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I am following the file boost/smart_ptr/detail/operator_bool.hpp and come across the following snippet of code that I do not understand

typedef T * this_type::*unspecified_bool_type;

operator unspecified_bool_type() const // never throws
{
    return px == 0? 0: &this_type::px;
}

I write some test codes with XCode and &this_type::px always return 1. Why?

Can some C++ guru share your thoughts?

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3 Answers 3

It is not 1, but it is output by ostream as 1 (bool) if you havent switched on boolalpha flag. ostream has no special output operator for member pointers.

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This is a little trick known as the Safe Bool Idiom.

The problem is that if you write a conversion operator to bool:

operator bool() const;

Then it can be used in some tricky situations, for example: 1 + sharedp with bool getting promoted to int... stupid eh ?

Therefore, the trick is to use a type that can be converted to bool but on which all other operations will provoke an error during compilation. The recommended way is to use a pointer-to-member in the class, and it is typedefed to an explicit name so that error messages are a bit more understandable.


With C++11, this trick is obsolete, because the explicit qualifier can be applied to conversion operator:

explicit operator bool() const { return px; }

much more pleasant, isn't it ?

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It may sound like an oxymoron, but C++11 solution may be called explicit implicit conversion function. +1 btw! –  Nawaz Jun 7 '12 at 8:39
    
"With C++11, this trick is obsolete" -- not entirely (as I understand it), not if you do want to allow implicit conversions to bool (let's say for assignment to a bool object), but reject the arithmetic you mentioned. –  hvd Jun 7 '12 at 8:41
    
@hvd: well, implicit assignment to bool has never been the primary concern here, mostly it has to do with if (ptr) idiomatic tests. But you are right that it could still be used to allow this implicit conversion. –  Matthieu M. Jun 7 '12 at 9:01
    
@MatthieuM. If you can do if (t) ..., you should be able to rework it to bool check = t; somethingElse(); if (check) ... when that's appropriate, IMO. But I'll agree that's not the way it's mostly used, so it may be a small inconvenience. –  hvd Jun 7 '12 at 9:03
2  
@hvd: I wonder if there's a case to be made for template <typename T> bool evaluate(T &t) { return static_cast<bool>(t); }. Then your reworked code reads bool check = evaluate(t);. It has the added benefit of loudly flagging that t has been evaluated: any side-effects of somethingElse() won't affect the conditional, so hopefully make people more likely to question whether or not it's equivalent to somethingElse(); if (t) ...;. Of course you could just write the static_cast<bool> every time. –  Steve Jessop Jun 7 '12 at 9:37

&this_type::px is a trick used to obtain a boolean value equivalent to true.

Since boost does not use the bool type, but instead does not specifies what it is, it uses a pointer-to-member cast which always return the equivalent representation of true for an existing member (i.e. not nullptr or something cast from 0).

See 4.12:

A prvalue of arithmetic, unscoped enumeration, pointer, or pointer to member type can be converted to a prvalue of type bool.

The boolean conversion of pointer-to-members always happen in an integral context because there is no cast from pointer-to-member to an integer in C++.

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