I have a C program that aims to be run in parallel on several processors. I need to be able to record the execution time (which could be anywhere from 1 second to several minutes). I have searched for answers, but they all seem to suggest using the clock() function, which then involves calculating the number of clocks the program took divided by the Clocks_per_second value.

I'm not sure how the Clocks_per_second value is calculated?

In Java, I just take the current time in milliseconds before and after execution.

Is there a similar thing in C? I've had a look, but I can't seem to find a way of getting anything better than a second resolution.

I'm also aware a profiler would be an option, but am looking to implement a timer myself.

Thanks

13 Answers 13

up vote 272 down vote accepted

CLOCKS_PER_SEC is a constant which is declared in <time.h>. To get the CPU time used by a task within a C application, use:

clock_t begin = clock();

/* here, do your time-consuming job */

clock_t end = clock();
double time_spent = (double)(end - begin) / CLOCKS_PER_SEC;

Note that this returns the time as a floating point type. This can be more precise than a second (e.g. you measure 4.52 seconds). Precision depends on the architecture; on modern systems you easily get 10ms or lower, but on older Windows machines (from the Win98 era) it was closer to 60ms.

clock() is standard C; it works "everywhere". There are system-specific functions, such as getrusage() on Unix-like systems.

Java's System.currentTimeMillis() does not measure the same thing. It is a "wall clock": it can help you measure how much time it took for the program to execute, but it does not tell you how much CPU time was used. On a multitasking systems (i.e. all of them), these can be widely different.

  • It gives me very random result - I get a mixture of large/small/negative number over the same piece of code. GCC 4.7 Linux 3.2 AMD64 – user972946 Jun 2 '13 at 1:40
  • 3
    Yes: clock() returns a time in some internal scale called "clocks", and CLOCKS_PER_SEC is the number of clocks per second, so dividing by CLOCKS_PER_SEC yields a time in seconds. In the code above, the value is a double so you can scale it at will. – Thomas Pornin Nov 7 '15 at 16:56
  • 6
    Big warning: clock() returns the amount of time the OS has spent running your process, and not the actual amount of time elapsed. However, this is fine for timing a block of code, but not measuring time elapsing in the real world. – user3703887 Mar 28 '16 at 18:31
  • 1
    He said he wants to measure a multi-threaded program. I'm not sure a clock() is suitable for this, because it sums up running times of all threads, so the result will look like if the code was run sequentially. For such things i use omp_get_wtime(), but of course i need to make sure, the system is not busy with other processes. – Youda008 Oct 15 '16 at 8:12
  • 1
    I should mention some things even though this thread was more relevant a year ago: CLOCKS_PER_SEC is a long int with the value 1000000, giving time in microseconds when not divided; not CPU clock cycles. Therefore, it doesn't need to account for dynamic frequency as the clock here is in microseconds (maybe clock cycles for a 1 MHz CPU?) I made a short C program printing that value and it was 1000000 on my i7-2640M laptop, with dynamic frequency allowing 800 MHz to 2.8 GHz, even using Turbo Boost to go as high as 3.5 GHz. – DDPWNAGE Aug 17 '17 at 0:32

If you are using the Unix shell for running, you can use the time command.

doing

$ time ./a.out

assuming a.out as the executable will give u the time taken to run this

  • 2
    @acgtyrant but only for simple programs, because it'll take the whole program time, including input, output, etc. – phuclv Dec 17 '15 at 6:55

You functionally want this:

#include <sys/time.h>

struct timeval  tv1, tv2;
gettimeofday(&tv1, NULL);
/* stuff to do! */
gettimeofday(&tv2, NULL);

printf ("Total time = %f seconds\n",
         (double) (tv2.tv_usec - tv1.tv_usec) / 1000000 +
         (double) (tv2.tv_sec - tv1.tv_sec));

Note that this measures in microseconds, not just seconds.

  • 4
    This will not work on Windows. – Alexandre C. Mar 9 '11 at 16:44
  • 2
    Why not? It works on my Windows 8, MinGW compiler. – pkout Oct 15 '13 at 17:45
  • 8
    Yes, it'll work on windows with a c library that supports the gettimeofday call. It actually doesn't matter what the compiler is, you just have to link it against a decent libc library. Which, in the case of mingw, is not the default windows one. – Wes Hardaker Jan 10 '14 at 18:22
  • 4
    this one is better and reliable than accepted one. – Harshit Gupta Sep 12 '14 at 6:02
  • 1
    This works for me on Windows XP with cygwin gcc & Linux Ubuntu. This is just what i wanted. – Love and peace - Joe Codeswell May 21 '15 at 2:20

In plain vanilla C:

#include <time.h>
#include <stdio.h>

int main()
{
    clock_t tic = clock();

    my_expensive_function_which_can_spawn_threads();

    clock_t toc = clock();

    printf("Elapsed: %f seconds\n", (double)(toc - tic) / CLOCKS_PER_SEC);

    return 0;
}

Most of the simple programs have computation time in milli-seconds. So, i suppose, you will find this useful.

