这题太神啦
题意:求长度为$n$的不包含给定DNA序列的DNA序列个数,给定的不超过10个
构建出Trie图,用$danger[i]$来表示不能走到$i$,对于DNA序列结尾的结点$danger$设为1,构建$fail$指针的时候对于一个结点$i$的某个后缀如果$danger$为1那么$danger[i]$也应该为1.
然后根据Trie图再构造出对应的转移矩阵,自乘$n$次统计答案.
为什么自乘$n$次就行了?[感性理解.jpg]
人傻自带大常数?
hhh
#include<cstdio> #include<cstring> typedef long long lint; const lint MOD=100000; const int N=105; struct matrix { lint w[N][N]; matrix(){memset(w,0,sizeof(w));} }; int n,m,cnt,head,tail,ans; int tr[N][5],fail[N],q[N],map[300]; bool danger[N];char s[N]; inline void insert(char *c) { int len=strlen(c+1),k=0; for(register int i=1;i<=len;i++) { int t=map[(int)c[i]]; if(!tr[k][t])tr[k][t]=++cnt; k=tr[k][t]; } danger[k]=1; } inline void build() { for(register int i=0;i<4;i++)if(tr[0][i])q[tail++]=tr[0][i],fail[tr[0][i]]=0; while(head<tail) { int k=q[head++]; for(register int i=0;i<4;i++) { if(!tr[k][i])tr[k][i]=tr[fail[k]][i]; else { fail[tr[k][i]]=tr[fail[k]][i]; danger[tr[k][i]]|=danger[fail[tr[k][i]]]; q[tail++]=tr[k][i]; } } } } inline matrix mul(matrix a,matrix b) { matrix res; for(register int i=0;i<=cnt;i++) for(register int k=0;k<=cnt;k++)if(a.w[i][k]) for(register int j=0;j<=cnt;j++) { lint temp=(lint)(a.w[i][k]*b.w[k][j]); res.w[i][j]=(res.w[i][j]+temp); if(res.w[i][j]>MOD)res.w[i][j]%=MOD; } return res; } inline matrix powmod(matrix a,int b) { matrix res;for(register int i=0;i<=cnt;i++)res.w[i][i]=1; for(;b;b>>=1,a=mul(a,a))if(b&1)res=mul(res,a); return res; } int main() { //freopen("input.in","r",stdin); map['A']=0;map['C']=1;map['G']=2;map['T']=3; scanf("%d%d",&m,&n); for(register int i=1;i<=m;i++) { scanf("%s",s+1);insert(s); } build();matrix res; for(register int i=0;i<=cnt;i++)if(!danger[i]) { for(register int j=0;j<4;j++) if(!danger[tr[i][j]])res.w[i][tr[i][j]]++; } res=powmod(res,n); for(register int i=0;i<=cnt;i++) { ans=ans+res.w[0][i]; while(ans>MOD)ans-=MOD; } printf("%d",ans); return 0; }