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I have a List<String> and a List<Integer>. Both are in specific order(they are linked). List<String> contains names and List<Integer> their values.

Is there a way to sort List<Integer> by size but also change ordering of List<String> so that values and names stays linked?

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5 Answers 5

up vote 13 down vote accepted

You should use a List<NameAndValue> instead of two lists (and find a better name than NameAndValue, which would reflect what these data actually represent). Java is an OO language. Use objects. That's what they're for: containing data that are related, and providing behaviour with methods and encapsulation.

Once you have this class, you'll be able to sort your list by name, value or both, and adding an additional field if needed won't be a problem.

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Oh gosh, I thoght I was the first with that approach... – ppeterka Nov 23 '12 at 10:38
downvoter: care to explain your down vote? – JB Nizet Nov 23 '12 at 10:44
Wow, most inappropriate downvote ever? – ppeterka Nov 23 '12 at 10:45
This is what ended up using and it works thanks – pedja Nov 23 '12 at 11:21

You need java.util.TreeMap<Integer,String> . This sorted according to the natural ordering of its keys, or by a Comparator provided at map creation time, depending on which constructor is used.

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+1 it is unwise to store data that belongs together in different places... Either define a class for this, or at least put this into a Map<Integer, String> – ppeterka Nov 23 '12 at 10:25
Can someone please provide example – pedja Nov 23 '12 at 10:28
here is a good one. – jlordo Nov 23 '12 at 10:31

- You can use java.util.TreeMap<Integer, String> which which implements the SortedMap. It sort in natural ordering of the key.

- You can also use java.util.Comparator<T> to sort it out.

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From a clean code perspective, if these belong together, and this structure can be reused somewhere else, you should create a class out of them, and make it implement Comparable :

public SomeClass implements Comparable<SomeClass> {

    private Integer id;
    private String name;

    private Whatever elseIsNeededHere;

    /* getters'n'setters*/

    public boolean equals(Object other) { //do what it takes }

    public int hashCode() { //do what it takes! }

    /* actually implement Comparable */
    public int compareTo(SomeClass o) {
        //null check, and other bloat left out for sake of brevity


Then you can have a single list containing what belongs together, and sort it really nicely:

ArrayList<SomeClass> myList = getMyData();

And the myList list instance is sorted the way you wanted.

If you want different comparation methods, you can use the other way, by using Comparators:

Collections.sort(myList,new Comparator<SomeClass>() { 
    public int compare(SomeClass a, SomeClass b) { // do what it takes }
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You can try this :

Create a custom Comprator class like :

import java.util.Comparator;

 * Created by Maddy Sharma on 7/17/2015.
 * Contains sorting logic to sort Dialogs by its date(long)
public class DateDialogComparator implements Comparator<UserChatDialog>{

// lhs.getLastMessageDateSent() is the long value

    public int compare(UserChatDialog lhs, UserChatDialog rhs) {
    // This line will work in java 7 and Android API Level 19
    //    return, rhs.getLastMessageDateSent());


            return -1;
        else if(lhs.getLastMessageDateSent()<rhs.getLastMessageDateSent())
            return +1;
        return 0;

call it from activity or fragment like :

ArrayList<UserChatDialog> myList = userChatDialogList;
Collections.sort(myList, new DateDialogComparator());
Log.i("List after sorting is:", "" + userChatDialogList);
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