14

The __func__ C++11 local predefined variable of a function does not compile in Visual Studio 2012 Professional (with Update 1 installed) with the default built-in Visual Studio 2012 (v110) compiler or the November 2012 CTP (v120_CTP_Nov2012) compiler. However, the editor does not complain with any red squiggly underline under __func__. __func__ is supposed to give the name of its containing function, in this case foo, but this neither compiles nor make the editor complain:

#include <iostream>
using namespace std;

void foo()
{
    cout << __func__ << endl;
    return;
}

int main()
{
    foo();
    return 0;
}

It gives the compiler error:

error C2065: '__func__' : undeclared identifier

Am I missing something in my code or will this work in a future update?

2
  • 1
    Here it says the support is "partial". Not sure what's meant by that.
    – Andy Prowl
    Feb 28, 2013 at 2:27
  • 7
    "However, the editor does not complain with any red squiggly underline under __func__." -- Never rely on red squiggles to tell you if your code will compile or not. IntelliSense and the actual compiler front-end are developed by different people. If in doubt, the compiler is correct, because that's what creates your binaries.
    – Xeo
    Feb 28, 2013 at 9:25

2 Answers 2

14

MSVC's C99 support is quite poor in general; your best bet might be to use the MSVC-specific __FUNCTION__ macro. See this question for details: Cross-platform defining #define for macros __FUNCTION__ and __func__

Update (2015-06-22): Visual Studio 2015 supports __func__, see the blog post

-3

Compile the program using C++11 standards as __func__ is C++11 feature.

So, compile it like:

g++ -std=c++11 foo.cpp -o foo
1
  • The OP isn't using GCC. MSVC doesn't support any -std=c++11 command-line option. Please take a bit more time reading the question before answering, this could have been a good answer to a different question, just not to this question.
    – user743382
    Jun 7, 2015 at 10:08

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