51

This question already has an answer here:

What is the best/neatest way to suppress a compiler (in this case gcc) like "Unused variable x"-warning?

I don't want to give any certain flags to gcc to remove all these warnings, just for special cases.

marked as duplicate by Ciro Santilli 新疆改造中心 六四事件 法轮功 c Feb 15 at 10:20

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  • 12
    There are legitimate reasons to do this, e.g. take plugin development for a system, that expects your function with a specific signature like void function_name(int par1, char *par2); and you only need to work on par2. – Residuum Feb 7 '12 at 17:04
  • 6
    In that case, write the signature as void function_name(int par1, char*); which is perfectly valid and won't generate warnings. – Frank Kusters Feb 18 '13 at 13:52
  • 5
    @spaceknarf If I do that with gcc 4.7.2 I get error: parameter name omitted. – craig65535 Feb 23 '13 at 1:18
  • 1
    I don't think it is valid to leave a parameter unnamed in a C function signature when it's part of the definition. It's acceptable in C++ though. – davidA Sep 28 '16 at 20:11

11 Answers 11

22

Found an article http://sourcefrog.net/weblog/software/languages/C/unused.html that explains UNUSED. Interesting that the author also mangles the unused variable name so you can't inadvertently use it in the future.

Excerpt:

#ifdef UNUSED
#elif defined(__GNUC__)
# define UNUSED(x) UNUSED_ ## x __attribute__((unused))
#elif defined(__LCLINT__)
# define UNUSED(x) /*@unused@*/ x
#else
# define UNUSED(x) x
#endif

void dcc_mon_siginfo_handler(int UNUSED(whatsig)) 
  • 8
    ... another write-only header macro is just what we need to get a rather benign warning out of the way. – jpinto3912 Aug 5 '10 at 21:24
  • I'm with you. My code contains static const char cvsid[] = "$Id$";. That's short and sweet and readable, but gcc -Wall throws a wobbly on it. I don't want to have to write all this impenetrable code just to suppress that error. – Edward Falk May 26 '16 at 19:27
43

(void) variable might work for some compilers.

For C++ code, also see http://herbsutter.com/2009/10/18/mailbag-shutting-up-compiler-warnings/ where Herb Sutter recommends using:

template<class T> void ignore( const T& ) { }

...

ignore(variable);
  • This works on gcc 4.7.1 with -std=c99 – Wayne Conrad May 2 '13 at 16:59
  • And it works on VS as well. – Anders Dec 17 '13 at 20:54
  • (void) works not with nvcc 7.5 with gcc 4.9.2 and C++11 enabled. The herbsutter link with template<class T> void ignore( const T& ) { } works great! – Ax3l Jan 21 '16 at 16:21
  • The original question is tagged as C, not C++. As far as I know the (void)var works in all major C compilers. – Calmarius Mar 18 '16 at 13:46
  • 1
    (void) variable is cool because it works for any unused variables, not just function parameters like with the accepted answer. – Groo Jul 11 '17 at 10:37
21

Do not give the variable a name (C++)

void foo(int /*bar*/) {
    ...
}

Tell your compiler using a compiler specific nonstandard mechanism

See individual answers for __attribute__((unused)), various #pragmas and so on. Optionally, wrap a preprocesor macro around it for portability.

Switch the warning off

IDEs can signal unused variables visually (different color, or underline). Having that, compiler warning may be rather useless.

In GCC and Clang, add -Wno-unused-parameter option at the end of the command line (after all options that switch unused parameter warning on, like -Wall, -Wextra).

Add a cast to void

void foo(int bar) {
    (void)bar;
}

as per jamesdlin's answer and http://herbsutter.com/2009/10/18/mailbag-shutting-up-compiler-warnings/

  • 1
    I can't believe commenting it out works. That's the way to go if you're using C++ and it is compliant. – Ross Rogers May 19 '16 at 16:23
11

If this is really what you want, you could use the unused attribute (gcc only), something like:

void foo(int __attribute__((__unused__)) bar) {
    ...
}

Not just for function parameters, of course, but that's the most common use case, since it might be a callback function for an API where you don't actually need all the input.

Additionally, GLib has a G_GNUC_UNUSED macro which I believe expands to that attribute.

11

You can silence the warning using #pragma

#pragma clang diagnostic push
#pragma clang diagnostic ignored "-Wunused"

int unususedVariable = 1;

#pragma clang diagnostic pop

If you are using GCC, use #pragma gcc ...

  • 1
    Maybe the last line should be #pragma clang diagnostic pop – Jason Lee Sep 15 '14 at 3:49
  • 1
    #pragma GCC ... (it wants upper case GCC) – Evgenii Puchkaryov Feb 10 '17 at 20:49
3

#pragma unused <variable>

  • 3
    Not portable - generates "unknown pragma" warnings on many compilers – Paul R Aug 5 '10 at 18:35
  • Paul: That is true and valid, but I'm assuming it doesn't need to be portable since the only reason I can think of to have unused variables is because you have some code commented out for debugging and you still want your (temporary) debugging build to only show warnings you weren't expecting. – nmichaels Aug 5 '10 at 19:38
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    Using this in Xcode4.0 with LLVM 3.0/GCC 4.2 will require you to use parens. #pragma unused (variable) – tgunr Jan 27 '12 at 20:08
2

It's a very hackish solution, but did you try simply assigning the variable to itself? I think that should fool most compilers into thinking that the variable is used. Should be quite portable too.

  • 3
    It does fool the compiler into thinking it's used, but you may then get a "code has no effect" warning, depending on the compiler and options. – Wayne Conrad May 2 '13 at 17:03
0

The cast to a void is the best approach because it shows that you didn't "accidentally" keep the variable in your code - ie: this function might be an instance where you have a table of function pointers that need the same parameter types and return types, but in this particular table entry you are not using the parameter.

That said, if you don't need it, get rid of it. ;)

-1

Assign it to itself.

void f(int unused) {
    unused = unused;
}

Works in gcc, but clang needs -Wno-self-assign.


Edit: I now think casting to void is the most portable solution: Both gcc and clang understand this, even with full warnings -W{all,extra,pedantic}:

(void)unused;
-9

If its used and you are shipping the project, delete it. Worst comment it.

  • I have these warnings, because the variables are assigned via ASM, so they are not unused but my compiler does not know ... – Tarion Apr 10 '17 at 12:50
-9

Delete the unused variable declaration from the code. (pun intended)

(What??? it's what I do: point that the obvious is most likely the best solution.)

Now, from comments on other answers, apparently it's garbage generated from macros. Well, that's a pleonasm.

Solutions:

  • refactor that macro to #if declare the variable only if it's really used;
  • create another version of the macro that skips the unused variable generation.
  • Better still, avoid using macros that bring issues to the code.
  • Not possible in this case. It is a macro that "spits out" the variable and I don't want to use it in this case. – gustaf Aug 5 '10 at 18:25
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    There's other cases as well - e.g if you need to provide a callback function to an external API, but you don't really use/care about some of the parameters you'll get warnings – nos Aug 5 '10 at 18:26
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    nos: Thank you for not assume I'm totally stupid like many of the comments above. – gustaf Aug 5 '10 at 18:30
  • 2
    write more precise questions and you'll get more precise answers – KeatsPeeks Aug 5 '10 at 18:38
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    -1, no substance in the answer. Not even trying to understand the real problem. nos, good comment, +1 – Daniel Wedlund Aug 6 '10 at 7:53

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