Friend
Time Limit: 1000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others) Total Submission(s): 2073 Accepted Submission(s): 1046
Problem Description
Friend number are defined recursively as follows. (1) numbers 1 and 2 are friend number; (2) if a and b are friend numbers, so is ab+a+b; (3) only the numbers defined in (1) and (2) are friend number. Now your task is to judge whether an integer is a friend number.
Input
There are several lines in input, each line has a nunnegative integer a, 0<=a<=2^30.
Output
For the number a on each line of the input, if a is a friend number, output “YES!”, otherwise output “NO!”.
Sample Input
3 13121 12131
Sample Output
YES! YES! NO!
Source
Recommend
心塞的一题。。。。。。。
friend 数为ab+a+b,那么可以变成(a+1)(b+1)-1,只要给一个数加上1,然后判断他是否是由一系列2和一系列3组成的,
因为所有的数都是有(a+1)(b+1) ,2,3递推而来的。
#include <iostream> #include <cstdio> #define LL int using namespace std; void solve(LL x) { while((x%2)==0) { x/=2; if(x==1) break; } while((x%3)==0) { x/=3; if(x==1) break; } if(x==1) printf("YES! "); else printf("NO! "); } int main() { LL x,T; while(~scanf("%d",&x)) { if(x==1 || x==2) printf("YES! "); if(x==0) printf("NO! "); if(x!=1 && x!=2 && x!=0) solve(x+1); } return 0; }