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The Title pretty much sums up my question. Why can't the following be done to check for a null pointer?

auto_ptr<char> p( some_expression );
// ...
if ( !p )  // error

This must be done instead:

if ( !p.get() ) // OK

Why doesn't auto_ptr<T> simply have operator!() defined?

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The question stackoverflow.com/q/2953530/427532 is somewhat related. –  Gabriel Schreiber Feb 28 '12 at 9:49

4 Answers 4

up vote 19 down vote accepted

Seems to be there was an error in its design. This will be fixed in C++0x. unique_ptr (replacement for auto_ptr) contains explicit operator bool() const;

Quote from new C++ Standard:

The class template auto_ptr is deprecated. [Note: The class template unique_ptr (20.9.10) provides a better solution. —end note ]


Some clarification:
Q: What's wrong with a.get() == 0?
A: Nothing is wrong with a.get()==0, but smart pointers lets you work with them as they were real pointers. Additional operator bool() gives you such a choice. I think, that the real reason for making auto_ptr deprecated is that is has has not intuitive design. But operator bool for unique_ptr in the new Standard means that there are no reasons not to have it.

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"Stupid" question: what does explicit here means ? I have only ever seen it with constructors. –  Matthieu M. Jun 30 '10 at 17:27
3  
It means the same thing it means for constructors - that the constructor or conversion operator doesn't participate in the implicit conversion dance that occurs when you try to pass an object to a function expecting an arg of a different type –  Terry Mahaffey Jun 30 '10 at 17:33
3  
@stinky472: Fundamentally, smart pointers cannot have the exactly the same public interface as pointers otherwise (by definition) they wouldn't be smart. In particular auto_ptr is not designed to be a better pointer, it has an interface that handles transfer of ownership in reliable exception safe manner. –  Charles Bailey Jul 1 '10 at 6:23
1  
@stinky472: I believe that the generic code argument is bogus. You cannot treat an auto_ptr as if it were a pointer; if you are writing generic code that can be used with both you have to stick to the operations that have common semantics. As you've now ruled out copying, assignment and destruction you're left with nothing that couldn't be achieved with a function just taking a pointer value and if you have an auto_ptr you can safely pass in get() to the raw pointer version. –  Charles Bailey Jul 1 '10 at 6:25
1  
@Matthieu: In C++03, only constructors can be explicit. Having explicit conversion operators is a new C++0x feature (yet another subtle change in C++0x; I didn't know about it until I saw @Terry's comment and thought "what kind of craziness is that?!" But, in fact, he's right :-P). –  James McNellis Jul 2 '10 at 5:28

Simply put, it should have operator !() defined. auto_ptr is not a very well designed container. The smart pointers in boost have the operator bool() conversion operator defined which can be negated with operator !(). That will let your if(!p) compile and work as expected.

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9  
"auto_ptr is not a very well designed container" sums it up quite nicely. –  Cogwheel Jun 30 '10 at 17:00
3  
auto_ptr isn't a container. Also why should it have operator!() defined? If you're going to claim this, then I think you need to justify this claim. I can't see any inherent reason to define it; it's not as though if (a.get() == 0) is unclear or difficult to use. –  Charles Bailey Jun 30 '10 at 17:02
3  
If something is designed to act like a smarter pointer, then its interfaces should resemble a pointer. –  Cogwheel Jun 30 '10 at 17:07
    
@Charles I suppose container isn't the most accurate word to use. What should I call it? –  Nick Strupat Jun 30 '10 at 17:09
4  
@Charles, i like how you defend it, but don't you agree that it just sucks? If its usage is different from that of a pointer then its name was incredibly bad chosen. –  Johannes Schaub - litb Jun 30 '10 at 17:17

There is an issue with boolean conversion. It allows syntaxes that are nearly always a pain.

There is, luckily, a solution: the Safe Bool idiom.

The problem with a conversion to bool is that implicit conversion is dangerous.

std::auto_ptr<T> p = ..., q = ....;

if (p < q) // uh ?

Therefore, operator bool() const is an abomination. Either you provide an explicit method... or you use the safe bool idiom.

The idea of the idiom is to give you an instance of a type with a pretty minimal subset of operations and almost no case where the implicit conversion will get you into trouble. This is done by using a pointer to member function.

Operations like if (p) and if (!p) then make sense, but if (p < q) will fail to compile.

Read the link thoroughly for the complete solution, and you'll realize why it was a good idea not to have operator bool() const.

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I suspect because it was expected that passing around auto_ptrs to null would be a rare case, to avoid adding extra interface, and to make it explicit when actually checking for null.

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Given that auto_ptr::operator= transfers the ownership and sets the source auto_ptr to null, auto_ptr to null can be fairly common. –  Pete Kirkham Jun 30 '10 at 17:08

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