2023-01-14:给定一个二维数组map,代表一个餐厅,其中只有0、1两种值 map[i][j] == 0 表示(i,j)位置是空座 map[i][j] == 1 表示(i,j)位置坐了人 根据防

2023-01-14:给定一个二维数组map,代表一个餐厅,其中只有0、1两种值
map[i][j] == 0 表示(i,j)位置是空座
map[i][j] == 1 表示(i,j)位置坐了人
根据防疫要求,任何人的上、下、左、右,四个相邻的方向都不能再坐人
但是为了餐厅利用的最大化,也许还能在不违反防疫要求的情况下,继续安排人吃饭
请返回还能安排的最大人数
如果一开始的状况已经不合法,直接返回-1
比如:
1 0 0 0
0 0 0 1
不违反防疫要求的情况下,这个餐厅最多还能安排2人,如下所示,X是新安排的人
1 0 X 0
0 X 0 1
再比如:
1 0 0 0 0 1
0 0 0 0 0 0
0 1 0 0 0 1
0 0 0 0 0 0
不违反防疫要求的情况下,这个餐厅最多还能安排7人,如下所示,X是新安排的人
1 0 0 X 0 1
0 0 X 0 X 0
0 1 0 X 0 1
X 0 X 0 X 0
数据范围 : 1 <= 矩阵的行、列 <= 20
来自华为。

答案2023-01-14:

轮廓线dp。
代码用solidity和rust编写。

代码用solidity编写。代码如下:

// SPDX-License-Identifier: MIT
pragma solidity ^0.8.17;

contract Hello{

    function main() public pure returns (int32){
		int32[][] memory matrix = new int32[][](2);
		for (int32 i = 0; i < 2; i++) {
            matrix[uint32(i)] = new int32[](2);
			for (int32 j = 0; j < 2; j++) {
				matrix[uint32(i)][uint32(j)] = 0;
			}
		}
        //matrix[1][1] = 1;
		int32 ans = mostSeats2(matrix);
		return ans;
    }

    // 正式方法
	// 轮廓线dp
	function mostSeats2(int32[][] memory map) public pure returns(int32){
		int32 n = int32(int(map.length));
		int32 m = int32(int(map[0].length));
		int32[] memory arr = new int32[](uint32(n));
		for (int32 i = 0; i < n; i++) {
			int32 status = 0;
			for (int32 j = 0; j < m; j++) {
				if (map[uint32(i)][uint32(j)] == 1) {
					if (i > 0 && map[uint32(i - 1)][uint32(j)] == 1) {
						return -1;
					}
					if (j > 0 && map[uint32(i)][uint32(j - 1)] == 1) {
						return -1;
					}
				}
				status |= map[uint32(i)][uint32(j)] *leftk(j);
			}
			arr[uint32(i)] = status;
		}
		int32 s = leftk(m);
		int32[][][] memory dp = new int32[][][](uint32(n));
		for (int32 i = 0; i < n; i++) {
            dp[uint32(i)] = new int32[][](uint32(m));
			for (int32 j = 0; j < m; j++) {
                dp[uint32(i)][uint32(j)] = new int32[](uint32(s));
				for (int32 k = 0; k < s; k++) {
					dp[uint32(i)][uint32(j)][uint32(k)] = -2;
				}
			}
		}
		int32 ans = process2(arr, n, m, 0, 0, 0, dp);
		return ans == -1 ? int32(0) : ans;
	}

	// 20 * 20 * 2^20 -> 4 * 10^8
	function process2(int32[] memory arr, int32 n, int32 m, int32 i, int32 j, int32 status, int32[][][] memory dp) public pure returns (int32){
		if (j == m) {
			return process2(arr, n, m, i + 1, 0, status, dp);
		}
		if (i == n) {
			return 0;
		}
		if (dp[uint32(i)][uint32(j)][uint32(status)] != -2) {
			return dp[uint32(i)][uint32(j)][uint32(status)];
		}
        A  memory a = A(0,0,0,0,0,0,0);
		a.left = status0(status, j - 1, m);
		a.up = status0(status, j, m);
		a.cur = status0(arr[uint32(i)], j, m);
		a.right = status0(arr[uint32(i)], j + 1, m);
		if (a.up == 1 && a.cur == 1) {
			return -1;
		}
		a.p1 = -1;
		if (a.cur == 1) {
			a.p1 = process2(arr, n, m, i, j + 1, status | leftk(j), dp);
		} else {
			a.p1 = process2(arr, n, m, i, j + 1, (status | leftk(j)) ^ leftk(j), dp);
		}
		a.p2 = -1;
		if (a.left == 0 && a.up == 0 && a.cur == 0 && a.right == 0) {
            int32 next2 = process2(arr, n, m, i, j + 1, status | leftk(j), dp);
			if (next2 != -1) {
				a.p2 = 1 + next2;
			}
		}
		a.ans = max(a.p1, a.p2);
		dp[uint32(i)][uint32(j)][uint32(status)] = a.ans;
		return a.ans;
	}

