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Am i really right that C standards guarantees that _ _ func _ _ value is always the name of the enclosing function, while in C++ (i mean C++11, of course) it can be any implementation-defined string (for example, if we have function foo without parameters, we can get something like "Some string fdgdg asdfs fsdf sd")?

ISO/IEC 9899:2011

6.4.2.2 Predefined identifiers

Semantics

1 The identifier _ _ func _ _ shall be implicitly declared by the translator as if, immediately following the opening brace of each function definition, the declaration static const char _ func _ [] = "function-name"; appeared, where function-name is the name of the lexically-enclosing function.

ISO/IEC 14882:2011

8.4.1 In general [dcl.fct.def.general]

8 The function-local predefined variable _ _ func _ _ is defined as if a definition of the form static const char _ _ func _ _ [] = "function-name "; had been provided, where function-name is an implementation-defined string. It is unspecified whether such a variable has an address distinct from that of any other object in the program.

And what's the reason for this? Return something like "Unknown" if we can't receive current function name?

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I guess it's to allow for different naming schemes of C++ functions (many cases of "strange" names). –  jpalecek Jan 4 '13 at 20:13
1  
Standards are vague to allow implementers maximum flexibility, for example C++ name mangling. I know your question is about the standard, but you should check out some non-portable "nice-looking representation of the current function", for example GCC's __PRETTY_FUNCTION__. You can add ifdefs to use the portable version in other cases. –  asveikau Jan 4 '13 at 20:18

3 Answers 3

up vote 14 down vote accepted

What's the "name" of a function in C++?

  • Is it qualified by its namespace?
  • Are overloaded functions named by their parameter types?
  • What about return type, which isn't used for overloading?
  • What happens in function templates?
  • Is calling convention part of the name?
  • Should 'const' and 'volatile' be written before or after the type name?

An "implementation-defined string" gives the compiler some flexibility in how it stuffs all this information into the string. And it sends you, the programmer, a message that you shouldn't try to perform string comparison or parsing, or in fact do anything except log the value, if you want portability.

(You can't even compare these values to each other, because there's no guarantee they're unique. It seems possible that all overloads could yield the same string. So using it for compiling profiler statistics is ill-advised.)

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1  
You could add lambdas, and operator overloads, to your list... –  Oliver Charlesworth Jan 4 '13 at 20:16
    
@Oli: "lexically-enclosing" skips over lambdas, doesn't it? Of course, the C Standard considers that, C++ doesn't. –  Ben Voigt Jan 4 '13 at 20:17
    
const and volatile must be on the opposite as the return type, or else there's ambiguities –  Mooing Duck Jan 4 '13 at 20:21
1  
@MooingDuck: What I meant was void func(const char*) vs void func(char const*). –  Ben Voigt Jan 4 '13 at 20:28
2  
@NikitaTrophimov: Absolutely yes. And your compiler probably comes with a tool to turn that into something human-recognizable as foo in some fashion. But the Standard doesn't require it to do so. –  Ben Voigt Jan 4 '13 at 20:29

I suspect this is to permit the C++ compiler to use the mangled name in __func__.

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Because C++ permits the overloading of functions based on the type of their parameters, and because functions can be placed in non-global scope (both of which are not allowed in Standard C), the simple name of the lexically-enclosing function is not sufficient to identify it.

For example, consider:

class A {
public:
    A() {
        std::cout << __func__ << std::endl;
    }
    void funca() {
        std::cout << __func__ << std::endl;
    }
};

int main() {
    A a;
    a.funca();
}

What should it print?

GCC will produce a program that prints "A" and "funca", but the standard permits it to print "A::A" and "a::funca," which the C standard would not allow.

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