You are given an array of integers nums (0-indexed) and an integer k.
The score of a subarray (i, j) is defined as min(nums[i], nums[i+1], ..., nums[j]) * (j - i + 1). A good subarray is a subarray where i <= k <= j.
Return the maximum possible score of a good subarray.
Example 1:
Input: nums = [1,4,3,7,4,5], k = 3 Output: 15 Explanation: The optimal subarray is (1, 5) with a score of min(4,3,7,4,5) * (5-1+1) = 3 * 5 = 15.
Example 2:
Input: nums = [5,5,4,5,4,1,1,1], k = 0 Output: 20 Explanation: The optimal subarray is (0, 4) with a score of min(5,5,4,5,4) * (4-0+1) = 4 * 5 = 20.
Constraints:
1 <= nums.length <= 1051 <= nums[i] <= 2 * 1040 <= k < nums.length
Companies: Google
Related Topics:
Array, Two Pointers, Binary Search, Stack, Monotonic Stack
Similar Questions:
Hints:
- Try thinking about the prefix before index k and the suffix after index k as two separate arrays.
- Using two pointers or binary search, we can find the maximum prefix of each array where the numbers are less than or equal to a certain value
Use a window [i + 1, j - 1] starting from [k, k] and extend it to the length of A.
The length of the window will mono-increase with the same amount = 1 in either direction, so we just always pick the direction which has a greater min value.
If lmin == rmin, extending either direction is fine. Assume we keep extending leftwards until lmin != rmin, and in this case lmin must be < rmin, so our algorithm will start to extend rightwards.
// OJ: https://leetcode.com/problems/maximum-score-of-a-good-subarray/
// Author: github.com/lzl124631x
// Time: O(N)
// Space: O(1)
class Solution {
public:
int maximumScore(vector<int>& A, int k) {
int i = k - 1, j = k + 1, N = A.size(), ans = A[k], mn = A[k]; // `i` and `j` point to the next left and right element to extend, respectively. `mn` is the min value within window `[i + 1, j - 1]`.
for (int len = 2; len <= N; ++len) {
int lmin = min(mn, i >= 0 ? A[i] : 0); // if extending leftwards, the new min value is lmin
int rmin = min(mn, j < N ? A[j] : 0); // if extending rightwards, the new min value is rmin
if (lmin >= rmin) --i; // extending leftwards is as good as or better than extending rightwards.
else ++j;
mn = max(lmin, rmin);
ans = max(ans, mn * len);
}
return ans;
}
};Similar to Solution 1, but we just look at the A[i] and A[j] themselves. We always pick the greater one.
This works because the min value in the window can only decrease but not increase, so picking the smaller one must yield a result that is no better than picking the greater one.
// OJ: https://leetcode.com/problems/maximum-score-of-a-good-subarray/
// Author: github.com/lzl124631x
// Time: O(N)
// Space: O(1)
class Solution {
public:
int maximumScore(vector<int>& A, int k) {
int i = k - 1, j = k + 1, N = A.size(), ans = A[k], mn = A[k];
while (i >= 0 || j < N) {
if (i < 0 || (j < N && A[j] > A[i])) {
mn = min(mn, A[j]);
++j;
} else {
mn = min(mn, A[i]);
--i;
}
ans = max(ans, mn * (j - i - 1));
}
return ans;
}
};