代码随想录第41天:图论2(岛屿系列)
一、岛屿数量(Kamacoder 99)
深度优先搜索:
# 定义四个方向:右、下、左、上,用于 DFS 中四向遍历
direction = [[0, 1], [1, 0], [0, -1], [-1, 0]]def dfs(grid, visited, x, y):"""对一块陆地进行深度优先遍历并标记相邻陆地:param grid: 二维网格:param visited: 是否访问过的标记表:param x: 当前所在的行坐标:param y: 当前所在的列坐标"""for dx, dy in direction:next_x = x + dxnext_y = y + dy# 判断是否越界if next_x < 0 or next_x >= len(grid) or next_y < 0 or next_y >= len(grid[0]):continue# 如果相邻格子是陆地且未被访问,标记并递归继续 DFSif not visited[next_x][next_y] and grid[next_x][next_y] == 1:visited[next_x][next_y] = Truedfs(grid, visited, next_x, next_y)if __name__ == '__main__': # 输入行数 n 和列数 mn, m = map(int, input().split())# 构建网格:n 行,每行 m 个整数(0 表示水,1 表示陆地)grid = []for _ in range(n):grid.append(list(map(int, input().split())))# 初始化访问标记表,初始均为 Falsevisited = [[False] * m for _ in range(n)]res = 0 # 统计岛屿数量(连通块个数)for i in range(n):for j in range(m):# 如果当前位置是陆地,且未被访问过,则为新的岛屿if grid[i][j] == 1 and not visited[i][j]:res += 1 # 新岛屿计数 +1visited[i][j] = True # 标记起点已访问dfs(grid, visited, i, j) # DFS 遍历整块陆地# 输出岛屿总数print(res)
广度优先搜索:只要加入队列,立即标记该节点走过。
from collections import deque # 使用 deque 作为队列,提高效率# 定义四个方向:右、下、左、上
directions = [[0, 1], [1, 0], [0, -1], [-1, 0]]def bfs(grid, visited, x, y):"""使用广度优先搜索(BFS)遍历并标记一整块陆地:param grid: 输入的地图(二维数组):param visited: 访问标记矩阵:param x, y: 起始坐标(陆地)"""que = deque()que.append([x, y]) # 将起始节点加入队列visited[x][y] = True # 标记该点已访问while que:cur_x, cur_y = que.popleft() # 弹出当前处理的节点for dx, dy in directions: # 遍历四个方向next_x = cur_x + dxnext_y = cur_y + dy# 越界检查if next_x < 0 or next_y < 0 or next_x >= len(grid) or next_y >= len(grid[0]):continue# 如果是未访问的陆地,则加入队列并标记为已访问if not visited[next_x][next_y] and grid[next_x][next_y] == 1: visited[next_x][next_y] = Trueque.append([next_x, next_y])def main():# 输入网格行数 n 和列数 mn, m = map(int, input().split())# 读取 n 行数据构造 gridgrid = []for i in range(n):grid.append(list(map(int, input().split())))# 初始化访问标记数组visited = [[False] * m for _ in range(n)]res = 0 # 记录岛屿数量for i in range(n):for j in range(m):# 遇到未访问的陆地,开始 BFS,并增加岛屿计数if grid[i][j] == 1 and not visited[i][j]:res += 1bfs(grid, visited, i, j)print(res) # 输出岛屿数量if __name__ == "__main__":main()
二、岛屿的最大面积(Kamacoder 100)
DFS:
# 四个方向:右、下、左、上(用于搜索相邻的格子)
position = [[0, 1], [1, 0], [0, -1], [-1, 0]]count = 0 # 用于记录当前连通块的陆地面积(全局变量)def dfs(grid, visited, x, y):"""使用深度优先搜索(DFS)标记一整块陆地并统计面积:param grid: 输入地图(二维矩阵):param visited: 访问标记矩阵:param x, y: 当前坐标"""global count # 使用全局变量记录当前连通块的面积for dx, dy in position:cur_x = x + dxcur_y = y + dy# 越界检查if cur_x < 0 or cur_x >= len(grid) or cur_y < 0 or cur_y >= len(grid[0]):continue# 若是未访问的陆地,递归访问并增加面积if not visited[cur_x][cur_y] and grid[cur_x][cur_y] == 1:visited[cur_x][cur_y] = Truecount += 1dfs(grid, visited, cur_x, cur_y)# 输入网格的行列数 n 行 m 列
n, m = map(int, input().split())# 构造地图(邻接矩阵)
grid = []
for _ in range(n):grid.append(list(map(int, input().split())))# 构造访问矩阵,记录哪些节点已访问
