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How are we able to sort a HashMap<key, ArrayList>?

I want to sort on the basis of a value in the ArrayList.

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13 Answers 13

Do you have to use a HashMap ? If you only need the Map Interface use a TreeMap

Ok I think now I understood your question, you want to sort by comparing values in the hashMap. You have to write code to do this, if you want to do it once you can sort the values of your hashMap:

Map<String, Person> people = new HashMap<String, Person>();

    Person jim = new Person("Jim", 25);
    Person scott = new Person("Scott", 28);
    Person anna = new Person("Anna", 23);

    people.put(jim.getName(), jim);
    people.put(scott.getName(), scott);
    people.put(anna.getName(), anna);

    // not yet sorted
    List<Person> peopleByAge = new ArrayList<Person>(people.values());

    Collections.sort(peopleByAge, new Comparator<Person>() {

        public int compare(Person o1, Person o2) {
            return o1.getAge() - o2.getAge();

    for (Person p : peopleByAge) {
        System.out.println(p.getName() + "\t" + p.getAge());

If you want to access this sorted list often, then you should insert your elements in the hashMap AND in a sorted Set (TreeSet for example)...

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A few more points: First, there are two decisions you need to make: (1) Whether you want to sort by the values, or by the keys, (2) Whether you have control over the collection at the start, so you can use built-in sorting, vs. when you're handed existing Maps and just want to iterate through them in some order. Also, the LinkedHashMap can maintain by insertion order (which I often like for debugging), or by access order. And finally if you're doing a lot of this you might check out Java 1.6 and NavigableMap, awesome stuff! –  Mark Bennett Jan 5 '12 at 0:58

Sorted List by hasmap keys:

SortedSet<String> keys = new TreeSet<String>(myHashMap.keySet());

Sorted List by hashmap values:

SortedSet<String> values = new TreeSet<String>(myHashMap.values());

Good Luck!

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get the keys

List keys = new ArrayList(yourMap.keySet());

Sort them


print them.

In any case, you can't have sorted values in HashMap (according to API This class makes no guarantees as to the order of the map; in particular, it does not guarantee that the order will remain constant over time ].

Though you can push all these values to LinkedHashMap, for later use as well.

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Seems like you might want a treemap.

You can pass in a custom comparator to it if that applies.

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Dead link - I've updated it. –  Ben Pearson Dec 18 '14 at 9:56

Custom compare function which includes functionality for the Turkish alphabet or other different languages than english.

public <K extends Comparable,V extends Comparable> LinkedHashMap<K,V> sortByKeys(LinkedHashMap<K,V> map){
    List<K> keys = new LinkedList<K>(map.keySet());
    Collections.sort(keys, (Comparator<? super K>) new Comparator<String>() {
        public int compare(String first, String second) {
            Collator collator = Collator.getInstance(Locale.getDefault());
            //Collator collator = Collator.getInstance(new Locale("tr", "TR"));
            return, second);

    LinkedHashMap<K,V> sortedMap = new LinkedHashMap<K,V>();
    for(K key: keys){
        sortedMap.put(key, map.get(key));

    return sortedMap;

here is the using example as the following

LinkedHashMap<String, Boolean> ligList = new LinkedHashMap<String, Boolean>();
ligList = sortByKeys(ligList);
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In Java 8:

Comparator<Entry<String, Item>> valueComparator = 
    (e1, e2) -> e1.getValue().getField().compareTo(e2.getValue().getField());

Map<String, Item> sortedMap = 
    collect(Collectors.toMap(Entry::getKey, Entry::getValue,
                             (e1, e2) -> e1, LinkedHashMap::new));

Using Guava:

Map<String, Item> map = ...;
Function<Item, Integer> getField = new Function<Item, Integer>() {
    public Integer apply(Item item) {
        return item.getField(); // the field to sort on
comparatorFunction = Functions.compose(getField, Functions.forMap(map));
comparator = Ordering.natural().onResultOf(comparatorFunction);
Map<String, Item> sortedMap = ImmutableSortedMap.copyOf(map, comparator);
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Why must we add a new library to perform a function that could be available natively? –  MAbraham1 Nov 26 '13 at 16:10

Without any more information, it's hard to know exactly what you want. However, when choosing what data structure to use, you need to take into account what you need it for. Hashmaps are not designed for sorting - they are designed for easy retrieval. So in your case, you'd probably have to extract each element from the hashmap, and put them into a data structure more conducive to sorting, such as a heap or a set, and then sort them there.