	function status0(int32 status, int32 i, int32 m)public pure returns (int32) {
		return (i < 0 || i == m || (status & (leftk(i))) == 0) ? int32(0) : int32(1);
	}

	function leftk(int32 k) public pure returns (int32){
		int32 ans = 1;
		while (k>0){
			ans*=2;
			k--;
		}
		return ans;
	}

	function max(int32 a,int32 b)public pure returns (int32){
		if(a>b){
			return a;
		}else{
			return b;
		}
	}

}

// 局部变量超过了16个,需要用结构体封装
struct A{       
    int32 left;
    int32 up;
    int32 cur;
    int32 right;
    int32 p1;
    int32 p2;
    int32 ans;
}

在这里插入图片描述

代码用rust编写。代码如下:

use rand::Rng;
use std::iter::repeat;
fn main() {
    let mut matrix = vec![vec![0, 0], vec![0, 0]];
    let ans3 = most_seats2(&mut matrix);
    println!("ans3 = {}", ans3);

    let nn: i32 = 10;
    let mm: i32 = 10;
    let one_p = 15;
    let test_time: i32 = 10000;
    println!("测试开始");
    for i in 0..test_time {
        let n = rand::thread_rng().gen_range(0, nn) + 1;
        let m = rand::thread_rng().gen_range(0, mm) + 1;
        let mut matrix = random_matrix(n, m, one_p);
        let ans1 = most_seats1(&mut matrix);
        let ans2 = most_seats2(&mut matrix);
        if ans1 != ans2 {
            println!("出错了!{}", i);
            println!("ans1 = {}", ans1);
            println!("ans2 = {}", ans2);
            break;
        }
    }
    println!("测试结束");
}

// 为了测试,普通方法
// 普通的状态压缩动态规划
// 每一行用dfs的方法
// 体系学习班,章节44 : 状态压缩的动态规划,贴瓷砖问题类似
fn most_seats1(map: &mut Vec<Vec<i32>>) -> i32 {
    let n = map.len() as i32;
    let m = map[0].len() as i32;
    let mut arr: Vec<i32> = repeat(0).take(n as usize).collect();
    for row in 0..n {
        let mut status = 0;
        let mut col = 0;
        let mut i = m - 1;
        while col < m {
            if map[row as usize][col as usize] == 1 {
                if row > 0 && map[(row - 1) as usize][col as usize] == 1 {
                    return -1;
                }
                if col > 0 && map[row as usize][(col - 1) as usize] == 1 {
                    return -1;
                }
            }
            status |= map[row as usize][col as usize] << i;
            col += 1;
            i -= 1;
        }
        arr[row as usize] = status;
    }
    let mut dp: Vec<Vec<i32>> = repeat(repeat(-2).take((1 << m) as usize).collect())
        .take(n as usize)
        .collect();
    let ans = process1(&mut arr, 0, 0, m, &mut dp);
    return if ans == -1 { 0 } else { ans };
}

fn process1(arr: &mut Vec<i32>, row: i32, pre: i32, m: i32, dp: &mut Vec<Vec<i32>>) -> i32 {
    if row == arr.len() as i32 {
        return 0;
    }
    if dp[row as usize][pre as usize] != -2 {
        return dp[row as usize][pre as usize];
    }
    let cur = arr[row as usize];
    let mut ans = 0;
    if (cur & pre) != 0 {
        ans = -1;
    } else {
        ans = dfs(arr, row, m - 1, pre, cur, m, dp);
    }
    dp[row as usize][pre as usize] = ans;
    return ans;
}

