package LeetCode_493 import java.util.* /** * 493. Reverse Pairs * https://leetcode.com/problems/reverse-pairs/ * * Given an array nums, we call (i, j) an important reverse pair if i < j and nums[i] > 2*nums[j]. You need to return the number of important reverse pairs in the given array. Example1: Input: [1,3,2,3,1] Output: 2 Example2: Input: [2,4,3,5,1] Output: 3 Note: 1. The length of the given array will not exceed 50,000. 2. All the numbers in the input array are in the range of 32-bit integer. * */ class Solution { /* * solution 1: like merge sort, split array into two sub-array, and check left side if meet the condition, * Time complexity:O(nlogn), Space complexity:O(n) * */ var result = 0 fun reversePairs(nums: IntArray): Int { if (nums.size < 2) { return 0 } mergeSort(nums, 0, nums.size - 1) return result } private fun mergeSort(nums: IntArray, left: Int, right: Int) { if (left < right) { val mid = left + (right - left) / 2 mergeSort(nums, left, mid) mergeSort(nums, mid + 1, right) merge(nums, left, mid, right) } } private fun merge(nums: IntArray, left: Int, mid: Int, right: Int) { var i = left var j = mid + 1 while (i <= mid && j <= right) { if (nums[i].toLong() <= 2 * nums[j].toLong()) { i++ } else { //because array is sorted, so the index in left was meet the condition, //so other index in right of current index are meet the condition as well /* for example: left: 1,3,5,7 | right: 2,4,6,8 (3,2),(5,2),(7,2) are Reverse Pairs */ result += mid - i + 1 j++ } } //sort current range Arrays.sort(nums, left, right + 1) } }