Home/ Questions/Q 7678613
In Process

The Archive Base Latest Questions

Editorial Team
  • 0
Asked: 2026-05-31T17:41:16+00:00

I have a constexpr function that looks something like this: constexpr int foo(int bar)

  • 0

I have a constexpr function that looks something like this:

constexpr int foo(int bar)
{
   static_assert(bar>arbitrary_number, "Use a lower number please");

   return something_const;
}

However, compiling this with GCC 4.6.3 keeps telling me

error: ‘bar’ cannot appear in a constant-expression

I tried something like

constexpr int foo(constexpr const int bar)
{
   static_assert(bar>arbitrary_number, "Use a lower number please");

   return something_const;
}

but constexpr can’t be used for function arguments.

Is there some simple way to tell the compiler that bar is always a compile time constant?

Share

Leave an answer

You must login to add an answer.

Need An Account,

1 Answer

  1. Editorial Team

    Is there some simple way to tell the compiler that bar is always a compile time constant?

    If bar is always compile-time constant, then you should write your function as:

    template<int bar>
constexpr int foo()
{
   static_assert(bar>arbitrary_number, "Use a lower number please");
   return something_const;
}

    Because if you don’t do so, and instead write what you’ve already written, then in that case, the function can be called with non-const argument as well; it is just that when you pass non-const argument, then the function will loss it’s constexpr-ness.

    Note that in the above code arbitrary_number should be constant expression as well, or else it will not compile.

    • 0