无题面神题
原题意:
求所有的Ei=Fi/qi。
题解:
qi被除掉了,则原式中的qj可以忽略。
用a[i]表示q[i],用b[j-i]来表示±1/((j-i)^2)(j>i时为正,j<i时为负)
则求E[j]就是多项式乘法了。
因为是FFT,所以b的下标要增加到0及以上。
这题时限有30s,比某题友好多了。
代码:
1 type 2 xs=record 3 x,y:double; 4 end; 5 arr=array[0..1000000]of xs; 6 var 7 e,t:arr; 8 a:array[1..5]of arr; 9 n,m,i:longint; 10 function jian(a,b:xs):xs; 11 begin 12 jian.x:=a.x-b.x; 13 jian.y:=a.y-b.y; 14 end; 15 function jia(a,b:xs):xs; 16 begin 17 jia.x:=a.x+b.x; 18 jia.y:=a.y+b.y; 19 end; 20 function cheng(a,b:xs):xs; 21 begin 22 cheng.x:=a.x*b.x-a.y*b.y; 23 cheng.y:=a.x*b.y+a.y*b.x; 24 end; 25 procedure fft(xx,s,nn,mm:longint); 26 var 27 i,j:longint; 28 w:xs; 29 begin 30 if nn=1 then 31 begin a[xx+2,s]:=a[xx,s]; exit; end; 32 for i:=0 to nn div 2-1 do 33 begin t[i]:=a[xx,i*2+s]; t[i+nn div 2]:=a[xx,i*2+1+s]; end; 34 for i:=0 to nn-1 do a[xx,s+i]:=t[i]; 35 fft(xx,s,nn div 2,mm*2); fft(xx,s+nn div 2,nn div 2,mm*2); 36 for i:=0 to nn div 2-1 do 37 begin 38 j:=s+i; 39 w:=cheng(e[i*mm],a[xx+2,j+nn div 2]); 40 t[j]:=jia(a[xx+2,j],w); 41 t[j+nn div 2]:=jian(a[xx+2,j],w); 42 end; 43 for i:=s to s+nn-1 do a[xx+2,i]:=t[i]; 44 end; 45 begin 46 read(m); 47 for i:=0 to m-1 do read(a[1,i].x); 48 for i:=1 to m-1 do a[2,i].x:=-1/(m-i)/(m-i); 49 for i:=m+1 to m*2-1 do a[2,i].x:=1/(i-m)/(i-m); 50 n:=1; 51 while n<m*2 do n:=n*2; 52 for i:=0 to n-1 do e[i].x:=cos(pi*2*i/n); 53 for i:=0 to n-1 do e[i].y:=sin(pi*2*i/n); 54 fft(1,0,n,1); fft(2,0,n,1); 55 for i:=0 to n-1 do a[3,i]:=cheng(a[3,i],a[4,i]); 56 for i:=0 to n-1 do e[i].y:=-e[i].y; 57 fft(3,0,n,1); 58 for i:=m to m*2-1 do writeln((a[5,i].x/n):0:3); 59 end.