输入一个矩阵,按照从外向里以顺时针的顺序依次打印出每一个数字。
class Solution { public: vector<int> res; vector<vector<int> > mp; vector<vector<bool> > vis; int m, n; void dfs(int i, int j,int flag){ if(i < 0 || i >= m || j < 0 || j >= n || vis[i][j]) return; vis[i][j] = 1; res.push_back(mp[i][j]); switch(flag){ case 0: if(j < n-1 && !vis[i][j+1]) dfs(i,j+1,0); else dfs(i+1,j,1); break; case 1: if(i < m-1 && !vis[i+1][j]) dfs(i+1,j,1); else dfs(i,j-1,2); break; case 2:if(j >= 1 && !vis[i][j-1]) dfs(i,j-1,2); else dfs(i-1,j,3);break; case 3:if(i >= 1 && !vis[i-1][j]) dfs(i-1,j,3); else dfs(i,j+1,0);break; } } vector<int> printMatrix(vector<vector<int> > matrix) { mp = matrix; m = matrix.size(); if(m == 0) return res; n = matrix[0].size(); vis.resize(m); for(int i = 0; i < m; i++) vis[i].resize(n,0); dfs(0,0,0); return res; } };
yxc的做法:定义四个方向以及改变方向的技巧:
class Solution { public: vector<int> printMatrix(vector<vector<int>>& matrix) { vector<int> res; if (matrix.empty()) return res; int n = matrix.size(), m = matrix[0].size(); vector<vector<bool>> st(n, vector<bool>(m, false)); int dx[4] = {-1, 0, 1, 0}, dy[4] = {0, 1, 0, -1}; int x = 0, y = 0, d = 1; for (int k = 0; k < n * m; k ++ ) { res.push_back(matrix[x][y]); st[x][y] = true; int a = x + dx[d], b = y + dy[d]; if (a < 0 || a >= n || b < 0 || b >= m || st[a][b]) { d = (d + 1) % 4; a = x + dx[d], b = y + dy[d]; } x = a, y = b; } return res; } }; 作者:yxc 链接:https://www.acwing.com/solution/AcWing/content/748/ 来源:AcWing 著作权归作者所有。商业转载请联系作者获得授权,非商业转载请注明出处。