#include <time.h>
#include <stdio.h>

int main(){
    clock_t start = clock();
    // Execuatable code
    clock_t stop = clock();
    double elapsed = (double)(stop - start) * 1000.0 / CLOCKS_PER_SEC;
    printf("Time elapsed in ms: %f", elapsed);
}

If you want to compute the runtime of the entire program and you are on a Unix system, run your program using the time command like this time ./a.out

  • In Windows at least the factor is at least 100 but not 1000 and it's not exact – boctulus Apr 16 '16 at 12:29
  • 5
    This answer doesn't add anything that wasn't in Alexandre C's answer from two year's earlier. – Jonathan Leffler Dec 5 '16 at 1:25
  • @boctulus: 1s is always 1000ms, also on windows. – alk Jul 21 '17 at 15:09

A lot of answers have been suggesting clock() and then CLOCKS_PER_SEC from time.h. This is probably a bad idea, because this is what my /bits/time.h file says:

/* ISO/IEC 9899:1990 7.12.1: <time.h>
The macro `CLOCKS_PER_SEC' is the number per second of the value
returned by the `clock' function. */
/* CAE XSH, Issue 4, Version 2: <time.h>
The value of CLOCKS_PER_SEC is required to be 1 million on all
XSI-conformant systems. */
#  define CLOCKS_PER_SEC  1000000l

#  if !defined __STRICT_ANSI__ && !defined __USE_XOPEN2K
/* Even though CLOCKS_PER_SEC has such a strange value CLK_TCK
presents the real value for clock ticks per second for the system.  */
#   include <bits/types.h>
extern long int __sysconf (int);
#   define CLK_TCK ((__clock_t) __sysconf (2))  /* 2 is _SC_CLK_TCK */
#  endif

So CLOCKS_PER_SEC might be defined as 1000000, depending on what options you use to compile, and thus it does not seem like a good solution.

  • 1
    Thanks for the information but is there any better alternative yet? – ozanmuyes Oct 16 '14 at 21:00
  • 2
    This is not a pratical problem: yes Posix systems always have CLOCK_PER_SEC==1000000, but in the same time, they all use 1-µs precision for their clock() implementation; by the way, it has the nice property to reduce sharing problems. If you want to measure potentially very quick events, say below 1 ms, then you should first worry about the accuracy (or resolution) of the clock() function, which is necessarily coarser than 1µs in Posix, but is also often much coarser; the usual solution is to run the test many times; the question as asked did not seem to require it, though. – AntoineL Apr 22 '15 at 15:29

You have to take into account that measuring the time that took a program to execute depends a lot on the load that the machine has in that specific moment.

Knowing that, the way of obtain the current time in C can be achieved in different ways, an easier one is:

#include <time.h>

#define CPU_TIME (getrusage(RUSAGE_SELF,&ruse), ruse.ru_utime.tv_sec + \
  ruse.ru_stime.tv_sec + 1e-6 * \
  (ruse.ru_utime.tv_usec + ruse.ru_stime.tv_usec))

int main(void) {
    time_t start, end;
    double first, second;

    // Save user and CPU start time
    time(&start);
    first = CPU_TIME;

    // Perform operations
    ...

    // Save end time
    time(&end);
    second = CPU_TIME;

    printf("cpu  : %.2f secs\n", second - first); 
    printf("user : %d secs\n", (int)(end - start));
}

Hope it helps.

Regards!

ANSI C only specifies second precision time functions. However, if you are running in a POSIX environment you can use the gettimeofday() function that provides microseconds resolution of time passed since the UNIX Epoch.

As a side note, I wouldn't recommend using clock() since it is badly implemented on many(if not all?) systems and not accurate, besides the fact that it only refers to how long your program has spent on the CPU and not the total lifetime of the program, which according to your question is what I assume you would like to measure.

  • ISO C Standard (assuming this is what ANSI C means) purposely does not specify the precision of the time functions. Then specifically on a POSIX implementation, or on Windows, precision of the wall-clock (see Thomas' answer) functions are in seconds. But clock()'s precision is usually greater, and always 1µs in Posix (independently of the accuracy.) – AntoineL Apr 22 '15 at 15:18

Every solution's are not working in my system.

