419. Battleships in a Board

时间 2019-12-04

标签 battleships board 繁體版

原文原文链接

题目描述：
用一次遍历，找出来有多少个不相连的X
第一遍，本身写的java

def countBattleships(self, board: List[List[str]]) -> int:
        res = 0
        for i in range(len(board)):
            for j in range(len(board[0])):
                if board[i][j] == 'X':
                    res += 1
                    board[i][j] = 'Y'
                    for m in range(i + 1,len(board)):
                        if board[m][j] == 'X':
                            board[m][j] = 'Y'
                        else:
                            break
                            
                    for n in range(j + 1,len(board[0])):
                        if board[i][n] == 'X':
                            board[i][n] = 'Y'
                        else:
                            break
                elif board[i][j] == 'Y':
                    board[i][j] == 'X'
        
        return res

看完答案，果真本身又弟弟了
只要遍历的时候，计数：计最左上角的就能够code

关键在于：最左上角的条件怎么去写？
观察能够得出：最左上角的元素或者是上方是 ‘.’ 或者是左方是'.' （由于不是最左上角的元素，上方或者左方一定是x）ip

同时，若是最左上角的元素， index == 0 也要考虑进来。
代码以下：class

def countBattleships(self, board: List[List[str]]) -> int:
        res = 0
        for i in range(len(board)):
            for j in range(len(board[0])):
                if board[i][j] == 'X' and (i == 0 or board[i-1][j] == '.') and (j == 0 or board[i][j-1] == '.'):
                    res += 1
        
        return res