Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I wrote a smarter pointer class. And to make the following code correct

ZhjSmartPointer<int> a(new int);  
assert(a != NULL); 

I overload the != operator like this:

bool operator !=(T *ptr) const; 

however, this leads to a compile error like this:

ZhjSmartPointer.h:132: note: candidate 1: bool ZhjSmartPointer::operator!=(T*) const [with T = Test] test.cpp:41: note: candidate 2: operator!=(int, int)

I'm confuse with how a ZhjSmartPointer can be transfered into an int

The Code of SmartPointer class is like this:

template <typename T>
class ZhjSmartPointer {
public:
    ZhjSmartPointer();
    explicit ZhjSmartPointer(T *ptr);

    ZhjSmartPointer(const ZhjSmartPointer &smartPtr);
    ZhjSmartPointer &operator =(const ZhjSmartPointer &smartPtr);
    ~ZhjSmartPointer();

    operator bool() const;
    T &operator *() const;
    T *operator ->() const;
    bool operator ==(const ZhjSmartPointer &smartPtr) const;
    bool operator !=(const ZhjSmartPointer &smartPtr) const;

    bool operator ==(T *ptr) const;
    bool operator !=(T *ptr) const;

private:
    void copyPtr(const ZhjSmartPointer &smartPtr);
    void deletePtr();
    T *ptr_;
    size_t *refCnt_;
};

I guess because I overload the 'bool' operator, 'ZhjSmartPointer -> bool -> int' leads to this problem.Is this right?

Sorry,It is just a compile warning, not a error. Someone suggest me not overloading != with parameter(T *), after all, we already have overloaded 'bool'.It will be fine to write codes like these:
ZhjSmartPointer a(new int);
if (a) { ..........
}

share|improve this question
1  
a constructor taking in a int as parameter without explicit could cause that conversion. –  phoeagon Feb 21 '13 at 5:15
    
The constructor wouldn't take an int (well T), but a int* (T*), so the "implicit constructor conversion" exists doesn't make much sense. What does make sense is the assumption that you allow an implicit conversion from ZhjSmartPointer<int> to int which would then lead to this error. Really not much you can do, apart from using intptr or removing the implicit conversion. –  Voo Feb 21 '13 at 5:29
    
As I said in my answer below, it works for me on g++ 4.6.3 with a warning issued. So I guess it is compiler-dependent. What's your compiler? –  phoeagon Feb 21 '13 at 5:44

2 Answers 2

up vote 0 down vote accepted

I guess because I overload the 'bool' operator, 'ZhjSmartPointer -> bool -> int' leads to this problem.Is this right?

I think so.

But have you defined any conversion operator for ZhjSmartPointer?

#include <cassert>
#include <cstddef>

template <class T>
class ZhjSmartPointer{
    public:
    ZhjSmartPointer (T* _ptr)
    :ptr_saved(_ptr){    }
    bool operator !=(T *ptr) const{
        return ptr!=ptr_saved;
    }
    private:
    T* ptr_saved;
};
int main(){
    ZhjSmartPointer<int> a(new int);  
    assert(a != NULL);     
}

This compiles for me though (g++ 4.6.3). adding:

    operator bool() const{
        return ptr_saved!=0;
    }

g++ 4.6.3 issues a warning, but still it compiles.

1.cpp:9:14: Candidate 1: bool ZhjSmartPointer<T>::operator!=(T*) const [with T = int]
1.cpp:20:9: Candidate 2: operator!=(int, int) <builtin>

DEPRECATED

Surprisingly NULL is an int, not a void*.

Declaring your constructor like:

ZhjSmartPointer<int> a(new int);  

enables the conversion from int to ZhjSmartPointer. Instead, add an explicit:

explicit ZhjSmartPointer<int> a(new int); 

to suppress this conversion.

share|improve this answer
2  
How is the former (or the latter) a constructor declaration ? All I see is a variable declaration. In fact, explicit can only appear on non-static member functions; the snippet above won't even compile. –  WhozCraig Feb 21 '13 at 5:27

In C++ NULL is defined as 0, not (void*)0, in fact most textbooks will tell you to use 0 instead of NULL.

If you're using C++11 you should be using nullptr by the way


Your problem is indeed the bool implicit conversion. To fix your problem overload operator not (!) instead.

share|improve this answer
1  
In C++11 there's nullptr which is a different type to 0; NULL and 0 are semantically different and it's bad practice to depend on the fact that they equate, so "most textbooks" contain bad advice. –  congusbongus Feb 21 '13 at 5:20
    
@CongXu Nope, NULL and 0 are exactly the same thing semantically in C++. Relying on this fact is perfectly fine (you may say "But what if the hardware represents null pointers differently?" In which case I'd say: "The standard says the compiler has to take care to convert this correctly"). Not that I like this fact - nullptr is nice. –  Voo Feb 21 '13 at 5:22
    
@Voo By "semantically" I meant with respect to the programmer, i.e. you should be using NULL for pointers and 0 for numbers, even though they are guaranteed to be equal. With respect to the language it's the other way around; sorry for the confusion. –  congusbongus Feb 21 '13 at 5:28
    
@CongXu Ah yes there we agree. Some people seem to prefer 0 to NULL though - Bjarne Stroustroup being the most famous example I can think of (his explanation is "I prefer to avoid macros") - to each their own, I prefer NULL (although having an explicit 0 makes problems with overload resolution clearer), respectively nullptr in c++11 –  Voo Feb 21 '13 at 5:31
    
@CongXu You are incorrect, in the beginnings of C++ NULL was actually not 0 but still (void*)0, which is not allowed to be implicitly cast to a pointer of any type T other than void which means that ptr == NULL is fine as ptr will be converted implicitly to void*, but T* ptr = NULL is not fine. In C++ it was expressly the intention to use 0 and not NULL. However since unbending programmers still wanted to use NULL, NULL was changed in C++ to be 0 instead. In C++11 we now have nullptr to solve the issue. –  wich Feb 21 '13 at 5:33

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.