CodeForces - 710F:String Set Queries (二进制分组 处理 在线AC自动机)

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ou should process m queries over a set D of strings. Each query is one of three kinds:

  1. Add a string s to the set D. It is guaranteed that the string s was not added before.
  2. Delete a string s from the set D. It is guaranteed that the string s is in the set D.
  3. For the given string s find the number of occurrences of the strings from the set D. If some string p from D has several occurrences in s you should count all of them.

Note that you should solve the problem in online mode. It means that you can‘t read the whole input at once. You can read each query only after writing the answer for the last query of the third type. Use functions fflush in C++ and BufferedWriter.flush in Java languages after each writing in your program.


Input

The first line contains integer m (1 ≤ m ≤ 3·105) — the number of queries.

Each of the next m lines contains integer t (1 ≤ t ≤ 3) and nonempty string s — the kind of the query and the string to process. All strings consist of only lowercase English letters.

The sum of lengths of all strings in the input will not exceed 3·105.

Output

For each query of the third kind print the only integer c — the desired number of occurrences in the string s.

Examples
Input
5
1 abc
3 abcabc
2 abc
1 aba
3 abababc
Output
2
2
Input
10
1 abc
1 bcd
1 abcd
3 abcd
2 abcd
3 abcd
2 bcd
3 abcd
2 abc
3 abcd
Output
3
2
1
0

题意:三种操作,1,给集合S加串;2,删串;3,询问子串在S出现的个数。 强制在线。

思路:。。。打CF了,每天写

二进制分组:每次加串就在尾巴建立一个字典树,集合大小为1; 如果集合大小和前面的相同,就合并。  合并完后,建立AC自动机。

#include<bits/stdc++.h>
#define ll long long
#define rep(i,a,b) for(int i=a;i<=b;i++)
using namespace std;
const int maxn=300010;
char c[maxn]; int len;
struct ACAM{
    int cnt,ch[maxn][26],fail[maxn],ac[maxn][26];
    int rt[maxn],num[maxn],sum[maxn],tot[maxn],T;
    ACAM(){
        cnt=0; T=0;
        rep(i,0,20) rt[i]=num[i]=0;
    }
    queue<int>que;
    void add(int &Now,int L)
    {
        if(!Now) Now=++cnt;
        if(L==len+1){ tot[Now]++; return ;}
        add(ch[Now][c[L]-a],L+1);
    }
    void build(int d) {
        que.push(d); fail[d]=d; sum[d]=0;
        for (int i=0;i<26;i++) ac[d][i]=d;
        while(!que.empty()) {
            int u=que.front();que.pop();
            sum[u]=sum[fail[u]]+tot[u];
           for (int i=0;i<26;i++) if (ch[u][i]) {
               int v=ch[u][i];
               que.push(v); fail[v]=ac[fail[u]][i]; ac[u][i]=v;
           } else ac[u][i]=ac[fail[u]][i];
        }
    }
    int merge(int x,int y)
    {
        if(!x||!y) return x^y;
        tot[x]+=tot[y];
        rep(i,0,25)
          ch[x][i]=merge(ch[x][i],ch[y][i]);
        return x;
    }
    void insert()
    {
        T++; add(rt[T],1); num[T]=1;
        while(num[T]==num[T-1]){
            rt[T-1]=merge(rt[T-1],rt[T]);
            rt[T]=0; num[T-1]+=num[T];
            num[T]=0; T--;
        }
        build(rt[T]);
    }
    ll query()
    {
        ll res=0;
        rep(i,1,T) {
            if(!rt[i]) continue;
            int Now=rt[i];
            rep(j,1,len){
                Now=ac[Now][c[j]-a];
                res+=sum[Now];
            }
        }
        return res;
    }
}a,b;
int main()
{
    int N,opt;
    scanf("%d",&N);
    rep(i,1,N){
        scanf("%d%s",&opt,c+1);
        len=strlen(c+1);
        if(opt==1) a.insert();
        else if(opt==2) b.insert();
        else printf("%lld
",a.query()-b.query()),fflush(stdout);
    }
    return 0;
}

 

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