The Hamming distance between two integers is the number of positions at which the corresponding bits are different.
Given two integers x
and y
, calculate the Hamming distance.
Note:
0 ≤ x
, y
< 231.
Example:
Input: x = 1, y = 4 Output: 2 Explanation: 1 (0 0 0 1) 4 (0 1 0 0) ? ? The above arrows point to positions where the corresponding bits are different.
原问题可以装换为,求二进制数中1的个数问题。
统计一个二进制数中 1 的个数。之前在编程之美中看到 用这种方法判断 :下面while循环求二进制中1的个数,原理就是:
一个数减去1,则这个数的二进制数中最后一个1及其后的数字取反。
x & (x - 1) 为它的二进制数中少一个1 的状态..
class Solution { public: int hammingDistance(int x, int y) { int xy=x^y; int dis=0; while(xy) { xy=xy&(xy-1); dis++; } return dis; } };