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 ]
Solution:在start置value,再积分处理
思路:
对于 [startIndex, endIndex, inc_value]
在startIndex上存inc_value,endIndex+1上存-1 * inc_value
返回结果时遍历累计sum(积分)
for example it will look like:
[1 , 3 , 2] , [2, 3, 3] (length = 5)
res[ 0, 2, ,0, 0 -2 ]
res[ 0 ,2, 3, 0, -5]
sum 0, 2, 5, 5, 0
res[0, 2, 5, 5, 0]
Time Complexity: O(k+N) Space Complexity: O(1)
Solution Code:
class Solution {
public int[] getModifiedArray(int length, int[][] updates) {
int[] res = new int[length];
for(int[] update : updates) {
int value = update[2];
int start = update[0];
int end = update[1];
res[start] += value;
if(end < length - 1) {
res[end + 1] -= value;
}
}
int sum = 0;
for(int i = 0; i < length; i++) {
sum += res[i];
res[i] = sum;
}
return res;
}
}
