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I have the following function:

std::vector<double>residuals;
std::cout << Print_res(std::cout);
std::ostream& Print_res(std::ostream& os) const {

  os << "\tresidual" << std::endl;
  for (unsigned int i = 0 ; i < 22 ; i++) {
    os << "\t\t" << residuals[i] << std::endl;
  }
  os << std::flush;
  return os;
};

It prints the residuals correctly, but at the end of the output tags an address as follows:

2275
2279.08
2224.0835
0x80c5604

how do I fix this? EDIT: after reading everyone's comments I replaced the call to the function Print_res with a std::copy as

 std::copy(residuals.begin(), residuals.end(), std::ostream_iterator<double>(std::cout,"\n"));

and that did not print the address, so I presume there is something wrong in the way I have written the function.

share|improve this question
2  
Its printing the address of std::flush – Neel Basu May 20 '12 at 15:43
2  
Please post a complete test case. residuals isn't even declared in your example. – Charles Bailey May 20 '12 at 15:43
2  
@NeelBasu: Can you explain why it is doing this rather than causing flush to be called on os? – Charles Bailey May 20 '12 at 15:47
1  
@NeelBasu: os << std::flush is just fine. The problem is somewhere else. Also, guesswork should never be a solution, without knowing the cause of the problem. – Nawaz May 20 '12 at 15:48
3  
std::endl already performs a flush. So either remove the explicit std::flush or use '\n' instead of std::endl. This won't solve your problem, but it's good to know anyway. – Sjoerd May 20 '12 at 15:49
up vote 5 down vote accepted
std::cout << Print_res(std::cout);

This is not legal at global scope so the code that you have posted is not valid. If this statement were executed from, say, a function then Print_res would be called and then the return value of Print_res would also be streamed to std::cout. This is most likely not what you meant. You probably want just this:

Print_res(std::cout);

Your statement performs the equivalent of:

std::cout << std::cout;

In C++03 (which you must be using), std::cout has an operator void* (from std::basic_ios<char>) the result of which is what is being printed.

share|improve this answer
    
understood. that was indeed the problem. thanks a bunch for the explanation :-) – user1155299 May 20 '12 at 16:45

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