标签:二进制 data pos code mod solution amp tracking snippet
#include<stdio.h>
int numberOf1_solution1(int n)/*将一个正数以此向右移一位,与1做与运算。直到这个数为零*/
{
int count = 0;
while (n)
{
if (n&1)
count++;
n=n >> 1;
}
return count;
}
int numberOf1_solution2(int n)/*将1以此向右移动以为,与一个数(正负数均可)做与运算,直到1出现上溢为止*/
{
int count = 0, i = 1;
while (i)
{
if (n&i)
count++;
i = i << 1;
}
return count;
}
int numberOf1_solution3(int n)/*将一个数减去1后再与本身相与。便可降低一个1,利用这个原理求1的个数*/
{
int count = 0;
while (n)
{
n = (n - 1)&n;
count++;
}
return count;
}
int main()
{
printf("%d\n",numberOf1_solution3(5));
return 0;
}标签:二进制 data pos code mod solution amp tracking snippet
原文地址:http://www.cnblogs.com/yangykaifa/p/7144230.html
