package LeetCode_565 /** * 565. Array Nesting * https://leetcode.com/problems/array-nesting/ * A zero-indexed array A of length N contains all integers from 0 to N-1. * Find and return the longest length of set S, where S[i] = {A[i], A[A[i]], A[A[A[i]]], ... } subjected to the rule below. Suppose the first element in S starts with the selection of element A[i] of index = i, the next element in S should be A[A[i]], and then A[A[A[i]]]… By that analogy, we stop adding right before a duplicate element occurs in S. Example 1: Input: A = [5,4,0,3,1,6,2] Output: 4 Explanation: A[0] = 5, A[1] = 4, A[2] = 0, A[3] = 3, A[4] = 1, A[5] = 6, A[6] = 2. One of the longest S[K]: S[0] = {A[0], A[5], A[6], A[2]} = {5, 6, 2, 0} Note: 1. N is an integer within the range [1, 20,000]. 2. The elements of A are all distinct. 3. Each element of A is an integer within the range [0, N-1]. * */ class Solution { /* * solution: HashSet, Time:O(n), Space:O(n) * */ fun arrayNesting(nums: IntArray): Int { val set = HashSet<Int>() var max = 0 for (i in nums.indices) { /* * for example: [5,4,0,3,1,6,2], set not contains 0, then j = 0, * */ if (!set.contains(i)) { var j = i var currentCount = 0 while (!set.contains(j)) { set.add(j) /* * j = nums[0]:j = 5, set not contains 5, * j = nums[5]:j = 6, set not contains 2, * j = nums[2]:j = 0, set contains 0, break while to next for loop * */ j = nums[j] currentCount++ } //after break while loop, compare the maximum value max = Math.max(max, currentCount) } } return max } }