Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need a Map that could be iterated in the decreasing order of its values. Does any of the standard libraries like Apache Commons or Guava provide this kind of map ?

share|improve this question
    
The standard Java library has an extension of the Map interface that is sorted called SortedMap: docs.oracle.com/javase/7/docs/api/java/util/SortedMap.html You can then just pick a concrete implementation of the SortedMap interface –  Hunter McMillen Jan 17 '12 at 14:53
    
I find it odd that you want to have the decreasing order of values - do you really want that or did you mean keys? –  nd. Jan 17 '12 at 14:57
    
@nd: yes I'm sure I really want that –  user01 Jan 17 '12 at 14:58
6  
SortedMap orders keys, not values - it's stated on firts line of its documentation. –  Rostislav Matl Jan 17 '12 at 15:10
add comment

6 Answers

up vote 11 down vote accepted

I would do this with Guava as follows:

Ordering<Map.Entry<Key, Value>> entryOrdering = Ordering.from(valueComparator)
  .onResultOf(new Function<Entry<Key, Value>, Value>() {
    public Value apply(Entry<Key, Value> entry) {
      return entry.getValue();
    }
  }).reverse();
// Desired entries in desired order.  Put them in an ImmutableMap in this order.
ImmutableMap.Builder<Key, Value> builder = ImmutableMap.builder();
for (Entry<Key, Value> entry : 
    entryOrdering.sortedCopy(map.entrySet())) {
  builder.put(entry.getKey(), entry.getValue());
}
return builder.build();
// ImmutableMap iterates over the entries in the desired order
share|improve this answer
    
could you clarify how do I define this valueComparator ? –  user01 Jan 17 '12 at 16:49
1  
@user it's Comparator<V> you want to use in first place. If values implement Comparable, then you can use Ordering.natural() instead of custom valueComparator. –  Xaerxess Jan 17 '12 at 18:04
    
Ordering.from(Ordering.natural())... leads to a deprecated function call, there is a alternative method which asks for a comparator type argument instead. My values are actually of type Integer. Could you suggest what comparator should I pass for integer values sorting? Thanks a lot –  user01 Jan 18 '12 at 4:37
3  
Don't use Ordering.from(Ordering.natural()), just use Ordering.natural() directly. –  Louis Wasserman Jan 18 '12 at 6:40
add comment

With guava, there is even cleaner way than @LoisWasserman's anwer - using Ordering combined with Functions.forMap:

Ordering.natural().reverse().nullsLast().onResultOf(Functions.forMap(map, null))

or if values aren't Comparable:

Ordering.fromComparator(yourComparator).reverse().nullsLast().onResultOf(Functions.forMap(map, null))

An example (with first option - natural ordering):

final Map<String, String> map = ImmutableMap.of(
    "key 1", "value 1",
    "key 2", "value 2",
    "key 3", "another value",
    "key 4", "zero value");

final Ordering<String> naturalReverseValueOrdering =
    Ordering.natural().reverse().nullsLast().onResultOf(Functions.forMap(map, null));

System.out.println(ImmutableSortedMap.copyOf(map, naturalReverseValueOrdering));

outputs:

{key 4=zero value, key 2=value 2, key 1=value 1, key 3=another value}

(I use ImmutableSortedMap here, but TreeMap can also be used if mutability is required.)

EDIT:

If there are identical values (more exactly if there are two values for which Comparator.compare(String v1, String v2) returns 0) ImmutableSortedMap throws an exception. Ordering must not return, so i.e. you should order map by values first and keys next if both values are equal (keys aren't supposed to be equal) by using Ordering.compound:

final Map<String, String> map = ImmutableMap.of(
    "key 1", "value 1",
    "key 2", "value 2",
    "key 3", "zero value",
    "key 4", "zero value");

final Ordering<String> reverseValuesAndNaturalKeysOrdering =
    Ordering.natural().reverse().nullsLast().onResultOf(Functions.forMap(map, null)) // natural for values
        .compound(Ordering.natural()); // secondary - natural ordering of keys

