package LeetCode_826 /** * 826. Most Profit Assigning Work * https://leetcode.com/problems/most-profit-assigning-work/description/ * * We have jobs: difficulty[i] is the difficulty of the ith job, and profit[i] is the profit of the ith job. Now we have some workers. * worker[i] is the ability of the ith worker, which means that this worker can only complete a job with difficulty at most worker[i]. Every worker can be assigned at most one job, but one job can be completed multiple times. For example, if 3 people attempt the same job that pays $1, then the total profit will be $3. If a worker cannot complete any job, his profit is $0. What is the most profit we can make? Example 1: Input: difficulty = [2,4,6,8,10], profit = [10,20,30,40,50], worker = [4,5,6,7] Output: 100 Explanation: Workers are assigned jobs of difficulty [4,4,6,6] and they get profit of [20,20,30,30] seperately. Notes: 1 <= difficulty.length = profit.length <= 10000 1 <= worker.length <= 10000 difficulty[i], profit[i], worker[i] are in range [1, 10^5] * */ class Solution { /* * solution: Greedy, Time complexity:O(nlogn), Space complexity:O(n) * */ fun maxProfitAssignment(difficulty: IntArray, profit: IntArray, worker: IntArray): Int { val n = difficulty.size //define Pair of array, //for Pair, first:difficulty, second:profit; and keep track the max profile so far. val jobs = Array<Pair<Int, Int>>(n, { Pair(0, 0) }) for (i in 0 until n) { jobs[i] = Pair(difficulty[i], profit[i]) } //sort the jobs by difficulty increasing jobs.sortWith(Comparator { a, b -> a.first - b.first }) //sort the worker worker.sort() var i = 0 //current best profit var best = 0 var answer = 0 for (level in worker) { //keep tracking current worker how many profit can make and update the result while (i < n && level >= jobs[i].first) { best = Math.max(best, jobs[i++].second) } answer += best } return answer } }