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 trying to make a Console class. I would like to wrap cin and cout in the class and overload the << and >> operators. So I could use the class as such:

// Output
Console << "Call cout from Console" << endl;

// Input
string str;
Console >> str; // Call cin

My best guess was:

class Console {
//...
public:
    ostream& operator<< (ostream& os)
    {
        cout << os;
        return &cout;
    }
    //...
};

But I know that's wrong, how could I overload the operators to use the Console class as both cin and cout?

share|improve this question
2  
You're probably going to want a singleton object for that. –  chris Sep 14 '12 at 23:04

5 Answers 5

up vote 5 down vote accepted

I got a working code that can handle the stream manipulators. You can see my code in action in this Ideone page

Here is the code:

#include <iostream>

typedef std::ostream& (*manip) (std::ostream&);

class console {

};

template <class T> console& operator<< (console& con, const T& x) { std::cout << x; return con; }
template <class T> console& operator>>(console& con,  T& x) { std::cin >>x; return con; }
console& operator<< (console& con, manip manipulator){ std::cout<<manipulator; return con;}

int main() {
    console c;
    int a,b;
    c>>a>>b;
    c << "hello world"<<std::endl<<std::hex<<(a+b)<<std::endl;
}

Thanks @MooingDuck for the discussion that led me to a working answer and @111111 for the start point.

share|improve this answer
    
That seems like exactly what I'm looking for I'm going to try it out now. And by the way I intended on making it a singleton someone mentioned that in a comment, I can declare the operator overloads static right? –  Brandon Miller Sep 15 '12 at 4:27
    
Wait, shouldnt the operators be in the class body or be declared friends with it? –  Brandon Miller Sep 15 '12 at 4:28
    
@BrandonMiller I don't need to declare friend because I am not accessing private members of console. I can either declare in the class console, so I don't need to pass a console reference in the parameter list or I can do the way I did above. –  André Oriani Sep 15 '12 at 4:34
    
@BrandonMiller operators must operate over instances, so they cannot be declared static. –  André Oriani Sep 15 '12 at 4:37
    
Yes I should have tested it first. This works great thank you! –  Brandon Miller Sep 15 '12 at 4:38

I don't know why would want to do such a thing but it isn't the stream you need to capture but the other type. But if this is just to make std::cout and std::cin more convenient I wouldn't bother.

class console {

};

template<typename T>
console& operator<<(console con, const T& val) {
     std::cout << val;
     return con;
}

console c;
c << "hello world\n";
share|improve this answer
    
Can you test c << "hello world" << std::endl. I am afraid there are more operator << to define than template <class T> ostream& operator(..., const T&). –  PiotrNycz Sep 14 '12 at 23:38
    
neat trick. unfortunately: error: no match for ‘operator<<’ –  Mooing Duck Sep 15 '12 at 0:35
    
Indeed, see my answer for a refinement. The reason that yours fails is "console con" should be "console& con", since console doesn't provide a copy constructor and thus cannot be passed by value (copied). However in my answer I also solved the problem of using more than one argument, and buffering the output, and not having to get into arcane black magic of keeping an std::ostream yourself. –  std''OrgnlDave Sep 15 '12 at 2:10
1  
@std''OrgnlDave if you do not provider a copy constructor , the compiler provides one to you, doing a copy of field by field –  André Oriani Sep 15 '12 at 3:56
1  
@std''OrgnlDave yes , the compiler will generate a trivial copy-constructor. And I also agree with you that the parameter must be a reference to console. The gcc warns about the problem you mentioned. –  André Oriani Sep 15 '12 at 5:13

This is not direct answer to your question, but maybe I point you out some alternative.

See my answer to some other question. To define yourself all of these <<and >> operators is not very easy. However you can overwrite streambuf for Console. Use combined streambufs of cin and cout,

Derive your console from std::iostream and your streambuf from std::streambuf

class console_streambuf : public std::streambuf {
public:
    console_streambuf() {
        // no buffering, overflow on every char
        setp(0, 0);
    }
    virtual int_type overflow(int_type c) {
        std::cout << c;
        return c;
    }
    ...
};

class console : public std::iostream {
public:
    console() { rdbuf(&buf); }
private:
    console_streambuf buf; 
};
share|improve this answer

Contrary to many of the answers above, doing what you want is pretty simple, using the magic of templates.

I'd recommend using a stringstream, because using an ostream (cout is an ostream) can require arcane black magic (no joke).

#include <string>
#include <iostream>
#include <sstream>

struct console {
  std::stringstream  data_;

  console() : data_() {  };

  // We make ourselves a template sink so we can "take" operator<<'s.
  //  The awesome advantage to using a template like this is that the
  //  compiler will allow us to "take" any data that can be converted
  //  to a stringstream, which will handle converting int's etc.
  //  for us!
  template<typename T>
  console& operator<<(const T& what) {
    data_ << what;
    return *this;  // We must return a reference if we want to
                   //  string together more than one thing, i.e.
                   //  b << " " << 4;
  }

  void flush() {
    std::cout << data_.str();
    data_.clear();
    std::cout.flush();
  }
};

int main()
{
  int a = 4;
  console b;
  console c;
  b.data_ << 2;
  c.data_ << 4;
  //b << std::cout;  // WHAT? it's possible but stupid, prints garbage

  // Because we made the template return a reference, this will
  //  allow us to chain things just like we do with cout.
  b << " HELLO WORLD! " << "yo!" << 4;

  b << a << " " << 4.2f;

  // Compiler chokes on this. It will try to convert "console"
  //  to a stringstream which it can't.
  //b << c;

  b.flush(); // Send out the output

  // Wait for key press
  char foo[500];
  gets(foo);
}

Output:

2 HELLO WORLD! yo!44 4.2

Just like cout, except of course with more control. You can get into using basic_ostream's and basic_istreams if you want binary I/O, but I'd recommend against it unless you really really need it.

share|improve this answer
    
cout is already buffered, why would you buffer it again? –  Mooing Duck Sep 15 '12 at 8:39
    
@MooingDuck why would you want to buffer the console? "more control." can you tell cout not to flush until you want it to? you probably can and I don't know how... –  std''OrgnlDave Sep 15 '12 at 13:15

Overloaded operator functions must be declared with the specific types you're going to call them with on the left and right. So you will need an operator<< (int), operator<< (double), operator<< (const std::string &), etc.

If you're really just going to pass them on to cin and cout, you can save typing by using a template member function, like:

template <class T> Console& operator<< (const T& x) { cout << x; return *this; }

[thanks to André for pointing out it should return Console& so you can string together calls like Console << a << b; ]

share|improve this answer
1  
There two problems: first you are not returnin a ostream object. Second to make console work like cout or cin you should return a console& –  André Oriani Sep 14 '12 at 23:13
    
    
@AndréOriani: I disagree, he is returning an ostream object, and so ostream& was the right return type. –  Mooing Duck Sep 15 '12 at 0:38
1  
@MooingDuck perhaps you got in the middle of our talking and lost the context. Previous code did not return anything at all. He "fixed", but code is still wrong. Return statement should be return *this; so a console reference is returned. Do we agree now? We should return the wrapper , not the wrapped object. –  André Oriani Sep 15 '12 at 1:38
1  
@MooingDuck okay now I see my mistake. I thought it was a member method. So what I said must be ignored, since it is no sense. –  André Oriani Sep 15 '12 at 1:50

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.