Given an m x n grid of characters board and a string word, return true if word exists in the grid.
The word can be constructed from letters of sequentially adjacent cells, where adjacent cells are horizontally or vertically neighboring. The same letter cell may not be used more than once.
Example 1:
Input: board = [["A","B","C","E"],["S","F","C","S"],["A","D","E","E"]], word = "ABCCED" Output: true
Example 2:
Input: board = [["A","B","C","E"],["S","F","C","S"],["A","D","E","E"]], word = "SEE" Output: true
Example 3:
Input: board = [["A","B","C","E"],["S","F","C","S"],["A","D","E","E"]], word = "ABCB" Output: false
Constraints:
m == board.lengthn = board[i].length1 <= m, n <= 61 <= word.length <= 15board and word consists of only lowercase and uppercase English letters.
Follow up: Could you use search pruning to make your solution faster with a larger board?
Ideas:
For each cell, try to recursively checking whether we should continue. And backtrack if one direction does not work. If one of the direction is True, then return True. Otherwise wait until every direction return False, then return False.
Code
class Solution: def exist(self, board: List[List[str]], word: str) -> bool: m, n = len(board), len(board[0]) for i in range(m): for j in range(n): if self.helper(board, i, j, 0, word): return True return False def helper(self, board, i, j, pos, word): if pos == len(word): return True if 0 <= i < len(board) and 0 <= j < len(board[0]): char = board[i][j] if char == word[pos]: board[i][j] = ‘#‘ for d1, d2 in [(1, 0), (-1, 0), (0, 1), (0, -1)]: if self.helper(board, i + d1, j + d2, pos + 1, word): return True board[i][j] = char return False return False
[LeetCode] 79. Word Search_Medium tag: Backtracking, DFS
原文:https://www.cnblogs.com/Johnsonxiong/p/15069508.html