• Codeforces 460D. Little Victor and Set


    D. Little Victor and Set
    time limit per test:1 second
    memory limit per test:256 megabytes
    input:standard input
    output:standard output

    Little Victor adores the sets theory. Let us remind you that a set is a group of numbers where all numbers are pairwise distinct. Today Victor wants to find a set of integers S that has the following properties:

    • for all x  the following inequality holds l ≤ x ≤ r;
    • 1 ≤ |S| ≤ k;
    • lets denote the i-th element of the set S as si; value  must be as small as possible.

    Help Victor find the described set.

    Input

    The first line contains three space-separated integers l, r, k (1 ≤ l ≤ r ≤ 1012; 1 ≤ k ≤ min(106, r - l + 1)).

    Output

    Print the minimum possible value of f(S). Then print the cardinality of set |S|. Then print the elements of the set in any order.

    If there are multiple optimal sets, you can print any of them.

    Examples
    input
    8 15 3
    output
    1
    2
    10 11
    input
    8 30 7
    output
    0
    5
    14 9 28 11 16
    Note

    Operation  represents the operation of bitwise exclusive OR. In other words, it is the XOR operation.

    分析:

     分类讨论:

    No.1 r-l<=10

    直接暴力搜索...

    No.2 k=1

    此时直接输出l...

    No.3 k=2

    ans一定是1...(相邻两个xor一下...)

    No.4 k>=4

    ans一定是0...(相邻4个xor一下...)

    No.5 k=3

    我们找出最小的m使得2^m大于l...

    这样,如果存在三个数x=2^m-1,y=2^m+2^(m-1),z=2^m+2^(m-1)-1,那么就一定可以是0,否则若y>r,ans一定是1...

    证明如下:

    如果存在m+1能够满足解,那么m也一定可以找到合法解...

    因为要使得ans=0,所以第m位一定存在两个1,因此m-1位一定存在1,所以最大值的下界是2^m+2^(m-1)-1,最小值的上界是2^m-1...

    代码:

    #include<algorithm>
    #include<iostream>
    #include<cstring>
    #include<cstdio>
    //by NeighThorn
    #define int long long
    using namespace std;
    //眉眼如初,岁月如故 
    
    int l,r,k,ans,vis;
    
    inline void dfs(int x,int tmp,int lala,int cnt){
        if(lala)
            if(ans>=tmp)
                ans=tmp,vis=lala;
        if(x==r+1||cnt>k)
            return;
        dfs(x+1,tmp,lala,cnt);dfs(x+1,tmp^x,lala|(1<<x-l),cnt+1);
    }
    
    signed main(void){
        scanf("%I64d%I64d%I64d",&l,&r,&k);
        if(r-l<=10){
            ans=r;dfs(l,0,0,1);printf("%I64d
    ",ans);ans=vis;int cnt=0;
            while(ans)
                cnt+=ans&1,ans>>=1;
            printf("%I64d
    ",cnt);cnt=0;
            while(vis){
                if(vis&1)
                    printf("%I64d ",l+cnt);
                cnt++,vis>>=1;
            }
            puts("");
        }
        else if(k==1)
            printf("%I64d
    1
    %I64d
    ",l,l);
        else if(k==2){
            puts("1");puts("2");
            if(l&1)
                printf("%I64d %I64d",l+1,l+2);
            else
                printf("%I64d %I64d",l,l+1);
        }
        else if(k>=4){
            puts("0");puts("4");
            if(l&1){
                for(int i=l+1;i<=l+4;i++)
                    printf("%I64d ",i);
                puts("");
            }
            else{
                for(int i=l;i<=l+3;i++)
                    printf("%I64d ",i);
                puts("");
            }
        }
        else{
            int m,L=1,R=62;
            while(L<=R){
            	int mid=(L+R)>>1;
            	if((1LL
    			<<mid)>l)
            		m=mid,R=mid-1;
            	else
            		L=mid+1;
            }
            if(m==0){
            	puts("1");puts("2");
    	            if(l&1)
    	                printf("%I64d %I64d",l+1,l+2);
    	            else
    	                printf("%I64d %I64d",l,l+1);
            }
            else{
    	        if((1LL<<m)+(1LL<<m-1)>r){
    	            puts("1");puts("2");
    	            if(l&1)
    	                printf("%I64d %I64d",l+1,l+2);
    	            else
    	                printf("%I64d %I64d",l,l+1);
    	        }
    	        else{
    	            puts("0");puts("3");int x=(1LL<<m)-1,y=(1LL<<m)+(1LL<<m-1),z=(1LL<<m)+(1LL<<m-1)-1;
    	            printf("%I64d %I64d %I64d
    ",x,y,z);
    	        }
        	}
        }
        return 0;   
    }//Cap ou pas cap. Pas cap.
    

      


    By NeighThorn

  • 相关阅读:
    euler v10 dracut失败
    基于RYU应用开发之负载均衡
    4、网上收集Storm 讲解图
    3、SpringBoot 集成Storm wordcount
    git常用
    3、SpringBoot集成Storm WorldCount
    2、Storm中的一些概念理解
    1、Storm集群安装
    8、Spring-Kafka Recving Messages
    7、Kafka、AMQ、RabbitMQ对比
  • 原文地址:https://www.cnblogs.com/neighthorn/p/6282495.html
Copyright © 2020-2023  润新知