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The following code gives an error when it's supposed to output just std::endl:

#include <iostream>
#include <sstream>

struct MyStream {
  std::ostream* out_;
  MyStream(std::ostream* out) : out_(out) {}
  std::ostream& operator<<(const std::string& s) {
    (*out_) << s;
    return *out_;

template<class OutputStream>
struct Foo {
  OutputStream* out_;
  Foo(OutputStream* out) : out_(out) {}
  void test() {
    (*out_) << "OK" << std::endl;
    (*out_) << std::endl; // ERROR     

int main(int argc, char** argv){
  MyStream out(&std::cout);
  Foo<MyStream> foo(&out);
  return EXIT_SUCCESS;

The error is:

stream1.cpp:19: error: no match for 'operator<<' in '*((Foo<MyStream>*)this)->Foo<MyStream>::out_ << std::endl'
stream1.cpp:7: note: candidates are: std::ostream& MyStream::operator<<(const std::string&)

So it can output a string (see line above the error), but not just the std::endl, presumably because std::endl is not a string, but the operator<< definition asks for a string.

Templating the operator<< didn't help:

  template<class T>
  std::ostream& operator<<(const T& s) { ... }

How can I make the code work? Thanks!

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1 Answer 1

up vote 8 down vote accepted

You need to add this to your struct MyStream:

  std::ostream& operator<<( std::ostream& (*f)(std::ostream&) )
      return f(*out_);

std::endl is a function that appends a newline and flushes the underlying stream; this function signature accepts that function and applies it to the ostream member.

Then, as a test, defining foo::test as

  void test() {
    (*out_) << "start";
    (*out_) << std::endl;
    (*out_) << "done";

will correctly output

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Thanks, that's pretty crazy. How is one supposed to know that? There should be some class that one can derive from that would add such unsightly stuff automatically. – Frank Apr 10 '10 at 3:43
The thing to remember with overloading iostream operators is const char* and this function pointer. This is because the C++ template system has some special rules about pointer types. (They're ambiguous, I think?) – Zan Lynx Apr 10 '10 at 3:49
@dehmann: I have no idea how anyone was supposed to know that. I had to try a few different Google searches to get pointed in the right direction, then I still had to piece the answer together. Hopefully this helps a few more people in this situation. – Mark Rushakoff Apr 10 '10 at 3:51
+1 for an awesome piece of detective work! – Billy ONeal Apr 10 '10 at 6:07
It's not a function, but it's a function template (so that it's not specific to ostream, but also works for wostream and others). That's why a simple T doesn't work. – ᐅ Johannes Schaub - litb ᐊ Apr 10 '10 at 12:27

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