46
#include <stdio.h>

int main() {
    int t;
    scanf("%d", &t);
    printf("%d", t);
    return 0;
}

I compiled the above C code using ideone.com and the following warning popped up:

prog.c: In function ‘main’:
prog.c:5: warning: ignoring return value of ‘scanf’, declared with attribute warn_unused_result

Can someone help me understand this warning?

58

The writer's of your libc have decided that the return value of scanf should not be ignored in most cases, so they have given it an attribute telling the compiler to give you a warning.

If the return value is truly not needed, then you are fine. However, it is usually best to check it to make sure you actually successfully read what you think you did.

In your case, the code could be written like this to avoid the warning (and some input errors):

#include <stdio.h>

int main() {
    int t;
    if (scanf("%d", &t) == 1) {
        printf("%d", t);
    } else {
        printf("Failed to read integer.\n");
    }
    return 0;
}
  • What I found strange: it seems the compiler emits warning about unused results, but complains only about scanf. Maybe many dont know but printf also returns a value, and it seems he doesnt complain about that discarded result there. – flolo Sep 1 '11 at 14:44
  • 7
    The compiler will only emit that warning for functions that have that particular attribute. If printf fails, not much you can do about it. But scanf can fail pretty easily. All I need to do is type 'A' instead of an integer and your program is broken. – Evan Teran Sep 1 '11 at 14:50
  • Thanks for the answers guys. This problem came just today. I have been using the same compiler so many times before but suddenly this warning came. – vipin Sep 1 '11 at 15:00
  • 5
    Here's the documentation on GCC's warn_unused_result function attribute. If you're using GCC (which Ideone uses) and you look in your stdio.h header file, you'll see that scanf and its relatives are tagged with the warn_unused_result attribute, but printf and its relatives are not. – Adam Rosenfield Sep 1 '11 at 15:29
  • 1
    Why is this not the accepted answer? – Mawg Jul 13 '16 at 17:25
15

The warning (rightly) indicates that it is a bad idea not to check the return value of scanf. The function scanf has been explicitly declared (via a gcc function attribute) to trigger this warning if you discard its return value.

If you really want to forget about this return value, while keeping the compiler (and your conscience) happy, you can cast the return value to void:

(void)scanf("%d",&t);
  • 21
    GCC will still warn even when you do this. See this discussion for more info gcc.gnu.org/bugzilla/show_bug.cgi?id=25509 – kraffenetti Dec 6 '13 at 15:52
  • 4
    If you assign to a dummy variable then you might get another warning, about the variable being assigned but never used. – Craig McQueen Jun 19 '15 at 6:09
  • 2
    WARNING: Many compilers will optimize away this void cast, as it is unnecessary, and then an unused variable error will still be produced. – AffluentOwl Jul 15 '15 at 20:25
  • 7
    @AffluentOwl The void cast is the standard convention to say “this result is unused intentionally” and universally recognized—except by gcc because someone (Stallmann?) decided 20 years ago that there should be no way to ignore a warn_unused_result. – fuz Jan 15 '16 at 15:12
  • 3
    Three cheers for Stallman, then – Mawg Jul 13 '16 at 17:24
9

I tried your example with gcc (Ubuntu 4.4.3-4ubuntu5.1) 4.4.3. The warning is issued if and only if optimizing, e.g., with option -O2 or -O3. Requesting all warnings (-Wall) doesn't matter. The classic idiom of casting to void has no effect, it does not suppress the warning.

I can silence the warning by writing

if(scanf("%d",&t)){};

this works, but it's a bit obscure for my taste. Empty {} avoids yet another warning -Wempty-body

  • 2
    this can cause an additional empty body warning from the compiler – kraffenetti Dec 6 '13 at 15:50
  • 2
    If I see that sort of code, with a semicolon at the end of an if, I'll think it may be a bug. It requires an explanatory comment at minimum. – Craig McQueen Jun 19 '15 at 6:11
  • 2
    So many upvotes for such ireesponsible, cowboy advice?? shudder – Mawg Jul 13 '16 at 17:23
  • Mawg is right, you should always check the return value from scanf. I was looking for a way to silence it, more as a sport, not as advice for good coding. I still find it odd that (a) optimizing affects whether you get the warning, and (b) -Wall doesn't. – Quigi Apr 4 '17 at 14:58
3

Do this:

int main() {
    int t;
    int unused __attribute__((unused));
    unused = scanf("%d",&t);
    printf("%d",t);
    return 0;
}
  • 2
    Sadly this doesn't look very portable. – Tino Dec 28 '14 at 0:00
  • this is a dodge around a possible error; you should check to see that the return value of scanf is what you expect. (should be 1 in this case) – Woodrow Douglass Oct 17 '16 at 18:03
3

One way to solve this is the IGUR() function as seen below. Extremely ugly, but nevertheless somewhat portable. (For old compilers which do not understand inline just #define inline /*nothing*/, as usual.)

