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In this answer I talk about using a std::ifstream object's conversion to bool to test whether the stream is still in a good state. I looked in the Josuttis book for more information (p. 600 if you're interested), and it turns out that the iostream objects actually overload operator void*. It returns a null pointer when the stream is bad (which can be implicitly converted to false), and a non-null pointer otherwise (implicitly converted to true). Why don't they just overload operator bool?

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up vote 5 down vote accepted

This is an instance of the "safe bool" problem.

Here is a good article: http://www.artima.com/cppsource/safebool.html .

C++0x helps the situation with explicit conversion functions, as well as the change that Kristo mentions. See also Is the safe-bool idiom obsolete? .

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It looks like the C++0x standard section 27.4.4.3 has the answer (emphasis mine).

operator unspecified-bool-type() const;

Returns: If fail() then a value that will evaluate false in a boolean context; otherwise a value that will evaluate true in a boolean context. The value type returned shall not be convertible to int.

Note: This conversion can be used in contexts where a bool is expected (e.g., an if condition); however, implicit conversions (e.g., to int) that can occur with bool are not allowed, eliminating some sources of user error.

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This answer is obsolete. It wasn't standardized because explicit conversion functions were added. –  Potatoswatter Feb 21 '13 at 14:17
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The newest C++11 requires that:

explicit operator bool() const;

See C++11 27.5.5.4-1. The 'explicit' seems odd to me, though.

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explicit is the reason it was added. An explicit conversion function such as this will only apply if it is the only conversion, in this case it will convert iostream to bool but not to int via an intermediate bool conversion. Read the other answers on this page to learn about the Safe Bool Idiom. –  Potatoswatter May 15 '12 at 6:54
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