请设计一个函数,用来判断在一个矩阵中是否存在一条包含某字符串所有字符的路径。路径可以从矩阵中的任意一格开始,每一步可以在矩阵中向左、右、上、下移动一格。如果一条路径经过了矩阵的某一格,那么该路径不能再次进入该格子。例如,在下面的3×4的矩阵中包含一条字符串“bfce”的路径(路径中的字母用加粗标出)。
[["a","b","c","e"],
["s","f","c","s"],
["a","d","e","e"]]
但矩阵中不包含字符串“abfb”的路径,因为字符串的第一个字符b占据了矩阵中的第一行第二个格子之后,路径不能再次进入这个格子。
示例 1:
输入:board = [["A","B","C","E"],["S","F","C","S"],["A","D","E","E"]], word = "ABCCED"
输出:true
示例 2:
输入:board = [["a","b"],["c","d"]], word = "abcd"
输出:false
提示:
1 <= board.length <= 200
1 <= board[i].length <= 200
来源:力扣(LeetCode)
链接:https://leetcode-cn.com/problems/ju-zhen-zhong-de-lu-jing-lcof
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// 深度优先搜索 class Solution { public: bool res=false; void dfs(vector<vector<char>>& board,vector<vector<int>>& visited, int i,int j,int row,int col,string word,int depth) { if(i>=row||i<0||j>=col||j<0||board[i][j]!=word[depth]||visited[i][j]||res) return; visited[i][j]=1; depth++; if(depth==word.size()) { res=true; return; } dfs(board,visited,i-1,j,row,col,word,depth); dfs(board,visited,i,j-1,row,col,word,depth); dfs(board,visited,i+1,j,row,col,word,depth); dfs(board,visited,i,j+1,row,col,word,depth); visited[i][j]=0; } bool exist(vector<vector<char>>& board, string word) { int row=board.size(),col=board[0].size(),i,j; vector<vector<int>> visited(row,vector<int>(col,0)); res=false; for(i=0;i<row;i++) for(j=0;j<col;j++) { dfs(board,visited,i,j,row,col,word,0); if(res) return true; } return false; } };
// 深度优先搜索 // 当string传引用时速度会变快 因为只保留一个值 不用存储多个 class Solution { public: bool dfs(vector<vector<char>>& board,int i,int j,string& word,int depth) { if(board[i][j]!=word[depth]) return false; depth++; if(depth==word.size())return true; char temp=board[i][j]; board[i][j]=0; if((i-1>=0&&dfs(board,i-1,j,word,depth))|| (j-1>=0&&dfs(board,i,j-1,word,depth))|| (i+1<board.size()&&dfs(board,i+1,j,word,depth))|| (j+1<board[0].size()&&dfs(board,i,j+1,word,depth))) return true; board[i][j]=temp; return false; } bool exist(vector<vector<char>>& board, string word) { for(int i=0;i<board.size();i++) for(int j=0;j<board[0].size();j++) if(dfs(board,i,j,word,0)) return true; return false; } };