• 洛谷 P3052 [USACO12MAR]摩天大楼里的奶牛Cows in a Skyscraper


    题目描述

    A little known fact about Bessie and friends is that they love stair climbing races. A better known fact is that cows really don't like going down stairs. So after the cows finish racing to the top of their favorite skyscraper, they had a problem. Refusing to climb back down using the stairs, the cows are forced to use the elevator in order to get back to the ground floor.

    The elevator has a maximum weight capacity of W (1 <= W <= 100,000,000) pounds and cow i weighs C_i (1 <= C_i <= W) pounds. Please help Bessie figure out how to get all the N (1 <= N <= 18) of the cows to the ground floor using the least number of elevator rides. The sum of the weights of the cows on each elevator ride must be no larger than W.

    给出n个物品,体积为w[i],现把其分成若干组,要求每组总体积<=W,问最小分组。(n<=18)

    输入输出格式

    输入格式:

     

    * Line 1: N and W separated by a space.

    * Lines 2..1+N: Line i+1 contains the integer C_i, giving the weight of one of the cows.

     

    输出格式:

     

    * Line 1: A single integer, R, indicating the minimum number of elevator rides needed.

    * Lines 2..1+R: Each line describes the set of cows taking

    one of the R trips down the elevator. Each line starts with an integer giving the number of cows in the set, followed by the indices of the individual cows in the set.

     

    输入输出样例

    输入样例#1: 复制
    4 10 
    5 
    6 
    3 
    7 
    
    输出样例#1: 复制
    3 
    

    说明

    There are four cows weighing 5, 6, 3, and 7 pounds. The elevator has a maximum weight capacity of 10 pounds.

    We can put the cow weighing 3 on the same elevator as any other cow but the other three cows are too heavy to be combined. For the solution above, elevator ride 1 involves cow #1 and #3, elevator ride 2 involves cow #2, and elevator ride 3 involves cow #4. Several other solutions are possible for this input.

    思路:迭代加深搜索,AC。

    #include<cstdio>
    #include<cstring>
    #include<iostream>
    #include<algorithm>
    #define MAXN 19
    using namespace std;
    int N,W;
    struct nond{
        int ans[MAXN],bns;
    }tmp[MAXN];
    int w[MAXN],num[MAXN];
    void dfs(int now,int tot,int sum){
        if(tot>sum)    return ;
        if(now==N+1){
            printf("%d
    ",sum);
            exit(0);
        }
        for(int i=1;i<=tot;i++)
            if(W-num[i]>=w[now]){
                num[i]+=w[now];
                dfs(now+1,tot,sum);
                num[i]-=w[now];
            }
        num[tot+1]+=w[now];dfs(now+1,tot+1,sum);num[tot+1]-=w[now];
    } 
    int main(){
        scanf("%d%d",&N,&W);
        for(int i=1;i<=N;i++)    scanf("%d",&w[i]);
        for(int i=1;i<=N;i++)
            dfs(1,0,i);
    }
    细雨斜风作晓寒。淡烟疏柳媚晴滩。入淮清洛渐漫漫。 雪沫乳花浮午盏,蓼茸蒿笋试春盘。人间有味是清欢。
  • 相关阅读:
    网络基础
    socket编程初识
    socket之黏包
    socketserver和socket的补充(验证客户端合法性)
    操作系统介绍
    进程初识和multiprocessing模块之Process
    进程Process之join、daemon(守护)、terminate(关闭)
    进程间通信(队列、管道)、消费者模型和进程池(apply,apply_async,map)
    数字证书私钥sign及验证
    JAVA获取密钥公钥的keytool的使用
  • 原文地址:https://www.cnblogs.com/cangT-Tlan/p/8641126.html
Copyright © 2020-2023  润新知