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I have this macro from someone's code:

#define Q_DEF_PROTOTYPE( Type, Name ) Type (*Name)

#define COPY_FP( pDest, pSrc ) (*((void**)(&(pDest)))) = ((void*)(pSrc))

#define LIB_QUERY(lib_handle, proc)  dlsym(lib_handle, proc)

#define Q_DEF_PROTOTYPE( Type, Name ) \
COPY_FP( p->Name, LIB_QUERY( g_library, STRINGIZE(FUNC(Name)) ) ); \
void dummy_##Name

Not sure, what "void dummy_##Name" does? Thanks.

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@chris, why not just post that as an answer and add the text "that's called token concatenation"? –  djechlin Sep 4 '12 at 18:42
    
@chris: Thanks, I understood that. But say, "Name" is "func_name", then ""void dummy_##Name" becomes "void dummy_func_name". This doesn't appear meaningful to me. What does this exactly translate to? Thanks. –  RRR Sep 4 '12 at 18:46

1 Answer 1

up vote 2 down vote accepted

It replace the ##Name with the value of Name parameter as string.

Q_DEF_PROTOTYPE(myType, objectName) => void dummy_objectName

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But will this not give compilation errors? And what kind of a declaration is - void dummy_objectName? Please let me know. Thanks. –  RRR Sep 4 '12 at 18:47
    
I guess no, it just defines a void variable. If he uses like Q_DEF_PROTOTYPE(myType, objectName); (; is important), then it will work and the last line is void dummy_objectName; –  Nucc Sep 4 '12 at 18:52
    
thanks, will check that. –  RRR Sep 4 '12 at 18:59

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