[HAOI 2018]染色

传送门

Description

一个长度为(N)的序列, 每个位置都可以被染成 (M)种颜色中的某一种.

出现次数恰好为 (S)的颜色种数有(i)种, 会产生(w_i)的愉悦度.

对于所有染色方案, 能获得的愉悦度的和对(1004535809)取模的结果.

Solution 

[ans=sum_{i=0}^{lim} w_icdot num_i ]

how to get (num_i)?

(f_i) : the number of occurrences of at least i colors is exactly the number of S

so (f_i=inom{m}{i}cdot frac{n!}{(s!)^i(n-iS)!}cdot(m-i)^{n-iS})

According to the binomial inversion, we can know that:

[num_i=sum_{j=i}^{lim}(-1)^{j-i}inom{j}{i}f[j] ]

so

[num_i=frac{1}{i!}sum_{j=i}^{lim} frac{(-1)^{j-i}}{(j-i)!}cdot(f[j]cdot j!) ]

we can use NTT.

Code 

#include<bits/stdc++.h>
#define reg register
#define ll long long
#define db double
using namespace std;
inline int read()
{
	int x=0,f=1;char ch=getchar();
	while(ch<'0'||ch>'9'){if(ch=='-')f=-1;ch=getchar();}
	while(ch>='0'&&ch<='9'){x=(x<<3)+(x<<1)+ch-'0';ch=getchar();}
	return x*f;
}
const int P=1004535809,G[2]={3,334845270},NN=5e5+5;
int Mul(int x,int y){return 1ll*x*y%P;}
int Add(int x,int y){return (x+y)%P;}
const int MN=1e7+5,MM=1e5+5,MS=155;
int N,M,S,W[MM],f[MM],fac[MN],inv[MN];
int fpow(int x,int y){int r=1;for(;y;y>>=1,x=Mul(x,x))if(y&1)r=Mul(r,x);return r;}
int C(int x,int y){if(x<0||y<0||x<y)return 0;return Mul(fac[x],Mul(inv[y],inv[x-y]));}
int a[NN],b[NN],pos[NN];
void NTT(int *a,bool ty,int L)
{
	reg int i,j,k,w,wn,x,y;
	for(i=0;i<L;++i) if(pos[i]<i) swap(a[i],a[pos[i]]);
	for(i=1;i<L;i<<=1)
	{
		wn=fpow(G[ty],(P-1)/(i<<1));
		for(j=0;j<L;j+=(i<<1))
			for(w=1,k=0;k<i;++k,w=Mul(w,wn))
			{
				x=a[j+k],y=Mul(a[j+i+k],w);
				a[j+k]=Add(x,y);a[j+i+k]=Add(x,P-y);
			}
	}
	if(ty)for(j=fpow(L,P-2),i=0;i<L;++i)a[i]=Mul(a[i],j);
}
int ans;
int main()
{
	N=read(),M=read(),S=read();
	reg int i,lim;
	for(i=0;i<=M;++i) W[i]=read();
	lim=max(N,M);
	for(fac[0]=i=1;i<=lim;++i) fac[i]=Mul(fac[i-1],i);
	for(inv[0]=inv[1]=1,i=2;i<=lim;++i) inv[i]=Mul(inv[P%i],(P-P/i));
	for(i=1;i<=lim;++i) inv[i]=Mul(inv[i],inv[i-1]);
	lim=min(M,N/S);
 	for(i=0;i<=lim;++i)
 		f[i]=Mul(Mul(C(M,i),Mul(fac[N],fpow(inv[S],i))),Mul(inv[N-i*S],fpow(M-i,N-i*S)));
	for(i=0;i<=lim;++i) b[lim-i+1]=Mul(f[i],fac[i]);
	for(i=0;i<=lim;++i) a[i]=(i&1)?(P-inv[i]):inv[i];
	int MA;
	for(MA=1;MA<=(lim<<1);MA<<=1);
	for(i=0;i<MA;++i) pos[i]=(pos[i>>1]>>1)|((i&1)*(MA>>1));
	NTT(a,0,MA);NTT(b,0,MA);
	for(i=0;i<MA;++i) a[i]=Mul(a[i],b[i]);
	NTT(a,1,MA);
	for(i=0;i<=lim;++i) ans=Add(ans,Mul(W[i],Mul(a[lim-i+1],inv[i])));
	return 0*printf("%d
",ans);
}

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