BZOJ4650 NOI2016优秀的拆分(后缀数组)

时间:2023-03-10 01:56:25
BZOJ4650 NOI2016优秀的拆分(后缀数组)

  显然只要求出以每个位置开始的AA串数量就可以了,将其和反串同位置的结果乘一下,加起来就是答案。考虑对每种长度的字符串计数。若当前考虑的A串长度为x,我们每隔x个字符设一个关键点,求出相邻两关键点的后缀lcp和前缀lcs,交叉部分就是跨过这两个关键点的A串长度为x的AA串个数。差分一发就能对每个位置求了。

#include<iostream>

#include<cstdio>

#include<cmath>

#include<cstdlib>

#include<cstring>

#include<algorithm>

using namespace std;

#define ll long long

#define N 30010

char getc(){char c=getchar();while ((c<'A'||c>'Z')&&(c<'a'||c>'z')&&(c<''||c>'')) c=getchar();return c;}

int gcd(int n,int m){return m==?n:gcd(m,n%m);}

int read()

{

    int x=,f=;char c=getchar();

    while (c<''||c>'') {if (c=='-') f=-;c=getchar();}

    while (c>=''&&c<='') x=(x<<)+(x<<)+(c^),c=getchar();

    return x*f;

}

int T,n,a[N],cnt[N],rk[][N<<],tmp[N<<],sa[N],sa2[N],f[][N][],h[N],lg2[N],ans[][N];

char s[N];

void make(int op)

{

    int m=;

    memset(cnt,,sizeof(cnt));memset(rk[op],,sizeof(rk[op]));

    for (int i=;i<=n;i++) cnt[rk[op][i]=a[i]]++;

    for (int i=;i<=m;i++) cnt[i]+=cnt[i-];

    for (int i=n;i>=;i--) sa[cnt[a[i]]--]=i;

    for (int k=;k<=n;k<<=)

    {

        int p=;

        for (int i=n-k+;i<=n;i++) sa2[++p]=i;

        for (int i=;i<=n;i++) if (sa[i]>k) sa2[++p]=sa[i]-k;

        memset(cnt,,sizeof(cnt));

        for (int i=;i<=n;i++) cnt[rk[op][i]]++;

        for (int i=;i<=m;i++) cnt[i]+=cnt[i-];

        for (int i=n;i>=;i--) sa[cnt[rk[op][sa2[i]]]--]=sa2[i];

        memcpy(tmp,rk[op],sizeof(tmp));

        p=;rk[op][sa[]]=;

        for (int i=;i<=n;i++)

        {

            if (tmp[sa[i]]!=tmp[sa[i-]]||tmp[sa[i]+k]!=tmp[sa[i-]+k]) p++;

            rk[op][sa[i]]=p;

        }

        if (p==n) break;

        m=p;

    }

    for (int i=;i<=n;i++)

    {

        h[i]=max(h[i-]-,);

        while (a[i+h[i]]==a[sa[rk[op][i]-]+h[i]]) h[i]++;

    }

    for (int i=;i<=n;i++) f[op][i][]=h[sa[i]];

    for (int j=;j<;j++)

        for (int i=;i<=n;i++)

        f[op][i][j]=min(f[op][i][j-],f[op][min(n,i+(<<j-))][j-]);

    for (int i=;i<=n;i++)

    {

        lg2[i]=lg2[i-];

        if ((<<lg2[i])<=i) lg2[i]++;

    }

}

int query(int x,int y,int op)

{

    if (x>y) swap(x,y);

    x++;if (x>y) return N;

    return min(f[op][x][lg2[y-x+]],f[op][y-(<<lg2[y-x+])+][lg2[y-x+]]);

}

void solve(int op)

{

    memset(ans[op],,sizeof(ans[op]));

    for (int i=;i<=n;i++)

        for (int j=i;j+i<=n;j+=i)

        {

            int x=j,y=j+i;

            int lcp=query(rk[op][x+],rk[op][y+],op),lcs=query(rk[op^][n-x+],rk[op^][n-y+],op^);

            lcp=min(lcp,i-),lcs=min(lcs,i);

            if (lcp+lcs>=i) ans[op][x-lcs+]++,ans[op][x-lcs+(lcp+lcs-i)+]--;

        }

    for (int i=;i<=n;i++) ans[op][i]+=ans[op][i-];

}

int main()

{

#ifndef ONLINE_JUDGE

    freopen("bzoj4650.in","r",stdin);

    freopen("bzoj4650.out","w",stdout);

    const char LL[]="%I64d\n";

#else

    const char LL[]="%lld\n";

#endif

    T=read();

    while (T--)

    {

        scanf("%s",s+);

        n=strlen(s+);memset(a,,sizeof(a));

        for (int i=;i<=n;i++) a[i]=s[i]-'a'+;

        make();

        for (int i=;i<=n;i++) a[i]=s[n-i+]-'a'+;

        make();

        solve(),solve();

        ll tot=;

        for (int i=;i<=n;i++) tot+=ans[][i]*ans[][n-i+];

        cout<<tot<<endl;

    }

    return ;

}

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