fn dfs(
    arr: &mut Vec<i32>,
    row: i32,
    col: i32,
    pre: i32,
    seats: i32,
    m: i32,
    dp: &mut Vec<Vec<i32>>,
) -> i32 {
    if col == -1 {
        return process1(arr, row + 1, seats, m, dp);
    } else {
        let p1 = dfs(arr, row, col - 1, pre, seats, m, dp);
        let mut p2 = -1;
        if (pre & (1 << col)) == 0
            && (seats & (1 << col)) == 0
            && (col == m - 1 || (seats & (1 << (col + 1))) == 0)
            && (col == 0 || (seats & (1 << (col - 1))) == 0)
        {
            let next2 = dfs(arr, row, col - 1, pre, seats | (1 << col), m, dp);
            if next2 != -1 {
                p2 = 1 + next2;
            }
        }
        return get_max(p1, p2);
    }
}

fn get_max<T: Clone + Copy + std::cmp::PartialOrd>(a: T, b: T) -> T {
    if a > b {
        a
    } else {
        b
    }
}

// 正式方法
// 轮廓线dp
fn most_seats2(map: &mut Vec<Vec<i32>>) -> i32 {
    let n = map.len() as i32;
    let m = map[0].len() as i32;
    let mut arr: Vec<i32> = repeat(0).take(n as usize).collect();
    for i in 0..n {
        let mut status = 0;
        for j in 0..m {
            if map[i as usize][j as usize] == 1 {
                if i > 0 && map[(i - 1) as usize][j as usize] == 1 {
                    return -1;
                }
                if j > 0 && map[i as usize][(j - 1) as usize] == 1 {
                    return -1;
                }
            }
            status |= map[i as usize][j as usize] << j;
        }
        arr[i as usize] = status;
    }
    let s = 1 << m;
    let mut dp: Vec<Vec<Vec<i32>>> = repeat(
        repeat(repeat(-2).take(s as usize).collect())
            .take(m as usize)
            .collect(),
    )
    .take(n as usize)
    .collect();
    let ans = process2(&mut arr, n, m, 0, 0, 0, &mut dp);
    return if ans == -1 { 0 } else { ans };
}

// 20 * 20 * 2^20 -> 4 * 10^8
fn process2(
    arr: &mut Vec<i32>,
    n: i32,
    m: i32,
    i: i32,
    j: i32,
    status: i32,
    dp: &mut Vec<Vec<Vec<i32>>>,
) -> i32 {
    if j == m {
        return process2(arr, n, m, i + 1, 0, status, dp);
    }
    if i == n {
        return 0;
    }
    if dp[i as usize][j as usize][status as usize] != -2 {
        return dp[i as usize][j as usize][status as usize];
    }
    let left = status0(status, j - 1, m);
    let up = status0(status, j, m);
    let cur = status0(arr[i as usize], j, m);
    let right = status0(arr[i as usize], j + 1, m);
    if up == 1 && cur == 1 {
        return -1;
    }
    let mut p1 = -1;
    if cur == 1 {
        p1 = process2(arr, n, m, i, j + 1, status | (1 << j), dp);
    } else {
        p1 = process2(arr, n, m, i, j + 1, (status | (1 << j)) ^ (1 << j), dp);
    }
    let mut p2 = -1;
    if left == 0 && up == 0 && cur == 0 && right == 0 {
        let next2 = process2(arr, n, m, i, j + 1, status | (1 << j), dp);
        if next2 != -1 {
            p2 = 1 + next2;
        }
    }
    let ans = get_max(p1, p2);
    dp[i as usize][j as usize][status as usize] = ans;
    return ans;
}

fn status0(status: i32, i: i32, m: i32) -> i32 {
    return if i < 0 || i == m || (status & (1 << i)) == 0 {
        0
    } else {
        1
    };
}

fn random_matrix(n: i32, m: i32, p0: i32) -> Vec<Vec<i32>> {
    let mut ans: Vec<Vec<i32>> = repeat(repeat(0).take(m as usize).collect())
        .take(n as usize)
        .collect();
    for i in 0..n {
        for j in 0..m {
            ans[i as usize][j as usize] = if rand::thread_rng().gen_range(0, 100) < p0 {
                1
            } else {
                0
            };
        }
    }
    return ans;
}

在这里插入图片描述

posted @ 2023-01-14 21:53  福大大架构师每日一题  阅读(16)  评论(0编辑  收藏  举报  来源