Perfection

Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)

Problem Description

From the article Number Theory in the 1994 Microsoft Encarta: "If a, b, c are integers such that a = bc, a is called a multiple of b or of c, and b or c is called a divisor or factor of a. If c is not 1/-1, b is called a proper divisor
of a. Even integers, which include 0, are multiples of 2, for example, -4, 0, 2, 10; an odd integer is an integer that is not even, for example, -5, 1, 3, 9. A perfect number is a positive integer that is equal to the sum of all its positive, proper divisors;
for example, 6, which equals 1 + 2 + 3, and 28, which equals 1 + 2 + 4 + 7 + 14, are perfect numbers. A positive number that is not perfect is imperfect and is deficient or abundant according to whether the sum of its positive, proper divisors is smaller or
larger than the number itself. Thus, 9, with proper divisors 1, 3, is deficient; 12, with proper divisors 1, 2, 3, 4, 6, is abundant."

Given a number, determine if it is perfect, abundant, or deficient.

Input

A list of N positive integers (none greater than 60,000), with 1 < N < 100. A 0 will mark the end of the list.

Output

The first line of output should read PERFECTION OUTPUT. The next N lines of output should list for each input integer whether it is perfect, deficient, or abundant, as shown in the example below. Format counts: the echoed integers
should be right justified within the first 5 spaces of the output line, followed by two blank spaces, followed by the description of the integer. The final line of output should read END OF OUTPUT.

Sample Input

15 28 6 56 60000 22 496 0

Sample Output

PERFECTION OUTPUT
   15  DEFICIENT
   28  PERFECT
    6  PERFECT
   56  ABUNDANT
60000  ABUNDANT
   22  DEFICIENT
  496  PERFECT
END OF OUTPUT

Source

Mid-Atlantic USA 1996

#include<iostream>
using namespace std;
int main()
{
	int n,i,sum;
  cout<<"PERFECTION OUTPUT"<<endl;
  while(cin>>n,n)
  {

	  sum=1;
	  //很是神奇 如果把printf语句移到这里就是答案错误！谁知道？
	  for(int j=2;j<=n/2;j++)
		  if(n%j==0)
			  sum+=j;
		  printf("%5d  ",n);
		  if(sum>n)
			   cout<<"ABUNDANT"<<endl;
		  else if(sum==n)
			  cout<<"PERFECT"<<endl;
		  else
			 cout<<"DEFICIENT"<<endl;
  }
  cout<<"END OF OUTPUT"<<endl;
  return 0;
}