luogu3857，懒得复制

Solution:

• 裸的线性基，往里面添加数，记录添加个数\(sum\)，快速幂输出\(2^{sum}\)即可

Code:

//It is coded by Ning_Mew on 5.30

#include<bits/stdc++.h>

#define LL long long

using namespace std;

const int maxn=70,MOD=2008;

int n,m;

LL s[maxn],x[maxn],ans=0;

LL read(){

  char ch=getchar();LL re=0;

  while(ch!='O'&&ch!='X')ch=getchar();

  while(ch=='O'||ch=='X'){

    if(ch=='O')re=((re<<1)^1);

    if(ch=='X')re=(re<<1);

    ch=getchar();

  }return re;

}

bool push(LL ss){

  for(int i=63;i>=0;i--){

    if((ss>>i)&1){

      if(!x[i]){x[i]=ss;return true;}

      else ss=(ss^x[i]);

    }

  }return false;

}

LL q_pow(LL x,LL t){

  LL re=1;

  while(t){

    if(t%2){re=(re*x%MOD);}

    x=x*x%MOD;

    t=t/2;

  }return re;

}

int main(){

  scanf("%d%d",&n,&m);

  for(int i=1;i<=m;i++){

    s[i]=read();//cout<<i<<' '<<s[i]<<endl;

  }

  for(int i=1;i<=m;i++){

    if(push(s[i]))ans++;

  }

  printf("%lld\n",q_pow(2,ans));

  return 0;

}

博主蒟蒻，随意转载。但必须附上原文链接：http://www.cnblogs.com/Ning-Mew/，否则你会终生找不到妹子！！！