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- #刷题交流# 刷题打卡:小F得到了一个特殊的字符串,这个字符串只包含字符A、S、D、F,其长度总是4的倍数。他的任务是通过尽可能少的替换,使得A、S、D、F这四个字符在字符串中出现的频次相等。求出实现这一条件的最小子串长度。
from collections import Counter
def solution(input:str)->int:
s = input
n = len(s)
assert n % 4 == 0
cnt = Counter(s)
if all(cnt[c] <= n // 4 for c in cnt):
return 0
l, r = 0, 0
res = n
while r < n:
cnt[s[r]] -= 1
r += 1
while all(cnt[c] <= n // 4 for c in cnt) and l < r:
res = min(res, r - l)
cnt[s[l]] += 1
l += 1
return res
if __name__ == '__main__':
print(solution(input = "ADDF") == 1)
print(solution(input = "ASAFASAFADDD") == 3)
print(solution(input = "SSDDFFFFAAAS") == 1)
print(solution(input = "AAAASSSSDDDDFFFF") == 0)
print(solution(input = "AAAADDDDAAAASSSS") == 4)展开赞过
评论1 - #刷题交流# Day14刷题打卡,小U计划进行一场从地点A到地点B的徒步旅行,旅行总共需要 M 天。为了在旅途中确保安全,小U每天都需要消耗一份食物。在路程中,小U会经过一些补给站,这些补给站分布在不同的天数上,且每个补给站的食物价格各不相同。
小U需要在这些补给站中购买食物,以确保每天都有足够的食物。现在她想知道,如何规划在不同补给站的购买策略,以使她能够花费最少的钱顺利完成这次旅行。
M:总路程所需的天数。
N:路上补给站的数量。
p:每个补给站的描述,包含两个数字 A 和 B,表示第 A 天有一个补给站,并且该站每份食物的价格为 B 元。
保证第0天一定有一个补给站,并且补给站是按顺序出现的。
def solution(m:int, n:int, p:list)->int:
assert n == len(p) and m >= p[-1][0] and p[0][0] == 0
cost = 0
min_price, min_price_index = p[0][1], 0
for j in range(1, n):
a, b = p[j]
if b < min_price:
cost += min_price * (a - min_price_index)
min_price = b
min_price_index = a
cost += min_price * (m - min_price_index)
return cost
if __name__ == '__main__':
print(solution(m = 5 ,n = 4 ,p = [[0, 2], [1, 3], [2, 1], [3, 2]]) == 7)
print(solution(m = 6 ,n = 5 ,p = [[0, 1], [1, 5], [2, 2], [3, 4], [5, 1]]) == 6)
print(solution(m = 4 ,n = 3 ,p = [[0, 3], [2, 2], [3, 1]]) == 9)展开评论点赞 - #刷题交流# 分享一道今天刷的題,猜猜是哪一道啊。
def solution(n: int, a: list) -> int:
max_contribution = 0
# 遍历所有可能的下标对 (i, j)
for i in range(n):
for j in range(n):
if i != j:
# 计算直接距离
direct_dist = abs(i - j)
# 计算环形距离
circular_dist = n - direct_dist
# 选择最短距离
min_dist = min(direct_dist, circular_dist)
# 计算贡献值
contribution = (a[i] + a[j]) * min_dist
# 更新最大贡献值
if contribution > max_contribution:
max_contribution = contribution
return max_contribution
if __name__ == '__main__':
print(solution(n = 3, a = [1, 2, 3]) == 5)
print(solution(n = 4, a = [4, 1, 2, 3]) == 12)
print(solution(n = 5, a = [1, 5, 3, 7, 2]) == 24)展开评论点赞 - #刷题交流# 小U决定在一个m×n 的地图上行走。地图中的每个位置都有一个高度,表示地形的高低。小U只能在满足以下条件的情况下移动:只能上坡或者下坡,不能走到高度相同的点。。def solution(m: int, n: int, a: list) -> int:
directions = [(-1, 0), (1, 0), (0, -1), (0, 1)]
visited = [[False] * n for _ in range(m)]
def dfs(x: int, y: int, is_up: bool) -> int:
visited[x][y] = True
max_steps = 0
for dx, dy in directions:
nx, ny = x + dx, y + dy
if 0 <= nx < m and 0 <= ny < n and not visited[nx][ny]:
if is_up and a[nx][ny] > a[x][y]:
max_steps = max(max_steps, 1 + dfs(nx, ny, False))
elif not is_up and a[nx][ny] < a[x][y]:
max_steps = max(max_steps, 1 + dfs(nx, ny, True))
visited[x][y] = False
return max_steps
max_moves = 0
for i in range(m):
for j in range(n):
max_moves = max(max_moves, dfs(i, j, True))
max_moves = max(max_moves, dfs(i, j, False)) return max_moves展开评论点赞
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