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I need to use pthreat but I dont need to pass any argument to the function. Therefore, I pass NULL to the function on pthread_create. I have 7 pthreads, so gcc compiler warns me that I have 7 unsued parameters. How can I define these 7 parameters as unused in C programming? If I do not define these parameters as unused, would it cause any problem? Thank you in advance for the responses.

void *timer1_function(void * parameter1){
//<statement>
}

int main(int argc,char *argv[]){
  int thread_check1;
  pthread_t timer1;
  thread_check1 = pthread_create( &timer1, NULL, timer1_function,  NULL);
    if(thread_check1 !=0){
        perror("thread creation failed");
        exit(EXIT_FAILURE);
    }
while(1){}
return 0;
}
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If they're unused, it implies that no meaningful operations are done to those variables, and (for the most part) they're safe to get rid of. It's a warning, not an error, so it can be ignored. It's usually not a good idea to ignore it, but you can. –  Makoto Apr 30 '12 at 21:49
    
@hmjd - C++ allows it, not C. –  MByD Apr 30 '12 at 21:55
2  
stackoverflow.com/q/7090998/168175 –  Flexo Apr 30 '12 at 21:57
    
    
possible duplicate of unused parameter warnings in C code –  lesmana Jan 14 '13 at 19:11

5 Answers 5

up vote 11 down vote accepted

You can cast the parameter to void like this:

void *timer1_function(void * parameter1) {
  (void) parameter1; // Suppress the warning.
  // <statement>
}
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3  
stackoverflow.com/a/4851173/168175 has an alternative form that works better for volatile apparently –  Flexo Apr 30 '12 at 21:56
    
Clever - thank you! –  Adam Liss Apr 30 '12 at 23:55

GCC has an "attributes" facility that can be used to mark unused parameters. Use

void *timer1_function(__attribute__((unused))void *parameter1)
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By default, GCC does not produce this warning, not even with -Wall. I think the workaround shown in other question might be needed when you have no control over the environment, but if you do, just remove the flag (-Wunused-parameter).

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+1 this is the best fix. This warning is fundamentally idiotic. Whenever the address of a function is taken, GCC should turn off "unused parameter" warnings for it, because whether they're used internally or not, they're used as part of the required interface for the function. Personally I would say the same thing should apply to all external functions too... –  R.. Apr 30 '12 at 23:57
1  
@R I caught a bug in my code a few days ago thanks to this warning. I was doing a refactor of some functions and typed 0 instead of the identifier for a bitmask that came in as a function parameter. Enabling -Wextra allowed me to immediately fix a subtle bug that had been introduced days ago. –  Kyle Jones May 2 '12 at 17:34
    
-1: I regularly find bugs thanks to this warning being activated. –  Étienne Jul 9 at 9:50

Two commonly used techniques:

1) Omit the name of the unused parameter:

void *timer1_function(void *) { ... }

2) Comment out the parameter name:

void *timer1_function(void * /*parameter1*/) { ... }

-- Chris

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It is perfectly fine not using a parameter in a function body.

To avoid the compiler warning (if any in your implementation), you can do this:

void *timer1_function(void * parameter1)
{
    // no operation, will likely be optimized out by the compiler
    parameter1 = parameter1;  
}
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