visited = [[False] * m for _ in range(n)]result = 0 # 记录最大陆地面积(即最大连通块中1的数量)# 遍历每一个格子
for i in range(n):for j in range(m):# 遇到一个未访问的陆地,开始 DFS 并更新最大面积if grid[i][j] == 1 and not visited[i][j]:count = 1 # 初始化当前连通块的面积visited[i][j] = True # 标记当前格子已访问dfs(grid, visited, i, j)result = max(result, count) # 更新最大面积# 输出最大陆地面积
print(result)
BFS:
from collections import deque# 四个方向:右、下、左、上(用于搜索相邻格子)
position = [[0, 1], [1, 0], [0, -1], [-1, 0]]count = 0 # 记录当前连通块面积(使用全局变量)def bfs(grid, visited, x, y):"""广度优先搜索,对一整块陆地进行标记并统计面积:param grid: 地图矩阵:param visited: 访问标记矩阵:param x, y: 当前陆地坐标"""global count # 使用全局变量记录当前连通块面积que = deque()que.append([x, y]) # 将起点入队while que:cur_x, cur_y = que.popleft() # 弹出队首元素# 遍历四个方向for dx, dy in position:next_x = cur_x + dxnext_y = cur_y + dy# 越界处理if next_x < 0 or next_x >= len(grid) or next_y < 0 or next_y >= len(grid[0]):continue# 如果是未访问的陆地,则入队并更新访问记录与面积if grid[next_x][next_y] == 1 and not visited[next_x][next_y]:visited[next_x][next_y] = Truecount += 1que.append([next_x, next_y])# 输入地图尺寸 n 行 m 列
n, m = map(int, input().split())# 构造地图矩阵(邻接矩阵)
grid = []
for i in range(n):grid.append(list(map(int, input().split())))# 构造访问标记矩阵
visited = [[False] * m for _ in range(n)]result = 0 # 记录所有陆地块中面积最大的那一块# 遍历地图
for i in range(n):for j in range(m):# 如果当前是未访问的陆地,则开始BFSif grid[i][j] == 1 and not visited[i][j]:count = 1 # 初始面积为1(当前格子)visited[i][j] = True # 标记已访问bfs(grid, visited, i, j) # 广度优先遍历整块陆地result = max(result, count) # 更新最大面积# 输出最大陆地面积
print(result)
三、孤岛的总面积(Kamacoder 101)
DFS:先遍历边界的陆地将他们变成海洋,然后再统计非边界的“孤岛”面积。
# 四个方向:下、右、上、左
position = [[1, 0], [0, 1], [-1, 0], [0, -1]]
count = 0 # 用于统计当前岛屿面积def dfs(grid, x, y):"""深度优先搜索,沉没当前岛屿,统计其面积"""global countgrid[x][y] = 0 # 将陆地“沉没”为水count += 1for i, j in position:next_x = x + inext_y = y + j# 越界处理if next_x < 0 or next_y < 0 or next_x >= len(grid) or next_y >= len(grid[0]):continue# 如果是陆地,递归搜索if grid[next_x][next_y] == 1: dfs(grid, next_x, next_y)# 输入读取
n, m = map(int, input().split())
grid = []
for _ in range(n):grid.append(list(map(int, input().split())))# 第一步:清除所有接触边缘的岛屿
for i in range(n):if grid[i][0] == 1: # 左边界dfs(grid, i, 0)if grid[i][m - 1] == 1: # 右边界dfs(grid, i, m - 1)for j in range(m):if grid[0][j] == 1: # 上边界dfs(grid, 0, j)if grid[n - 1][j] == 1: # 下边界dfs(grid, n - 1, j)# 第二步:统计内部的孤岛面积
count = 0 # 重置计数器
for i in range(n):for j in range(m):if grid[i][j] == 1:dfs(grid, i, j)print(count)
这里需要注意:统计内部的孤岛面积之前要把计数器count清零,因为遍历边界的时候count在dfs函数内部有赋值操作。
BFS:
from collections import deque# 定义四个方向:右、下、左、上(用于遍历相邻的陆地)
direct = [[0, 1], [1, 0], [0, -1], [-1, 0]]count = 0 # 用于统计孤岛的总面积def bfs(grid, x, y):"""广度优先搜索:从 (x, y) 开始,将连通的陆地单元格全部“淹掉”(设为0)并累计面积"""global countque = deque()que.append([x, y])grid[x][y] = 0 # 将当前格子标记为已访问(水)count += 1 # 当前陆地面积 +1while que:x, y = que.popleft()for dx, dy in direct:next_x = x + dxnext_y = y + dy# 越界检查if next_x < 0 or next_x >= len(grid) or next_y < 0 or next_y >= len(grid[0]):continue# 如果是陆地,则加入队列,继续“淹掉”if grid[next_x][next_y] == 1:que.append([next_x, next_y])grid[next_x][next_y] = 0count += 1 # 每找到一个陆地格子,面积 +1# 读取输入
