码迷,mamicode.com
首页 > 移动开发 > 详细

LeetCode 689. Maximum Sum of 3 Non-Overlapping Subarrays

时间:2019-12-09 14:08:23      阅读:92      评论:0      收藏:0      [点我收藏+]

标签:NPU   oba   for   over   i+1   present   code   wan   toc   

原题链接在这里:https://leetcode.com/problems/maximum-sum-of-3-non-overlapping-subarrays/

题目:

In a given array nums of positive integers, find three non-overlapping subarrays with maximum sum.

Each subarray will be of size k, and we want to maximize the sum of all 3*k entries.

Return the result as a list of indices representing the starting position of each interval (0-indexed). If there are multiple answers, return the lexicographically smallest one.

Example:

Input: [1,2,1,2,6,7,5,1], 2
Output: [0, 3, 5]
Explanation: Subarrays [1, 2], [2, 6], [7, 5] correspond to the starting indices [0, 3, 5].
We could have also taken [2, 1], but an answer of [1, 3, 5] would be lexicographically larger.

Note:

  • nums.length will be between 1 and 20000.
  • nums[i] will be between 1 and 65535.
  • k will be between 1 and floor(nums.length / 3).

题解:

Get the accumlated sum for nums.

Iterate from left to right to get the starting index of biggest subarray left to current index.

Iterate from right to left to get the starting index of biggest subarray right to current index.

Then for the middle part, index could be [k, n-2*k]. Iterate each of them, get the left biggest starting index and right biggest starting index. 

Keep updating the global maximum and res.

Time Complexity: O(n). n = nums.length.

Space: O(n).

AC Java:

 1 class Solution {
 2     public int[] maxSumOfThreeSubarrays(int[] nums, int k) {
 3         int [] res = new int[3];
 4         Arrays.fill(res, -1);
 5         if(nums == null || nums.length < 3 * k){
 6             return res;
 7         }
 8         
 9         int n = nums.length;
10         int [] sum = new int[n+1];
11         for(int i = 0; i<n; i++){
12             sum[i+1] = sum[i] + nums[i];
13         }
14         
15         int [] leftPo = new int[n];
16         for(int i = k, max = sum[k] - sum[0]; i<n; i++){
17             if(sum[i+1] - sum[i+1-k] > max){
18                 max = sum[i+1] - sum[i+1-k];
19                 leftPo[i] = i+1-k;
20             }else{
21                 leftPo[i] = leftPo[i-1];
22             }
23         }
24         
25         int [] rightPo = new int[n];
26         rightPo[n-k] = n-k;
27         for(int i = n-k-1, max = sum[n] - sum[n-k]; i>=0; i--){
28             if(sum[i+k] - sum[i] >= max){
29                 max = sum[i+k] - sum[i];
30                 rightPo[i] = i;
31             }else{
32                 rightPo[i] = rightPo[i+1];
33             }
34         }
35         
36         for(int i = k, max = 0; i<=n-2*k; i++){
37             int l = leftPo[i - 1];
38             int r = rightPo[i + k];
39             if(sum[i+k] - sum[i] + sum[l+k] - sum[l] + sum[r+k] - sum[r] > max){
40                 max = sum[i+k] - sum[i] + sum[l+k] - sum[l] + sum[r+k] - sum[r];
41                 res[0] = l;
42                 res[1] = i;
43                 res[2] = r;
44             }
45         }
46         
47         return res;
48     }
49 }

类似Best Time to Buy and Sell Stock III.

LeetCode 689. Maximum Sum of 3 Non-Overlapping Subarrays

标签:NPU   oba   for   over   i+1   present   code   wan   toc   

原文地址:https://www.cnblogs.com/Dylan-Java-NYC/p/12010372.html

(0)
(0)
   
举报
评论 一句话评论(0
登录后才能评论!
© 2014 mamicode.com 版权所有  联系我们:gaon5@hotmail.com
迷上了代码!