14

If cout is an object of ostream class, then why can't we declare our own object, say, 'out' from the same class. i.e, isn't the following code supposed to work??

#include<iostream>
using namespace std;
int main()
{
    ostream out;
    out<<"something";
}

or otherwise

#include<iostream>
using namespace std;
int main()
{
    ostream_withassign out;
    out<<"something";
}
10
  • 2
    What would it do? Where would the output go? Apr 9, 2012 at 10:14
  • 3
    What is ostream_withassign supposed to be?
    – jrok
    Apr 9, 2012 at 10:15
  • why do you think it is not possible to do? Apr 9, 2012 at 10:16
  • @David Schwartz The output should go to the standard output just like it does for cout Apr 9, 2012 at 10:17
  • 1
    Why would it go to standard output? What in the code specifies that it should go to standard output? Standard output is a specific destination, it's not a default. Apr 9, 2012 at 10:17

4 Answers 4

10

Stream objects require a buffer to send data to the external device. The standard output stream object, std::cout, is initialized with a buffer the encapsulates transport to wherever your output appears. Here is a contrived example:

std::ostream cout(/* buffer */);

To make your own stream object that pretends to be the standard stream object, you can simply pass the buffer of std::cout to its constructor. Note that I wouldn't recommend doing this in practice:

std::ostream copy(std::cout.rdbuf()); // Note: not a *real* copy

copy << "Hello World";
1

You didn't set the ostream object(what does this stream output to), of course you can't use it. http://www.cplusplus.com/reference/iostream/ostream/ostream/
i.e.

// ostream constructor
#include <iostream>
#include <fstream>
using namespace std;

int main () {
  filebuf fb;
  fb.open ("test.txt",ios::out);
  ostream os(&fb);
  os << "Test sentence\n";
  fb.close();
  return 0;
}
3
  • How can we make this code to send output to the standard output just like cout does? Apr 9, 2012 at 10:27
  • @user - We can't without using some OS specific knowledge. That's why we already have cout in the standard library.
    – Bo Persson
    Apr 9, 2012 at 10:37
  • 1
    @user1232138 You could derive from ostream and pass couts rdbuf() as ostream's constructor parameter. I'm not sure if that's a good idea, though.
    – jrok
    Apr 9, 2012 at 10:37
0

ostream class is derived from ios class. Constructor of ios class looks like below.

public: explicit ios (streambuf* sb);
protected: ios();

Which means default constructor of ios is protected and hence you can't create object using default constructor of ostream.

Only way left to create object of ostream is using streambuf sb* argument.

std::ostream my_obj(std::cout.rdbuf());

Similarly, you can't pass ostream objects by value.

Reason

ios is derived from ios_base. Its copy constructor is private.

protected: ios_base();    
private: ios_base (const ios_base&);
-1

you can do this only:

#include <iostream>

std::ostream& gvar = std::cout << "Hello world" << std::endl;

int main() {} 

from: http://xazax.web.elte.hu/

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