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so I was using rusage to print out how long it takes from the user, and system to process a command, something along the lines of,

           //DO STUFF HERE
           printf(" TOTAL TIMES: ");
           tusage.ru_utime.tv_sec  = rusage.ru_utime.tv_sec + rusage.ru_stime.tv_sec;
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What's the problem with using getrusage in linux? –  Art Mar 14 '13 at 8:02
use gettimeofday, see this –  Fredrik Pihl Mar 14 '13 at 8:07
@Art the same code prints 0.00 in linux, but same code prints actual value in mac os why is that? –  NoNameY0 Mar 14 '13 at 8:07
@RichardMckenna, because linux is fast ;D –  perreal Mar 14 '13 at 8:08
@RichardMckenna because your program didn't take any measurable time to run? Your exact example works for me (even if I question why you'd use a struct rusage for storage for the sum instead of just a struct timeval). –  Art Mar 14 '13 at 8:09

1 Answer 1

Try this:

#include <stdio.h>
#include <sys/resource.h>
int main() {
  struct rusage rusage;
  struct rusage tusage;
  int i, j, r=0;
  for (i = 0; i < 10000; i++) {
    for (j = 1; j < 100000; j++) {
      r = i % j + i / j;
  getrusage(RUSAGE_SELF, &rusage);
  printf("TOTAL TIME \n");
  tusage.ru_utime.tv_sec =  rusage.ru_utime.tv_sec + rusage.ru_stime.tv_sec;
  tusage.ru_utime.tv_usec = rusage.ru_utime.tv_usec + rusage.ru_stime.tv_usec;
  tusage.ru_utime.tv_sec += tusage.ru_utime.tv_usec / 1000000;
  tusage.ru_utime.tv_usec = tusage.ru_utime.tv_usec % 1000000;
  printf("%ld.%06ld\n", tusage.ru_utime.tv_sec, tusage.ru_utime.tv_usec);

  return r;
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no it did not. But why does something on a mac take long yet all my realistic commands are showing up as 0.00 –  NoNameY0 Mar 14 '13 at 8:17
I don't really know, just a call to getrusage returns non-zero time for me (0.001000). –  perreal Mar 14 '13 at 8:23

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