本文探讨了在二维字符板上查找字典中所有单词的问题,通过深度优先搜索(DFS)和前缀树(Trie)结合的方法,有效地解决了字母单元格不能重复使用的问题,实现了在矩阵中寻找指定单词的功能。
题目
Given a 2D board and a list of words from the dictionary, find all words in the board.
Each word must be constructed from letters of sequentially adjacent cell, where “adjacent” cells are those horizontally or vertically neighboring. The same letter cell may not be used more than once in a word.
我的想法
感觉可以用bfs做。外层遍历每一个点做为起点,并加入stack。每次从stack中pop出一个点,判断其周边有没有可用的点,如果有则加入stack。
但是越写越觉得不对劲,bfs得到的会有很多个中间值,全都要存一遍
class Solution {
public List<String> findWords(char[][] board, String[] words) {
HashSet<String> wordsSet = new HashSet<>(words);
List<String> res = new ArrayList<>();
int rows = board.length;
int cols = board[0].length;
int dircs = {{-1, 0}, {+1, 0}, {0, +1}, {0, -1}};
for(int i = 0; i < rows; i++) {
for(int j = 0; j < cols; j++) {
}
}
}
private boolean isContain(String[] words, char[][] board,
int si, int sj, HashSet<String> wordsSet,
List<String> res) {
char start = board[si][sj];
boolean[][] visited = new boolean[rows][cols];
Stack<int[]> stack = new Stack<>();
int count = 0;
String subString = String.valueOf(start);
int[] startPosition = new int[2];
startPosition[0] = si;
startPosition[1] = sj;
stack.push(startPosition);
while(!stack.isEmpty()) {
int size = stack.size();
for(int layer = 0; layer < size; layer++) {
int[] point = stack.pop();
for(int[] dirc : dircs) {
if(isNext(words, point[0]+dirc[0], point[1]+dirc[1])) {
subString += String.valueOf(board[point[0]+dirc[0]][point[1]+dirc[1]])
}
}
}
count++;
}
}
private boolean isNext(String[] words, int row, int col) {
//
}
}
解答
jiuzhang solution: DFS
用一个hashmap来存储所有的前缀和目标单词,并且用boolean型的value来区分二者。DFS递归检测到有目标单词就加入到结果list中
class Solution {
int[] dx = {0, 0, -1, 1};
int[] dy = {-1, 1, 0, 0};
public List<String> findWords(char[][] board, String[] words) {
if (board == null || board.length == 0) {
return new ArrayList<>();
}
if (board[0] == null || board[0].length == 0) {
return new ArrayList<>();
}
HashMap<String, Boolean> isPrefix = getPrefix(words);
HashSet<String> res = new HashSet<>();
boolean[][] visited = new boolean[board.length][board[0].length];
for(int i = 0; i < board.length; i++) {
for(int j = 0; j < board[0].length; j++) {
dfs(res, isPrefix, visited, board, i, j, String.valueOf(board[i][j]));
visited[i][j] = false;
}
}
return new ArrayList<String>(res);
}
private HashMap<String, Boolean> getPrefix(String[] words) {
HashMap<String, Boolean> isPrefix = new HashMap<>();
for(String word : words) {
for(int i = 1; i < word.length(); i++) {
if(isPrefix.containsKey(word.substring(0, i))) {
continue;
}
isPrefix.put(word.substring(0, i), true);
}
isPrefix.put(word, false);
}
return isPrefix;
}
private void dfs(HashSet<String> res,
HashMap<String, Boolean> isPrefix,
boolean[][] visited,
char[][] board,
int row, int col, String s) {
if(!isPrefix.containsKey(s)) {
return;
}
if(!isPrefix.get(s)) {
res.add(s);
//return;
}
visited[row][col] = true;
for(int i = 0; i < 4; i++) {
int newRow = row + dx[i];
int newCol = col + dy[i];
if(!isValid(newRow, newCol, board.length, board[0].length) ||
visited[newRow][newCol]) {
continue;
}
String temp = s + board[newRow][newCol];
dfs(res, isPrefix, visited, board, newRow, newCol, temp);
visited[newRow][newCol] = false;
}
}
private boolean isValid(int row, int col, int rows, int cols) {
if(row >= 0 && row < rows && col >= 0 && col < cols) {
return true;
}
return false;
}
}
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