标签:示例 int 捕获 999 C++ 棋子 board now LeetCode
999. 可以被一步捕获的棋子数(C++)
1 题目描述
在一个 8 x 8 的棋盘上,有一个白色的车(Rook),用字符 ‘R’ 表示。棋盘上还可能存在空方块,白色的象(Bishop)以及黑色的卒(pawn),分别用字符 ‘.’,‘B’ 和 ‘p’ 表示。不难看出,大写字符表示的是白棋,小写字符表示的是黑棋。
车按国际象棋中的规则移动。东,西,南,北四个基本方向任选其一,然后一直向选定的方向移动,直到满足下列四个条件之一:
- 棋手选择主动停下来。
- 棋子因到达棋盘的边缘而停下。
- 棋子移动到某一方格来捕获位于该方格上敌方(黑色)的卒,停在该方格内。
- 车不能进入/越过已经放有其他友方棋子(白色的象)的方格,停在友方棋子前。
- 你现在可以控制车移动一次,请你统计有多少敌方的卒处于你的捕获范围内(即,可以被一步捕获的棋子数)。
2 示例描述
2.1 示例 2
输入:[[".",".",".",".",".",".",".","."],[".",".",".",“p”,".",".",".","."],[".",".",".",“R”,".",".",".",“p”],[".",".",".",".",".",".",".","."],[".",".",".",".",".",".",".","."],[".",".",".",“p”,".",".",".","."],[".",".",".",".",".",".",".","."],[".",".",".",".",".",".",".","."]]
输出:3
解释:
在本例中,车能够捕获所有的卒。
![输入:chips = [1,2,3]输出:1解释:第二个筹码移动到位置三的代价是 1,第一个筹码移动到位置三的代价是 0,总代价为 1](https://www.icode9.com/i/ll/?i=20210227151541294.png?,type_ZmFuZ3poZW5naGVpdGk,shadow_10,text_aHR0cHM6Ly9ibG9nLmNzZG4ubmV0L0d5YW5neGl4aQ==,size_16,color_FFFFFF,t_70)
2.2 示例 2
输入:[[".",".",".",".",".",".",".","."],[".",“p”,“p”,“p”,“p”,“p”,".","."],[".",“p”,“p”,“B”,“p”,“p”,".","."],[".",“p”,“B”,“R”,“B”,“p”,".","."],[".",“p”,“p”,“B”,“p”,“p”,".","."],[".",“p”,“p”,“p”,“p”,“p”,".","."],[".",".",".",".",".",".",".","."],[".",".",".",".",".",".",".","."]]
输出:0
解释:
象阻止了车捕获任何卒。
![输入:chips = [2,2,2,3,3]输出:2解释:第四和第五个筹码移动到位置二的代价都是 1,所以最小总代价为 2](https://www.icode9.com/i/ll/?i=20210227151604794.png?,type_ZmFuZ3poZW5naGVpdGk,shadow_10,text_aHR0cHM6Ly9ibG9nLmNzZG4ubmV0L0d5YW5neGl4aQ==,size_16,color_FFFFFF,t_70)
2.3 示例 3
输入:[[".",".",".",".",".",".",".","."],[".",".",".",“p”,".",".",".","."],[".",".",".",“p”,".",".",".","."],[“p”,“p”,".",“R”,".",“p”,“B”,"."],[".",".",".",".",".",".",".","."],[".",".",".",“B”,".",".",".","."],[".",".",".",“p”,".",".",".","."],[".",".",".",".",".",".",".","."]]
输出:3
解释:
车可以捕获位置 b5,d6 和 f5 的卒。
3 解题提示
board.length == board[i].length == 8
board[i][j] 可以是 ‘R’,’.’,‘B’ 或 ‘p’
只有一个格子上存在 board[i][j] == ‘R’
4 解题思路
采用两个数组将步骤叠装,后控制循环走棋。
5 源码详解(C++)
class Solution {
public:
int numRookCaptures(vector<vector<char>>& board) {
int n = 0 , x = 0 , y = 0 ;
int dx[4] = { 0, 1, 0, -1 } ; //控制x方向
int dy[4] = { 1, 0, -1, 0 } ; //控制y方向
for ( int i = 0 ; i < 8 ; i ++ )
{
for ( int j = 0 ; j < 8 ; j ++ )
{
if ( board[i][j] == 'R' )
{
x = i ;
y = j ;
break ;
}
}
}
for ( int i = 0 ; i < 4 ; i ++ )
{
/*
i = 0 : 向右移动
i = 1 : 向下移动
i = 2 : 向左移动
i = 3 : 向上移动
*/
for ( int step = 0 ; ; step ++ )
{
int now_x = x + step * dx[i] ;
int now_y = y + step * dy[i] ;
if ( now_x < 0 || now_x >= 8 || now_y < 0 || now_y >= 8 || board[now_x][now_y] == 'B') //出现任意一种情况就退出循环
{
break;
}
if ( board[now_x][now_y] == 'p' )
{
n ++ ;
break ;
}
}
}
return n ;
}
};
标签:示例,int,捕获,999,C++,棋子,board,now,LeetCode 来源: https://blog.csdn.net/Gyangxixi/article/details/114176116
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