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Why don't symbols (functions and variables) that are defined in an anonymous namespace have internal linkage as with static keyword? If a function is not visible/accessible outside, what is the reason to have external linkage?

  • They don't have external linkeage, but internal. What is your source? – Luchian Grigore May 31 '12 at 11:45
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    The C++03 standard, probably. – Steve Jessop May 31 '12 at 11:47
  • @SteveJessop anonymous namespaces exist in C++03 too, and give internal linkeage. – Luchian Grigore May 31 '12 at 11:48
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    @Luchian: that's not true. Compare 3.5/4 between C++03 and C++11. – Steve Jessop May 31 '12 at 11:54
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In C++03, names with internal linkage were forbidden from being used as template arguments[*]. So, names of most things in unnamed namespaces had external linkage to allow their use with templates. You could explicitly give a name internal linkage in an unnamed namespace by declaring it static, same as in a named or global namespace.

Both things changed in C++11 -- names in unnamed namespaces have internal linkage by default (3.5/4), and names with internal linkage can be used as template arguments.

[*] for types, it must have external linkage. For objects and functions, it must have external linkage if its address is used as a template argument, although it's OK for example to use as a template argument the value of a const integer with internal linkage.

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    +1, Please, Can you add to the answer the paragraph number in the C++11 standard that say that the internal linkage is by default? – Klaim Jun 20 '12 at 16:26

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