n, m = map(int, input().split()) # 行数、列数
grid = []
for _ in range(n):grid.append(list(map(int, input().split()))) # 构建地图矩阵# 第一步:清除所有与边界相连的岛屿(不计入孤岛)
for i in range(n):if grid[i][0] == 1:bfs(grid, i, 0)if grid[i][m - 1] == 1:bfs(grid, i, m - 1)
for j in range(m):if grid[0][j] == 1:bfs(grid, 0, j)if grid[n - 1][j] == 1:bfs(grid, n - 1, j)# 第二步:正式统计所有内部孤岛的总面积
count = 0 # 重置计数器
for i in range(n):for j in range(m):if grid[i][j] == 1:bfs(grid, i, j)# 输出所有孤岛的总面积
print(count)
四、沉没孤岛(Kamacoder 102)
DFS:
def dfs(grid, x, y):# 将当前位置标记为2,表示访问过并来自边界的陆地grid[x][y] = 2directions = [(-1, 0), (0, -1), (1, 0), (0, 1)] # 上、左、下、右四个方向for dx, dy in directions:nextx, nexty = x + dx, y + dy# 如果越界,则跳过if nextx < 0 or nextx >= len(grid) or nexty < 0 or nexty >= len(grid[0]):continue# 如果是水(0)或已经标记过的陆地(2),也跳过if grid[nextx][nexty] == 0 or grid[nextx][nexty] == 2:continue# 继续向相邻陆地递归搜索dfs(grid, nextx, nexty)def main():n, m = map(int, input().split()) # 输入行列数# 读取整个地图矩阵grid = [[int(x) for x in input().split()] for _ in range(n)]# 步骤一:处理边界上的陆地,使用DFS将它们和相连的陆地标记为2for i in range(n):if grid[i][0] == 1: # 左边界dfs(grid, i, 0)if grid[i][m - 1] == 1: # 右边界dfs(grid, i, m - 1)for j in range(m):if grid[0][j] == 1: # 上边界dfs(grid, 0, j)if grid[n - 1][j] == 1: # 下边界dfs(grid, n - 1, j)# 步骤二和三:# 遍历所有格子for i in range(n):for j in range(m):if grid[i][j] == 1:# 还剩下的1是被水包围的孤岛,置为0(清除孤岛)grid[i][j] = 0elif grid[i][j] == 2:# 原本在边缘或连通边缘的陆地,恢复为1grid[i][j] = 1# 打印最终结果矩阵for row in grid:print(' '.join(map(str, row)))if __name__ == "__main__":main()
BFS:
from collections import deque# 输入地图的行列数
n, m = list(map(int, input().split()))# 读取地图网格 g
g = []
for _ in range(n):row = list(map(int, input().split()))g.append(row)# 定义四个方向(上下左右)
directions = [(1, 0), (-1, 0), (0, 1), (0, -1)]
count = 0 # 可选统计被访问的节点数(未实际使用)# 广度优先搜索函数,用于将与边界连通的陆地标记
def bfs(r, c, mode):global count q = deque()q.append((r, c)) # 起始位置加入队列count += 1while q:r, c = q.popleft()if mode:g[r][c] = 2 # 标记为已访问(与边界相连)for di in directions:next_r = r + di[0]next_c = c + di[1]# 越界跳过if next_c < 0 or next_c >= m or next_r < 0 or next_r >= n:continue# 若为陆地(1),则入队继续扩展if g[next_r][next_c] == 1:q.append((next_r, next_c))if mode:g[r][c] = 2 # 标记当前格子为边界连通count += 1# 遍历边界四周,找到所有与边界连通的陆地,并进行 BFS 标记
for i in range(n):if g[i][0] == 1: bfs(i, 0, True) # 左边界if g[i][m - 1] == 1: bfs(i, m - 1, True) # 右边界for j in range(m):if g[0][j] == 1: bfs(0, j, True) # 上边界if g[n - 1][j] == 1: bfs(n - 1, j, True) # 下边界# 处理最终输出:
# - 被标记为 2 的陆地(与边界连通)恢复为 1
# - 其余陆地为封闭岛屿,置为 0(沉没)
for i in range(n):for j in range(m):if g[i][j] == 2:g[i][j] = 1else:g[i][j] = 0# 打印最终地图结果
for row in g:print(" ".join(map(str, row)))
五、水流问题(Kamacoder 103)
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每个 DFS 逻辑是“水可以流向高度大于等于自己的相邻格子”。
