Limitations of Constexpr Function Parameters in Constant Expressions
Consider the code snippet:
static constexpr int make_const(const int i){ return i; } void t1(const int i) { constexpr int ii = make_const(i); // error occurs here (i is not a constant expression) std::cout<<ii; }
Error Details
The code triggers an error when attempting to initialize ii with make_const(i) because i is not a constant expression. This is because:
Passing a non-constexpr parameter to a constexpr function does not result in a constexpr output. However, the constexpr function can inherit and propagate the constexprness of its input parameters.
Allowed Scenarios
The following code works because both t1() and make_const() are constexpr functions with constexpr parameters:
constexpr int t1(const int i) { return make_const(i); }
Limitations
The following code fails because do_something() is not a constexpr function, even though make_const() is:
template<int i> constexpr bool do_something(){ return i; } constexpr int t1(const int i) { return do_something<make_const(i)>(); // error occurs here (i is not a constant expression) }
Conclusion
Understanding the distinction between constexpr functions and variables is crucial to avoid such errors. Constexpr functions offer the flexibility of being evaluated at both compile-time and run-time, but only with constexpr arguments.
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