25

I'm trying to find a way to pass fout or cout to a function. I realize there are logically easy ways to deal with this, like put ifs in any function that outputs data or even just write the function both ways. However, that seems primitive and inefficient. I don't believe this code would ever work, I'm putting it here to ensure it's easy to see what I'd "like" to do. Please be aware that I'm taking a algorithm design class using c++, I'm in no way a seasoned c++ programmer. My class is limited to using the headers you see.

#include <iostream>
#include <iomanip>
#include <fstream>

using namespace std;
void helloWorld(char);
ofstream fout;

int main()
{
    fout.open("coutfout.dat");
    helloWorld(c);
    helloWorld(f);

    return 0;
}
void helloWorld(char x)
{
    xout << "Hello World";
    return;
}
0

2 Answers 2

46

These both inherit from ostream so try this:

void sayHello(ostream& stream)
{
    stream << "Hello World";
    return;
}

Then in main, pass in the object (cout or whatever) and it should work fine.

4
  • It works! I knew it couldn't be as hard as I was making it. Thanks a bunch! Apr 27, 2012 at 19:22
  • 3
    No problem. Check out en.cppreference.com/w/cpp/io/basic_ostream for the base class. Apr 27, 2012 at 19:38
  • @Kevin After reading the link you gave, I think the function should return stream given as argument... std::ostream& sayHello(std::ostream& stream){return stream << "Hello World";} Oct 5, 2014 at 11:32
  • 1
    @GingerPlusPlus - that's consistent if you want to do an override of the output operator, or allow it to be chained, but this is a simple "input-only" type of thing. There's certainly no harm from doing what you suggest, it's just not "important" either IMO. Oct 6, 2014 at 13:02
13

Yes. Let your function be

sayhello(std::ostream &os);

Then, in the function, you can use os in place of xout.

(By the way, using namespace std dumps the entire std namespace and is not recommended. A using std::cout and the like is all right, though.)

3
  • Thanks. I've noticed that format seemed to be the convention. So, does a using std::cout create a "shortcut" making it possible to use cout, but leaving the rest of the std namespace in tact? Apr 27, 2012 at 20:13
  • @RobertoWilko: That's right. The using std::cout introduces the name cout into the current namespace for immediate use (which incidentally means that you cannot then also access a local variable named cout, if there were one).
    – thb
    Apr 27, 2012 at 20:45
  • If you'll make a variable named cout you'll **** up the code anyway.
    – Íhor Mé
    Mar 11, 2020 at 21:16

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