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I'd like to get my mucky paws on the operator() of a lambda function. The following seems up the task:

template <typename F>
void bar(F func) {
  void (F ::*pm)();
  pm = &F::operator();
}

However, in the following, I need to include the mutable keyword. Why is that? Is it possible to above instead declare a pointer to member function, which can target arbitrary lambdas?

int main(int argc, char *argv[])
{
  bar([]() mutable {});
  return 0;
}
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What's the error? Maybe the lambda's operator is const, can you add that to your function pointer? –  Kerrek SB Jul 29 '11 at 23:55

3 Answers 3

up vote 8 down vote accepted

According to 5.1.2 of the N3291 C++0x specification, the lambda's operator() is const unless you explicitly declare it mutable:

This function call operator is declared const (9.3.1) if and only if the lambda- expression’s parameter-declaration-clause is not followed by mutable.

You may be able to do some template metaprogramming magic to detect which is which.

However, it should be noted that, once func goes out of scope, you can't use that member pointer anymore. And it is a member pointer, not a function pointer, so you can't convert between the two.

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C++0x lambdas are const by default, unlike the rest of the language. Consequently, your member-function variable must be const as well. The following should work:

template<typename F>
void bar(F func) {
    typedef void (F::*pm_t)() const;
    pm_t pm = &F::operator();
}
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Alas, with mutable, no: error: cannot convert ‘void (main(int, char**)::<lambda()>::*)()’ to ‘pm_t {aka void (main(int, char**)::<lambda()>::*)()const}’ in initialization –  user2023370 Jul 30 '11 at 0:37
    
@user643722 : With what version of what compiler? Works just fine with GCC 4.5.1. –  ildjarn Jul 30 '11 at 0:39
    
Ok, it works without mutable, +1, but can I have a pointer to function which can point to either mutable, or const? –  user2023370 Jul 30 '11 at 0:49
1  
@user643722 : Sure, use decltype instead of your own typedef, so the compiler can deduce the signature of operator() on its own. Or are you asking how to determine whether it's const or not without using decltype? –  ildjarn Jul 30 '11 at 1:03
    
@ildjarm: Ah, of course. In fact auto can help us too: auto pp = &F::operator(); –  user2023370 Jul 30 '11 at 20:14

Consider this:

int x=0;
auto show = [x]() mutable
{
        x++;
};

show();

The variable 'x' is being captured by-value, and without mutable, you cannot modify the local copy of this variable. Specify mutable to enable modification of this local copy. For by-value captures, it doesn't matter if value is modified, the original x variable won't be modified.

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