#include <stdio.h>
#include <unistd.h>
#include <fcntl.h>

void inline IGUR() {}  /* Ignore GCC Unused Result */
void IGUR();  /* see https://stackoverflow.com/a/16245669/490291 */

int
main(int argc, char **argv)
{
  char  buf[10*BUFSIZ];
  int   got, fl, have;

  fl    = fcntl(0, F_GETFL);
  fcntl(0, F_SETFL, fl|O_NONBLOCK);
  have = 0;
  while ((got=read(0, buf, sizeof buf))>0)
    {
      IGUR(write(1, buf, got));
      have = 1;
    }
  fcntl(0, F_SETFL, fl);
  return have;
}

BTW this example, nonblockingly, copies from stdin to stdout until all waiting input was read, returning true (0) if nothing was there, else false (1). (It prevents the 1s delay in something like while read -t1 away; do :; done in bash.)

Compiles without warning under -Wall (Debian Jessie).

Edit: IGUR() needs to be defined without inline, too, such that it becomes available for the linker. Else with cc -O0 it might fail. See: https://stackoverflow.com/a/16245669/490291

  • I just found out that you can write read -t0.01 away in bash, which adds just a 100th of a second delay. You should not go much below that, because if the process is slowed down (like running under strace) the timer might hit before the read() is executed, hence the read does nothing. – Tino Oct 20 '15 at 13:23
1

scanf, printf is functions that returns value, usually in those kind of functions it's the amount of characters read or written. if an error occurs, you can catch the error also with the return code. A good programming practice will be to look at the return value, however, I never saw someone who looks at the printf return value...

If you want the warning to disappear, you can probably change the severity of the compiler.

1

After reading all answers and comments on this page I don't see these yet another options to avoid the warning:

When compiling with gcc you can add to your command line:

gcc -Wall -Wextra -Wno-unused-result proc.c -o prog.x

Another option is to use -O0 as "optimization level zero" ignores the warning.

Using cast to (void) is simply useless when compiling with gcc

If debugging your code, you can always use assert() as in the example bellow:

u = scanf("%d", &t);
assert(u == 1);

But now, if you turn off assert via #define NDEBUG you will get a -Wunused-but-set-variable. You can then turn off this second warning by one of two ways:

  1. Adding -Wno-unused-but-set-variable to your gcc command line, or
  2. Declaring the variable with attribute: int u __attribute__((unused));

As pointed out in other answer, the second option unfortunately is not very portable, although it seems the best option.

At last, the defined MACRO bellow can help you if you are sure you want to ignore the return of a given function, but you are not comfortable turning off the warnings for all unused returns of functions:

#define igr(x) {__typeof__(x) __attribute__((unused)) d=(x);} 

double __attribute__ ((warn_unused_result)) fa(void) {return 2.2;}
igr(fa());

See also this answer

  • The assert is an abuse. If an assert fails, the programmer wrote buggy code. If I enter A into your program, your code aborts, hence it has a failure. – Antti Haapala Sep 7 '18 at 16:56
  • Thank you for your comment. I agree that if you use assert as you are misunderstanding from my answer is indeed an abuse. The above answer lists various options to deal with "unused return from scanf", that is the main point. The assert part states if debugging. I think it is good to "write down" all the options as an educational informative answer so people can learn all the tools and make educated choices. That is also why I think your comment is helpful, so people won't also read this wrongly and abuse the assert() to do a job that is not for it. Thanks. – Dr Beco Sep 7 '18 at 17:36
-1

Actually it depends on what you need, if you just want to disable the warning of compiler, you can just ignore the return value of the function by the force conversion or you can just handle it, the meaning of the scanf function is the count of user input.

==== update ====

You can use

(void) scanf("%d",&t);

to ignore the return value of scanf

  • 1
    Minus one for advocating ignoring warnings. Cleverer people than you and I are responsible for them. They tell you helpful things. Paying attention to them leads to better code quality. Ignore them at your peril, and, please, don't advocate that others ignore or supress them – Mawg Aug 9 '16 at 16:18
  • 2
    whatever , I know where the warning is, and I know it will do harm to mine program. And some project may treat warning as error. I mean to rid of warning – Acton Aug 11 '16 at 8:28
  • Get rid of warnings by handling the error, not by dodging around them... – Woodrow Douglass Oct 17 '16 at 18:03
  • 1
    This isn't working (anymore) for gcc 5.4.x. I still get the same warning when putting a (void) cast in front of the function. – Carlo Wood Dec 15 '16 at 16:44
  • @WoodrowDouglass Warnings aren't errors. When you see a warning you examine the line and determine if it is okay the way it is. In some cases you really do want to ignore the return from scanf, so not having a way to remove the warning for that one line is, to put it bluntly, dumb. You don't want already-examined-and-determined-safe code to emit warnings because then you are increasing the noise/signal ratio in the compiler output. – Lelanthran Apr 7 '18 at 18:49

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