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I found this while reading some source code.

 #define MACRO(x)  if((void) 0, (x)); else some_func();

I don't fully understand the reasons behind that operator comma and the void cast. This has probably something to do with macro protection, I know that (void)0 is used sometimes to protect cascading elses in macros such as in if(...) then foo(); else (void)0.

Any ideas of why operator comma is there?

edit: I'm starting to think this has something to do with the owl (0,0).

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Are you sure that even compiles? –  ronag Oct 12 '10 at 15:06
    
@ronag: yes it compiles. the cast to void is a nice trick if you like to write return f(); from a void function when f is not void. –  ybungalobill Oct 12 '10 at 15:23
    
I am curious to know if it is equivalent to #define MACRO(X) if(!(x)) { some_func() } –  Arun Oct 12 '10 at 15:49
    
@ArunSaha: That's not. This: MACRO(x) else ... will compile with your macro but not with the original. –  ybungalobill Oct 12 '10 at 15:52
    
@ybungalobill: I see, Thanks. Not sure, but can that be fixed by wrapping my version inside a do { ... } while ( 0 );? (Sigh! I am so bad with macros!) –  Arun Oct 12 '10 at 16:32

3 Answers 3

up vote 8 down vote accepted

I would guess that the trick is used to prevent the user from declaring variables in the if condition. As you probably know, in C++ it is legal to do this

if (int i = some_func()) {
   // you can use `i` here
}
else  {
   // and you can use `i` here
}

The use of comma operator in that definition will prevent macro usage like

MACRO(int i = some_func());

and force the user to use only expressions as argument.

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You mean i instead of x, yes? –  sje397 Oct 12 '10 at 15:48
    
That what I though, but to quote Charles, it's true here too: "... what ((void)0,x) is supposed to guard against that a simple extra pair of parentheses wouldn't if((x)); else some_func();". –  ybungalobill Oct 12 '10 at 15:49
    
@ybungalobill: Yeah, that's right... And extra () would solve it in a much simpler way. –  AndreyT Oct 12 '10 at 16:14

The void conversion there is definitely to prevent calling an overloaded operator , since you can't overload with a void parameter. This guarantees that (void)0, has no effect.

Why the comma operator is there? A good question. I really don't know.

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3  
I don't understand. Can you explain in more detail what ((void)0,x) is supposed to guard against that a simple extra pair of parentheses wouldn't if((x)); else some_func(); ? –  Charles Bailey Oct 12 '10 at 15:33
    
@Charles, you're right. –  ybungalobill Oct 12 '10 at 15:47

This looks a bit as if somebody may have started with some code that included an assert, pre-processed it, and turned the result into a macro. When NDEBUG is defined, assert has to turn into nearly nothing -- but, syntactically, still has to produce some placeholder code. For example, you're allowed to use it in a situation like:

assert(x), *x = 1;

When you compile this with NDEBUG defined, it still needs to compile, but the assert shouldn't do anything. To support that, assert is typically defined something like this:

#undef assert
#ifdef NDEBUG
#define assert(x) ((void)0)
#else
#define assert(x) ((!!x) || __failassert(x, __FILE__, __LINE__))
#endif 

So, if somebody started with code like above, and then looked at the preprocessed version (with NDEBUG defined), they'd see something like:

((void *)0), *x = 1;

...and if they didn't understand the code very well, they might think that ((void)0) really meant/accomplished something.

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Good reasoning, but I'm not sure that is the real reason. –  Giovanni Funchal Oct 12 '10 at 15:27
    
I'm not sure it's the real reason either -- in fact, probably nobody but the original author can do anything but guess, and even he may not remember for sure either... –  Jerry Coffin Oct 12 '10 at 15:30
    
this "crazy" works with original MACRO : #define CRAZY 0));if((1 –  user396672 Oct 12 '10 at 15:35
    
@user396672, yes but is that the real reason? AndreyT's explanation sounds at least halfway reasonable, but this is working awfully hard to prevent something that it's hard to imagine anybody writing in the first place. –  Jerry Coffin Oct 12 '10 at 15:45

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