LeetCode 477. Total Hamming Distance
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题目要求
The Hamming distance between two integers is the number of positions at which the corresponding bits are different.
Now your job is to find the total Hamming distance between all pairs of the given numbers.
Example:
Input: 4, 14, 2
Output: 6
Explanation: In binary representation, the 4 is 0100, 14 is 1110, and 2 is 0010 (just
showing the four bits relevant in this case). So the answer will be:
HammingDistance(4, 14) + HammingDistance(4, 2) + HammingDistance(14, 2) = 2 + 2 + 2 = 6.
Note:
1. Elements of the given array are in the range of 0 to 10^9
2. Length of the array will not exceed 10^4.
题意解析
计算一个数组中,任意两个数汉明距离的总和。
解法分析
对于一个数组中,全部数字二进制的任意一位,汉明距离的总和为1的个数乘以0的个数。而数组中的数皆为int
类型,所以一共需要进行32次循环。
解题代码
public int totalHammingDistance(int[] nums) { int sum = 0; for (int i = 0; i < 32; i++) { int ones = 0; for (int j = 0; j < nums.length; j++) ones += (nums[j] >> i) & 0x1; sum += ones * (nums.length - ones); } return sum; }
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