https://www.cnblogs.com/findbetterme/p/10787118.html 看这个就完事了 1. 统计两个数的二进制表示有多少位不同 461. Hamming Distance (Easy) Leetcode / 力扣 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 correspo…

仔细阅读ORB的代码,发现有很多细节不是很明白,其中就有用暴力方式测试Keypoints的距离,用的是HammingLUT,上网查了才知道,hamming距离是相差位数.这样就好理解了. 我理解的HammingLUT lut; result=lut((a),(b),size_t size):result=a与b的hamming distance+size; unsigned int hamdist(unsigned int x, unsigned int y) { unsigned int di…

位运算是我最近才开始重视的东西,因为在LeetCode上面刷题的时候发现很多题目使用位运算会快很多.位运算的使用包含着许多技巧(详细可以参考http://blog.csdn.net/zmazon/article/details/8262185),但我仅仅在大一学C语言入门的时候接触过,很多东西都不了解,因此我在这篇文章里面稍微总结一下我在LeetCode遇到的关于位运算的题目,当然仅仅只是一部分,因此这篇文章可能会在我每次遇到位运算的题目时更新一下. 首先要回忆一下有哪些位运算的操作: 按位与…

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 < 2^31. Example: Input: x = 1, y = 4 Output: 2 Explanation:…

位运算基础 说到与(&).或(|).非(~).异或(^).位移等位运算,就得说到位运算的各种奇淫巧技,下面分运算符说明. 1. 与(&) 计算式 a&b,a.b各位中同为 1 才为 1,否则为0,a&1和a%2效果一样:来看两道典型的题目,第1道计算整数二进制中 1 的位数: //191. Number of 1 Bits int hammingWeight(uint32_t n) { ; ){ n=n&(n-); ++res; } return res; } n=…

题目: 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 < 2^31. Example: Input: x = 1, y = 4 Output: 2 Explanati…

［抄题］: 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 Ex…

[Leetcode/Javascript] 461.Hamming Distance 题目 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. Exampl…

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. Input: x = 1, y = 4 Output: 2 Explanation: 1 (0 0 0 1…

位运算基础 说到与(&).或(|).非(~).异或(^).位移等位运算,就得说到位运算的各种奇淫巧技,下面分运算符说明. 1. 与(&) 计算式 a&b,a.b各位中同为 1 才为 1,否则为0,a&1和a%2效果一样:来看两道典型的题目,第1道计算整数二进制中 1 的位数: //191. Number of 1 Bits int hammingWeight(uint32_t n) { ; ){ n=n&(n-); ++res; } return res; } n=…