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从两个边界(上/左、下/右)出发分别进行 DFS。
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最终取两个集合交集,得到的是能从两边都能流到的点。
first = set() # 记录能从第一边界(上边和左边)流到的点
second = set() # 记录能从第二边界(下边和右边)流到的点# 四个方向:上、右、下、左
directions = [[-1, 0], [0, 1], [1, 0], [0, -1]]def dfs(i, j, graph, visited, side):# 如果已经访问过,直接返回if visited[i][j]:return# 标记已访问visited[i][j] = Trueside.add((i, j)) # 加入当前方向的集合中# 遍历四个方向for x, y in directions:new_x = i + xnew_y = j + y# 保证下标合法且水能从当前格子流向相邻格子(即相邻格子值 >= 当前值)if (0 <= new_x < len(graph)and 0 <= new_y < len(graph[0])and int(graph[new_x][new_y]) >= int(graph[i][j])):dfs(new_x, new_y, graph, visited, side)def main():global firstglobal secondN, M = map(int, input().strip().split()) # 输入矩阵的行数和列数graph = []for _ in range(N):row = input().strip().split()graph.append(row) # 构造二维矩阵# 第一步:从第一边界(上边和左边)出发进行 DFSvisited = [[False] * M for _ in range(N)]for i in range(M): # 上边界dfs(0, i, graph, visited, first)for i in range(N): # 左边界dfs(i, 0, graph, visited, first)# 第二步:从第二边界(下边和右边)出发进行 DFSvisited = [[False] * M for _ in range(N)]for i in range(M): # 下边界dfs(N - 1, i, graph, visited, second)for i in range(N): # 右边界dfs(i, M - 1, graph, visited, second)# 第三步:找出同时能从两个边界流通的交集点res = first & second# 打印所有可以从两个边界都流通到的坐标点for x, y in res:print(f"{x} {y}")if __name__ == "__main__":main()
六、建造最大岛屿(Kamacoder 104)
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把每个岛屿编号并计算面积。
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遍历所有水域格子,尝试变成陆地并连接周围不同的岛屿。
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记录最大可能岛屿面积。
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边界处理和重复统计都已通过
visited和set控制。
import collections# 四个方向:上、右、左、下
directions = [[-1, 0], [0, 1], [0, -1], [1, 0]]area = 0 # 当前岛屿的面积def dfs(i, j, grid, visited, num):"""深度优先搜索,将岛屿上的所有陆地格子标记为同一个编号num,并统计当前岛屿的总面积"""global areaif visited[i][j]:returnvisited[i][j] = Truegrid[i][j] = num # 用编号num标记该岛屿area += 1 # 累加岛屿面积for x, y in directions:new_x = i + xnew_y = j + y# 判断是否在边界内且是未访问的陆地if (0 <= new_x < len(grid)and 0 <= new_y < len(grid[0])and grid[new_x][new_y] == "1"):dfs(new_x, new_y, grid, visited, num)def main():global areaN, M = map(int, input().strip().split()) # 读入行列数grid = []for _ in range(N):grid.append(input().strip().split()) # 读取每一行visited = [[False] * M for _ in range(N)] # 记录访问情况rec = collections.defaultdict(int) # 记录每个岛屿编号对应的面积cnt = 2 # 编号从2开始,避免与"0"(水)和"1"(未编号陆地)混淆for i in range(N):for j in range(M):if grid[i][j] == "1":area = 0dfs(i, j, grid, visited, cnt)rec[cnt] = area # 保存当前岛屿面积cnt += 1res = 0 # 最终最大岛屿面积for i in range(N):for j in range(M):if grid[i][j] == "0": # 尝试将水变成陆地max_island = 1 # 当前面积初始为1(假设这里是陆地)v = set() # 防止重复统计相邻岛屿for x, y in directions:new_x = i + xnew_y = j + yif (0 <= new_x < len(grid)and 0 <= new_y < len(grid[0])and grid[new_x][new_y] != "0"and grid[new_x][new_y] not in v):max_island += rec[grid[new_x][new_y]]v.add(grid[new_x][new_y])res = max(res, max_island)if res == 0:# 如果没有水可变为陆地,返回最大岛屿面积return max(rec.values())return resif __name__ == "__main__":print(main())
