
  foo(bar::f);

  // Probably equally bad or worse?
  foo([](int x) { std::cout << x << std::endl; });
}

but then again passing a static member function also worked on these platforms when it was not required to.

Is there a way to force a lambda to have suitable linkage to make this safe and portable? Or is it already?

8

No. Lambdas are ultimately objects that have a function call operator. A captureless lambda can be converted into a function pointer of its appropriate type, but that function pointer will be a C++ function with C++ linkage.

| improve this answer | |
  • 1
    SO ... why can't it be passed as an argument to a C function? :( – user166390 Sep 4 '11 at 19:19
  • Agreed, that looks like it's the official position given "The closure type for a lambda-expression with no lambda-capture has a public non-virtual non-explicit const conversion function to pointer to function having the same parameter and return types as the closure type’s function call operator. The value returned by this conversion function shall be the address of a function" makes no mention of linkage it's safe to assume it is C++ linkage and therefore a distinct type. – Flexo Sep 4 '11 at 19:57
  • 1
    user166390: because it is not defined as having C linkage, which C functions necessarily require. – underscore_d Mar 12 '17 at 17:15

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