刷题记录LeetCode-79-单词搜索
目录
刷题记录(LeetCode 79 单词搜索)
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提示:
m == board.lengthn = board[i].length1 <= m, n <= 61 <= word.length <= 15board和word仅由大小写英文字母组成
关键词:回溯、深度优先搜索
思路:从一个点开始深度优先地搜索它附近的位置(上下左右),如果某个方向上的字符符合当前word中对应的字符,就继续从该点开始探索。如果四个方向都没有对应的字符,返回上一个字符,探索下一个方向。思路比较好想,难点在于条件控制。探索的时候需要防止数组下标越界,还要注意避免重复搜索的情况。
题解如下:
class Solution {
public:
bool exist(vector<vector<char>>& board, string word) {
for(int i = 0; i < board.size(); i++) {
for(int j = 0; j < board[i].size(); j++) {
if(dfs(board, word, i, j, 0)) return true;
}
}
return false;
}
bool dfs(vector<vector<char>>& board, string& word, int i, int j, int index) {
if(index == word.length()) return true;
if(i < 0 || i >= board.size() || j < 0 || j >= board[0].size()) return false;
if(board[i][j] != word[index]) return false;
char tmp = board[i][j];
board[i][j] = '\0'; // 避免深度搜索时重复搜索(在第三个if处返回)
bool found = dfs(board, word, i - 1, j, index + 1) || dfs(board, word, i + 1, j, index + 1) || dfs(board, word, i, j - 1, index + 1) || dfs(board, word, i, j + 1, index + 1);
board[i][j] = tmp;
return found;
}
};