407. 接雨水 II
作者:互联网
给你一个 m x n 的矩阵,其中的值均为非负整数,代表二维高度图每个单元的高度,请计算图中形状最多能接多少体积的雨水。
示例 1:
输入: heightMap = [[1,4,3,1,3,2],[3,2,1,3,2,4],[2,3,3,2,3,1]]
输出: 4
解释: 下雨后,雨水将会被上图蓝色的方块中。总的接雨水量为1+2+1=4。
示例 2:
输入: heightMap = [[3,3,3,3,3],[3,2,2,2,3],[3,2,1,2,3],[3,2,2,2,3],[3,3,3,3,3]]
输出: 10
提示:
m == heightMap.length
n == heightMap[i].length
1 <= m, n <= 200
0 <= heightMap[i][j] <= 2 * 104
class Solution:
def trapRainWater(self, heightMap: List[List[int]]) -> int:
m, n = len(heightMap), len(heightMap[0])
hp = []
visited = [[False for _ in range(n)] for _ in range(m)]
# 最外围围栏入堆
for i in range(m):
for j in range(n):
if i == 0 or j == 0 or i == m - 1 or j == n - 1:
# 最小堆,保证最矮的围栏出堆
heapq.heappush(hp, (heightMap[i][j], i, j))
visited[i][j] = True
ans = 0
while hp:
h, r, c = heapq.heappop(hp)
for nr, nc in ((r + 1, c), (r - 1, c), (r, c + 1), (r, c - 1)):
if 0 <= nr < m and 0 <= nc < n and not visited[nr][nc]:
# 围栏比内部高,可以灌水
if h > heightMap[nr][nc]:
ans += h - heightMap[nr][nc]
# 忽略当前围栏,在(nr, nc)处新建围栏
visited[nr][nc] = True
# 新的围栏入堆
heapq.heappush(hp, (max(h, heightMap[nr][nc]), nr, nc))
return ans
标签:II,hp,nc,雨水,407,围栏,range,nr,heightMap 来源: https://blog.csdn.net/weixin_43498998/article/details/121116828