82
class C {
  using namespace std;  // error
};
namespace N {
  using namespace std; // ok
}
int main () {
  using namespace std; // ok
}

Edit: Want to know motivation behind it.

  • 1
    @pst: C# does not have anything like using namespace. C# allows something similar, but at file scope only. C++'s using namespace allows you to incorporate one namespace into another. – Billy ONeal Jun 13 '11 at 5:10
  • 2
    Duplicate of this question? – greatwolf Jun 13 '11 at 5:39
  • @ZachSaw, I understand your concern. Have tried to close the Qn based on the relevance. Since this post contains more objective answer & reference to the standard, I have kept it open. In past, many of my older Qn got closed by newer Qn .. sometimes by me sometimes by others. Please flag to the diamond Mods, should you feel that this decision was not appropriate. No hard feelings. :-) – iammilind Mar 2 '17 at 4:59
  • @iammilind couldn't care less TBH. SO is a mess these days. But marking a post which begins with "I don't know exactly" as answer really contains "more objective answer & reference to the standard". Haha. – Zach Saw Mar 2 '17 at 5:46
  • @ZachSaw, I was not just talking about the accepted answer, but the overall post. Yes it's objective but the standard quote is contained in this answer. It starts with "I don't know", because even in standard, it is not justified why "using namespace" is not allowed inside class/struct. It's just simply not allowed. But the accepted answer does discuss a very logical rationale to disallow it. i.e. where to consider Hello::World and where to consider World. Hope that clears the doubt. – iammilind Mar 2 '17 at 5:59
33

I don't know exactly, but my guess is that allowing this at class scope could cause confusion:

namespace Hello
{
    typedef int World;
}

class Blah
{
    using namespace Hello;
public:
    World DoSomething();
}

//Should this be just World or Hello::World ?
World Blah::DoSomething()
{
    //Is the using namespace valid in here?
}

Since there is no obvious way of doing this, the standard just says you can't.

Now, the reason this is less confusing when we're talking namespace scopes:

namespace Hello
{
    typedef int World;
}

namespace Other
{
    using namespace Hello;
    World DoSomething();
}

//We are outside of any namespace, so we have to fully qualify everything. Therefore either of these are correct:

//Hello was imported into Other, so everything that was in Hello is also in Other. Therefore this is okay:
Other::World Other::DoSomething()
{
    //We're outside of a namespace; obviously the using namespace doesn't apply here.
    //EDIT: Apparently I was wrong about that... see comments. 
}

//The original type was Hello::World, so this is okay too.
Hello::World Other::DoSomething()
{
    //Ditto
}

namespace Other
{
    //namespace Hello has been imported into Other, and we are inside Other, so therefore we never need to qualify anything from Hello.
    //Therefore this is unambiguiously right
    World DoSomething()
    {
        //We're inside the namespace, obviously the using namespace does apply here.
    }
}
|improve this answer|||||
  • 5
    +1, I thought of this reason, but then same thing is applicable for using namespace Hello; inside other namespace also (and declaring extern function inside it). – iammilind Jun 13 '11 at 5:12
  • 9
    I don't think its confusing. C++ isn't about guesswork. If it were allowed, then the C++ ISO committee would have specified in the language specification. Then you wouldn't say its confusing. Otherwise one might say even this is confusing : ideone.com/npOeD ... but then the rule for such coding is specified in the spec. – Nawaz Jun 13 '11 at 5:19
  • 1
    @Nawaz: Most users of the language. I never said C++ was about guesswork. I am saying that when the spec is designed, it's designed with what behavior most programmers will expect ahead of time. And the rules on paper often are confusing -- the standard attempts to be unambiguous but it does not always succeed. – Billy ONeal Jun 13 '11 at 5:41
  • 5
    On the first example, it should be: Hello::World Blah::DoSomething() or Blah::World Blah::DoSomething() (if it was allowed), the return type of a member function definition is not considered to be in the scope of the class in the language, so it has to be qualified. Consider the valid example of replacing the using with a typedef Hello::World World; at class scope. So there should be no surprises there. – David Rodríguez - dribeas Jun 13 '11 at 7:20
  • 1
    (Not relevant to the discussion at hand, but your typedef is backwards: it should be typedef int World;) – Adam Rosenfield Jun 13 '11 at 19:07
19

Because the C++ standard explicitly forbids it. From C++03 §7.3.4 [namespace.udir]:

using-directive:
    using namespace ::opt nested-name-specifieropt namespace-name ;

A using-directive shall not appear in class scope, but may appear in namespace scope or in block scope. [Note: when looking up a namespace-name in a using-directive, only namespace names are considered, see 3.4.6. ]

Why does the C++ standard forbid it? I don't know, ask a member of the ISO committee that approved the language standard.

