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I'm having issues with the testPerfect method. I need it to calculate the factors and put them into the array, then return a boolean value of true or false if the number is perfect or not. As of now the array is just getting 1,2,3...5,6,7...to whatever number was input to check. Any suggestions?

import java.util.Arrays;
import java.util.Scanner;

public class moo_Perfect
{
public static void main ( String args [] )
{
    int gN;
    int gP = getPerfect();
    int [] array = new int[100];
    boolean tP = testPerfect(gP, array);
    //int printFactors;
    System.out.println(Arrays.toString(array));
}


public static int getNum() //Get amount of numbers to check
{
Scanner input = new Scanner ( System.in );
System.out.print( "How many numbers would you like to test? " );
int count = input.nextInt();
int perfect = 1;
boolean vN = validateNum(count, perfect);
while(!vN)
{
    System.out.print (" How many numbers would you like to test? ");
    count = input.nextInt();
    vN = validateNum(count, perfect);
}
return count;
}   

public static boolean validateNum( int count, int perfect  ) //Check if number is valid
{
if (( count <= 0) || ( perfect <= 0))

{ 
    System.out.print( "Non-positive numbers are not allowed.\n");
}



else 
{
    return true;
}
return false;


}
public static int getPerfect() //Gets the numbers to test
{
Scanner input = new Scanner ( System.in );
int perfect = -1;
int count = getNum();
System.out.print("Please enter a perfect number: " );
perfect = input.nextInt();  
boolean vN = validateNum(perfect, count);
while (!vN) 
{
    System.out.print("Please enter a perfect number: ");
    perfect = input.nextInt();
    vN=validateNum(perfect, count);
}
return perfect;
}


public static boolean testPerfect( int perfect, int[] array )

{
//testPerfect(perfect, array);
int limit = perfect;
int index = 0;
for ( int i = 1; i <=limit; i++)
{
    array[index++] = i;
    perfect /= i;
}
array[index] = perfect;
int sum = 0;
for ( int i =0; i < array.length; i++)
{
    sum = sum + array[i];
}

if ( sum == perfect)
{
    int[] w = array;

    return true;        
}

else
{
    return false;
}


}
share|improve this question

1 Answer 1

This is a job for a List, not an array (because you don't know how long the array should be before hand, Lists take care of this). After you instantiate a list of integers (say, factors), you can change the body of your first for-loop to

if (perfect % i == 0) factors.add(i)

i.e. "add i to our list of factors only if it divides evenly into perfect".


EDIT: If you have to use an array, you could do this

array[i] = (perfect % i == 0) ? i : 0

This will place i in your array only if it divides perfect, otherwise it will place 0. Therefore, the sum of the elements in this array will equal the sum of the factors of perfect.

share|improve this answer
    
it has to use an array. –  user1834819 Nov 20 '12 at 1:43
    
@user1834819 See my edit –  arshajii Nov 20 '12 at 1:45
    
That worked, thanks. Another thing though, it's printing the original input, IE perfect on there twice. For 8, it's printing [8,1,2,4...,8...] –  user1834819 Nov 20 '12 at 1:51

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