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 am testing out a way to mimic C# properties and created the following property class:

struct BY_REF
{
    template <class T>
    struct TT_s
    {
        typedef T &TT_t;
    };
};
struct BY_VAL
{
    template <class T>
    struct TT_s
    {
        typedef T TT_t;
    };
};

template <class T, class P=BY_REF>
class property
{
private:
    typedef typename P::template TT_s<T>::TT_t TT;
    T &value;
    property();
    property(const property &);
    property &operator=(const property &);
public:
    explicit property(T &v) : value(v) {}
    operator const TT() const
    {
        return value;
    }
    TT operator=(const TT i)
    {
        return value = i;
    }
};

I tested this class with the following code:

int main()
{
    int i;
    std::string s;
    property<int, BY_VAL> I(i);
    property<std::string> S(s);
    //stringproperty S(s);
    I = 1337;
    char c[] = "I am ";
    S = std::string(c);
    cout << /*S <<*/ I << endl;
    return 0;
}

This gives me an unexpected compiler error, "no match for 'operator='...", for the line S = std::string(c);. I commented out the printing of S because I the operator= problem seems to be simpler, and I hope its solution will solve the operator<< problem as well. To try to figure out what is going on, I instantiated the template manually as follows:

class stringproperty
{
private:
    std::string &value;
    stringproperty();
    stringproperty(const stringproperty &);
    stringproperty &operator=(const stringproperty &);
public:
    explicit stringproperty(std::string &v) : value(v) {}
    operator const std::string &() const
    {
        return value;
    }
    std::string &operator=(const std::string &i)
    {
        return value = i;
    }
};

My manual version works. Can anyone explain why the template version doesn't? (I suspect it has something to do with the BY_REF and BY_VAL classes but then I do not know why it works for integers.)

share|improve this question
1  
do you have "#include <string>" expression in the header of property class? –  sithereal May 29 '12 at 13:48
2  
Is the error possibly the const part of the expression? (e.g. const std::string & != const TT)? –  Richard J. Ross III May 29 '12 at 13:50

1 Answer 1

up vote 4 down vote accepted

Your manual version is erroneous, and the issue has nothing to do with templates.

typedef int& IntRef;

const int& == int const&

const IntRef == IntRef const == int& const

Notice the difference ? The issue is thus there: TT operator=(const TT i).

The general guideline is that if you want to treat a typedef as a simple text replacement, then you need to start right now: Put the const after the type it qualifies.

share|improve this answer
    
The manual version is actually exactly what I intended. How can I fix the template version to reflect this? –  Matt May 29 '12 at 13:56
1  
Change the operator= to take a T const& in any cases. (and I also suggest change its return type, it feels weird that it does not return *this) –  Matthieu M. May 29 '12 at 14:02
    
Thank you, I fixed this problem. But now I am stuck with the ostream::operator<< problem. I don't know whether to manually overload it or to find a way to make the conversion work. –  Matt May 29 '12 at 14:16

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.