单词搜索
力扣原题
给定一个 m x n 二维字符网格 board 和一个字符串单词 word 。如果 word 存在于网格中,返回 true ;否则,返回 false 。
单词必须按照字母顺序,通过相邻的单元格内的字母构成,其中“相邻”单元格是那些水平相邻或垂直相邻的单元格。同一个单元格内的字母不允许被重复使用
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","E"],["S","F","C","S"],["A","D","E","E"]], word = "SEE"
输出:true
示例 3:
输入:
board = [["A","B","C","E"],["S","F","C","S"],["A","D","E","E"]], word = "ABCB"
输出:false
/*** @param {character[][]} board* @param {string} word* @return {boolean}*/
var exist = function(board, word) {let res = falselet visited = new Set()const m = board.lengthconst n = board[0].length// i:当前访问横坐标 j:当前访问纵坐标 x:当前word中匹配字符的下标function dfs(i = 0, j = 0, x = 0) {if(res) returnif(x === word.length) return res = trueif(i < 0 || i >= m) returnif(j < 0 || j >= n) return// 如果当前位置未访问过,且word[x]等于当前位置的值const val = board[i][j]if(!visited.has(`${i}-${j}`) && word[x] === val) {// 记录访问状态visited.add(`${i}-${j}`)// 访问下一个 上下左右方向 dfs(i-1, j, x + 1)dfs(i+1, j, x + 1)dfs(i, j-1, x + 1)dfs(i, j+1, x + 1)// 访问完后递归时删除访问记录visited.delete(`${i}-${j}`)}}for(let i = 0; i < m; i++) {for(let j = 0; j < n; j++) {dfs(i,j)}}return res
};解题思路
- 使用深度遍历
dfs - 网格逐个位置开始遍历,
word从下标x=0字符开始,如果判断word当前下标值等于网格位置的值,则记录当前已访问网格坐标,并从上下左右4个方向继续访问,并判断x=x+1的下一个字符。
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