16
#include <optional>

bool f() {
  std::optional<int> opt;
  return opt;
}

Does not compile: 'return': cannot convert from 'std::optional<int>' to 'bool'

Consulting reference I would have thought to find an explanation, but I read it as it should be ok.

Implicit conversions are performed whenever an expression of some type T1 is used in context that does not accept that type, but accepts some other type T2; in particular:

  • when the expression is used as the argument when calling a function that is declared with T2 as parameter;
  • when the expression is used as an operand with an operator that expects T2;
  • when initializing a new object of type T2, including return statement in a function returning T2;
  • when the expression is used in a switch statement (T2 is integral type);
  • when the expression is used in an if statement or a loop (T2 is bool).
  • 6
    "Implicit conversions are performed", but operator bool() of std::optional is explicit. – Jarod42 Feb 14 at 11:37
21

std::optional doesn't have any facility for implicitly converting to bool. (Allowing implicit conversions to bool is generally considered a bad idea, since bool is an integral type so something like int i = opt would compile and do completely the wrong thing.)

std::optional does have a "contextual conversion" to bool, the definition of which looks similar to a cast operator: explicit operator bool(). This cannot be used for implicit conversions; it only applies in certain specific situations where the expected "context" is a boolean one, like the condition of an if-statement.

What you want is opt.has_value().

4

From C++ docs:

When an object of type optional< T > is contextually converted to bool, the conversion returns true if the object contains a value and false if it does not contain a value.

Read about contextual conversions here:

In the following contexts, the type bool is expected and the implicit conversion is performed if the declaration bool t(e); is well-formed (that is, an explicit conversion function such as explicit T::operator bool() const; is considered). Such expression e is said to be contextually converted to bool.

  • the controlling expression of if, while, for;
  • the operands of the built-in logical operators !, && and ||;
  • the first operand of the conditional operator ?:;
  • the predicate in a static_assert declaration;
  • the expression in a noexcept specifier;
  • the expression in an explicit specifier;

You can do the following hack:

bool f() {
    std::optional<int> opt;
    return opt || false;
}

because contextual conversion happens in case of the built-in logical operators, but contextual conversion does not include return statements and std::optional by itself does not have implicit conversion to bool.

Therefore, it would be the best to use the std::optional<T>::has_value:

bool f() {
    std::optional<int> opt;
    return opt.has_value();
}
  • what about return {opt} ? or return bool{opt}; – darune Feb 14 at 11:36
  • 3
    @darune return {opt}; won't work but return static_cast<bool>(opt); or return bool{opt}; would work. However, it is suggested to use has_value member function because it really shows clear intention of what you want to do – NutCracker Feb 14 at 11:39
1

That's because implicit coversion of std::optional to bool is not supported: https://en.cppreference.com/w/cpp/utility/optional/operator_bool

constexpr explicit operator bool() const noexcept;

You have to explicitly convert to bool as bool(opt) or simply use opt.has_value() instead.

  • bool{opt} works as well and should be preferred over bool(opt) – darune Feb 14 at 11:39

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