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I get this ERROR: "error: overloaded function with no contextual type information".

cout << (i % 5 == 0) ? endl : "";

Is what I am doing possible; am I just doing it wrong, or do I have to overload the << operator?

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4  
Why not just if (i%5==0) cout << endl;? –  Georg Fritzsche Apr 20 '11 at 6:43
2  
Because, he want to use a ternary operator. –  Akshinthala సాయి కళ్యాణ్ Apr 20 '11 at 6:46
1  
@kalyan: That's begging the question. "How can I do X?" "Why X?" "Because I want X". Doesn't answer the question: Why use a conditional expression here? It's ugly, overly-complicated, and won't ever actually work. –  GManNickG Apr 20 '11 at 6:50
2  
@Tony: Adding "" to cout doesn't have any relevant effect, so why do it at all in this case? –  Georg Fritzsche Apr 20 '11 at 7:09
1  
@Tony: What do other cases have to do with this case? I'm saying this use is ugly and over-complicated. Consider this expression verses Georg's: which is easier to read? –  GManNickG Apr 20 '11 at 7:10

5 Answers 5

It worn't work that way (even if you fix the the precedence error). You have two problems here, the second more severe than the first.

The first problem is that std::endl is a template. It is a function template. A template has to be specialized. In order to specialize that template the compiler has to know (to deduce) the template arguments. When you do

std::cout << std::endl;

the specific function pointer type expected by operator << is what the compiler uses to figure out how to specialize the std::endl template.

However in your example you essentially "detached" the std::endl from operator << by moving the std::endl into an ?: subexpression. Now the compiler has to compile this expression first

(i % 5 == 0) ? endl : ""

This expression cannot be compiled since the compiler does not know how to specialize the std::endl template. There's no way to deduce the template arguments without any context.

For example, this simple C++ program

#include <iostream>
int main() {
   std::endl;
}

will also fail to compile for the very same reason: without context the compiler does not know how to instantiate std::endl.

You can "help" the compiler to resolve the problem by specifying the template arguments explicitly

(i % 5 == 0) ? endl<char, char_traits<char> > : "";

This will explicitly tell compiler how to instantiate endl. The original error message you were getting will go away.

However, this will immediately reveal the second, more serious problem with that expression: specialized endl is a function (which decays to a function pointer in this context) while "" is a string literal. You cannot mix a function pointer and a string literal in a ?: operator like that. These types are incompatible. They cannot be used together as the 2nd and the 3rd operand of ternary ?:. The compiler will issue a different error message about this second problem.

So, basically, that latest problem you have here is as if you tried to do something like

cout << (i % 5 == 0 ? 10 : "Hi!");

This will not compile for the very same reason your expression will not compile.

So, the expression you are trying to write cannot be written that way. Rewrite it without trying to use the ?: operator.


As support, see the following transcript:

$ cat qq.cpp
#include <iostream>
using namespace std;
int main (void) {
    int i = 5;
    cout << ((i % 5 == 0) ? endl : "");
    return 0;
}

$ g++ -o qq qq.cpp
qq.cpp: In function 'int main()':
qq.cpp:5: error: overloaded function with no contextual type information
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2  
+1 And if it were explicitly selected, then it would still fail because a function pointer and string literal have nothing in common. –  GManNickG Apr 20 '11 at 6:52
    
covers a lot of ground I lacked patience for. +1. –  Tony D Apr 20 '11 at 7:04

The two arguments to the ? operator must be of the same type (at least after potential promotions, implicit constructors, casting operators etc. kick in). std::endl is actually a function template (details below) which the stream then invokes to affect its state: it is not a string literal like "".

So, you can't do this exactly, but you can probably get the behaviour you actually want - consider whether...

expr ? "\n" : ""

...meets your needs - it is similar but doesn't flush the stream (IMHO, std::cout should generally be flushed as infrequently as possible - especially by low level library code - as that provides better performance). (It's also more flexible, e.g. expr ? "whatever\n" : "" / can't append endl to a string literal.)

E.g. for GCC 4.5.2, endl is:

template<typename _CharT, typename _Traits>
    inline basic_ostream<_CharT, _Traits>& 
    endl(basic_ostream<_CharT, _Traits>& __os)
    { return flush(__os.put(__os.widen('\n'))); }
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I upvoted AndreyT for his explanations, but +1 for actually providing a solution :) –  Matthieu M. Apr 20 '11 at 9:52
  • The two alternatives of ?: must have the same type or one be convertible to the other.

  • endl is a template and the context doesn't give enough information for which to choose. So it hasn't even a type. (Thats is your error message).

  • As other already said, the binding isn't the one you expect.

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It may well be possible (I doubt it myself). However, it's also silly, effectively as silly as:

cout << "";

What you should be doing in this case is a simple:

if (i % 5 == 0) cout << endl;

You shouldn't use ternary just for the sake of using it. Actually you shouldn't use any language feature just for the sake of using it. I don't write code like:

if (1) { doSomething(); }

just because I can. A simple doSomething(); is much better.

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Operator << has higher priority than ?:. Try this:

cout << ((i % 5 == 0) ? endl : "");
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4  
Did you try it yourself? Will it compile? –  Tony D Apr 20 '11 at 6:47
    
No that doesn't work. See my addition to AndreyT's answer. –  paxdiablo Apr 20 '11 at 6:58

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