HDU4609 & FFT

关于这道题请移步kuangbin爷的blog:http://www.cnblogs.com/kuangbin/archive/2013/07/24/3210565.html

感觉我一辈子也不能写出这么详细的题解.

Code:

  

/*=================================
# Created time: 2016-04-18 16:03
# Filename: hdu4609.cpp
# Description: 
=================================*/
#define me AcrossTheSky&HalfSummer11  
#include <cstdio>  
#include <cmath>  
#include <ctime>  
#include <string>  
#include <cstring>  
#include <cstdlib>  
#include <iostream>  
#include <algorithm>  
  
#include <set> 
#include <stack>  
#include <queue>  
#include <vector>  
  
#define lowbit(x) (x)&(-x)  
#define Abs(x) ((x) > 0 ? (x) : (-(x)))  
#define FOR(i,a,b) for((i)=(a);(i)<=(b);(i)++)  
#define FORP(i,a,b) for(int i=(a);i<=(b);i++)  
#define FORM(i,a,b) for(int i=(a);i>=(b);i--)  
#define ls(a,b) (((a)+(b)) << 1)  
#define rs(a,b) (((a)+(b)) >> 1)  
#define getlc(a) ch[(a)][0]  
#define getrc(a) ch[(a)][1]  
  
#define maxn 300005 
#define maxm 100005 
#define INF 1070000000  
using namespace std;  
typedef long long ll;  
typedef unsigned long long ull;  
  
template<class T> inline  
void read(T& num){  
    num = 0; bool f = true;char ch = getchar();  
    while(ch < '0' || ch > '9') { if(ch == '-') f = false;ch = getchar();}  
    while(ch >= '0' && ch <= '9') {num = num * 10 + ch - '0';ch = getchar();}  
    num = f ? num: -num;  
} 
int outs[100]; 
template<class T> inline 
void write(T x){ 
	if (x==0) {putchar('0'); putchar(' '); return;} 
	if (x<0) {putchar('-'); x=-x;} 
	int num=0; 
	while (x){ outs[num++]=(x%10); x=x/10;} 
	FORM(i,num-1,0) putchar(outs[i]+'0'); putchar(' '); 
} 
/*==================split line==================*/ 
const double pi=acos(-1);
struct cpx{
	double x,y;
	cpx(double a=0,double b=0):x(a),y(b){}
}f[maxn],g[maxn],eps[maxn],inv_eps[maxn];
	inline cpx operator +(cpx a,cpx b){return cpx(a.x+b.x,a.y+b.y);}
	inline cpx operator -(cpx a,cpx b){return cpx(a.x-b.x,a.y-b.y);}
	inline cpx operator *(cpx a,cpx b){return cpx(a.x*b.x-a.y*b.y,a.x*b.y+a.y*b.x);}
	inline cpx conj(cpx a){return cpx(a.x,-a.y);}
inline void geteps(ll n){
	double angle=2*pi/n;
	FORP(i,0,n) { double t=angle*i; eps[i]=cpx(cos(t),sin(t)); inv_eps[i]=conj(eps[i]);}
}
inline void fft(ll n,cpx *buffer,cpx *eps){
	for (ll i=0,j=0;i<n;i++){
		if (i<j) swap(buffer[i],buffer[j]);
		for (ll l=n>>1;(j^=l)<l;l>>=1);
	}
	for (ll i=2;i<=n;i<<=1){
		ll m=i>>1;
		for (ll j=0;j<n;j+=i)
			for (ll k=0;k<m;k++){
				cpx z=buffer[j+m+k]*eps[n/i*k];
				buffer[j+m+k]=buffer[j+k]-z;
				buffer[j+k]=buffer[j+k]+z;
			}
	}
}
ll a[100005],num[maxn];
int main(){
	int cas; read(cas);
	while (cas--){
		//f.clear(); g.clear();
		memset(f,0,sizeof(f)); //memset(g,0,sizeof(g));
		int n; read(n);
		ll maxa=0;
		FORP(i,1,n) {read(a[i]); maxa=max(maxa,a[i]); f[a[i]].x++;} //g[a[i]]=f[a[i]];}
		ll k=1;
		while(k<=maxa) k<<=1;
		k<<=1;
		geteps(k);
		fft(k,f,eps); //fft(k,g,eps);
		FORP(i,0,k-1) f[i]=f[i]*f[i];
		fft(k,f,inv_eps);
		FORP(i,0,k-1) f[i].x/=(double)k;
		//memset(num,0,sizeof(num));
		FORP(i,0,k-1) num[i]=trunc(f[i].x+0.5);
		FORP(i,1,k-1) if (num[i]<0) printf("flag\n");
		FORP(i,1,n) num[a[i]+a[i]]--;
		FORP(i,0,k-1) num[i]/=2;
		FORP(i,1,k-1) num[i]+=num[i-1];
		sort(a+1,a+1+n);
		ll ans=0;
		for(ll i=1;i<=n;i++) 
			ans=ans+num[k-1]-num[a[i]]-(n-1)-(i-1)*(n-i)-(n-i)*(n-i-1)/2;
		ll down=(ll)n*(n-1)*(n-2)/6;
		printf("%.7lf\n",(double)ans/down);
	}
}

 

posted @ 2016-04-18 20:04  YCuangWhen  阅读(142)  评论(0编辑  收藏  举报