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Consider the following C++ code:

A a = ...;
B b = ...;
C c = ...;

cin >> a >> b >> c;
...
cout << a << b << c;

Now that we have C++11 variadic template functions (I think) it could have been implemented one of these ways:

cin.read(a,b,c);
cout.write(a,b,c);

read(cin,a,b,c);
write(cout,a,b,c);

cin(a,b,c);
cout(a,b,c);

Are there any advantages of the chained << operator over these ways? Put another way - Do you think if they had variadic template functions in the beginning they still would have used operator << and operator >>? If so, why?

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1  
I like << and >> because they somehow remind me of a stream ... –  moooeeeep Aug 5 '12 at 22:43

1 Answer 1

One of the most important aspects of iostreams is that it is extensible. You can add new types and all you need to do is provide an overloaded << for writing and >> for reading.

You would need to provide a similar mechanism for your variadic version.

You would have to provide some global or namespace-scoped function name, which would be called by argument-dependent lookup by istream::read and ostream::write. The name of this function would need to be well-defined. But you won't find that function's name in cin.read(a,b,c); at all. Unless it's read, in which case you've got a number of potential name conflict problems.

This mechanism would be less immediately obvious than overloading operator<<. You would need to look up the docs to know what the name of the function to write an overload for is, while operator<< is right there in the statement: cout << ....

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Couldn't you just overload the single parameter version? And the variadic version uses that? –  Andrew Tomazos Aug 5 '12 at 22:51
2  
True but for some f, you could overload f(cin,x) and then have f(cin,a,b,c) call f(cin,a), f(cin,b) and f(cin,c). f could be one of read/write, scan/print, get/put, and so on. –  Andrew Tomazos Aug 5 '12 at 22:57
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@NicolBolas: Because the dispatch is bound to the type of the parameters, the first being a stream type, where would a naming conflict arise? In much the same way as there is no conflict between arithmetic shift and the stream version of <<? –  Andrew Tomazos Aug 5 '12 at 23:05
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I don't understand what you mean by << being right there in the statement. Whatever the function name was, it would be right there in the statement. –  Benjamin Lindley Aug 5 '12 at 23:08
2  
@NicolBolas: You're begging the question. If read(istream&, ...) had of been in place from the beginning of iostream, it would be as unlikely someone would use read(istream&, ...) for something else as it is that they would use operator>>(istream&, ...) for something else today. –  Andrew Tomazos Aug 5 '12 at 23:52

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