Uva 11825 - Hackers' Crackdown 状态压缩
Problem H
Hackers’ Crackdown
Input: Standard Input
Output: Standard Output
Miracle Corporations has a number of system services running in a distributed computer system which is a prime target for hackers. The system is basically a set of N computer nodes with each of them running a set of N services. Note that, the set of services running on every node is same everywhere in the network. A hacker can destroy a service by running a specialized exploit for that service in all the nodes.
One day, a smart hacker collects necessary exploits for all these N services and launches an attack on the system. He finds a security hole that gives him just enough time to run a single exploit in each computer. These exploits have the characteristic that, its successfully infects the computer where it was originally run and all the neighbor computers of that node.
Given a network description, find the maximum number of services that the hacker can damage.
Input
There will be multiple test cases in the input file. A test case begins with an integer N (1<=N<=16), the number of nodes in the network. The nodes are denoted by 0 to N - 1. Each of the following N lines describes the neighbors of a node. Line i (0<=i<N) represents the description of node i. The description for node i starts with an integer m (Number of neighbors for node i), followed by m integers in the range of 0 to N - 1, each denoting a neighboring node of node i.
The end of input will be denoted by a case with N = 0. This case should not be processed.
Output
For each test case, print a line in the format, “Case X: Y”, where X is the case number & Y is the maximum possible number of services that can be damaged.
|
Sample Input |
Output for Sample Input |
|
3 2 1 2 2 0 2 2 0 1 4 1 1 1 0 1 3 1 2 0 |
Case 1: 3 Case 2: 2 |
Problemsetter: Mohammad Mahmudur Rahman
Special Thanks Manzurur Rahman Khan
----------把n个集合p1,p2...,pn分成尽量多组,使得每组中所有集合的并集等于全集。
p[i]表示i与其相邻计算机的集合
cover[s]表示若干p[i]集合的并集
f[s]表示子集s最多可以分成多少组
f[s]=max{ f[s0]|s0是s的子集,cover[s0]等于全集 }+1;
----------
#include <iostream>
#include <cstdio>
#include <cstring>
using namespace std;
const int maxn=18;
const int maxs=1<<18;
int f[maxs];
int p[maxn];
int cover[maxs];
int n;
int main()
{
int cas=0;
while (~scanf("%d",&n))
{
if (n==0) break;
for (int i=0;i<n;i++)
{
int m,x;
scanf("%d",&m);
p[i]=1<<i;
while (m--)
{
scanf("%d",&x);
p[i]|=(1<<x);
}
}
for (int s=0;s<(1<<n);s++)
{
cover[s]=0;
for (int i=0;i<n;i++)
{
if (s&(1<<i))
{
cover[s]|=p[i];
}
}
}
f[0]=0;
int ALL=(1<<n)-1;
for (int s=1;s<(1<<n);s++)
{
f[s]=0;
for (int s0=s;s0;s0=(s0-1)&s)
{
if (cover[s0]==ALL)
{
f[s]=max(f[s],f[s^s0]+1);
}
}
}
printf("Case %d: %d\n",++cas,f[ALL]);
}
return 0;
}
