清北学堂day3
作者:互联网
T1 gcdlcm
用cnt[i]记录i出现了多少次,枚举约数d,检查cnt[j*d] (j*d<=maxn),用f,g记录最大值和次大值;
若cnt[j*d]>=2,则f,g都更新为j*d;
若cnt[j*d]==1则g=f,f=j*d;
若f>0,g>0,则答案更新为f*g/d;
注:若f与g相同,由于上面的d会枚举到,所以不会影响答案;
code:
#include<iostream> #include<cstdio> #include<cstring> using namespace std; const int N=1e6+100; typedef long long ll; int cnt[N],a[N],n,maxn,f,g; ll ans; int main() { scanf("%d",&n); for(int i=1;i<=n;i++)scanf("%d",&a[i]),cnt[a[i]]++,maxn=max(maxn,a[i]); for(int d=1;d<=maxn;d++){ f=0,g=0; for(int j=1;1ll*j*d<=maxn;j++){ if(cnt[j*d]>=2){ f=1ll*j*d;g=1ll*j*d; }else if(cnt[j*d]==1){ g=f;f=1ll*j*d; } } if(f>0&&g>0){ ans=1ll*f*g/d; } } printf("%lld",ans); return 0; }
标签:cnt,学堂,int,ll,day3,1ll,ans,清北,include 来源: https://www.cnblogs.com/zmzx-xrx/p/11791348.html