5

If I had a simple class with two variables, x and y, and a function ToString() that returns a formatted string with the data. When I call

cout << simpleClass << "\n";

anyone know a way I could have simpleClass.ToString automatically called to return the correctly formatted string? I'm guessing there's a way to do this with operator functions, but I don't know how I would do this.

9

If you're asking how to define such an operator,

template<class CharT, class TraitsT>
std::basic_ostream<CharT, TraitsT>&
operator <<(std::basic_ostream<CharT, TraitsT>& os, SimpleClass const& sc)
{
    return os << sc.ToString();
}
  • 4
    +1: I like how you implemented a function which operates on all basic_ostream objects, not just cout – Ken Wayne VanderLinde Jul 21 '11 at 1:35
  • @Ken : Too many people forget about wide streams. ;-[ – ildjarn Jul 21 '11 at 1:36
  • +1 and a cookie – Captain Obvlious Jul 21 '11 at 10:59
  • 1
    @sbi : And I fully disagree -- there's more to a stream/string type than just the character type; e.g. the stream could use a non-default TraitsT argument. – ildjarn Oct 23 '11 at 23:08
  • 1
    @sbi : I disagree with that as well; char const* and std::string both stream equally well to std::basic_ostream<char> and std::basic_ostream<wchar_t> (e.g. std::cout and std::wcout). Why should I be forced to use a narrow stream just because the character type is narrow? – ildjarn Oct 24 '11 at 15:04
2

You define

std::ostream& operator <<(std::ostream&, const SimpleClass&)

to call ToString(), passing the ostream&, and return the ostream&.

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