//写一个函数返回参数二进制中1 的个数
#include <stdio.h>
int count_one_bits(unsigned int value);//函数声明
int main()
{
int num;
int counts;
printf("请输入数字:");
scanf("%d",&num);
printf("二进制1的位数为:");
counts=count_one_bits(num);
printf("%d\n",counts);
return 0;
}
int count_one_bits(unsigned int value)//计算1的位数函数
{
int count;
count=0;
while(value)
{
count++;
value=value&(value-1);
}
return count;
}
原文:http://10788311.blog.51cto.com/10778311/1704064