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A few days ago I asked by which criteria the compiler decides whether or not, to compute a constexpr function during compile time.

When does a constexpr function get evaluated at compile time?

As it turns out, a constexpr is only evaluated during compile-time, if all parameters are constant expressions and the variable you are assigning it to is are constant expression as well.

template<typename base_t, typename expo_t>
constexpr base_t POW(base_t base, expo_t expo)
{
    return (expo != 0 )? base * POW(base, expo -1) : 1;
}

template<typename T>
void foobar(T val)
{
    std::cout << val << std::endl;
}

int main(int argc, char** argv)
{
    foobar(POW((unsigned long long)2, 63));
    return 0;
}

If what I was told is true, this code example is very impratical, since foobar doesn't take a constexpr (you can't use consexpr for parameters for some reason), POW gets evaluated during runtime, even though it would have been possible to compute it during compile-time. The obvious solution for forcing a compile-time evaluation would be this:

auto expr = POW((unsigned long long)2, 63);
foobar(expr);

This however forces me to use an additional line of code, which shouldn't be necessary each time I want to make sure a constexpr gets evaluated during compile-time. To make this a little more convenient, I've come up with the following dubious macro:

#define FORCE_CT_EVAL(func) [](){constexpr auto ___expr = func; return std::move(___expr);}()
foobar(FORCE_CT_EVAL(POW((unsigned long long)2, 63)));

Despite the fact that it works just fine, I feel like as if something isn't right about it. Does creating an anonymous lambda impact performance? Does returning by rvalue reference actually move the expression to the function parameter? How does std::move impact performance? Is there a better one liner solution for this?

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What's wrong with Pubby's template trick in his answer to your previous question? –  Mat Jan 12 '13 at 14:53
    
@Mat I am looking for a generic solution. I don't want to write a template wrapper for every function. –  CaffeineAddict Jan 12 '13 at 15:05
1  
Ah, got it. (And I have no idea.) (Irrelevant remark: 2ULL would save you some typing.) –  Mat Jan 12 '13 at 15:27
1  
I think a better macro would be, #define COMPILATION_EVAL(f, ...) (std::integral_constant<decltype(f(__VA_ARGS__)), f(__VA_ARGS__)>::value) –  pepper_chico Jan 12 '13 at 17:57
1  
Note that in practice, with -O2, clang evaluates the code in the question at compile-time. And if you split it into 2 lines: const auto p=POW((unsigned long long)2, 63); foobar(p);, gcc does as well. –  Marc Glisse Jan 14 '13 at 1:22

1 Answer 1

Just to not leave it buried in comments:

#include <type_traits>

#define COMPILATION_EVAL(e) (std::integral_constant<decltype(e), e>::value)

constexpr int f(int i){return i;}

int main()
{
    int x = COMPILATION_EVAL(f(0));
}

EDIT1:

One caveat with this approach, constexpr functions can accept floating-point and be assigned to constexpr floating-point variables, but you cannot use a floating-point type as a non-type template parameter. Also, same limitations for other kinds of literals.

Your lambda would work for that, but I guess you would need a default-capture to get meaningful error message when non-constexpr stuff get passed to the function. That ending std::move is dispensable.

EDIT2:

Err, your lambda approach doesn't work for me, I just realized, how it can even work, the lambda is not a constexpr function. It should not be working for you too.

It seems there's really no way around it but initializing a constexpr variable in local scope.

EDIT3:

Oh, ok, my bad, the purpose of the lambda is just the evaluation. So it's working for that. Its result, instead, is which is unusable to follow another compilation time eval.

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2  
Lambda doesn't need to be constexpr. COMPILATION_EVAL doesn't need to be used in constexpr. It is working. –  zch Jan 12 '13 at 19:57
    
constexpr auto a = 42.2; auto res = FORCE_CT_EVAL(POW(a, 2)); std::cout << res << std::endl; Works just fine under GCC 4.7. Which compiler are you using, chico? Since a is known at compile time, the lambda doesn't have to capture it. –  CaffeineAddict Jan 12 '13 at 19:59
    
@cyberpunk_ "auto res"? try assigning a constexpr variable. –  pepper_chico Jan 12 '13 at 20:01
    
@zch I guess you didn't get the point of the question, see his previous question for reference. It's about ensuring compilation time eval of a constexpr function. –  pepper_chico Jan 12 '13 at 20:02
    
@chico I can't because the lambda itself is not a constexpr. This is of no concern however, because the constexpr value we want to force is assigned within the lambda. We could solve this if there was a way to pass a function to a template. –  CaffeineAddict Jan 12 '13 at 20:04

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