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This question already has an answer here:

Given the following code:

constexpr int omg() { return 42; }

const int a = omg(); // NOT guaranteed to be evaluated at compile time

constexpr const int a = omg(); // guaranteed to be evaluated at compile time

Is there a way to force something to be evaluated at compile time without assigning it to something constexpr (or in a compile time context like a template parameter ot enum shenanigans)?

Something like this:

const int a = force_compute_at_compile_time(omg());

perhaps something like this (which doesn't compile - I'm not much into constexpr yet):

template<typename T> constexpr T force_compute_at_compile_time(constexpr const T& a) { return a; }

marked as duplicate by onqtam, Community Oct 6 '16 at 7:30

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You could use non-type template arguments:

template <int N> constexpr int force_compute_at_compile_time();

const int a = force_compute_at_compile_time<omg()>();

Since N is a template argument, it has to be a constant expression.

  • And is it possible to deduce that int from the expression? I'm looking for a general purpose wrapper that can force any constexpr function to be evaluated at compile time - not just the ones returning int – onqtam Oct 6 '16 at 7:10
  • Doesn't this only work for integral values? – Albjenow Oct 6 '16 at 7:10
  • It'll only work for types which can be used as non-type template parameters, so integral types, references, pointers, enums and pointers to member. The int can be deduced in C++17, but before that you'd need to add another template parameter and do force_compute_etc<decltype(omg()), omg()>();. – TartanLlama Oct 6 '16 at 7:17
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    @TartanLlama So even with the decltype stuff if it is returning a constexpr custom string class - it wouldn't be possible - because it's not usable as a non-type template parameter? sad... – onqtam Oct 6 '16 at 7:21

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