2483. Minimum Penalty for a Shop
Description
You are given the customer visit log of a shop represented by a 0-indexed string customers consisting only of characters 'N' and 'Y':
- if the
ithcharacter is'Y', it means that customers come at theithhour - whereas
'N'indicates that no customers come at theithhour.
If the shop closes at the jth hour (0 <= j <= n), the penalty is calculated as follows:
- For every hour when the shop is open and no customers come, the penalty increases by
1. - For every hour when the shop is closed and customers come, the penalty increases by
1.
Return the earliest hour at which the shop must be closed to incur a minimum penalty.
Note that if a shop closes at the jth hour, it means the shop is closed at the hour j.
Example 1:
Input: customers = "YYNY" Output: 2 Explanation: - Closing the shop at the 0th hour incurs in 1+1+0+1 = 3 penalty. - Closing the shop at the 1st hour incurs in 0+1+0+1 = 2 penalty. - Closing the shop at the 2nd hour incurs in 0+0+0+1 = 1 penalty. - Closing the shop at the 3rd hour incurs in 0+0+1+1 = 2 penalty. - Closing the shop at the 4th hour incurs in 0+0+1+0 = 1 penalty. Closing the shop at 2nd or 4th hour gives a minimum penalty. Since 2 is earlier, the optimal closing time is 2.
Example 2:
Input: customers = "NNNNN" Output: 0 Explanation: It is best to close the shop at the 0th hour as no customers arrive.
Example 3:
Input: customers = "YYYY" Output: 4 Explanation: It is best to close the shop at the 4th hour as customers arrive at each hour.
Constraints:
1 <= customers.length <= 105customersconsists only of characters'Y'and'N'.
Solution
minimum-penalty-for-a-shop.py
class Solution:
def bestClosingTime(self, customers: str) -> int:
N = len(customers)
t = -1
penalty = inf
A = [0]
for x in customers:
k = 1 if x == "Y" else 0
A.append(k + A[-1])
o = 0
for i in range(N + 1):
p = o + A[-1] - A[i]
if p < penalty:
penalty = p
t = i
if i < N and customers[i] == "N":
o += 1
return t