79. 单词搜索 - 力扣(LeetCode)
先遍历给定数组,如果满足第一位字符,则加入StringBuilder中,设置访问数组为true,然后进行递归深搜,如果sb中的长度与目标字符串长度相同并且相等,则把标志数设为1,然后进行返回;进行上下左右四个方位的判断,如果位置在合法区域内,并且该位置字符满足目标字符串的字符,则加入sb中,并且设置vis为true,然后进行递归,回溯时候,记得把vis设置为false,并且删除sb中最后的字符。
在主函数中,对flag进行判断,如果为1,则返回true,否则返回false。
class Solution {StringBuilder sb;int flag;int[] dx = {1, 0, -1, 0};int[] dy = {0, 1, 0, -1};int m;int n;public boolean exist(char[][] board, String word) {m = board.length;n = board[0].length;flag = 0;for (int i = 0; i < m; i++) {for (int j = 0; j < n; j++) {if (board[i][j] == word.charAt(0)) {boolean[][] vis = new boolean[m][n];sb = new StringBuilder();vis[i][j] = true;sb.append(board[i][j]);dfs(vis, board, word, i, j, 1);}}}if(flag == 1)return true;else return false;}public void dfs(boolean[][] vis, char[][] board, String word, int x, int y, int index) {if (sb.toString().length()==word.length()) {flag = 1;return;}for (int i = 0; i < 4; i++) {int xx = x + dx[i];int yy = y + dy[i];if (xx >= 0 && xx < m && yy >= 0 && yy < n && !vis[xx][yy]&&board[xx][yy] == word.charAt(index)) {sb.append(board[x][y]);vis[xx][yy] = true;dfs(vis, board, word, xx, yy, index + 1);vis[xx][yy] = false;sb.deleteCharAt(sb.length() - 1);}}}
}
