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The question is pretty much in the title. According to C++ Reference, std::endl is actually a function. Looking at its declaration in <iostream>, this can be verified.

However, when you use std::endl, you don't use std::endl(). Instead, you use:

std::cout << "Foo" << std::endl;

In fact, if you use std::endl(), the compiler demands more parameters, as noted on the link above.

Would someone care to explain this? What is so special about std::endl? Can we implement functions that do not require any brackets when calling too?

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Although not a duplicate question, the answers here answer your question: 4842901. –  Charles Bailey Oct 2 '11 at 0:11
    
Thanks a lot for that link. It really fully explains it. :) –  Zeenobit Oct 2 '11 at 0:16

3 Answers 3

up vote 18 down vote accepted

std::endl is a function template declared (27.7.3.8):

template <class charT, class traits>
basic_ostream<charT,traits>& endl(basic_ostream<charT,traits>& os);

The reason that you can "stream" it to std::cout is that the basic_ostream class template has a member declared:

basic_ostream<charT,traits>& operator<<
    ( basic_ostream<charT,traits>& (*pf)(basic_ostream<charT,traits>&) );

which is defined to have the effect of returning pf(*this) (27.7.3.6.3).

std::endl without parentheses refers to a set of overload functions - all possible specializations of the function template, but used in a context where a function pointer of one particular type is acceptable (i.e. as an argument to operator<<), the correct specialization can be unambiguously deduced.

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Though it's a function [template], standard stream manipulators are designed to be sent to streams as function pointers (or functor object references). Inserting the result of a function call won't give you anything but the value that results from that function call.

This means that you stream the functor itself (f), rather than the result of calling it (f()).

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Note: My phone really needs a backtick key. –  Lightness Races in Orbit Oct 2 '11 at 0:32
    
Does that look better? –  Ernest Friedman-Hill Oct 2 '11 at 0:34
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std::endl isn't a class with an operator(); it's a function template. –  Charles Bailey Oct 2 '11 at 0:45
    
@Ernest: Thanks :) –  Lightness Races in Orbit Oct 2 '11 at 1:09

std::endl is an object of some type (not really important) that is supplied as an argument to operator<<( std::ostream &, decltype(std::endl)).

EDIT

Reading the other question would lead me to think that endl is a function template and that we most likely select the ostream& operator<<(ostream&(*)(ostream&)) member function overload.

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3  
std::endl isn't an object (in the C++ sense), it's a function template. –  Charles Bailey Oct 2 '11 at 0:15
    
... which is why there's no std::wendl. I'm not sure if that's a good thing in hindsight. –  MSalters Oct 2 '11 at 1:01
    
@MSalters: I'm not sure how that's a reason. –  Lightness Races in Orbit Oct 2 '11 at 1:09
    
@Tomalak : Well, there's '\n' and a distinct L'\n'. If you're thinking of endl as some object that's like '\n', you'd expect a wendl. –  MSalters Oct 2 '11 at 1:14
    
@MSalters: I agree! Which is why I don't see how that endl is able to be both is a reason that it does. –  Lightness Races in Orbit Oct 2 '11 at 11:17

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