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I have a program in c++, during the program i use :

static ofstream s_outF(file.c_str());
if (!s_outF)
{
    cerr << "ERROR : could not open file " << file << endl;
    exit(EXIT_FAILURE);
}
cout.rdbuf(s_outF.rdbuf());

Meaning i redirect my cout to a file. What would be the easiest way to return the cout back to the standard output?

thanks.

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up vote 7 down vote accepted

Save the old streambuf before you change cout's streambuf :

auto oldbuf = cout.rdbuf();  //save old streambuf

cout.rdbuf(s_outF.rdbuf());  //modify streambuf

cout << "Hello File";        //goes to the file!

cout.rdbuf(oldbuf);          //restore old streambuf

cout << "Hello Stdout";      //goes to the stdout!

You can write a restorer to do that automatically as:

class restorer
{
   std::ostream   & dst;
   std::ostream   & src;
   std::streambuf * oldbuf;

   //disable copy
   restorer(restorer const&);
   restorer& operator=(restorer const&);
  public:   
   restorer(std::ostream &dst,std::ostream &src): dst(dst),src(src)
   { 
      oldbuf = dst.rdbuf();    //save
      dst.rdbuf(src.rdbuf());  //modify
   }
  ~restorer()
   {
      dst.rdbuf(oldbuf);       //restore
   }
};

Now use it based on scope as:

cout << "Hello Stdout";      //goes to the stdout!

if ( condition )
{
   restorer modify(cout, s_out);

   cout << "Hello File";     //goes to the file!
}

cout << "Hello Stdout";      //goes to the stdout!

The last cout would output to stdout even if condition is true and the if block is executed.

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