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What does putting void; on a line do in C? The compiler is warning about it but i dont understand. What is the point in being able to put void on a line like this?

#include <stdio.h>

int main() {
        void;
        printf("word dude");
        return 1;
}

eh

$ gcc -pedantic -ansi -Wall -Wextra eh.c -o eh
eh.c: In function 'main':
eh.c:4:2: warning: useless type name in empty declaration
$ ./eh
word dude

People seem to be getting confused what I'm asking: What does this line mean, does it do anything? why is it valid?

void;

Removed void cast as it's causing unnecessary discussion.

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1  
The compiler is telling you that what you've done is useless. So what is the question here? –  Oli Charlesworth Jun 27 '12 at 22:50
4  
The real question is: why is that not a syntax error? –  Kay Jun 27 '12 at 22:50
    
@Oil: the question is why this compiles, and what does it mean. –  megazord Jun 27 '12 at 23:11
    
@megazord see my answer, this is not C. Your compiler is kind enough to accept it but it is not obligated to. clang for example refuses to translate this program. –  ouah Jun 27 '12 at 23:15
    
It compiles because the compiler isn't enforcing strict conformance. It accepts empty declarations, though it warns about them. To get a compilation error, use -pedantic-errors or generally use -Wall -Wextra -Werror. –  Daniel Fischer Jun 27 '12 at 23:16
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7 Answers

up vote 2 down vote accepted

This question got me interested because my first thought was K&R. I went back to my old K&R book (Appendix A p.192) on found blurb about declarations (transcripted):

8. Declarations

Declarations are used to specify the interpretation which C gives to each identifier; they do not necessarily reserve storage associated with the identifier. Declarations have
the form
    declaration:
        decl-specifier declarator-listopt;

The declarators in the declarator-list contain the identifiers being declared. The decl-specifiers consist of a sequence of type and storage class specifiers.
    decl-specifiers:
        type-specifier decl-specifiersopt
        sc-specifier decl-specifiersopt

This leads me to believe that delarator lists are optional (meaning it can be empty).

To add to this confusion on following page, it lists the set of legal type-specifier values and void is not one of them.

In my narrow interpretation that this may be still legal (but obsolete) C.

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this doesn't answer the question –  Thomas Jun 28 '12 at 8:46
    
Well, IMO there is no clear answer. For a long while, K&R was the reference until ANSI C standardization. ANSI C is a superset of K&R, so a lot of the weirdness of K&R is inherited. Granted, it may not be complete, I think the best answer to "why does this valid" question is "because K&R said so." –  Ralph Allan Rice Jun 29 '12 at 16:27
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      void;                       // 1
      (void)printf("word dude");  // 2

The first statement is an invalid statement: this is not C.

In the second statement the (void) cast makes your intent clear to discard the return value. Another common use is to make silent some static analysis tools like Lint.

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void;

There's no point in doing that, it doesn't do anything.

Did you get this out of a book? Must be a mistake.

Somewhat unrelated, a return value if 0 is usually used to indicate the program terminated normally, any other value indicates a problem (by convention)

Update:

Looks like you added another line:

(void)printf("word dude");

this - unlike the previous void; - tells the compiler explictly to ignore the return value of the printf() function (the number of characters printed) and prevent warning messages a picky/pedantic setting on the compiler or other tools, like lint, to stop from complaining.

You don't see this for frequently used functions generally, though you may for others.

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4  
i know lol i typed 1 because iwas eating and it was easier to hit –  megazord Jun 27 '12 at 22:52
    
@megazord ha ha .. best reason ever :).. and it doesn't really impact this example anyway. –  Levon Jun 27 '12 at 22:52
    
@megazord I saw you added another line with void printf(..) .. I updated my answer to include it. –  Levon Jun 27 '12 at 23:11
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Are you sure this is the exact/verbatim text?

The line:

int main() {

Should probably be

int main(void) {

This means that your program does not accept command-line arguments (ie: if your final program is named out.exe, you can't pass arguments, like out.exe -a -c etc).

Also, you can void-cast to tell your compiler that you are intentionally ignoring the output of a function. A logging statement function is a good example.

eg:

int log(int val) {
  printf("Value is %d \n");
  if (val < 0 ) {
    printf("Value is negative; error!\n");
    return -1;
  } else {
    printf("Value is non-negative; Probably not an error!\n");
    return 0;
  }
}

If you just want to call this function so it does the printf() stuff, you should call it like so: (void)log(some_int_variable). This tells the compiler that you don't care about the result. If you call it like so: log(some_int_variable) your compiler (along with other code analysis tools like PC_LINT) will spew out warnings, since you are not using the return value of a function, and expects you to assign the result to a variable, eg: myInt = log(some_int_variable).

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1  
int main(void){} and int main(){} are the same thing. It only makes a difference for function prototypes. –  dreamlax Jun 27 '12 at 23:14
2  
@dreamlax this is not same see for example this int main() {main(1)}; is UB while int main(void) {main(1)}; is a constraint violation. –  ouah Jun 27 '12 at 23:19
1  
for more information, see my points here: stackoverflow.com/a/9444492/1119701 –  ouah Jun 27 '12 at 23:22
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It prints the same error if you change void with int or any other type.

void is a type and it expects something after that type. It has no sense at all as writing only int without a variable (or function) name after it.

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void is used as a data type in C, and come to think of it, I've never heard of an assembly language equivalent of NOP in C, so having void by itself on a line is probably an error.

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1  
im not asking what void is, Im asking what it means to just have a line by itself that says "void;" –  megazord Jun 27 '12 at 23:01
    
Answer edited per your comment. –  octopusgrabbus Jun 27 '12 at 23:36
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It looks like the old style of declaring arguments to a function. That's equivalent to int main(void). Some compilers still accept it, some don't. For example, this code compiles in two compilers I tried:

void main(i, j) {
    int;
    long;

    i = 12;
    j = 123456;
    printf("%d %d\n", i, j);
}

The answer to Untyped arguments in a C function declaration has a more precise definition for this case.

In any case, this is not recommended, so can we just stick with the "normal" way of declaring functions, please? :)

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1  
What you show isn't K&R style as I know it. In K&R style, the types are declared before the opening brace, along with their names. Here they're defined inside the function, without names. Is it yet-another definition style? Or maybe i,j are int by default, and int;long; are ignored? –  ugoren Jun 28 '12 at 7:07
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