1

I need to pass a user defined lambda to MyClass1 through MyClass2. I want to make sure that there is one move and no copies. Is the code below achieving that? Is there a better way to do this (like using implicit move done by compiler)?

Note: I have control over MyClass1 and MyClass2

#include <functional>

using MyFunction = std::function<int(int)>;

class MyClass1 {
 public:
   MyClass1(const MyFunction& func): mFunc(std::move(func)) {}

 private:
   MyFunction mFunc;
};

class MyClass2 {
 public:
  MyClass1* getClass1(const MyFunction& func) {
    return new MyClass1(func);
  }
};

int main() {
  MyClass2 cl2;

  const auto& f = [] (int i) { return i; };

  MyClass1* cl1 = cl2.getClass1(f);
}
  • you cannot move a const reference – bolov Nov 5 '15 at 20:26
  • @bolov but it seems to compile fine. – vikky.rk Nov 5 '15 at 20:35
  • 1
    You can std::move something that is const, but it usually does nothing other than a copy when used. It is const, you aren't allowed to strip its guts out, and std::move just marks something as "safe to strip the guts out". Extra moves are cheap: replace const MyFunction& with MyFunction everywhere you wrote it. Replace MyClass1(func) with MyClass1(std::move(func)). – Yakk - Adam Nevraumont Nov 5 '15 at 20:40
  • 1
    @Lol4t0 std::function requires the callable its wrapping to be copy constructible, yours isn't because of that move only type. Lambdas that capture copyable types are copyable, and can be stored in std::function – Praetorian Nov 5 '15 at 20:50
  • 1
    @vikky.rk get rid of the const& on f, and move it in anyhow. Your code (as written above) already copies f, as f is not a std::function, it is a lambda. Lambdas are not std::functions, and std::functions are not lambdas. moveing it into the std::function taking thing will eliminate that copy (and replace it with a move) in both your std::function<?> const& case, and my std::function<?> case. – Yakk - Adam Nevraumont Nov 6 '15 at 6:09
0

Since you can change MyClass1 and MyClass2 you can take the function by rvalue reference and then move it along

#include <functional>

using MyFunction = std::function<int(int)>;

class MyClass1 {
 public:
   MyClass1(MyFunction&& func): mFunc(std::move(func)) {}

 private:
   MyFunction mFunc;
};

class MyClass2 {
 public:
  MyClass1* getClass1(MyFunction&& func) {
    return new MyClass1(std::move(func));
  }
};

int main() {
  MyClass2 cl2;
  const auto& f = [] (int i) { return i; };

  MyClass1* cl1 = cl2.getClass1(f);
}

Live Example

  • 'f' looks like an lvalue. How will it work with rvalue reference? – vikky.rk Nov 6 '15 at 5:59

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