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Is it possible to have a class object return a true/false value, so I can do something like this:

MyClass a;
...
if (a)
    do_something();

I can accomplish (almost) what I want by overloading the ! operator:

class MyClass {
    ...
    bool operator!() const { return !some_condition; };
    ...
}

main()
    MyClass a;
    ...
    if (!a)
        do_something_different();

but I haven't found a way to overload what would be the "empty" operator. Of course, using the == operator to check for true/false is also possible, and is in fact what I have been doing so far.

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4 Answers 4

up vote 8 down vote accepted

Overload the void * cast operator:

operator void * () const { return some_condition; };

this is how streams work, allowing you to say:

if ( cin ) {
   // stream is OK
}

The use of void * rather than bool prevents the cast being used by mistake in some contexts, such as arithmetic, where it would not be desirable. Unless, you want to use it in those contexts, of course.

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The bool operator is more specific than the void * one. Could you please show an example of mistake involving cast to bool? –  Dacav Aug 8 '10 at 12:28
    
Thanks. This works just fine, except I had to cast some_condition into (void*). However, everyone else here suggests overloading bool(), which also works just fine and makes the code looks easier to understand :) Could you please give an example of where things could go wrong with that solution, so I can better understand the benefits of your suggestion? –  Terje Mikal Aug 8 '10 at 12:32
2  
@Dacav I don't know what you men by more specific - a void * cannot be part of an arithmetic expression so the class cannot be used in the form a + 1, which as I suggested may or may not be what the OP wants. –  anon Aug 8 '10 at 12:33
    
@Terje See comment above. and I've edited my answer slightly. –  anon Aug 8 '10 at 12:34
    
@Neil Butterworth: thanks, now I see the problem. I tried to cout something like static_cast<int>(3 + m) where m is an instance of a class overloading bool, and the compiler actually accepted it! –  Dacav Aug 8 '10 at 12:37

The obvious solution – providing an implicit conversion to bool via operator bool – is a bad idea.

That’s why the standard library uses operator void* as shown in Neil’s answer.

However, it’s worth pointing out that even this solution has flaws and is therefore no longer considered safe. Unfortunately, coming up with a better solution isn’t trivial …

There’s an article over at Artima that describes the safe bool idiom. For a real library, this is definitely the way to go, since it offers the most robust interface that is hardest to use wrong.

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1  
It is also the most complicated approach. It may be worth asking "do I need to be able to use the class directly where a bool is expected?" May be simpler and saner to just provide a is_ok member function, or perhaps overload operator() to return a bool and then test if (a()) instead. –  jalf Aug 8 '10 at 13:13
    
Thanks for the link, Konrad (and sbk). That was very interesting reading, and certainly something to keep for future reference. –  Terje Mikal Aug 8 '10 at 13:19
    
@jalf: true, this is why I added that “for real libraries …”. The point is, for a library, the benefit to the user always outweighs the effort of the implementor. A hard-to-use and easy interface wins, hands down. –  Konrad Rudolph Aug 8 '10 at 17:39

Weird, no one has mentioned the safe bool idiom so far. All the other solutions described so far have drawbacks (which you might or might not care about), all those approaches are described in the article. In a nutshell, the safe bool idiom goes something like this:

  class Testable {
    typedef void (Testable::*bool_type)() const;
    void this_type_does_not_support_comparisons() const {}
  public:
    operator bool_type() const {
      return /* condition here */ ? 
        &Testable::this_type_does_not_support_comparisons  // true value
        : 0; // false value
    }
  };
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1  
At least one of the "problems" described in the article, deleting the result of a void * cast, is a bit dubious. All compilers I use give a at least a warning on this, as it is UB. –  anon Aug 8 '10 at 12:59
    
Yes, I'm deleting my suggestion of casting to bool as it's misleadingly flawed. If you really want it to be treated like a bool in all contexts, then casting to bool is perfect. Casting to void* has its value, but its flaws also. This is the general solution to go for, with casting to bool being the one to go for if it really should be treated as a bool in all contexts. –  Jon Hanna Aug 8 '10 at 13:16
1  
AFAIK, in C++0x you will be able to mark conversion operators explicit, removing the need for a safe bool idiom? –  UncleBens Aug 8 '10 at 13:44

Try overloading the (bool) operator:

operator bool() { /* ... */ }
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Bad idea, and discouraged. See Neil’s answers for details. –  Konrad Rudolph Aug 8 '10 at 12:37
    
-1 this has unintended side effects, see the Safe Bool Idiom for an alternative solution. –  Sam Miller Aug 8 '10 at 12:48

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