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I have a nice problem - create a phone book - containing list of contacts. As a phonebook goes,

  1. Contacts are to be always sorted.(by name)
  2. Can star mark certain contacts, so they have to be above all the rest.(the * contacts are ordered by the time of contact creation)

    class PhoneBook{
    //require an always sorted d.s
    TreeSet<Contact> contacts = new TreeSet<Contact>();
    
    @Override
    public String toString() {
        return "PhoneBook [contacts=" + contacts + "]";
    }
    
    public boolean addContact(Contact contact){
        //validate before adding the contact.
        return contacts.add(contact);
    }
    

    }

    class Contact implements Comparable<Contact>{
    String name;
    int phoneNo;
    Date timeAdded;
    boolean starContact;
    
    
    
    public Contact(String name, int phoneNo, Date timeAdded, boolean starContact) {
        super();
        this.name = name;
        this.phoneNo = phoneNo;
        this.timeAdded = timeAdded;
        this.starContact = starContact;
    }
    
    
    
    @Override
    public int compareTo(Contact otherContact) {
        if(this.starContact && otherContact.starContact){
            return this.timeAdded.before(otherContact.timeAdded)?-1:1; //impossible to add 2 contacts at the same time
        }else if(this.starContact){
            return -1;
        }else if(otherContact.starContact){
            return 1;
        }else{
            //simple Contacts
            return this.name.compareTo(otherContact.name);
        }
    }
    
    
    
    
    
    
    @Override
    public String toString() {
        return "\nContact [name=" + name + ", timeAdded=" + timeAdded
                + ", starContact=" + starContact + "]";
    }
    
    
    }
    

Test Code

    public class MobilePhoneBookDemo {

/**
 * @param args
 */
public static void main(String[] args) {

    PhoneBook phoneBook = new PhoneBook();

    Contact frnd1 = new Contact("Z",56,new Date(),false);
    phoneBook.addContact(frnd1);
    Contact frnd2 = new Contact("A",3,new Date(),false);
    phoneBook.addContact(frnd2);
    Contact frnd3 = new Contact("C",30,new Date(),false);
    phoneBook.addContact(frnd3);
    try {
        TimeUnit.SECONDS.sleep(1);
    } catch (InterruptedException e) {
        // TODO Auto-generated catch block
        e.printStackTrace();
    }
    Contact ta = new Contact("Ta", 5, new Date(), true);
    phoneBook.addContact(ta);
    Contact ma = new Contact("Ma", 31, new Date(), true);
    phoneBook.addContact(ma);
    Contact baba = new Contact("Baba", 300, new Date(), true);
    phoneBook.addContact(baba);

    //change the priority later for one of my friends.
    System.out.println(phoneBook);
    frnd1.starContact = true;
    System.out.println(phoneBook.contacts.contains(frnd1));

    if(phoneBook.contacts.remove(frnd1)){
        System.out.println("removed");
        phoneBook.contacts.add(frnd1);
    }

    System.out.println(phoneBook);
}

}

Problems faced:

  1. The contains doesn't find the entry anymore, what's amiss? I did try and put an equals and a hashcode on Contact, apparently, if there is a Comparator/Comparable present, the compare* is only invoked.
  2. Is it fair to use a TreeSet here, or should any other datastructure be used? For eg. HashSet and then convert to a TreeSet?
  3. The contains() doesn't even compare for all entries in the map, it just compared against C,Ma and Ta entries. Why was that?

Questions priority according to order. I appreciate all the answers, but this is indeed a complete test case, so please try and run PhoneBook just once before providing an answer. Thanks a lot.

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1  
If contacts must be always sorted, use a Treeset –  JohnJohnGa Jan 17 '13 at 9:30
    
TreeMap<Contact,?> or TreeMap<?,Contact>.If its the former, then its internally done by the TreeSet, if its the latter, then, how does it help? –  anirban chowdhury Jan 17 '13 at 9:33
    
It was in response to the earlier comment, where it was mentioned to use a TreeMap, however, it is now changed to a TreeSet. –  anirban chowdhury Jan 17 '13 at 9:36

3 Answers 3

This line:

return this.timeAdded.before(otherContact.timeAdded)?-1:1;

will never return 0 if you compare a contact with itself. Therefore the set will not be able to find the object with contains()

share|improve this answer
    
Really? So compareTo() will compare to itself? I almost repped this answer without testing, as it looks so good, but it actually doesn't work. The contain() never invoked compareTo() with itself. –  anirban chowdhury Jan 17 '13 at 9:41
1  
oh downvoter,care to explain? I think SO should mandate all downvoters to atleast leave a comment, so that the downvoter owns responsibility. –  anirban chowdhury Jan 17 '13 at 9:45
1  
Looking at the code of TreeMap.getKey() (where TreeSet.contains() ends up) it uses the comparator to find the object you are looking for. So if the set contains frnd1, the call to set.contains(frnd1) will return the object that gives 0 for the 'compareTo()'. Which in this case will be none of the entries, thus returns null –  András Kerekes Jan 17 '13 at 10:14
    
@anirbanchowdhury You are mistaken. It invokes compareTo() to binary-search the tree until it returns zero when comparing the search key to the entry keys. –  EJP Jan 17 '13 at 10:37
    
@EJP , yes my mistake, the compareTo() may compare it to itself, but NOT always, if u doubt me, do debug once just to check it.However, this doesn't solve the question. –  anirban chowdhury Jan 18 '13 at 8:05

You had me at

contacts are to be always sorted.(by name)

If order is important use TreeSet. Elements are stored in a variety of binary search tree, this means that they are sorted by default.

HashSet on the other hand, does not guarantee any order, sorting or even insert order.


Edit - Try to write your conditions in this way, more readable and more robust as well. The order of conditions is the order of priority of comparison.

if(a != b){
    return a<b;
}

if(c != d) {
    return c<d;
}

//and so on.

return 0;
share|improve this answer
    
@anirbanchowdhury could you point to the reference which says equals wont work? "if there is a Comparator/Comparable present, the compare* is only invoked." –  Karthik T Jan 17 '13 at 9:53
    
Do check out the contains() on the TreeSet and where it leads to. Would lead to getEntry() on the TreeMap. –  anirban chowdhury Jan 17 '13 at 10:00
    
You are right In which case, the problem pointed out by Anras Kerekes is very valid, but perhaps not the whole story. –  Karthik T Jan 17 '13 at 10:03
    
@anirbanchowdhury "The contains() doesn't even compare for all entries in the map," How do you infer that. –  Karthik T Jan 17 '13 at 10:07
    
@anirbanchowdhury Infact the problem suggested by Anras is probably the main one, since frnd1 is a star contact. –  Karthik T Jan 17 '13 at 10:08
up vote 0 down vote accepted

The solution is simple, first remove, then change the value and add it back again. I comment the modification first,I have also put in the modified compareTo() since there were lots of confusion around it.

//frnd1.starContact = true;
    System.out.println("Entry present>"+phoneBook.contacts.contains(frnd1));

    if(phoneBook.contacts.remove(frnd1)){
        System.out.println("removed");
        frnd1.starContact = true;
        phoneBook.contacts.add(frnd1);
    }


@Override
public int compareTo(Contact otherContact) {
    if(otherContact.phoneNo == this.phoneNo){
        return 0;
    }
    if(this.starContact && otherContact.starContact){
        return this.timeAdded.before(otherContact.timeAdded)?-1:1; //impossible to add 2 contacts at the same time
    }else if(this.starContact){
        return -1;
    }else if(otherContact.starContact){
        return 1;
    }else{
        //simple Contacts
        return this.name.compareTo(otherContact.name);
    }
}
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