1705. Maximum Number of Eaten Apples
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Description
There is a special kind of apple tree that grows apples every day for n days. On the ith day, the tree grows apples[i] apples that will rot after days[i] days, that is on day i + days[i] the apples will be rotten and cannot be eaten. On some days, the apple tree does not grow any apples, which are denoted by apples[i] == 0 and days[i] == 0.
You decided to eat at most one apple a day (to keep the doctors away). Note that you can keep eating after the first n days.
Given two integer arrays days and apples of length n, return the maximum number of apples you can eat.
Example 1:
Input: apples = [1,2,3,5,2], days = [3,2,1,4,2] Output: 7 Explanation: You can eat 7 apples: - On the first day, you eat an apple that grew on the first day. - On the second day, you eat an apple that grew on the second day. - On the third day, you eat an apple that grew on the second day. After this day, the apples that grew on the third day rot. - On the fourth to the seventh days, you eat apples that grew on the fourth day.
Example 2:
Input: apples = [3,0,0,0,0,2], days = [3,0,0,0,0,2] Output: 5 Explanation: You can eat 5 apples: - On the first to the third day you eat apples that grew on the first day. - Do nothing on the fouth and fifth days. - On the sixth and seventh days you eat apples that grew on the sixth day.
Constraints:
n == apples.length == days.length1 <= n <= 2 * 1040 <= apples[i], days[i] <= 2 * 104days[i] = 0if and only ifapples[i] = 0.
Solution
maximum-number-of-eaten-apples.py
from heapq import heappop, heappush
class Solution:
def eatenApples(self, apples: List[int], days: List[int]) -> int:
n = len(apples)
i = res = 0
heap = []
while True:
if i < n:
heappush(heap, (days[i] + i, apples[i]))
while heap and i >= heap[0][0]:
heappop(heap)
if heap:
rot, apple = heappop(heap)
res += 1
if apple > 1:
heappush(heap, (rot, apple - 1))
if not heap and i >= n: break
i += 1
return res