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int fn();

void whatever()
{
    (void) fn();
}

Is there any reason for casting an unused return value to void, or am I right in thinking it's a complete waste of time?

Follow up:

Well that seems pretty comprehensive. I suppose it's better than commenting an unused return value since self documenting code is better than comments. Personally, I'll turn these warnings off since it's unnecessary noise.

I'll eat my words if a bug escapes because of it...

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7 Answers 7

up vote 38 down vote accepted

David's answer pretty much covers the motivation for this, to explicitly show other "developers" that you know this function returns but you're explicitly ignoring it.

This is a way to ensure that where necessary error codes are always handled.

I think for C++ this is probably the only place that I prefer to use C-style casts too, since using the full static cast notation just feels like overkill here. Finally, if you're reviewing a coding standard or writing one, then it's also a good idea to explicitly state that calls to overloaded operators (not using function call notation) should be exempt from this too:

class A {};
A operator+(A const &, A const &);

int main () {
  A a;
  a + a;                 // Not a problem
  (void)operator+(a,a);  // Using function call notation - so add the cast.
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this is the only place i prefer c-style cast too. tho in my coding standard, i would add (void) to "a + a;" too (properly parened, of course :p) –  Johannes Schaub - litb Mar 27 '09 at 13:21
1  
Somewhat off topic, but why ever would you do "a + a;" like that without using the return value? That really seems like an abuse of side effects to me, and obfuscates the intent of the code. –  Rob K Mar 27 '09 at 16:38
    
Well, the one that you'll use every day will be 'a = a'. This returns the assigned to object (for all well behaving classes that is! :)). Another example is: os <<"Hello World" << std::endl. Each of them returns the "os" object. –  Richard Corden Mar 27 '09 at 18:07

The true reason for doing this dates back to a tool used on C code, called lint.

It analyzes code looking for possible problems and issuing warnings and suggestions. If a function returned a value which was then not checked, lint would warn in case this was accidental. To silence lint on this warning, you cast the call to (void).

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It may have started this way, but most tools now have other mechanisms to suppress warnings such as this. Also - irrespective of why this started, within the domain of safety critical code in particular, this has become the usual way to "document" developer intentions. –  Richard Corden Mar 27 '09 at 16:15
2  
GCC gives a warning for this with -Wall. –  greyfade Mar 27 '09 at 18:18

At work we use that to acknowledge that the function has a return value but the developer has asserted that it is safe to ignore it. Since you tagged the question as C++ you should be using *static_cast*:

static_cast<void>(fn());

As far as the compiler goes casting the return value to void has little meaning.

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Does it suppress the warning about unused return values? –  Paul Tomblin Mar 27 '09 at 13:07
    
Is there such warning? –  Mykola Golubyev Mar 27 '09 at 13:07
    
No, it does not. @Mykola: With GCC4 you can attach an attribute that says that the return value shouldn't be ignored which will trigger a warning. –  David Holm Mar 27 '09 at 13:08
1  
I use g++ and it gives warning even with such cast. –  klew Mar 27 '09 at 13:08
    
which warning option do you use? -Wunused-value doesn't trigger the warning in my environment –  Mykola Golubyev Mar 27 '09 at 13:09

Casting to void is used to suppress compiler warnings for unused variables and unsaved return values or expressions.

The Standard(2003) says in §5.2.9/4 says,

Any expression can be explicitly converted to type “cv void.” The expression value is discarded.

So you can write :

//suppressing unused variable warnings
static_cast<void>(unusedVar);
static_cast<const void>(unusedVar);
static_cast<volatile void>(unusedVar);

//suppressing return value warnings
static_cast<void>(fn());
static_cast<const void>(fn());
static_cast<volatile void>(fn());

//suppressing unsaved expressions
static_cast<void>(a + b * 10);
static_cast<const void>( x &&y || z);
static_cast<volatile void>( m | n + fn());

All forms are valid. I usually make it shorter as:

//suppressing  expressions
(void)(unusedVar);
(void)(fn());
(void)(x &&y || z);

Its also okay.

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Except that it doesn't always turn off the compiler warnings. gcc doesn't seem respond to casting to void –  Matt Feb 11 '13 at 3:29
    
@Matt: Which version of GCC are you using? Can you post your code at ideone.com or stacked-crooked.com (the latter is better). –  Nawaz Feb 11 '13 at 5:21

For the functionality of you program casting to void is meaningless. I would also argue that you should not use it to signal something to the person that is reading the code, as suggested in the answer by David. If you want to communicate something about your intentions, it is better to use a comment. Adding a cast like this will only look strange and raise questions about the possible reason. Just my opinion...

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This is a known pattern to explicit tell others that you don't care about the return value, that you did not just forgot to handle it. –  Spidey Oct 29 at 17:56

Cast to void is costless. It is only information for compiler how to treat it.

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It is "costless" if the time to write it and the subsequent time reading, understanding (and then ignoring) the code is free. IMO, writing (void) costs me time and energy and makes me wonder if the author knew how expressions work. –  wallyk Jul 3 '12 at 21:06

In C, it is perfectly OK to cast to void. Virtually anyone will understand the intent of the statement.

In C++, you have other tools at your disposal. Since C casts are usually frowned upon, and since the explicit cast to void will likely surprise your coworkers (it surprises mine), I have this function template somewhere

template <typename T>
void use_expression(const T&) {}

and I use

...
use_expression(foo());

where I would write (void)foo() in C.

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2  
Or simply "#define IGNORE_RESULT(fn) if (fn)". Works in C & C++ and the meaning is very clear. –  Matt Feb 11 '13 at 3:27
    
@Matt there's a problem with that macro. How about if (x) IGNORE_RESULT(f()); else g(); ? The else gets attached to the wrong if statement. –  Colin D Bennett Jan 14 at 14:20
    
Colin, yes that's true. –  Matt Jan 14 at 20:39
    
What about casting to void? It's simple, and everyone knows what it means. –  gnasher729 Nov 3 at 18:41

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