45

Following on from my answer to this question, in both C++11 and C++14:

[C++11, C++14: 25.5/2]: The contents are the same as the Standard C library header <stdlib.h> with the following exceptions:

[C++11, C++14: 25.5/3]: The function signature:

bsearch(const void *, const void *, size_t, size_t,
        int (*)(const void *, const void *));

is replaced by the two declarations:

extern "C" void *bsearch(const void *key, const void *base,
                         size_t nmemb, size_t size,
                         int (*compar)(const void *, const void *));

extern "C++" void *bsearch(const void *key, const void *base,
                           size_t nmemb, size_t size,
                           int (*compar)(const void *, const void *));

both of which have the same behavior as the original declaration.

However,

[C++11, C++14: 7.5/5]: If two declarations declare functions with the same name and parameter-type-list (8.3.5) to be members of the same namespace or declare objects with the same name to be members of the same namespace and the declarations give the names different language linkages, the program is ill-formed; no diagnostic is required if the declarations appear in different translation units. [..]

Is this a defect?

  • The answer hinges on those two functions having the same arguments or not. If linkage is part of the type, compar has a different type in both examples... though if it is, I want some easy way to declare it for types, and I'm not aware of any. – Deduplicator Oct 2 '14 at 12:57
  • @Deduplicator In standard C++, you would be able to make use of template aliases. template <typename R, typename...T> using CxxFunc = R(T...); extern "C" { template <typename R, typename...T> using CFunc = R(T...); }. Declare compar as CFunc<int, const void *, const void *> and CxxFunc<...>. Most implementations reject it because they disallow templates in extern "C" blocks, but it's perfectly valid. The restriction is that a template cannot have extern "C" linkage, not that a template cannot appear in an extern "C" block. A template alias has no language linkage, so it's fine. – user743382 Oct 2 '14 at 13:29
  • 1
    It's the same way in C++98 25.4/3 (and 25.4/4 for qsort) – Cubbi Oct 3 '14 at 1:10
49

But the parameter types list are not the same. In one, compar is a pointer to a function with "C" language linkage, in the other one, it's a pointer to a function with "C++" language linkage.

C++11, 7.5 specifies:

1 ... Two function types with different language linkages are distinct types even if they are otherwise identical.

4 In a linkage-specification, the specified language linkage applies to the function types of all function declarators, function names with external linkage, and variable names with external linkage declared within the linkage-specification. [ Example:

extern "C" void f1(void(*pf)(int));
// the name f1 and its function type have C language
// linkage; pf is a pointer to a C function

The seeming inconsistency between 7.5/1 and 7.5/5 is solved when realising that 1 talks about function types, while 5 addresses function names.

  • 4
    Seems neither clang++ nor g++ regard them as different though. coliru.stacked-crooked.com/a/ceb69c605e32832d – Deduplicator Oct 2 '14 at 13:04
  • 3
    Aha!​​​​​​​​​​​ – Lightness Races with Monica Oct 2 '14 at 13:04
  • 5
    Well, they have no other choice if they fail to differentiate types on linkage. So, a bug and making the most of it. – Deduplicator Oct 2 '14 at 13:08
  • 1
    @Yakk Failing to remember function type language linkage is a definite conformance issue, no question about that. And yes, when you take a pointer to any standard library function, you must not assume any particular language linkage. You might get a function with C linkage, or a function with C++ linkage, and the only way you can use that is in contexts where either would work (decltype, auto, or deduced template arguments) – user743382 Oct 2 '14 at 13:56
  • 4
    @Deduplicator gcc.gnu.org/bugzilla/show_bug.cgi?id=2316 – dyp Oct 2 '14 at 15:25

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