|improve this answer|||||
  • 30
    Yet another technically correct but useless answer; the worst kind. 1) more people than just the committee know the answer. 2) committee members participate in SO 3) if you don't know the answer (given the spirit of the question) why answer at all? – Catskul Aug 3 '18 at 17:36
  • 3
    @Catskul: it's not a useless answer. It's very useful to know that the standard explicitly addresses this and forbids it. It's also ironic that the most upvoted answer starts with "I don't know exactly". Also, the "standard forbids it" is not the same as "it isn't allowed because the compiler doesn't allow it", because the latter case would not answer follow-up questions like: is it a problem with my compiler? is the compiler not standard-compliant? is it a side effect of some other things that I'm not aware of? etc. – antonone Oct 15 '19 at 7:33
8

I believe that the rationale is that it would probably be confusing. Currently, while processing a class level identifier, lookup will first search in the class scope and then in the enclosing namespace. Allowing the using namespace at class level would have quite some side effects on how the lookup is now performed. In particular, it would have to be performed sometime between checking that particular class scope and checking the enclosing namespace. That is: 1) merge the class level and used namespace level lookups, 2) lookup the used namespace after the class scope but before any other class scope, 3) lookup the used namespace right before the enclosing namespace. 4) lookup merged with the enclosing namespace.

  1. This would make a big difference, where an identifier at class level would shadow any identifier in the enclosing namespace, but it would not shadow a used namespace. The effect would be strange, in that access to the used namespace from a class in a different namespace and from the same namespace would differ:

.

namespace A {
   void foo() {}
   struct B {
      struct foo {};
      void f() {
         foo();      // value initialize a A::B::foo object (current behavior)
      }
   };
}
struct C {
   using namespace A;
   struct foo {};
   void f() {
      foo();         // call A::foo
   }
};
  1. Lookup right after this class scope. This would have the strange effect of shadowing base classes' members. The current lookup does not mix class and namespace level lookups, and when performing class lookup it will go all the way to the base classes before considering the enclosing namespace. The behavior would be surprising in that it would not consider the namespace in a similar level to the enclosing namespace. Again, the used namespace would be prioritized over the enclosing namespace.

.

namespace A {
   void foo() {}
}
void bar() {}
struct base {
   void foo();
   void bar();
};
struct test : base {
   using namespace A;
   void f() {
      foo();           // A::foo()
      bar();           // base::bar()
   }
};
  1. Lookup right before the enclosing namespace. The problem with this approach is again that it would be surprising to many. Consider that the namespace is defined in a different translation unit, so that the following code cannot be seen all at once:

.

namespace A {
   void foo( int ) { std::cout << "int"; }
}
void foo( double ) { std::cout << "double"; }
struct test {
   using namespace A;
   void f() {
      foo( 5.0 );          // would print "int" if A is checked *before* the
                           // enclosing namespace
   }
};
  1. Merge with the enclosing namespace. This would have the exact same effect that applying the using declaration at the namespace level. It would not add any new value to that, but will on the other hand complicate lookup for compiler implementors. Namespace identifier lookup is now independent from where in the code the lookup is triggered. When inside a class, if lookup does not find the identifier at class scope it will fall back to namespace lookup, but that is exactly the same namespace lookup that is used in a function definition, there is no need to maintain new state. When the using declaration is found at namespace level, the contents of the used namespace are brought into that namespace for all lookups involving the namespace. If using namespace was allowed at class level, there would be different outcomes for namespace lookup of the exact same namespace depending on where the lookup was triggered from, and that would make the implementation of the lookup much more complex for no additional value.

Anyway, my recommendation is not to employ the using namespace declaration at all. It makes code simpler to reason with without having to keep all namespaces' contents in mind.

|improve this answer|||||
  • 1
    I agree that using tends to create implicit oddities. But some libraries may get designed around the fact that using exists. By purposedly declaring things in deep nested long namespaces. E.g. glm does that, and uses multiple tricks to activate / present features when the client use using. – v.oddou Jun 14 '16 at 8:01
  • even right in the STL using namespace std::placeholders . c.f en.cppreference.com/w/cpp/utility/functional/bind – v.oddou Jun 20 '16 at 9:59
  • @v.oddou: namespace ph = std::placeholders; – David Rodríguez - dribeas Jun 20 '16 at 14:20
-1

I think it's a defect of the language. You may use workaround below. Keeping in mind this workaround, it is easy to suggest rules of names conflicts resolution for the case when the language will be changed.

namespace Hello
{
    typedef int World;
}
// surround the class (where we want to use namespace Hello)
// by auxiliary namespace (but don't use anonymous namespaces in h-files)
namespace Blah_namesp {
using namespace Hello;

class Blah
{
public:
    World DoSomething1();
    World DoSomething2();
    World DoSomething3();
};

World Blah::DoSomething1()
{
}

} // namespace Blah_namesp

// "extract" class from auxiliary namespace
using Blah_namesp::Blah;

Hello::World Blah::DoSomething2()
{
}
auto Blah::DoSomething3() -> World
{
}
|improve this answer|||||
  • Can you please add some explanation ? – Kishan Bharda Dec 20 '19 at 9:36
  • Yes, I have added some comments – naprimeroleg Dec 20 '19 at 10:12

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