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LeetCode/solutions/79. Word Search.md
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# [79. Word Search](https://leetcode.com/problems/word-search/)
# 思路
## 思路一
这道题是典型的DFS原二维数组就像是一个迷宫可以上下左右四个方向行走我们以二维数组中每一个数都作为起点和给定字符串做匹配
我们还需要一个和原数组等大小的visited数组来记录是否已经被访问过。如果board的当前字符和目标字符串word对应的字符相等则对其上下左右四个邻字符分别调用DFS的递归函数只要有一个返回true
那么就表示可以找到对应的字符串,否则就不能找到。
> 注意如代码所示在每次从头调用DFS时不需要对visited进行初始化因为上一次DFS返回false前已经把`visited[i][j]`改成了false。
## 思路二
其实和思路一差不多也是DFS但是不使用visited数组我们用原数组board来记录某个元素是否被访问过若被访问过就将board对应位置改成字符`*`,代码与思路一几乎一样。
# C++
## 思路一
``` C++
class Solution {
private:
bool DFS(vector<vector<bool>>&visited, int i, int j, vector<vector<char>>& board, string &word, int len){
if(visited[i][j] || board[i][j] != word[len]) return false;
if(len + 1 == word.size()) return true;
visited[i][j] = true;
if(i > 0 && DFS(visited, i - 1, j, board, word, len + 1)) return true;
if(j > 0 && DFS(visited, i, j - 1, board, word, len + 1)) return true;
if(1 + i < board.size() && DFS(visited, i + 1, j, board, word, len + 1)) return true;
if(1 + j < board[0].size() && DFS(visited, i, j + 1, board, word, len + 1)) return true;
visited[i][j] = false; // 恢复visited
return false;
}
public:
bool exist(vector<vector<char>>& board, string word) {
int m = board.size(), n = board[0].size();
vector<vector<bool>> visited(m ,vector<bool>(n, false));
for(int i = 0; i < m; i++){
for(int j = 0; j < n; j++){
// 这里不需要对visited进行初始化因为此时的visited必定全false
if(DFS(visited, i, j, board, word, 0)) return true;
}
}
return false;
}
};
```
## 思路二
``` C++
class Solution {
private:
bool DFS(int i, int j, vector<vector<char>>& board, string &word, int len){
// if(board[i][j] != '*' || board[i][j] != word[len]) return false;
if(board[i][j] != word[len]) return false; // 等价于上句
if(len + 1 == word.size()) return true;
char bk = board[i][j];
board[i][j] = '*';
if(i > 0 && DFS(i - 1, j, board, word, len + 1)) return true;
if(j > 0 && DFS(i, j - 1, board, word, len + 1)) return true;
if(1 + i < board.size() && DFS(i + 1, j, board, word, len + 1)) return true;
if(1 + j < board[0].size() && DFS(i, j + 1, board, word, len + 1)) return true;
board[i][j] = bk;
return false;
}
public:
bool exist(vector<vector<char>>& board, string word) {
int m = board.size(), n = board[0].size();
for(int i = 0; i < m; i++){
for(int j = 0; j < n; j++){
if(DFS(i, j, board, word, 0)) return true;
}
}
return false;
}
};
```
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