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in the following function

int f (some_struct* p)
{
    (void) p;
    /* something else */
    return 0;
}

what does the statement

(void) p; 

mean?

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4 Answers 4

The statement does nothing at runtime, and results in no machine code.

It suppresses a compiler warning that p is unused in the body of the function. This is a portable and safe way to suppress this warning across a variety of different compilers, including GCC, Clang, and Visual C++.

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does this mean "void" is the only type can be put there? –  user693986 Aug 30 '13 at 0:27
1  
If you put a different type there, some compilers will generate a "statement with no effect" warning. If you put void there, you are communicating both to the compiler and to humans reading the code that you know that the statement has no effect, and you are okay with that. Also, any type can be cast to void in C (in C++, the story is different). –  Dietrich Epp Aug 30 '13 at 0:28

“Cast to void” is a C language idiom that, by convention, suppresses compiler and lint warnings about unused variables or return values.

In this case, as Dietrich Epp correctly points out, it tells the compiler that you know that you're not using the argument p, and not to give you “unused argument” warnings about it.

The other use of this idiom, casting the return value of a function to void, is the traditional way of telling lint or, more importantly, other programmers that you'd made a conscious decision not to bother checking the return value of a function. For example:

(void)printf("foo")

Would mean “I know printf() returns a value, and I should really check it, but I've decided not to bother”.

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It's used to avoid the warning of unused function parameter. It simply gets discarded, does nothing except that the expression has a side effect.

C11 §6.3.2.2 void

The (nonexistent) value of a void expression (an expression that has type void) shall not be used in any way, and implicit or explicit conversions (except to void) shall not be applied to such an expression. If an expression of any other type is evaluated as a void expression, its value or designator is discarded. (A void expression is evaluated for its side effects.)

Another way to avoid the warning of unused function parameter is:

p = p;
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The void tells the compiler or lint do not give warning. If there are a variable never be used, compiler or lint will suggestion you delete it.

If you do not want to delete it, you can use void. Like the link : How can I hide "defined but not used" warnings in GCC?

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