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I have an issue with my java program. I created an array of integers using my SelectionSortArray class. The issue I am having is that when I try to print out the contents of my created array it displays some other random lines of codes which is obviously an error. Below is my work so far. If you guys can copy and paste it and run it yourselves and tell what is wrong I will appreciate. Again it does not print the contents from my array when I run my demo/main.

The end result should print out this:

10
20
30

My demo/main:

  public static void main(String[] args) {

    SelectionSortArray[] ints = new SelectionSortArray[3];

    ints [0] = new SelectionSortArray(10);
    ints [1] = new SelectionSortArray(20);
    ints [2] = new SelectionSortArray(30);

    for (int index = 0; index < ints.length; index++) {
        System.out.println(ints[index]);
    }


  }

My class that I'm using to create the array:

public class SelectionSortArray implements Comparable<SelectionSortArray> {

public int num;

public SelectionSortArray(int initialNum) {
    num = initialNum;
}

public int compareTo(SelectionSortArray other) {

    int result;

    if (num == other.num) {
        result = 0;
    } else if (num < other.num) {
        result = 1;
    } else {
        result = 2;
    }

    return result;

}
}
share|improve this question
    
You would also be well off to be in the habit of writing your compareTo method to use Integer.compareTo(anotherInteger) rather than manually typing that all out. Just store your num as an Integer rather than an int, then change the compareTo method to have a single line: return num.compareTo(other.num); –  StormeHawke Aug 29 '13 at 16:39
    
@chrylis no its not a duplicate. and i read what you linked it doesn't help me. I am using a class to create my array in my demo/main. –  user2256002 Aug 29 '13 at 16:40
    
@StormeHawke Or just use Integer instead of writing a new low-functionality wrapper class. –  chrylis Aug 29 '13 at 16:42
    
@chrylis agreed, though I'm not going to pass judgement on how functional the wrapper class is since I don't know if this is all of the code from the class or just a small example to demonstrate his problem –  StormeHawke Aug 29 '13 at 16:43
    
@StormeHawke I'm basing mine on the description that ints is "an array of integers". –  chrylis Aug 29 '13 at 16:48

3 Answers 3

You need to override toString() method in SelectionSortArray something like this

class SelectionSortArray {
   ....


   public String toString() {
      return String.valueOf(num);
   }

}
  • When you System.out.println your object, JVM will print toString() representation of the object

  • If this method is not overridden, it will display the default toString() implementation of Object, which is classname@hexdecimal_code.

share|improve this answer

No, you don't have an array of integers, you have an array of SelectionSortArrays for no clear reason. To make your existing code work, you need to implement toString() on SelectionSortArray. To make your existing code sane, just replace your SelectionSortArray (which isn't an array) with int or Integer.

share|improve this answer

Its actually prints SelectionSortArray objects toString. which would be class name with @ and hashcode of you SelectionSortArray object.

toString method in Object class for ref.

public String toString() {
      return getClass().getName() + "@" + Integer.toHexString(hashCode());
}

you should override toString method of Object class to SelectionSortArray like @sanbhat has suggested.

share|improve this answer
    
Some hopefully constructive feedback: this answer, while true, doesn't actually do much to help an obviously new programmer figure out how to fix his problem... –  StormeHawke Aug 29 '13 at 16:42
    
ummm beside that he/she must understand the root cause, to become better ;) –  Subhrajyoti Majumder Aug 29 '13 at 16:53

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