19

Compiling with gcc 4.4.2 and WinXP Visual Studio C++ 2008

#if defined ( WIN32 )
#define __FUNCTION__ __func__
#endif

As I want to use the macro to display the function name. I have done the above so I can cross-platform, and use the same func when compiling on linux or windows.

However, when I am compiling on WinXP I get the following error:

__func__ undeclared identifier

Can I not #define a macro like this?

Many thanks for any suggestions,

  • 3
    You should use #if defined(_MSC_VER) rather than #if defined (_WIN32). The question is not which OS you are using. The question is which compiler you are using. – Dale Wilson Jan 17 '15 at 17:54
25

It looks like you have your #define backward. If you want to use __func__ on both platforms, and WIN32 has __FUNCTION__ but not __func__, you need to do this instead:

#if defined ( WIN32 )
#define __func__ __FUNCTION__
#endif

There may be a better way to know whether you need to define __func__ or not, but this quick hack should do the trick.

Remember, on compilers that support the __FUNCTION__ and __func__ keywords, they're not macros so you can't do the following (since #ifndef __func__ isn't valid):

#ifndef __func__
#define __func__ __FUNCTION__
#endif

From the C99 spec:

6.4.2.2 Predefined identifiers

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.

  • Thanks that worked. But has got me thinking. When you say that FUNCTION and func are not macros. Why can't you define in a #define. Also how can we know if it is a macro or keyword? Many thanks. – ant2009 Feb 18 '10 at 2:09
  • 1
    That's a good question -- I guess you have to go to the ANSI spec (or Google) to find out. In this case, __func__ is a "predefined identifier" and based on the description, acts like a static const variable defined in the function. In my example above, the part that won't work is #ifndef __func__ since __func__ isn't a defined macro visible to the macro pre-processor. – tomlogic Feb 18 '10 at 19:51
6

The __FUNCTION__ macro is pre-defined in the MSVC compiler. You'll need to make it look like this:

#ifndef _MSC_VER
#define __FUNCTION__ __func__
#endif

Or the other way around, if you prefer:

#ifdef _MSC_VER
#define __func__ __FUNCTION__
#endif
  • I tried that, and still got the same error. I also tried this as well in the condition (MSVC), and got the same error. Any more suggestions. Thanks. – ant2009 Feb 17 '10 at 16:04
  • Maybe its me, but when I try those 2 I get the error: "#if[n]def expected an identifer". Thanks. – ant2009 Feb 17 '10 at 16:13
  • @robUK - oops, the original snippet got me in trouble. Fixed. – Hans Passant Feb 17 '10 at 16:30
  • Thanks, I should have seen the brackets. I guess I am too used to using the if defined () with the brackets. – ant2009 Feb 18 '10 at 2:01
2

You should be able to use __func__ without any explicit macros in any compiler that supports C99.

  • 1
    Yes, I can use that in c89/c99. However, visual studio 2008 uses FUNCTION. I was trying #define so that I can use the same macro for both windows and linux. Thanks. – ant2009 Feb 17 '10 at 15:55
1

You can of course #define such a macro. Every instance of FUNCTION is then replaced by __func__. However, obviosuly your compiler doesn't know __func__. I believe VC knows __FUNCTION__, so

#if defined ( WIN32 )
#  define __func__ __FUNCTION__
#endif

might do.

  • Sorry, but that didn't work either. Thanks. – ant2009 Feb 17 '10 at 16:06
  • __FUNCTION__ isn't a macro, so you can't have a #ifdef on it. As with __func__, it's either a keyword for the compiler or it isn't. – tomlogic Feb 17 '10 at 16:24
  • @tomlogic: Yes, you're right. I fixed it. – sbi Feb 17 '10 at 18:10

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.