I can get using

#include <time.h>

double difftime(time_t time1, time_t time0);
  • 1
    This gives the difference between two time_t values as a double. Since time_t values are only accurate to a second, it is of limited value in printing out the time taken by short running programs, though it may be useful for programs that run for long periods. – Jonathan Leffler Dec 5 '16 at 1:12
  • For whatever reason, passing in a pair of clock_ts to difftime seems to work for me to the precision of a hundredth of a second. This is on linux x86. I also can't get the subtraction of stop and start to work. – ragerdl Dec 13 '16 at 19:39
  • @ragerdl: You need to pass to difftime() clock() / CLOCKS_PER_SEC, as it expects seconds. – alk Jul 21 '17 at 15:11
    #include<time.h>
    #include<stdio.h>
    int main(){
clock_t begin=clock();

    int i;
for(i=0;i<100000;i++){
printf("%d",i);

}
clock_t end=clock();
printf("Time taken:%lf",(double)(end-begin)/CLOCKS_PER_SEC);
}

This program will work like charm.

(All answers here are lacking, if your sysadmin changes the systemtime, or your timezone has differing winter- and sommer-times. Therefore...)

On linux use: clock_gettime(CLOCK_MONOTONIC_RAW, &time_variable); It's not affected if the system-admin changes the time, or you live in a country with winter-time different from summer-time, etc.

#include <stdio.h>
#include <time.h>

#include <unistd.h> /* for sleep() */

int main() {
    struct timespec begin, end;
    clock_gettime(CLOCK_MONOTONIC_RAW, &begin);

    sleep(1);      // waste some time

    clock_gettime(CLOCK_MONOTONIC_RAW, &end);

    printf ("Total time = %f seconds\n",
            (end.tv_nsec - begin.tv_nsec) / 1000000000.0 +
            (end.tv_sec  - begin.tv_sec));

}

man clock_gettime states:

CLOCK_MONOTONIC
              Clock  that  cannot  be set and represents monotonic time since some unspecified starting point.  This clock is not affected by discontinuous jumps in the system time
              (e.g., if the system administrator manually changes the clock), but is affected by the incremental adjustments performed by adjtime(3) and NTP.
  • Can you explain the calculation that you used to get the number of seconds? It is not obvious what's going on. – Colin Keenan Mar 30 '17 at 17:29
  • 1
    Wouldn't this (end.tv_nsec - begin.tv_nsec) / 1000000000.0 result in 0 always? – alk Jul 21 '17 at 15:15

Thomas Pornin's answer as macros:

#define TICK(X) clock_t X = clock()
#define TOCK(X) printf("time %s: %g sec.\n", (#X), (double)(clock() - (X)) / CLOCKS_PER_SEC)

Use it like this:

TICK(TIME_A);
functionA();
TOCK(TIME_A);

TICK(TIME_B);
functionB();
TOCK(TIME_B);

Output:

time TIME_A: 0.001652 sec.
time TIME_B: 0.004028 sec.

Comparison of execution time of bubble sort and selection sort I have a program which compares the execution time of bubble sort and selection sort. To find out the time of execution of a block of code compute the time before and after the block by

 clock_t start=clock();
 …
 clock_t end=clock();
 CLOCKS_PER_SEC is constant in time.h library

Example code:

#include <stdio.h>
#include <stdlib.h>
#include <time.h>
int main()
{
   int a[10000],i,j,min,temp;
   for(i=0;i<10000;i++)
   {
      a[i]=rand()%10000;
   }
   //The bubble Sort
   clock_t start,end;
   start=clock();
   for(i=0;i<10000;i++)
   {
     for(j=i+1;j<10000;j++)
     {
       if(a[i]>a[j])
       {
         int temp=a[i];
         a[i]=a[j];
         a[j]=temp;
       }
     }
   }
   end=clock();
   double extime=(double) (end-start)/CLOCKS_PER_SEC;
   printf("\n\tExecution time for the bubble sort is %f seconds\n ",extime);

   for(i=0;i<10000;i++)
   {
     a[i]=rand()%10000;
   }
   clock_t start1,end1;
   start1=clock();
   // The Selection Sort
   for(i=0;i<10000;i++)
   {
     min=i;
     for(j=i+1;j<10000;j++)
     {
       if(a[min]>a[j])
       {
         min=j;
       }
     }
     temp=a[min];
     a[min]=a[i];
     a[i]=temp;
   }
   end1=clock();
   double extime1=(double) (end1-start1)/CLOCKS_PER_SEC;
   printf("\n");
   printf("\tExecution time for the selection sort is %f seconds\n\n", extime1);
   if(extime1<extime)
     printf("\tSelection sort is faster than Bubble sort by %f seconds\n\n", extime - extime1);
   else if(extime1>extime)
     printf("\tBubble sort is faster than Selection sort by %f seconds\n\n", extime1 - extime);
   else
     printf("\tBoth algorithms have the same execution time\n\n");
}
  • 3
    This doesn't really add anything new compared with adimoh's answer, except that it fills in 'the executable code' block (or two of them) with some actual code. And that answer doesn't add anything that wasn't in Alexandre C's answer from two year's earlier. – Jonathan Leffler Dec 5 '16 at 1:22

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