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Code:

#include <iostream>

void out()
{
}

template<typename T, typename... Args>
void out(T value, Args... args)
{
    std::cout << value;
    out(args...);
}

int main()
{
    out("12345", "  ", 5, "\n"); // OK
    out(std::endl);              // compilation error
    return 0;
}

Build errors:

g++ -O0 -g3 -Wall -c -fmessage-length=0 -std=c++11 -pthread -MMD -MP -MF"main.d" -MT"main.d" -o "main.o" "../main.cpp"
../main.cpp: In function ‘int main()’:
../main.cpp:17:15: error: no matching function for call to ‘out(<unresolved overloaded function type>)’
../main.cpp:17:15: note: candidates are:
../main.cpp:3:6: note: void out()
../main.cpp:3:6: note:   candidate expects 0 arguments, 1 provided
../main.cpp:8:6: note: template<class T, class ... Args> void out(T, Args ...)
../main.cpp:8:6: note:   template argument deduction/substitution failed:
../main.cpp:17:15: note:   couldn't deduce template parameter ‘T’

So, everything is OK except std::endl. How can I fix this (except of using "\n")?

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marked as duplicate by legends2k, Tom Tanner, kingkero, zzlalani, Stephane Rolland Jan 2 '14 at 13:27

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
out(&std::endl<char, std::char_traits<char>>); –  0x499602D2 Jan 2 '14 at 13:33

1 Answer 1

up vote 12 down vote accepted

std::endl is an overloaded function, (in many STL implementations, a template) and the compiler has no info about what to choose from.

Just cast it as static_cast<std::ostream&(*)(std::ostream&)>(std::endl)

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3  
The point is actually that it's a template, not that it's overloaded. –  jogojapan Jan 2 '14 at 9:23
    
@jogojapan: a template is technically a "generator of overloads": there are as many std::endl as stream classes. Whether this is obtained by declaring some of them (for ostream, and wostream for example) or a template (on ostream<T,Traits>) is an implementation detail that doesn't change the substrance about how an overload is choose. –  Emilio Garavaglia Jan 2 '14 at 9:29
    
For the effectiveness of your solution it makes no difference, but template instantiation and overload resolution are two very different mechanisms. Calling a template a generator of overloads is misleading. –  jogojapan Jan 2 '14 at 9:33
1  
The way you describe this, a template generates a set of functions and then applies overload resolution to choose one. That is incorrect, for two reasons: a) In the case of simple overload resolution, the set of functions to choose from is predefined, and implicit type conversion is the only mechanism the compiler can use to find a match between the given arguments and the function it chooses, whereas in the case of template instantiation, a new instance of the function can be generated to fit the given arguments exactly. This has wide implications in ambiguous situations. b) In the case of –  jogojapan Jan 2 '14 at 9:50
1  
If std::endl is a set of overloads, the library implementation has a bug since it's unusable with custom character traits (or custom character types) –  Cubbi Jan 2 '14 at 15:09

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