Today is Yukari's n-th birthday. Ran and Chen hold a celebration party for her. Now comes the most important part, birthday cake! But it's a big challenge for them to place n candles on the top of the cake. As Yukari has lived for such a long long time. Though she herself insists that she is a 17-year-old girl.
To make the birthday cake look more beautiful, Ran and Chen decide to place them like r ≥ 1 concentric circles. They place ki candles equidistantly on the i-th circle, where k ≥ 2, 1 ≤ i ≤ r. And it's optional to place at most one candle at the center of the cake. In case that there are a lot of different pairs of r and k satisfying these restrictions, they want to minimize r × k. If there is still a tie, minimize r.
Input
There are about 10,000 test cases. Process to the end of file.
Each test consists of only an integer 18 ≤ n ≤ 1012.
Output
For each test case, output r and k.
Sample Input
18 111 1111
Sample Output
1 17 2 10 3 10
//枚举 r ,二分 k
#include <iostream> #include <stdio.h> #include <math.h> #include <string.h> #include <stdlib.h> #include <algorithm> using namespace std; #define __int64 long long //zoj上的特殊需要哈 __int64 rc[2]; __int64 n; int ok(int r,__int64 k) { __int64 sum=0; for(int i=1;i<=r;i++) { sum+=(__int64)pow(1.0*k,1.0*i); if(sum>n) return 2; } if(sum==n||sum+1==n) return 3; return 1; } __int64 bf(int id,__int64 r) { __int64 l=2; __int64 m; int flag; while(l<=r) { m=(l+r)>>1; flag=ok(id,m); if(flag==1) l=m+1; else if(flag==2) r=m-1; else return m; } return 0; } void solve() { __int64 id; int i; __int64 r=n; for(i=2;;i++) //枚举 r { r=(__int64)(pow(n*1.0,1.0/i)); 计算 k 的二分范围 if(r==1) break; id=bf(i,r);, if(id) { if(rc[0]*rc[1]>i*id) { rc[0]=i; rc[1]=id; } } } } int main() { while(scanf("%lld",&n)!=EOF) { rc[0]=1;rc[1]=n-1; solve(); printf("%lld %lld\n",rc[0],rc[1]); } return 0; }