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The output I though would come up:

Length: XX Width: XX Title: XX Price: XX

The output I actually got:

Title: XX Price: XX

Why the program omitted ClassA's toString?

Main:

case 'c':
                if(!theList.isEmpty()){
                for (int i = 0; i < theList.size(); i++)
                    System.out.println(theList.elementAt(i).toString());
                } else {
                    System.out.println("The list is empty!");
                }
                break;

ClassA's toString():

   @Override
public String toString(){
    StringBuilder result = new StringBuilder();
    result.append("Length: ").append(this.getLength()).append('\n');
    result.append("Width: ").append(this.getWidth()).append('\n');
    return result.toString();
}

ClassB's, that extends ClassA, toString():

   @Override
public String toString(){
    super.toString();
    StringBuilder result = new StringBuilder();
    result.append("Title: ").append(this.getTitle()).append('\n');
    result.append("Price: ").append(this.getPrice()).append('\n');
    return result.toString();
}
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I suggest you to use a List instead of a Vector –  True Soft Oct 7 '11 at 19:12

1 Answer 1

up vote 0 down vote accepted

It's very simple. You only called A's toString method, but didn't use the return value at all.

Apart from that, I would write the toString method as follows:

@Override
public String toString() {
  return //
    "Length: " + getLength() + '\n' + //
    "Width: " + getWidth() + '\n';
}

The code is shorter, easier to read and compiles to equivalent bytecode as your current code. Same for B's toString:

@Override
public String toString() {
  return super.toString() + //
    "Title: " + getTitle() + '\n' + //
    "Price: " + getPrice() + '\n';
}
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