Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

According to this answer, namespace-scoped static variables were undeprecated in C++11. That is, they were deprecated in C++03, because anonymous namespaces were considered better. But C++11 undeprecated them.

Why? N3296 lists the reasoning for this as:

The use of static in namespace scope should not be deprecated. Anonymous namespaces are not a sufficient replacement for the functionality.

This was apparently accepted by the committee. Why? What is it about anonymous namespaces that does not completely replace this functionality?

I would prefer answers that had some documentation or paper trail of a standards committee discussion.

share|improve this question
    
Not an actual paper trail, but from the duplicate of the linked question, there are notes from the November 2010 standard committee meeting stating this feature will never be removed from the language. –  André Caron Dec 10 '11 at 22:19

3 Answers 3

up vote 17 down vote accepted

This is a more in-depth explanation.

Although 7.3.1.1 [namespace.unnamed] states that the use of the static keyword for declaring variables in namespace scope is deprecated because the unnamed namespace provides a superior alternative, it is unlikely that the feature will be removed at any point in the foreseeable future, especially in light of C compatibility concerns. The Committee should consider removing the deprecation.

One issue I know is that anonymous namespaces can't specialize templates outside of the namespace block. This is why inline namespace was introduced, although static works too. Also, static plays much nice with macros.

share|improve this answer
1  
+1 for the template specialization and the inline namespace explanation. –  emsr Dec 11 '11 at 15:48
    
A template specialization depending on static would violate the ODR because resolution of each template-id (given a complete template argument list) is required to be independent of the point of instantiation, including points in different TUs. –  Potatoswatter Feb 8 at 12:16

With unnamed namespaces you cannot give a variable internal linkage within the same namespace you are currently in. With static, you can. For example, the following use of unnamed namespaces does not give a global variable internal linkage

namespace { int a; } 
int a; // oops, no error!

Had the first a been declared as static, the attempt to declare a second a at global scope would have been an error immediately because the first a already exists at global scope.

So to achieve their job of making identity unique, unnamed namespaces place entities into different namespaces (in addition to affecting their linkage). static only affects the linkage, leaving the namespace of which functions and variables are a member of unchanged.

share|improve this answer
1  
Can't you prevent that from happening with a using <this-namespace>::a; declaration? –  Potatoswatter Dec 11 '11 at 9:19

The user-in-the-trenches answer would be that names in unnamed namespaces (the standard's term for anonymous namespaces) have external linkage and names declared static at namespace level have internal linkage.

Internal linkage has two advantages, only one of which unnamed namespaces provide, too:

  1. They make names local to the translation-unit. I can define the same function fun differently in different translation units without violating the One-Definition-Rule. This property is shared by names in the unnamed namespace, by adorning them with a unique namespace name.

  2. They prevent the name from entering into the global symbol table. This is strictly an optimisation, but an important one in practice. This property is not shared by names in the unnamed namespace.

So, in general, a program that uses static for its translation-unit-local namespace-level functions generates less work for the linker and might execute faster than the equivalent program using the unnamed namespace.

That said, you need to use the unnamed namespace for types that you want to pass as template arguments, because template arguments must have external linkage.

So I usually do the follwing: define free functions as static, but put types into the unnamed namespace.

share|improve this answer
    
Thanks for the explanation and sharing your usual practice! I think it could be treated as the one of the "best practices". –  Asuka Kenji - Siu Ching Pong - Jul 31 at 12:48
    
I know that cppreference.com is not the standard, but I've not known them to be wrong, and at en.cppreference.com/w/cpp/language/namespace#Unnamed_namespaces they say unnamed namespaces have internal linkage. So: internal or external? –  davidbak Sep 17 at 2:57

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.