• LeetCode 51. N-Queens


    原题链接在此:https://leetcode.com/problems/n-queens/

    题目:

    The n-queens puzzle is the problem of placing n queens on an n×n chessboard such that no two queens attack each other.

    Given an integer n, return all distinct solutions to the n-queens puzzle.

    Each solution contains a distinct board configuration of the n-queens' placement, where 'Q' and '.' both indicate a queen and an empty space respectively.

    For example,
    There exist two distinct solutions to the 4-queens puzzle:

    [
     [".Q..",  // Solution 1
      "...Q",
      "Q...",
      "..Q."],
    
     ["..Q.",  // Solution 2
      "Q...",
      "...Q",
      ".Q.."]
    ]

    题解:

    DFS+recursion. 用递归处理子问题,当某一个子问题出错时就回溯到上一层。这类问题的时间复杂度都是指数量级的。

    在子问题中,列出一种例子,判断当前情况是否合法,如果不合法就回到上一层,如果合法就DFS到下一层,当填满后就保存此正确结果。然后去掉最后添加的数,列举其他方法。但本题中不需要去掉就是因为此题是用一个一维数组代表棋盘,每个index代表行, value 代表列.

    [2,0,1,3] 代表[0,2],[1,0],[2,1],[3,3]上有皇后。

    Time Complexity: NP问题都是exponential的. Space: O(n), 新建了row. Recursion 用了n层stack.

    AC Java:

     1 public class Solution {
     2     public List<List<String>> solveNQueens(int n) {
     3         List<List<String>> res = new ArrayList<List<String>>();
     4         if(n<=0){
     5             return res;
     6         }
     7         helper(n, 0, new int[n], res);
     8         return res;
     9     }
    10     private void helper(int n, int cur, int [] row, List<List<String>> res){
    11         //cur stands for current position of row
    12         //这里表示这一条已经加到头了
    13         if(cur == n){
    14             List<String> item = new ArrayList<String>();
    15             for(int i = 0; i<row.length; i++){
    16                 StringBuilder sb = new StringBuilder();
    17                 for(int j = 0; j<row.length; j++){
    18                     if(row[i] != j){
    19                         sb.append('.');
    20                     }else{
    21                         sb.append('Q');
    22                     }
    23                 }
    24                 item.add(sb.toString());
    25             }
    26             res.add(item);
    27             return;
    28         }
    29         
    30         //没到头时就从0到n挨个试着加入row
    31         for(int i = 0; i<n; i++){
    32             row[cur] = i;
    33             //检查到目前的cur位置时, row是否合法
    34             if(isValid(cur, row)){
    35                 helper(n, cur+1, row, res);
    36             }
    37         }
    38     }
    39     
    40     private boolean isValid(int cur, int [] row){
    41         for(int i = 0; i<cur; i++){
    42             if(row[i] == row[cur] || Math.abs(row[cur] - row[i]) == cur-i){
    43                 return false;
    44             }
    45         }
    46         return true;
    47     }
    48 }

    AC Python:

     1 class Solution:
     2     def solveNQueens(self, n: int) -> List[List[str]]:
     3         res = []
     4         if n <= 0:
     5             return res
     6         board = [0] * n
     7         self.dfs(n, board, 0, res)
     8         return res
     9     
    10     def dfs(self, n: int, board: List[int], ind: int, res: List[List[str]]) -> None:
    11         if ind == n:
    12             res.append(self.construct(board))
    13             return
    14         
    15         for i in range(n):
    16             board[ind] = i
    17             if self.isValid(ind, board):
    18                 self.dfs(n, board, ind + 1, res)
    19         
    20     def construct(self, board: List[int]) -> List[str]:
    21         res = []
    22         for i in range(len(board)):
    23             item = ["."] * len(board)
    24             item[board[i]] = "Q"
    25             res.append("".join(item))
    26         
    27         return res
    28     
    29     def isValid(self, cur: int, board: List[int]) -> bool:
    30         for i in range(0, cur):
    31             if board[i] == board[cur] or abs(board[cur] - board[i]) == cur - i:
    32                 return False
    33             
    34         return True

    跟上N-Queens II.

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  • 原文地址:https://www.cnblogs.com/Dylan-Java-NYC/p/4825062.html
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