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Here is my simple code:

#include <iostream>
int main()
    int foo;
    std::cin>>foo; // what'll happen at this line? whatever I'll input will go to cout's buffer then to foo , right?

What I was thinking that above code will set cin's buffer to cout's buffer so when I will input some number it'll will be outputted also. I guess I'm confused with my own program. Can anyone tell me what's going on in the program?

Also, if I add one more line at end : std::cout<<foo; , then it prints random number which means foo never gets input. So what's happening overall?

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2 Answers 2

up vote 5 down vote accepted

The stream is responsible for the formatting and delegates the IO to the streambuf (which thus do more than buffering, it executes the IO as well).

So with std::cin.rdbuf(std::cout.rdbuf()) you are asking to cin to do its input using the streambuf of cout, which probably is not ready for doing input. So std::cin>>foo will fail.

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Perfect explanation, Thanks a lot:) – M3taSpl0it Dec 30 '11 at 14:44

I am thinking, but am not sure, that the reason that foo is not being inputted is because after you set cin's buffer to cout, the line

std::cin >> foo;

will actually become

std::cout >> foo;

in which the use of the >> operator is incorrect, so nothing happens to foo.

Then, when you use

std::cout << foo;

it will output foo, which will be non-initialized, therefore a random number.

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