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I want to use a pointer variable in a consteval expression. Just like this:

consteval int foo(int i) { return i * i; }
consteval int bar(int* i) { return (*i) * (*i); }

int main() {
  const int const_int{8};
  const int* const_int_ptr{&const_int};

  constexpr int i = foo(const_int); //fine
  constexpr int m = bar(const_int_ptr); // does not compile

  return 0;
}

You can see online at Godbolt that the code for bar does not compile. How can I fix the code for bar?

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  • First thing's first, bar takes an int* but const_int_ptr is of type const int*. – user975989 Apr 25 '20 at 9:43
  • Under the right circumstances, targeting the right platform, the linker might know the address of const_int - but I don't think the compiler ever could. What is the actual problem you're trying to solve? – Gavin Lock Apr 25 '20 at 9:49
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First, you just have a type error. bar() takes an int* but const_int_ptr is an int const*.

Once you fix that, in order to use pointers to constant expressions the pointer and the thing it refers to must also be constant expressions. Neither of those is true right now. If you make the pointer itself constexpr, you'll get a more localized error:

<source>:7:38: error: '& const_int' is not a constant expression
    7 |   constexpr const int* const_int_ptr{&const_int};
      |                                      ^~~~~~~~~~

In order to have that, the address must be known - it must have static storage duration. The specific rule here is [expr.const]/11:

if the value is of pointer type, it contains the address of an object with static storage duration, the address past the end of such an object ([expr.add]), the address of a non-immediate function, or a null pointer value,

You have a pointer to const_int, which doesn't have static storage duration, so it's not usable in a constant expression. Make const_int a static constexpr variable, make the pointer itself constexpr as well (and fix the signature of bar) and you're good to go: demo.

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