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I thought they were the same thing, but when I sent a code to an online judge (with endl(cout)) it gave me "Wrong answer" verdict, then I tried to send another with cout << endl and the judge accepted the code! Does anyone know the difference between those commands?

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If you have using std::cout then the first form will compile but the second won't (due to argument dependent lookup). I can't think of cases where the second form works but the first does not as is the case with the online judge. –  interjay Mar 4 '12 at 16:05
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3 Answers

up vote 3 down vote accepted

There is none that I know of.

std::endl is a function that take a stream and return a stream:

ostream& endl ( ostream& os );

When you apply it to std::cout, it just applies the function right away.

On the other hand, std::basic_ostream has an overload of operator<< with the signature:

template <typename C, typename T>
basic_ostream<C,T>& operator<<(basic_ostream<C,T>& (*pf)(basic_ostream<C,T>&));

which will also apply the function right away.

So, technically, there is no difference, even though stream std::cout << std::endl is more idiomatic. It could be that the judge bot is simplistic though, and does not realizes it.

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I guess the only difference is that there are two function calls instead of one with cout << endl. –  Seth Carnegie Mar 4 '12 at 16:01
    
Thanks a lot! in the future I will be using only cout << endl :) –  hinafu Mar 4 '12 at 16:03
    
Wait, endl shouldn't convert to ios_base& (*pf)(ios_base&), IIRC there is another overload. –  Xeo Mar 4 '12 at 16:07
    
endl cannot be converted to a ios_base& ( *pf )(ios_base&) because its parameter and return type have to be a basic_ostream specialization. basic_ostream has a template member: basic_ostream<charT,traits>& operator<<(basic_ostream<charT,traits>& (*pf)(basic_ostream<charT,traits>&));, though. ` –  Charles Bailey Mar 4 '12 at 16:14
    
@Xeo: right, thanks for the proof reading. –  Matthieu M. Mar 4 '12 at 16:23
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The only difference is that endl(cout) is considered as a global function whereas in cout << endl, endl is considered as a manipulator. But they have the same effect.

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There is no difference in behaviour between those two forms. Both refer to the same endl function, which can be used as a manipulator (cout << endl) or as a free function (endl(cout)).

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