题目大意:给定一个序列,每个数都由60个最小的素数的乘积构成,求某段的乘积的欧拉函数值对19961993取模后的值,支持单点修改
19961993是个质数 出题人还是满贴心的
利用线段树维护乘积取模后的值以及哪些素数出现过 后者用bitset维护
得到的值根据bitset里出现过的素数来计算欧拉函数值
时间复杂度O(nlog10W+60n)
#include <bitset> #include <cstdio> #include <cstring> #include <iostream> #include <algorithm> #define MOD 19961993 #define M 100100 using namespace std; const int prime[60]={2,3,5,7,11,13,17,19,23,29,31,37,41,43,47,53,59,61,67,71,73,79,83,89,97,101,103,107,109,113,127,131,137,139,149,151,157,163,167,173,179,181,191,193,197,199,211,223,227,229,233,239,241,251,257,263,269,271,277,281}; const int rev[]={9980997,13307996,7984798,11406854,14517814,18426456,9393880,5253157,16490343,8260136,2575742,18343454,3895024,17640832,1698894,3013132,7443456,4581442,9236147,18275065,6562848,2779519,7936697,4037258,6379607,19566707,13566404,4104336,3662752,13602421,16661192,1219054,13259427,9047523,3751248,8196316,14621843,1714528,12192356,11884887,8029406,13455046,17976246,13342473,14084859,15548287,10217514,9846724,5364237,3486812,1627803,14950615,1076789,12406658,19340609,8652728,7791857,7955334,1657495,8808852}; struct Segtree{ Segtree *ls,*rs; bitset<60>cnt; long long product; void* operator new (size_t) { static Segtree mempool[M<<1],*C=mempool; return C++; } void Build_Tree(int x,int y) { int mid=x+y>>1; if(x==y) { cnt[1]=1; product=3; return ; } ls=new Segtree;rs=new Segtree; ls->Build_Tree(x,mid); rs->Build_Tree(mid+1,y); cnt=ls->cnt|rs->cnt; product=ls->product*rs->product%MOD; } void Modify(int x,int y,int pos,int val) { int mid=x+y>>1; if(x==y) { int i; for(i=0;i<60;i++) if(val%prime[i]==0) cnt[i]=1; else cnt[i]=0; product=val; return ; } if(pos<=mid) ls->Modify(x,mid,pos,val); else rs->Modify(mid+1,y,pos,val); cnt=ls->cnt|rs->cnt; product=ls->product*rs->product%MOD; } pair<bitset<60>,long long> Query(int x,int y,int l,int r) { int mid=x+y>>1; if(x==l&&y==r) return make_pair(cnt,product); if(r<=mid) return ls->Query(x,mid,l,r); if(l>mid) return rs->Query(mid+1,y,l,r); pair<bitset<60>,long long> temp1=ls->Query(x,mid,l,mid); pair<bitset<60>,long long> temp2=rs->Query(mid+1,y,mid+1,r); return make_pair(temp1.first|temp2.first,temp1.second*temp2.second%MOD); } }*root=new Segtree; int m; int main() { int i,j,p,x,y; cin>>m; root->Build_Tree(1,100000); for(i=1;i<=m;i++) { scanf("%d%d%d",&p,&x,&y); if(p==1) root->Modify(1,100000,x,y); else { pair<bitset<60>,long long> temp=root->Query(1,100000,x,y); long long ans=temp.second; for(j=0;j<60;j++) if(temp.first[j]) ans*=rev[j],ans%=MOD; printf("%lld\n",ans); } } return 0; }