C clock() 函数只返回零.我尝试使用不同的类型,但没有任何改进......这是一种以高精度测量时间的好方法吗?
#include #include int main(){clock_t 开始,结束;双 cpu_time_used;字符 [32];开始 = 时钟();printf("
睡眠 3 秒...
");睡眠(3);结束 = 时钟();cpu_time_used = ((double)(end - start))/((double)CLOCKS_PER_SEC);printf("start = %.20f
end = %.20f
", start, end);printf("delta = %.20f
", ((double) (end - start)));printf("cpu_time_used = %.15f
", cpu_time_used);printf("CLOCKS_PER_SEC = %i
", CLOCKS_PER_SEC);返回0;} <块引用>
睡眠3秒...开始 = 0.00000000000000000000结束 = 0.00000000000000000000增量 = 0.00000000000000000000cpu_time_used = 0.000000000000000CLOCKS_PER_SEC = 1000000平台:Intel 32 位,RedHat Linux,gcc 3.4.6
clock() 报告 CPU 使用时间.sleep() 不使用任何 CPU 时间.所以你的结果可能完全正确,只是不是你想要的.
The C clock() function just returns me a zero. I tried using different types, with no improvement... Is this a good way to measure time with good precision?
#include <time.h>
#include <stdio.h>
int main()
{
clock_t start, end;
double cpu_time_used;
char s[32];
start = clock();
printf("
Sleeping 3 seconds...
");
sleep(3);
end = clock();
cpu_time_used = ((double)(end - start)) / ((double)CLOCKS_PER_SEC);
printf("start = %.20f
end = %.20f
", start, end);
printf("delta = %.20f
", ((double) (end - start)));
printf("cpu_time_used = %.15f
", cpu_time_used);
printf("CLOCKS_PER_SEC = %i
", CLOCKS_PER_SEC);
return 0;
}
Sleeping 3 seconds... start = 0.00000000000000000000 end = 0.00000000000000000000 delta = 0.00000000000000000000 cpu_time_used = 0.000000000000000 CLOCKS_PER_SEC = 1000000
Platform: Intel 32 bit, RedHat Linux, gcc 3.4.6
clock() reports CPU time used. sleep() doesn't use any CPU time. So your result is probably exactly correct, just not what you want.
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