3

I am trying to create my own std::string wrapper to extend its functionality. But I got a problem when declaring the << operator. Here's my code so far:

my custom string class:

class MyCustomString : private std::string
{
public:
  std::string data;
  MyCustomString() { data.assign(""); }
  MyCustomString(char *value) { data.assign(value); }
  void Assign(char *value) { data.assign(value); }
  // ...other useful functions
  std::string & operator << (const MyCustomString &src) { return this->data; }
};

the main program:

int main()
{
  MyCustomString mystring("Hello");
  std::cout << mystring; // error C2243: 'type cast' : conversion from 'MyCustomString *' to 'const std::basic_string<_Elem,_Traits,_Ax> &' exists, but is inaccessible

  return 0;
}

I wanted cout to treat the class as a std::string, so that I won't need to do something like:

std::cout << mystring.data;

Any kind of help would be appreciated!

Thanks.

Just fyi: my IDE is Microsoft Visual C++ 2008 Express Edition.

  • I'm adding to the other answers here, the reason you need a free-standing (global function) is because the type of the first argument needs to be a std::string or whatever type you want to have before the << operator. – Skurmedel Aug 9 '09 at 3:22
  • ... which is the only way to provide such an operator without modifying the actual std::string class. – Skurmedel Aug 9 '09 at 3:23
1

Firstly, you seem to have an issue with the definition of MyCustomString. It inherits privately from std::string as well as containing an instance of std::string itself. I'd remove one or the other.

Assuming you are implementing a new string class and you want to be able to output it using std::cout, you'll need a cast operator to return the string data which std::cout expects:

operator const char *()
{
    return this->data.c_str();
}
  • Not decaying automatically to C strings is one of the most fundamental motivations of using a (proper) string. Providing an implicit conversion operator to a C string defeats this. – L. F. May 15 at 9:40
7

If you look at how all stream operators are declared they are of the form:

ostream& operator<<(ostream& out, const someType& val );

Essentially you want your overloaded function to actually do the output operation and then return the new updated stream operator. What I would suggest doing is the following, note that this is a global function, not a member of your class:

ostream& operator<< (ostream& out, const MyCustomString& str )
{
    return out << str.data;
}

Note that if your 'data' object was private, which basic OOP says it probably should, you can declare the above operator internally as a 'friend' function. This will allow it to access the private data variable.

  • Good point. Or he can use an accessor function. – jkeys Aug 9 '09 at 3:13
3

You need a free-standing function (friend of your class, if you make your data private as you probably should!)

inline std::ostream & operator<<(std::ostream &o, const MyCustomString&& d)
{
    return o << d.data;
}
1

That's not how you overload the << operator. You need to pass in a reference to an ostream and return one (so you can stack multiple <<, like std::cout << lol << lol2).

ostream& operator << (ostream& os, const MyCustomString& s);

Then just do this:

ostream& operator << (ostream& os, const MyCustomString& s)
{
   return os << s.data;
}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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