Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Consider

namespace foo
{
  namespace bar
  {
    void f();
    void f(int);
  }
}

In foo one can make all foo::bar::f accessible as foo::f via

using bar::f; // in foo

Is there any technical reason for the nonexistence of a syntax that makes all foo::bar::f accessible as foo::g like

using bar::f as g; 
// or in line with using declarations for types:
using g = bar::f;

or has something like this even been considered but rejected? (Why?)

share|improve this question
5  
Workaround: auto g = [](auto ...args){ foo::bar::f(std::forward<decltype(args)>(args)...); }; – Kerrek SB Jan 11 at 11:26
    
@KerrekSB: Introducing a g which matches possibly far more than any f. – Pixelchemist Jan 11 at 11:32
1  
@Pixelchemist Well, one can employ SFINAE to circumvent that. – Columbo Jan 11 at 11:33
    
@Pixelchemist: Yes, it would produce a quite different overload set. – Kerrek SB Jan 11 at 11:37
1  
The background to the question is the need to push a function into a nested namespace in order to make using std::f; available for trailing return types and constexpr specification. I'd like to drag those out of the enclosing namespace under a different name since the function they are mimicing has the same name in std. – Pixelchemist Jan 11 at 12:50
up vote 23 down vote accepted

See N1489:

It is possible to generalize the notion of alias beyond types and namespaces to functions, variables, etc. We do not see sufficient benefits from doing this and can imagine serious overuse leading to confusion about which functions and variables are used. Consequently, we do not propose the generalizations mentioned in this section. Furthermore, we do not plan to work further on these generalizations unless someone comes up with examples that indicate significant usefulness.

share|improve this answer
    
In other words: using is intended for just types. The technical reason is fear of abuse/overuse. – einpoklum Jan 11 at 20:17
    
@einpoklum There is no technical reason (i.e. obstacle). It just wouldn't constitute an improvement – Columbo Jan 11 at 20:32

I can't think of any technical reasons for this not existing, I think it's a question of suitable (non-clashing) syntax and a significantly important use-case.

There is currently a standards proposal to add function aliases to the language in order to support opaque typedefs. According to that paper, the feature was previously considered in the early 90s, but rejected:

Stroustrup described [function aliasing] in his D&E book as a “renaming” feature in the context of resolving name clashes due to multiple inheritance: “The semantics of this concept are simple, and the implementation is trivial; the problem seems to be to find a suitable syntax.” He states that such a proposal “was presented at the standards meeting in Seattle in 1990” and that, although there was initially “a massive majority,” the feature was ultimately not adopted: “At the next meeting, . . . we agreed that such name clashes were unlikely to be common enough to warrant a separate language feature.”

The syntax proposed is as follows:

template< class RA, class R = std::less<> >
void
sort( RA b, RA const e, R lt = {} )
{
    using operator<() = lt; // operator < has type R
    // Remaining code in this scope uses infix < in place of calls to lt().
    // (A future proposal may suggest synthesis of other relational
    // operators from an operator< declared in this fashion.)
}

Perhaps someone who attended recent standards meetings could weigh in on what the reaction to the proposal was.

share|improve this answer
1  
isocpp.org/blog/2015/11/kona-standards-meeting-trip-report "Opaque types (P0109R0). Rejected for being far too complex for the problem solved." – bolov Jan 18 at 8:25

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.