When can I use explicit operator bool without a cast?

Question

My class has an explicit conversion to bool:

struct T {
    explicit operator bool() const { return true; }
};

and I have an instance of it:

T t;

To assign it to a variable of type bool, I need to write a cast:

bool b = static_cast<bool>(t);
bool b = bool(t);
bool b(t);  // converting initialiser
bool b{static_cast<bool>(t)};

I know that I can use my type directly in a conditional without a cast, despite the explicit qualifier:

if (t)
    /* statement */;

Where else can I use t as a bool without a cast?

Toby Speight · Accepted Answer · 2021-08-30 08:25:30Z

The standard mentions places where a value may be "contextually converted to bool". They fall into four main groups:

Statements

The conversion operator needs to be constexpr for these.

```
   NullablePointer T
```
Anywhere the Standard requires a type satisfying this concept (e.g. the pointer type of a std::unique_ptr), it may be contextually converted. Also, the return value of a NullablePointer's equality and inequality operators must be contextually convertible to bool.
```
   std::remove_if(first, last, [&](auto){ return t; });
```
In any algorithm with a template parameter called Predicate or BinaryPredicate, the predicate argument can return a T.
```
   std::sort(first, last, [&](auto){ return t; });
```
In any algorithm with a template parameter called Compare, the comparator argument can return a T.

Do be aware that a mix of const and non-const conversion operators can cause confusion: