题目:
Given an array containing n distinct numbers taken from 0, 1, 2, ..., n, find the one that is missing from the array.
For example,
Given nums = [0, 1, 3] return 2.
Note:
Your algorithm should run in linear runtime complexity. Could you implement it using only constant extra space complexity?
链接: http://leetcode.com/problems/missing-number/
题解:
求missing number。首先的想法是先求数列和,再减去数组里的数。这样的话要小心写法,有可能会overflow。我的写法就是会溢出的那种。
Time Complexity - O(n), Space Complexity - O(1)
public class Solution { public int missingNumber(int[] nums) { if(nums == null || nums.length == 0) { return 0; } int sum = (1 + nums.length) * nums.length / 2; for(int i : nums) { sum -= i; } return sum; } }
也可以用Bit Manipulation,主要就是利用 0 ^ a = a, 以及 a ^ b ^ a = b
Time Complexity - O(n), Space Complexity - O(1)
public class Solution { public int missingNumber(int[] nums) { if(nums == null || nums.length == 0) { return 0; } int res = nums.length; // nums.length = n for(int i = 0; i < nums.length; i++) { res ^= i; res ^= nums[i]; } return res; } }
二刷:
方法跟一刷一样。 我们首先从把所有0 ~ n的数异或一遍,接着再用这个数把数组中的数异或一遍,这样出现过两次的数都被置零, 剩下的就是 0 ^ missing num = mission num。
Java:
public class Solution { public int missingNumber(int[] nums) { if (nums == null || nums.length == 0) return 0; int res = nums.length; for (int i = 0; i < nums.length; i++) res ^= (i ^ nums[i]); return res; } }
三刷:
public class Solution { public int missingNumber(int[] nums) { if (nums == null) return 0; int n = nums.length; for (int i = 0; i < nums.length; i++) { n ^= i; n ^= nums[i]; } return n; } }
假如输入时排序好的,那么则可以利用index和nums[index]的奇偶性来进行Binary Search
Reference:
https://leetcode.com/discuss/53802/c-solution-using-bit-manipulation
https://leetcode.com/discuss/56174/3-different-ideas-xor-sum-binary-search-java-code
https://leetcode.com/discuss/53937/simple-c-codes
https://leetcode.com/discuss/53790/1-lines-ruby-python-java-c
https://leetcode.com/discuss/53871/java-simplest-solution-o-1-space-o-n-time
https://leetcode.com/discuss/58647/line-simple-java-bit-manipulate-solution-with-explaination