要在linux中找到平均负载,我使用sys/sysinfo.h,其中包括linux/kernel.h,其中定义了以下结构:
struct sysinfo {
long uptime; /* Seconds since boot */
unsigned long loads[3]; /* 1, 5, and 15 minute load averages */
unsigned long totalram; /* Total usable main memory size */
unsigned long freeram; /* Available memory size */
unsigned long sharedram; /* Amount of shared memory */
unsigned long bufferram; /* Memory used by buffers */
unsigned long totalswap; /* Total swap space size */
unsigned long freeswap; /* swap space still available */
unsigned short procs; /* Number of current processes */
unsigned short pad; /* explicit padding for m68k */
unsigned long totalhigh; /* Total high memory size */
unsigned long freehigh; /* Available high memory size */
unsigned int mem_unit; /* Memory unit size in bytes */
char _f[20-2*sizeof(long)-sizeof(int)]; /* Padding: libc5 uses this.. */
};
但我认为它没有给出真正的负担.
输出:2552402,3214049236,134513148
这个值意味着什么?
我们可以使用以下uptime命令找到当前加载:
$uptime
13:00:14 up 35 min, 2 users, load average: 1.07, 0.95, 0.80
我在两个输出之上找不到任何连接.
我在网上搜索过.这表示除以2 ^ 16(65536).而且我也试过了.(或者通过SI_LOAD_SHIFT转换1,即1 << SI_LOAD_SHIFT.因为65536 = 1 << 16)
我用的是有四个i3-2120处理器的电脑.'upitime'的输出与cpus的数量有关.维基百科load_average
查看您提供的链接,您应该根据SI_LOAD_SHIFT常量(由 包含sys/sysinfo.h)缩放负载,并引入可用 CPU 的数量以将其转换为 CPU 使用率 %:
struct sysinfo sysinf;
memset(&sysinf, 0, sizeof sysinf);
if (!sysinfo(&sysinf)) {
float f_load = 1.f / (1 << SI_LOAD_SHIFT);
printf("load average (1 min): %.2f (%.0f%% CPU)\n",
sysinf.loads[0] * f_load,
sysinf.loads[0] * f_load * 100/get_nprocs());
// process other loads as well of you need
}