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actually its not for sorting the hash map is used for storing data read from file and its values –  rosh Apr 23 '09 at 6:55
we have to sort only based on one element of the array list in the hash map hashmap map<key,arraylist> –  rosh Apr 23 '09 at 6:58
Yeah, it sounds like what you want is what the other guys are saying - TreeMap. TreeMaps seem much like HashMaps, except you can also sort them. Hooray! –  Smashery Apr 23 '09 at 7:03
thanx man a lot –  rosh Apr 23 '09 at 7:08
if we are storing in the hash map(key,person) person is a class its having four objects if we want sort based one one of the objects how we will do that...? –  rosh Apr 23 '09 at 7:11

If you want to combine a Map for efficient retrieval with a SortedMap, you may use the ConcurrentSkipListMap.

Of course, you need the key to be the value used for sorting.

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have you considered using a LinkedHashMap<>()..?

  public static void main(String[] args) {
    Map<Object, Object> handler = new LinkedHashMap<Object, Object>();
    handler.put("item", "Value");
    handler.put(2, "Movies");
    handler.put("isAlive", true);

    for (Map.Entry<Object, Object> entrY : handler.entrySet())
        System.out.println(entrY.getKey() + ">>" + entrY.getValue());

    List<Map.Entry<String, Integer>> entries = new ArrayList<Map.Entry<String, Integer>>();
    Collections.sort(entries, new Comparator<Map.Entry<String, Integer>>() {
        public int compare(Map.Entry<String, Integer> a,
                Map.Entry<String, Integer> b) {
            return a.getValue().compareTo(b.getValue());

results into an organized linked object.


check the sorting part picked from here..

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This might be what you are looking for. It shows how to use TreeMap and a custom Comparator to get the work done.

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   Map<String,Integer> mp= new HashMap<String,Integer>();

    mp.put( "Sunny",25);
    mp.put( "vivek",30);
    mp.put( "nishant",30);
    List<Integer> list= new ArrayList<Integer>();
    for(Map.Entry<String, Integer> m:mp.entrySet()){
    Map<ArrayList,Integer> sortedmp= new HashMap<ArrayList,Integer>();
    for(Map.Entry<String, Integer> m:mp.entrySet()){
        int tempage=m.getValue();
        List<String> tempname= new ArrayList<String>();
        for(Map.Entry<String, Integer> m1:mp.entrySet()){
            sortedmp.put((ArrayList) tempname,tempage);

    for(Map.Entry<ArrayList,Integer> m:sortedmp.entrySet()){
        System.out.println("key--->"+m.getKey()+" value--->"+m.getValue());

There was an interview questions where i was asked to sort according to age and then by name something we do in sql (order by age,name) Thought of sharing the answer. Is there any way if this can be optimised ?

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is this an answer or a question? –  oers May 9 '12 at 7:39

I developed a fully tested working solution. Hope it helps

import java.util.ArrayList;
import java.util.Collections;
import java.util.Comparator;
import java.util.HashMap;
import java.util.List;
import java.util.StringTokenizer;

public class Main {
    public static void main(String[] args) {
    try {
        BufferedReader in = new BufferedReader(new           (;
            String str;

        HashMap<Integer, Business> hm = new HashMap<Integer, Business>();
        Main m = new Main();

        while ((str = in.readLine()) != null) {

            StringTokenizer st = new StringTokenizer(str);
            int id = Integer.parseInt(st.nextToken());    // first integer
            int rating = Integer.parseInt(st.nextToken());    // second 

            Business a = Business(id, rating);

            hm.put(id, a);

            List<Business> ranking = new ArrayList<Business>(hm.values());

            Collections.sort(ranking, new Comparator<Business>() {

                public int compare(Business i1, Business i2) {
                    return i2.getRating() - i1.getRating();

            for (int k=0;k<ranking.size();k++) {
                System.out.println((ranking.get(k).getId() + " " + (ranking.get(k)).getRating()));


    } catch (IOException e) {

public class Business{

    Integer id;
    Integer rating;

    public Business(int id2, int rating2)


    public Integer getId()
        return id;
    public Integer getRating()
        return rating;

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Sorting HashMap by Value:

As others have pointed out. HashMaps are for easy lookups if you change that or try to sort inside the map itself you will no longer have O(1) lookup.

The code for your sorting is as follows:

class Obj implements Comparable<Obj>{
    String key;
    ArrayList<Integer> val;
    Obj(String key, ArrayList<Integer> val)
    public int compareTo(Obj o)
     /* Write your sorting logic here. 
     this.val compared to o.val*/
     return 0;

public void sortByValue(Map<String, ArrayList<>> mp){

    ArrayList<Obj> arr=new ArrayList<Obj>();
    for(String z:mp.keySet())//Make an object and store your map into the arrayList

        Obj o=new Obj(z,mp.get(z));
    Collections.sort(arr);// This sorts based on the conditions you coded in the compareTo function.
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