We all know the Super Powers of this world and how they manage to get advantages in political warfare or even in other sectors. But this is not a political platform and so we will talk about a different kind of super powers — “The Super Power Numbers”. A positive number is said to be super power when it is the power of at least two different positive integers. For example 64 is a super power as 64 = 82 and 64 = 43 . You have to write a program that lists all super powers within 1 and 264 − 1 (inclusive).
Input
This program has no input. Output Print all the Super Power Numbers within 1 and 264 − 1. Each line contains a single super power number and the numbers are printed in ascending order. Note: Remember that there are no input for this problem. The sample output is only a partial solution. Sample Input Sample
Output
1
16
64
81
256
512
.
.
.
解题思路:
直接扫描2~(2^16-1)内的所有数字,设为i;设指数为j,令j=4,检查所有大于等于4,并且使i^j<=(2^64-1)成立的j。
i^j<=(2^64-1)可化为j<=ln(2^64-1)/lni。(为了防爆long long,可以用double)
这有有个需要注意的地方。double可以表示1.7* 10的300次方,但不能准确表示1.7* 10的300次方加上1那个数。按科学计算法书写,double可以有15位有效数字。
所以2^64-1并不能用double精确表示。可以用ln(2^64-1)减小误差。(只能减小,不能完全消除)
1 #include <cstdio> 2 #include <cmath> 3 #include <set> 4 using namespace std; 5 #define ll unsigned long long 6 7 set<ll> se; 8 9 int OK(int x) 10 { 11 for(int i=2;i<=x/2;i++) 12 if(x%i==0) 13 return 1; 14 return 0; 15 } 16 17 ll poww(ll x,int n) 18 { 19 ll ans=1; 20 while(n) 21 { 22 if(n&1) 23 ans*=x; 24 x*=x; 25 n/=2; 26 } 27 return ans; 28 } 29 30 int main() 31 { 32 double s= pow(2.0, 64.0)-1 ; 33 se.insert(1); 34 for(int i=2;i<(1<<16);i++) 35 { 36 for(int j=4;j<(int)ceil(log(s)/log(i*1.0));j++) 37 { 38 if(OK(j))//j不超过63 39 se.insert(poww((ll)i,j)); 40 } 41 } 42 43 for(set<ll>::iterator it=se.begin();it!=se.end();it++) 44 printf("%llu ",*it); 45 return 0; 46 }