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I have the following code that uses a macro with arguments in an if defined preprocessor expression:

preprocessor-games.c:

#define EXAMPLE_MACRO(arg1,arg2) (\
                               arg1 > arg2)

#if defined(EXAMPLE_MACRO)
#endif

I preprocess it with GCC and it works without errors:

$ gcc -E -undef -traditional -x assembler-with-cpp preprocessor-games.c -o preprocessed-games.c
$ echo $?
0
$

And it results in acceptable output:

# 1 "preprocessor-games.c"
# 1 "<built-in>"
# 1 "<command-line>"
# 1 "/usr/include/stdc-predef.h" 1 3 4

# 17 "/usr/include/stdc-predef.h" 3 4










































# 1 "<command-line>" 2
# 1 "preprocessor-games.c"

I preprocess it with alternative preprocessor - cpphs (intended as close enough emulation of GCC's preprocesor to work for Haskell) - and I get an empty output file and an error message:

$ cpphs --cpp -E -undef -traditional -x assembler-with-cpp preprocessor-games.c -o preprocessed-games.c
cpphs: macro EXAMPLE_MACRO expected 2 arguments, but was given 0
$ echo $?
1
$

Is cpphs wrong or is the behavior of macros with arguments in if defined expressions undefined?

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  • @Mat good point. That's an incorrect statement. It's meant to be close enough to GCC's preprocessor to work for Haskell. The problem here is that GHC's (a Haskell Compiler) source uses if defined in this way and cpphs doesn't support it. I'll correct the question. Thank you. Jan 10, 2016 at 19:38

1 Answer 1

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The behavior is defined. In C99 6.10.3/7 Macro replacement:

The identifier immediately following the define is called the macro name.

(Following paragraphs go on and define object-like macros and function-like macros. But macro name is generic.)

And back in 6.10.1 Conditional inclusion:

The expression that controls conditional [...] and it may contain unary operator expressions of the form

defined identifier

or

defined ( identifier )

which evaluate to 1 if the identifier is currently defined as a macro name (that is, if it is predefined or if it has been the subject of a #define preprocessing directive without an intervening #undef directive with the same subject identifier), 0 if it is not.

There is no difference made between object-like or function-like macros: defined checks for a defined macro name, and that applies to both.

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  • Great. Thank you @Mat. That is exactly what I need. Jan 10, 2016 at 20:03
  • This doesn't seem to answer the question. Seems to me the question is about why cpphs behaves differently for #if defined(MACRO). It seems to want to expand MACRO in this construct, when it should really be just checking if it is defined. Maybe I am missing something.
    – Ziffusion
    Jan 10, 2016 at 20:08
  • 1
    @Ziffusion: the question is whether cpphs is wrong or whether that use of define is not standard in the first place (as I understand it). I argue that the construct is well defined, which implies that cpphs is wrong to bork on it.
    – Mat
    Jan 10, 2016 at 20:13

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