题意:给你一个串,支持两种操作,1修改某个点的字符,2询问[l,r]内模式串P与原串的匹配个数

bitset的写法是真的6啊,简直是优雅暴力的典范

bs[i]表示\(T_i\)与\(P\)匹配与否,

具体地,每次错位按位与依次表示\(T_i,T_{i+1}...T_{i+len2-1}\)与\(P_1,P_2...P_{len2}\)匹配与否

注意的是最后去除重复部分的起始下标应该是\((r-len2+1)+1\),而不是\(r+1\)

#include<iostream>

#include<algorithm>

#include<cstdio>

#include<cstring>

#include<cstdlib>

#include<bitset>

#define rep(i,j,k) for(register int i=j;i<=k;i++)

#define println(a) printf("%lld\n",(ll)a)

using namespace std;

const int MAXN = 1e5+30;

const int INF = 0x3f3f3f3f;

const double EPS = 1e-7;

typedef long long ll;

const ll MOD = 1e9+7;

unsigned int SEED = 19260817;

ll read(){

    ll x=0,f=1;register char ch=getchar();

    while(ch<'0'||ch>'9'){if(ch=='-')f=-1;ch=getchar();}

    while(ch>='0'&&ch<='9'){x=x*10+ch-'0';ch=getchar();}

    return x*f;

}

bitset<MAXN> bs,cc[32];

char tmp[MAXN],str[MAXN];

int main(){

    while(scanf("%s",str+1)!=EOF){

        int len=strlen(str+1);

        rep(i,0,26) cc[i].reset();

        rep(i,1,len) cc[str[i]-'a'][i]=1;

        int m=read();

        while(m--){

            int op=read(),t;

            if(op==1){

                scanf("%d%s",&t,tmp+1);

                cc[str[t]-'a'][t]=0;

                cc[tmp[1]-'a'][t]=1;

                str[t]=tmp[1];

            }else{

                int l=read();

                int r=read();

                scanf("%s",tmp+1);

                int len2=strlen(tmp+1);

                if(r-l+1<len2){

                    println(0);

                }else{

                    bs.set();

                    rep(i,1,len2) bs&=(cc[tmp[i]-'a']>>(i-1));

                    int ans=(bs>>(l)).count()-(bs>>(r-len2+2)).count();

                    println(ans);

                }

            }

        }

    }

    return 0;

}