212. Word Search II

 1 public class Solution {
 2     class Trie {
 3         Trie[] childs;
 4         String word; // can not be boolean
 5         public Trie() {
 6             childs = new Trie[26];
 7         }
 8     }
 9     private void buildTrie(String word, Trie node) {
10         for (char c : word.toCharArray()) {
11             int i = c - ‘a‘;
12             if (node.childs[i]  == null) node.childs[i] = new Trie();
13             node = node.childs[i];
14         }
15         
16         node.word = word;
17     }
18     
19     public List<String> findWords(char[][] board, String[] words) {
20         if (board.length == 0 || board[0].length == 0 || words.length == 0)
21             return new LinkedList<String>();
22             
23         LinkedList<String> ret = new LinkedList<String>();
24         
25         Trie root = new Trie();
26         for (String word : words) {
27             buildTrie(word, root);
28         }
29         
30         for (int i = 0; i < board.length; i++) {
31             for (int j = 0; j < board[0].length; j++) {
32                 dfs(board, root, i, j, ret);
33             }
34         }
35         return ret;
36     }
37     
38     private void dfs(char[][] board, Trie root, int r, int c, LinkedList<String> ret) {
39         char ch = board[r][c];
40         
41         if (ch == ‘#‘ || root.childs[ch - ‘a‘] == null) return;
42         
43         root = root.childs[ch - ‘a‘];
44         if (root.word != null)  {
45             ret.add(root.word);
46             root.word = null; // de-duplicate
47         }
48         
49         board[r][c] = ‘#‘;
50         
51         if (r > 0)  dfs(board, root, r - 1, c, ret);
52             
53         if (r < board.length - 1) dfs(board, root, r + 1, c, ret);
54             
55         if (c > 0) dfs(board, root, r, c - 1, ret);
56             
57         if (c < board[0].length - 1) dfs(board, root, r, c + 1, ret);
58         
59         board[r][c] = ch;
60         
61     }
62 }