package LeetCode_540 /** * 540. Single Element in a Sorted Array * https://leetcode.com/problems/single-element-in-a-sorted-array/ * You are given a sorted array consisting of only integers where every element appears exactly twice, * except for one element which appears exactly once. * Find this single element that appears only once. * Follow up: Your solution should run in O(log n) time and O(1) space. Example 1: Input: nums = [1,1,2,3,3,4,4,8,8] Output: 2 Example 2: Input: nums = [3,3,7,7,10,11,11] Output: 10 Constraints: 1. 1 <= nums.length <= 10^5 2. 0 <= nums[i] <= 10^5 * */ class Solution { /* * solution 1: xor, two same num xor return 0, otherwise return 1, * Time complexity:O(n), Space complexity:O(1) * solution 2: binary search, we found the index of single number is even, * Time complexity:O(logn), Space complexity:O(1) * */ fun singleNonDuplicate(nums: IntArray): Int { //solution 1 /* var result = 0 for (num in nums){ result = result xor num } return result */ //solution 2 val n = nums.size var left = 0 var right = n - 1 while (left < right) { //we check the index of pair, if m is even, so n is odd //for example: [1,1,2]: we should check index 0,1; [10,11,11]: we should check index 1,2 val m = left + (right - left) / 2 val n = if (m % 2 == 0) m + 1 else m - 1 if (nums[m] == nums[n]) { //for example:[3,3,7,7,10,11,11] //search in right side left = m + 1 } else { right = m } } return nums[left] } }