10

For my problem, I can use the using directive in two ways. They basically boil down to these options:

template<typename U>
struct A {
private:

    // Define our types
    using WrapperType = Wrapper<U>;

public:

    U *operator()(U *g) const {
       // TODO: use WrapperType 
    }
};

OR:

struct B {

    template <typename U>   
    U *operator()(U *g) const {

       // Define the types here instead.
       using WrapperType = Wrapper<U>;

       // TODO: use WrapperType 
    }
};

In both cases, there will be other class template parameters. So B will still have template parameters, even though it doesn't look like it in this simplified example.

My question is:

Is there any overhead of defining a type locally like in B? (when compared to A)?

It isn't clear to me how the type declaration affects the generated code. The code must run in real time, and this will be the core of the codebase. So if there is any overhead whatsoever, I cannot use B.

That being said, B IS preferable in our case, because I would ideally like to call this code with a variety of types. And yes, this really does need to be in a class. I have just simplified the example extremely.

  • 4
    All you are doing is defining a type alias - unless I'm missing something that should not have any effect on runtime performance? – UnholySheep Apr 23 '18 at 8:56
  • 3
    Are you using some sort of interpreted C++ implementation? Or compiling to some target machine code? – StoryTeller Apr 23 '18 at 8:57
  • 1
    The difference is in scope of the type alias - in the second case, it cannot be used in other member functions of B unless they also do the same. From a maintenance perspective, it's a trade-off i.e. which is better depends on the overall structure of your code. – Peter Apr 23 '18 at 8:58
  • 1
    Typedefs are just information for the compiler, they do not affect the generated code. You just need to be careful that you do not accidentally use another type after adding / moving a typedef. – pschill Apr 23 '18 at 8:58
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    @YSC - That's too nitpicky even for me :) I just wanted to assure the OP it's unlikely – StoryTeller Apr 23 '18 at 9:01
29

Is there any overhead [on the generated code] of defining a type locally like in B?

No there isn't any.

Defining a type alias (what you do with using WrapperType = Wrapper<U>;) only affects compilation and is completely removed once run-time begins.

  • 3
    Exactly what I wanted to hear... I thought that this was the answer, but I just wanted to make sure. – bremen_matt Apr 23 '18 at 8:59

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