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I have a functor with no member variables. I am wondering if it is more efficient to create this functor on the fly as needed or cache it as a member variable. There are issues with regards to empty-base class optimization and cache locality that I'm not sure about.

struct Foo
{
int operator()(const MyData& data) const { ... }
};
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Try both in a loop of a million calls, and time each loop. Both without and with optimization enabled. –  Joachim Pileborg Oct 18 '13 at 13:49
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... and/or compile the stuff and look at the assembly. I believe there is no reason the operator cannot be inlined. –  thokra Oct 18 '13 at 13:50
    
On the fly as needed. The constructor is a no-op, the object is never referenced, so all overhead will be flushed by the optimizer pipeline. –  Laurent LA RIZZA Oct 18 '13 at 14:29
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2 Answers

up vote 9 down vote accepted

For an empty object, just create it in the stack. Adding the functor to your type as a member will make all of your objects larger. Adding it as a base (to make use of the empty base optimization), will yield a weird design in which your type implements operator()(const MyData&) for no reason. Even if you make it private the operator will be there.

Since the type has no members, there is no cache locality issues, as no data to be accessed. The main use of a stateless functor is to allow the compiler to inline the call to the function (compared with a free function with the same name)

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The general rule for optimization is: code to make it work first, optimize only when it is proven to be necessary (in other words, you've profiled your code and found a bottleneck that needs to be addressed to greatly improve performance).

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