• 【剑指Offer】面试题12. 矩阵中的路径(DFS)


    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

    class Solution {
        public boolean exist(char[][] board, String word) {
            char[] words = word.toCharArray();
            for(int i = 0; i < board.length; i++){
                for(int j = 0; j < board[0].length; j++){
                    if(dfs(board, words, i, j, 0)) return true;
                }
            }
            return false;
        }
        public boolean dfs(char[][] board, char[] words, int i, int j, int k){
            if(i >= board.length || i < 0 || j < 0 || j >= board[0].length || board[i][j] != words[k])
                return false;
            if(k == words.length - 1) return true;
            char temp = board[i][j];
            board[i][j] = '#';
            boolean res = dfs(board, words, i + 1, j, k + 1) || dfs(board, words, i - 1, j, k + 1)
                        || dfs(board, words, i, j + 1, k + 1) || dfs(board, words, i, j - 1, k + 1);
            board[i][j] = temp;
            return res;
        }
    }
    
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  • 原文地址:https://www.cnblogs.com/whisperbb/p/12629632.html
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