考虑枚举连通块
强制不同连通块间没边
用斯特林反演,乘
得到一个连通块的情况
只需要对于每个图的每个边看做一个二进制位
设为线性基的数的个数
一种划分的方案数就是的
#include<bits/stdc++.h>
using namespace std;
const int RLEN=1<<20|1;
inline char gc(){
static char ibuf[RLEN],*ib,*ob;
(ob==ib)&&(ob=(ib=ibuf)+fread(ibuf,1,RLEN,stdin));
return (ob==ib)?EOF:*ib++;
}
#define gc getchar
inline int read(){
char ch=gc();
int res=0,f=1;
while(!isdigit(ch))f^=ch=='-',ch=gc();
while(isdigit(ch))res=(res+(res<<2)<<1)+(ch^48),ch=gc();
return f?res:-res;
}
#define ll long long
#define re register
#define pii pair<int,int>
#define fi first
#define se second
#define pb push_back
#define cs const
#define bg begin
const int mod=1e9+7;
inline int add(int a,int b){return a+b>=mod?a+b-mod:a+b;}
inline void Add(int &a,int b){a=add(a,b);}
inline int dec(int a,int b){return a>=b?a-b:a-b+mod;}
inline void Dec(int &a,int b){a=dec(a,b);}
inline int mul(int a,int b){return 1ll*a*b>=mod?1ll*a*b%mod:a*b;}
inline void Mul(int &a,int b){a=mul(a,b);}
inline int ksm(int a,int b,int res=1){for(;b;b>>=1,a=mul(a,a))(b&1)?(res=mul(res,a)):0;return res;}
inline void chemx(int &a,int b){a<b?a=b:0;}
inline void chemn(int &a,int b){a>b?a=b:0;}
cs int N=12,S=65;
int n,s;
char str[N*N];
int e[S][N][N],bel[N];
ll ans,fac[N];
ll bas[S];
inline void calc(int tot){
int siz=0;
memset(bas,0,sizeof(bas));
for(int i=1;i<=s;i++){
ll tt=0,num=0;
for(int u=1;u<=n;u++)
for(int v=u+1;v<=n;v++)
if(bel[u]!=bel[v])tt+=(1ll*e[i][u][v])<<(num++);
for(int t=num-1;~t;t--){
if(tt&(1ll<<t)){
if(bas[t])tt^=bas[t];
else {bas[t]=tt,siz++;break;}
}
}
}
if(tot&1)ans+=(1ll<<(s-siz))*fac[tot-1];
else ans-=(1ll<<(s-siz))*fac[tot-1];
}
void dfs(int pos,int siz){
if(pos==n+1)return calc(siz);
for(int i=1;i<=siz;i++)bel[pos]=i,dfs(pos+1,siz);
bel[pos]=siz+1,dfs(pos+1,siz+1);
}
int main(){
s=read();
for(int i=1;i<=s;i++){
scanf("%s",str+1);
int len=strlen(str+1),pos=0;
n=(1+sqrt(1+8*len))/2;
for(int u=1;u<=n;u++)
for(int v=u+1;v<=n;v++)
e[i][u][v]=str[++pos]-'0';
}
fac[0]=1;
for(int i=1;i<=10;i++)fac[i]=fac[i-1]*i;
dfs(1,0);
cout<<ans;
}