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  • poj2443(简单的状态压缩)

    POJ2443

    Set Operation
    Time Limit: 3000MS   Memory Limit: 65536K
    Total Submissions: 2679   Accepted: 1050

    Description

    You are given N sets, the i-th set (represent by S(i)) have C(i) element (Here "set" isn't entirely the same as the "set" defined in mathematics, and a set may contain two same element). Every element in a set is represented by a positive number from 1 to 10000. Now there are some queries need to answer. A query is to determine whether two given elements i and j belong to at least one set at the same time. In another word, you should determine if there exist a number k (1 <= k <= N) such that element i belongs to S(k) and element j also belong to S(k).

    Input

    First line of input contains an integer N (1 <= N <= 1000), which represents the amount of sets. Then follow N lines. Each starts with a number C(i) (1 <= C(i) <= 10000), and then C(i) numbers, which are separated with a space, follow to give the element in the set (these C(i) numbers needn't be different from each other). The N + 2 line contains a number Q (1 <= Q <= 200000), representing the number of queries. Then follow Q lines. Each contains a pair of number i and j (1 <= i, j <= 10000, and i may equal to j), which describe the elements need to be answer.

    Output

    For each query, in a single line, if there exist such a number k, print "Yes"; otherwise print "No".

    Sample Input

    3
    3 1 2 3
    3 1 2 5
    1 10
    4
    1 3
    1 5
    3 5
    1 10
    

    Sample Output

    Yes
    Yes
    No
    No
    

    Hint

    The input may be large, and the I/O functions (cin/cout) of C++ language may be a little too slow for this problem.

    Source

    POJ Monthly,Minkerui

    主要是简单的状态压缩,由于数字最大就是10000,而int最大是32位不到,所以切割成10000/30个,分成40份好了。

    之后进行状态压缩,奇妙的二进制啊。

    经过这样的处理后,插入是常数,而推断一个数是否在某一个集合也是常数时间。所以每个查询推断他是否在集合中也就是O(n)。

    典型的空间换时间。

    一開始我开了一个1000*10000的数组。memset斗能够导致TLE了。



    #include <iostream>
    #include <cstdio>
    #include <cstring>
    using namespace std;
    struct st{
        int u[400];
        void add(int n){
            int i=n/30,j=n%30;
            u[i]|=(1<<j);
        }
        bool in(int n){
            int i=n/30,j=n%30;
            return u[i]&(1<<j);
    
    
        }
        void del(int n){
            int i=n/30,j=n%30;
            u[i]&=~(1<<j);
    
    
        }
        void init(){
            memset(u,0,sizeof(u));
                  }
    
    
    };
    st v[1001];
    int main()
    {
    
    
        int n,m,i,s,t;
        while(scanf("%d",&n)!=EOF){
    
    
                for(i=0;i<n;i++){
                    v[i].init();
    
    
                    scanf("%d",&m);
                    while(m--){
                        scanf("%d",&s);
                            v[i].add(s);
                    }
                }
                scanf("%d",&m);
                while(m--){
                    scanf("%d%d",&s,&t);
                    for(i=0;i<n;i++){
                        if(v[i].in(s)&&v[i].in(t)){
    
    
                            break;
                        }
                    }
                    if(i==n){
                        puts("No");
                    }else{
                        puts("Yes");
                    }
                }
    
    
        }
        return 0;
    }

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  • 原文地址:https://www.cnblogs.com/mfrbuaa/p/4095663.html
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