package LeetCode_1395 /** * 1395. Count Number of Teams * https://leetcode.com/problems/count-number-of-teams/ * There are n soldiers standing in a line. Each soldier is assigned a unique rating value. You have to form a team of 3 soldiers amongst them under the following rules: Choose 3 soldiers with index (i, j, k) with rating (rating[i], rating[j], rating[k]). A team is valid if: (rating[i] < rating[j] < rating[k]) or (rating[i] > rating[j] > rating[k]) where (0 <= i < j < k < n). Return the number of teams you can form given the conditions. (soldiers can be part of multiple teams). Example 1: Input: rating = [2,5,3,4,1] Output: 3 Explanation: We can form three teams given the conditions. (2,3,4), (5,4,1), (5,3,1). Example 2: Input: rating = [2,1,3] Output: 0 Explanation: We can't form any team given the conditions. Example 3: Input: rating = [1,2,3,4] Output: 4 Constraints: 1. n == rating.length 2. 3 <= n <= 1000 3. 1 <= rating[i] <= 10^5 4. All the integers in rating are unique. * */ class Solution { /* * solution 1: bruce force, Time:O(n^3), Space:O(1) * solution 2: dp, Time:O(n^2), Space:O(1) * */ fun numTeams(rating: IntArray): Int { var result = 0 val n = rating.size val dp = IntArray(n) for (i in 1 until n) { var increasingCount = 0 for (j in 0 until i) { if (rating[j] < rating[i]) { increasingCount++ /* * like j in the middle, if (rating[j]<rating[i]), find out one result matching: * rating[j-1]<rating[j]<rating[i], * dp[j]: meaning there are how many number less than rating[j], from index_0 to index_j, * */ result += dp[j] } //dp[i]: there are how many number less than rating[i], from index_0 to index_i, dp[i] = increasingCount } } //reset dp arra and reverse rating to do again, just like decreasing for (i in 0 until n) { dp[i] = 0 } rating.reverse()
for (i in 1 until n) { var increasingCount = 0 for (j in 0 until i) { if (rating[j] < rating[i]) { increasingCount++ result += dp[j] } dp[i] = increasingCount } } return result } }