BFS:
from typing import List
from collections import defaultdictclass Solution:def __init__(self):# 定义四个方向(上、下、左、右)self.direction = [(1,0),(-1,0),(0,1),(0,-1)]self.res = 0 # 存放结果:最大可能的连通面积self.count = 0 # 当前岛屿的面积计数器self.idx = 1 # 当前岛屿的编号,从2开始(因为1已经是初始岛屿标记)self.count_area = defaultdict(int) # 记录每个岛屿编号对应的面积def max_area_island(self, grid: List[List[int]]) -> int:if not grid or len(grid) == 0 or len(grid[0]) == 0:return 0# Step 1: DFS 标记每个岛屿为不同编号(从 2 开始),并记录每个岛屿的面积for i in range(len(grid)):for j in range(len(grid[0])):if grid[i][j] == 1:self.count = 0self.idx += 1self.dfs(grid, i, j) # 递归标记岛屿# Step 2: 统计每个编号的面积self.check_area(grid)# Step 3: 尝试将一个 0 变成 1,看是否能连接多个岛屿,获取最大可能面积if self.check_largest_connect_island(grid=grid):return self.res + 1 # +1 是把0变成1后的面积增加return max(self.count_area.values()) # 若没有0,返回最大岛屿面积def dfs(self, grid, row, col):# 使用 DFS 给岛屿打编号,并统计面积grid[row][col] = self.idxself.count += 1for dr, dc in self.direction:_row = dr + row _col = dc + col if 0 <= _row < len(grid) and 0 <= _col < len(grid[0]) and grid[_row][_col] == 1:self.dfs(grid, _row, _col)returndef check_area(self, grid):# 遍历整张图,统计每个岛屿编号的面积(包含编号为 2 及以上)m, n = len(grid), len(grid[0])for row in range(m):for col in range(n):self.count_area[grid[row][col]] = self.count_area.get(grid[row][col], 0) + 1returndef check_largest_connect_island(self, grid):# 检查每个值为0的位置,看是否能连接多个岛屿m, n = len(grid), len(grid[0])has_connect = False # 是否存在0可用作连接点for row in range(m):for col in range(n):if grid[row][col] == 0:has_connect = Truearea = 0visited = set() # 避免重复计算同一编号岛屿for dr, dc in self.direction:_row = row + dr _col = col + dcif (0 <= _row < len(grid)and 0 <= _col < len(grid[0])and grid[_row][_col] != 0and grid[_row][_col] not in visited):visited.add(grid[_row][_col])area += self.count_area[grid[_row][_col]]self.res = max(self.res, area) # 更新最大面积return has_connect # 返回是否存在可以转换的0def main():# 输入处理m, n = map(int, input().split())grid = []for i in range(m):grid.append(list(map(int, input().split())))# 创建对象并调用主函数sol = Solution()print(sol.max_area_island(grid))if __name__ == '__main__':main()
七、岛屿的周长(Kamacoder 106)
def main():import sysinput = sys.stdin.readdata = input().split()# 读取行数 n 和列数 mn = int(data[0])m = int(data[1])# 初始化 grid 网格grid = []index = 2 # 从第3个数据开始是地图数据for i in range(n):# 读取每一行的 m 个数据grid.append([int(data[index + j]) for j in range(m)])index += msum_land = 0 # 记录陆地格子的总数cover = 0 # 记录相邻的陆地边对数(每对相邻边减少2个周长)for i in range(n):for j in range(m):if grid[i][j] == 1:sum_land += 1 # 统计陆地格子数量# 检查上方是否是陆地,如果是,说明这两个格子共享一条边if i - 1 >= 0 and grid[i - 1][j] == 1:cover += 1# 检查左方是否是陆地,同样共享一条边if j - 1 >= 0 and grid[i][j - 1] == 1:cover += 1# 不检查下方和右方,是为了避免重复计算边界# 每个陆地格子原始贡献 4 个边界,所有相邻对共享 2 个边界result = sum_land * 4 - cover * 2print(result)if __name__ == "__main__":main()