Assume you have an array of length n initialized with all 0's and are given k update operations.
Each operation is represented as a triplet: [startIndex, endIndex, inc] which increments each element of subarray A[startIndex ... endIndex](startIndex and endIndex inclusive) with inc.
Return the modified array after all k operations were executed.
Example:
Given:
length = 5,
updates = [
[1, 3, 2],
[2, 4, 3],
[0, 2, -2]
]
Output:
[-2, 0, 3, 5, 3]
Explanation:
Initial state: [ 0, 0, 0, 0, 0 ] After applying operation [1, 3, 2]: [ 0, 2, 2, 2, 0 ] After applying operation [2, 4, 3]: [ 0, 2, 5, 5, 3 ] After applying operation [0, 2, -2]: [-2, 0, 3, 5, 3 ]
Hint:
- Thinking of using advanced data structures? You are thinking it too complicated.
- For each update operation, do you really need to update all elements between i and j?
- Update only the first and end element is sufficient.
- The optimal time complexity is O(k + n) and uses O(1) extra space.
Credits:
Special thanks to @vinod23 for adding this problem and creating all test cases.
这道题的提示说了我们肯定不能把范围内的所有数字都更新,而是只更新开头结尾两个数字就行了,那么我们的做法就是在开头坐标startIndex位置加上inc,而在结束位置加1的地方加上-inc,那么根据题目中的例子,我们可以得到一个数组,nums = {-2, 2, 3, 2, -2, -3},然后我们发现对其做累加和就是我们要求的结果result = {-2, 0, 3, 5, 3}
public class Solution { public int[] getModifiedArray(int length, int[][] updates) { int[] res = new int [length+1]; for(int[] update : updates){ int start = update[0]; int end = update[1] + 1; int value = update[2]; res[start] = res[start] + value; res[end] = res[end] - value; } int[] arr = new int[length]; arr[0] = res[0]; for(int i=1;i<length;i++) { arr[i] = arr[i-1] + res [i]; } return arr; } }
reference: http://massivealgorithms.blogspot.com/2016/06/leetcode-370-range-addition.html