力扣题目链接:https://leetcode.cn/problems/minesweeper/
让我们一起来玩扫雷游戏!
给你一个大小为 m x n 二维字符矩阵 board ,表示扫雷游戏的盘面,其中:
'M' 代表一个 未挖出的 地雷,'E' 代表一个 未挖出的 空方块,'B' 代表没有相邻(上,下,左,右,和所有4个对角线)地雷的 已挖出的 空白方块,'1' 到 '8')表示有多少地雷与这块 已挖出的 方块相邻,'X' 则表示一个 已挖出的 地雷。给你一个整数数组 click ,其中 click = [clickr, clickc] 表示在所有 未挖出的 方块('M' 或者 'E')中的下一个点击位置(clickr 是行下标,clickc 是列下标)。
根据以下规则,返回相应位置被点击后对应的盘面:
'M')被挖出,游戏就结束了- 把它改为 'X' 。'E')被挖出,修改它为('B'),并且所有和其相邻的 未挖出 方块都应该被递归地揭露。'E')被挖出,修改它为数字('1' 到 '8' ),表示相邻地雷的数量。
示例 1:
输入:board = [["E","E","E","E","E"],["E","E","M","E","E"],["E","E","E","E","E"],["E","E","E","E","E"]], click = [3,0] 输出:[["B","1","E","1","B"],["B","1","M","1","B"],["B","1","1","1","B"],["B","B","B","B","B"]]
示例 2:
输入:board = [["B","1","E","1","B"],["B","1","M","1","B"],["B","1","1","1","B"],["B","B","B","B","B"]], click = [1,2] 输出:[["B","1","E","1","B"],["B","1","X","1","B"],["B","1","1","1","B"],["B","B","B","B","B"]]
提示:
m == board.lengthn == board[i].length1 <= m, n <= 50board[i][j] 为 'M'、'E'、'B' 或数字 '1' 到 '8' 中的一个click.length == 20 <= clickr < m0 <= clickc < nboard[clickr][clickc] 为 'M' 或 'E'点击一个未点击过的地方,会有以下两大种情况:
X并返回B,并将四周没有处理过的点入队然后问题就解决了。
细节问题:
关于上文中“四周没有处理过的点”,我们可以用哈希表解决。因为棋盘的大小最大为50×5050\times5050×50,因此我们可以将横纵坐标压缩为一个数:横坐标×100+纵坐标横坐标\times100+纵坐标横坐标×100+纵坐标。这样,我们就可以使用哈希表unordered_set来记录某个点是否已经处理过。
class Solution {
private:int nearby(vector>& board, vector& click) {int ans = 0;for (int i = -1; i <= 1; i++) {for (int j = -1; j <= 1; j++) {int ti = click[0] + i;int tj = click[1] + j;if (ti >= 0 && ti < board.size() && tj >= 0 && tj < board[0].size()) {ans += board[ti][tj] == 'M';}}}return ans;}
public:vector> updateBoard(vector>& board, vector& click) {if (board[click[0]][click[1]] == 'M')board[click[0]][click[1]] = 'X';else {queue> q;q.push(click);unordered_set already;already.insert(click[0] * 100 + click[1]);while (q.size()) {vector thisPoint = q.front();q.pop();int aroundMine = nearby(board, thisPoint);if (aroundMine)board[thisPoint[0]][thisPoint[1]] = '0' + aroundMine;else {board[thisPoint[0]][thisPoint[1]] = 'B';for (int i = -1; i <= 1; i++) {for (int j = -1; j <= 1; j++) {int ti = thisPoint[0] + i;int tj = thisPoint[1] + j;if (ti >= 0 && ti < board.size() && tj >= 0 && tj < board[0].size()) {if (!already.count(ti * 100 + tj)) {already.insert(ti * 100 + tj);q.push({ti, tj});}}}}}}}return board;}
};
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Tisfy:https://letmefly.blog.csdn.net/article/details/127997191
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