34

With all of the fundamental types of C++, one can simply query:

if(varname)

and the type is converted to a boolean for evaluation. Is there any way to replicate this functionality in a user-defined class? One of my classes is identified by an integer, although it has a number of other members, and I'd like to be able to check if the integer is set to NULL in such a manner.

Thanks.

1
  • Google for "safe boolean" and you will see different solutions that allow for boolean evaluation without explicit conversion to bool, avoiding the common conversion pitfalls. Jul 29, 2010 at 7:44

5 Answers 5

48

The C++11 approach is:

struct Testable
  {
    explicit operator bool() const
      { return false; }
  };

int main ()
  {
    Testable a, b;
    if (a)      { /* do something  */ }  // this is correct
    if (a == b) { /* do something  */ }  // compiler error
  }

Note the explicit keyword which prevents the compiler from converting implicitly.

0
29

You can define a user-defined conversion operator. This must be a member function, e.g.:

class MyClass {
  operator int() const
  { return your_number; }
  // other fields
};

You can also implement operator bool. However, I would STRONGLY suggest against defining conversion operators to integer types (including bool) because your class will become usable in arithmetic expressions which can quickly lead to a mess.

As an alternative, for example, IOStreams define conversion to void*. You can test void* in the same way you can test a bool, but there are no language-defined implicit conversions from void*. Another alternative is to define operator! with the desired semantics.

In short: defining conversion operators to integer types (including booleans) is a REALLY bad idea.

3
  • You state that conversion to integer types is a bad idea .. but then this is exactly what your code snippet does. Agreed that operator bool() has unintended consequences and there are better solutions. But conversion to void* is not perfect either: Foo x; delete x; will now compile. bool operator!() is better, but you still need to do if (!!x) to test for the positive case. As suggested in another comment, the Safe Bool idiom is the best solution. Jul 29, 2010 at 8:08
  • 3
    1) The OP clearly did not know the syntax for defining conversion operators, otherwise he would have been able to code the most trivial solution. So he learned something new. 2) I warned him about this being a bad idea. 3) Safe bool is better, but seems like an overengineering. If conversion to void* is good for the standard library, it's good for me too.
    – zvrba
    Jul 29, 2010 at 12:36
  • 9
    In C++11 there is explicit operator bool() (mentioned in @plats answer and @UncleBens comment) achieving what the OP wants. I think it would be good if this information would be included in the accepted answer.
    – fhahn
    Aug 31, 2016 at 10:17
10

Simply implement operator bool() for your class.

e.g.

class Foo
{
public:
    Foo(int x) : m_x(x) { }
    operator bool() const { return (0 != m_x); }
private:
    int m_x;
}

Foo a(1);
if (a) { // evaluates true
    // ...
}

Foo b(-1);
if (b) { // evaluates true
    // ...
}

Foo c(0);
if (c) { // evaluates false
    // ...
}
3
  • 3
    -1, this breaks easily in unobvious ways. Look up the "Safe Bool Idiom."
    – greyfade
    Jul 29, 2010 at 6:49
  • 5
    C++0x has explicit operator bool() to avoid implicit breakage of the kind?
    – UncleBens
    Jul 29, 2010 at 8:08
  • @grayfade: agreed - this solution is not ideal and the Safe Bool idiom is a more robust approach. Jul 29, 2010 at 8:09
5

As others have stated, using operator int () or operator bool () is bad idea because of the conversions it allows. Using a pointer is better idea. The best know solution to this problem so far is to return a member (function) pointer:

class MyClass {
  void some_function () {}

  typedef void (MyClass:: * safe_bool_type) ();
  operator safe_bool_type () const
  { return cond ? &MyClass::some_function : 0; }
};
-2

C++ checks if the statements result is whether equal to zero nor not. So i think you can define equality operator for your class and define how your class will be different from zero in which conditions.

1
  • Not really... the value is converted to a boolean. It is just that in general the conversion is done from 0 to false and from anything else to true. The important difference is that if you define bool operator==( type const&, int ); and bool operator==( int, type const & ); you can compare your object to 0 but you cannot use the object as a condition. Jul 29, 2010 at 8:27

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