代码随想录算法训练营第六十五天
KM99. 岛屿数量——深搜
题目链接:KM99. 岛屿数量
使用递归深度搜索,将每次遇到的岛屿上下左右记录为已经到过,如果遇到没到过的说明它上下左右不是之间遍历过的岛屿,结果计数+1。最后统计计数即可知道有多少个岛屿
#include <iostream>
#include <vector>
using namespace std;int dir[4][2] = {{0, 1}, //列+1,右移{1, 0}, //行+1,下移{-1, 0},//行-1,上移{0, -1} //列-1,左移
};
void dfs(const vector<vector<int>>& grid, vector<vector<bool>>& visited, int x, int y) {if (visited[x][y] || grid[x][y] == 0) return;visited[x][y] = true;for (int i = 0; i < 4; i++) {int next_x = x + dir[i][0];int next_y = y + dir[i][1];if (next_x < 0 || next_x >= grid.size() || next_y < 0 || next_y >= grid[0].size()) continue;// 越界了,直接跳过dfs(grid, visited, next_x, next_y);}
};int main() {int N, M;std::cin >> N >> M;vector<vector<int>> grid(N, vector<int>(M, 0));for (int i = 0; i < N; i++) {for (int j = 0; j < M; j++) {cin >> grid[i][j];}}vector<vector<bool>> visited(N, vector<bool>(M, false));int result = 0;for (int i = 0; i < N; i++) {for (int j = 0; j < M; j++) {if (!visited[i][j] && grid[i][j] == 1) {result++;dfs(grid, visited, i, j);}}}std::cout << result << std::endl;return 0;
};
KM99. 岛屿数量——广搜
题目链接:KM99. 岛屿数量
使用广度搜索,将每次遇到的岛屿上下左右记录为已经到过,如果遇到没到过的说明它上下左右不是之间遍历过的岛屿,结果计数+1。最后统计计数即可知道有多少个岛屿
#include<iostream>
#include<vector>
#include<queue>using namespace std;int dir[4][2] = {{0, 1}, //列+1,右移{1, 0}, //行+1,下移{-1, 0},//行-1,上移{0, -1} //列-1,左移
};void bfs(vector<vector<int>> &grid, vector<vector<bool>> &visited, int x, int y) {queue<pair<int, int>> que;que.push({x, y});visited[x][y] = true;while (!que.empty()) {pair<int, int> cur = que.front();que.pop();for (int i = 0; i < 4; i++) {int next_x = cur.first + dir[i][0];int next_y = cur.second + dir[i][1];if (next_x < 0 || next_x >= grid.size() || next_y < 0 || next_y >= grid[0].size())continue;if (grid[next_x][next_y] == 1 && !visited[next_x][next_y]) {visited[next_x][next_y] = true;que.push({next_x, next_y});}}}
};int main() {int N, M;std::cin >> N >> M;vector<vector<int>> grid(N, vector<int>(M, 0));for (int i = 0; i < N; i++) {for (int j = 0; j < M; j++) {cin >> grid[i][j];}}vector<vector<bool>> visited(N, vector<bool>(M, false));int result = 0;for (int i = 0; i < N; i++) {for (int j = 0; j < M; j++) {if (!visited[i][j] && grid[i][j] == 1) {result++;bfs(grid, visited, i, j);}}}std::cout << result << std::endl;return 0;
};
KM100. 岛屿的最大面积
题目链接:KM100. 岛屿的最大面积
在广度搜索中累计相邻陆地组成岛屿的面积,再在外部对比每块岛屿的面积取最大面积
#include<iostream>
#include<vector>
#include<queue>
#include<algorithm>using namespace std;
int max_count = 0;
int dir[4][2] = {{0, 1}, //列+1,右移{1, 0}, //行+1,下移{-1, 0},//行-1,上移{0, -1} //列-1,左移
};void bfs(vector<vector<int>> &grid, vector<vector<bool>> &visited, int x, int y,int& count) {queue<pair<int, int>> que;que.push({x, y});visited[x][y] = true;count++;while (!que.empty()) {pair<int, int> cur = que.front();que.pop();for (int i = 0; i < 4; i++) {int next_x = cur.first + dir[i][0];int next_y = cur.second + dir[i][1];if (next_x < 0 || next_x >= grid.size() || next_y < 0 || next_y >= grid[0].size())continue;if (grid[next_x][next_y] == 1 && !visited[next_x][next_y]) {visited[next_x][next_y] = true;que.push({next_x, next_y});count++;}}}
};int main() {int N, M;std::cin >> N >> M;vector<vector<int>> grid(N, vector<int>(M, 0));for (int i = 0; i < N; i++) {for (int j = 0; j < M; j++) {cin >> grid[i][j];}}vector<vector<bool>> visited(N, vector<bool>(M, false));for (int i = 0; i < N; i++) {for (int j = 0; j < M; j++) {if (!visited[i][j] && grid[i][j] == 1) {int count = 0;bfs(grid, visited, i, j,count);max_count = max(max_count,count);}}}std::cout << max_count << std::endl;return 0;
};