2018-10-23 12:39:17 +00:00
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# [191. Number of 1 Bits](https://leetcode.com/problems/number-of-1-bits/description/)
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# 思路
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## 思路一
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不断循环,每次循环得到最低位的值,最后可得到所有位1的个数。怎样得到最低位的值,两种方法:
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* 1、若num为奇数,则num的最低位肯定为1;
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2020-01-31 04:41:29 +00:00
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* 2、用一个只有低位是1的mask与num进行与操作即可得到最低位(或者保持输入不变而不断左移mask);
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**需要注意的是如果输入不是无符号型而是有符号型,那么如果输入的是负数,即符号位为1,那么右移高位会填1,最终会变成0xFFFFFFFF而陷入死循环。解决办法是保持输入不变而不断左移无符号的mask来判断输入的每一位是否为1.**
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2018-10-23 12:39:17 +00:00
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## 思路二*
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2020-01-31 04:41:29 +00:00
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依然是循环,但是每次循环不是得到最低位的值,而是每次循环去掉最低位的1,用一个count计数即可得到答案。**我们把原数减1,将结果和原数做与运算即可去掉最低位的1,即`n &= (n - 1)`。**
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**此方法同样适用于输入为有符号型的情况。**
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2018-10-23 12:39:17 +00:00
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# C++
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## 思路一
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2019-09-13 15:08:41 +00:00
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``` C++
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2018-10-23 12:39:17 +00:00
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// 方法1
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class Solution {
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public:
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int hammingWeight(uint32_t n) {
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int res = 0;
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while(n != 0){
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res += (n % 2);
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2020-01-31 04:41:29 +00:00
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n >>= 1; // 除法效率比移位低很多
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2018-10-23 12:39:17 +00:00
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}
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return res;
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}
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};
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// 方法2
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class Solution {
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public:
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int hammingWeight(uint32_t n) {
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int res = 0;
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uint32_t mask = 1;
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for(int i = 0; i < 32; i++){
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res += (n & mask);
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n = n >> 1;
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}
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return res;
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}
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};
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```
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## 思路二*
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2019-09-13 15:08:41 +00:00
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``` C++
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2018-10-23 12:39:17 +00:00
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class Solution {
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public:
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int hammingWeight(uint32_t n) {
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int count = 0;
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while (n) {
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n &= (n - 1); // 去掉最后的1
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count++;
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}
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return count;
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}
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};
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```
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