System.out.println(ImmutableSortedMap.copyOf(map, reverseValuesAndNaturalKeysOrdering));

prints:

{key 3=zero value, key 4=zero value, key 2=value 2, key 1=value 1}
share|improve this answer
    
this leads to illegal argument exception incase two keys are set with same value... –  user01 Jan 17 '12 at 18:50
    
@user that's because comparing them returns 0 (suggesting equality, what's correct) and ImmutableSortedMap treats that as exceptional case (what should it do? entry: key1=same_value first or rather key2=same_value first?). Comparator must not return 0 in this case, edited my answer and example (but remember - it's for Strings!). –  Xaerxess Jan 17 '12 at 19:26
    
I'm really fundamentally uncomfortable with this solution, specifically because your ImmutableSortedMap won't just return null on keys that aren't in the map: it'll fail completely, because the comparator doesn't apply. –  Louis Wasserman Jan 18 '12 at 0:13
    
@LouisWasserman isn't this enough when same map is used in Functions.forMap and ImmutableSortedMap.copyOf constructor? –  Xaerxess Jan 18 '12 at 9:53
2  
I think the modified answer is correct, but as a general rule, if you can avoid writing code that can go wrong in many subtle ways, you should always do so. –  Louis Wasserman Jan 20 '12 at 15:32
show 4 more comments

I think the DualTreeBidiMap of Apache Commons Collections should make this possible, probably by iterating over the return from inverseBidiMap().

But I don't think this allows for duplicate values - as the name says, the structure is simply based on keeping two trees, which is really the only thing that makes sense, since values in a map have no meaning to the map structure.

share|improve this answer
    
You don't need two trees. You could have one Map for the key-values, and an ordered List of values (or of Map.Entrys if you need that). –  yshavit Jan 17 '12 at 15:25
    
@yshavit: you could, if you have a list structure that is both auto-ordered and allows efficient insertion and deletion, which is not simple (I think it can be done with a skip list). Why the extra complexity if you already have one tree? –  Michael Borgwardt Jan 17 '12 at 15:29
    
because, as you point out, it doesn't allow for duplicate values. If that's a requirement, the two-Map approach is disqualified. And you don't need a List that manages the order for you, you can just manually ensure the ordering on inserts as an invariant. But anyway, I agree it's more complexity, and should only be done if you need those duplicate values. –  yshavit Jan 17 '12 at 16:01
add comment

What about putting the values also in TreeSet ?

for(;;) { yourMap.put(key,value); }
SortedSet sortedValues = new TreeSet(yourMap.values());

or

SortedSet sortedValues = new TreeSet();
for(;;) 
{
yourMap.put(key,value);
sortedValued.add(value);
}
share|improve this answer
    
What to do with duplicated values? –  Piotr Gwiazda Jan 17 '12 at 15:39
add comment

I'd put entries on the list and sort it. I don't recall any map that can be ordered by values, only by keys. You could use BiMap from Guava, but it requires values uniqueness.

Example:

    public static void main(String[] args) {
        Map<String, String> map = new HashMap<String, String>() {{
            put("key1", "value1");
            put("key2", "value3");
            put("key3", "value4");
            put("key4", "value2");
        }};

        List<Map.Entry<String, String>> entries = new ArrayList<>(map.entrySet());
        Collections.sort(entries, new Comparator<Map.Entry<String, String>>() {

            @Override
            public int compare(Entry<String, String> o1,
                    Entry<String, String> o2) {
                if (o1.getValue() == null && o2.getValue() == null) return 0;
                if (o1.getValue() == null) return -1; //Nulls last
                return - o1.getValue().compareTo(o2.getValue());
            }
        });

    }
share|improve this answer
add comment

I think you have to roll your own implementation of such a map. Fortunately, it shouldn't be much of an issue with Guava:

public class SortedValueMap<K, V> extends ForwardingMap<K, V> {

  private Map<K, V> delegate = newHashMap();
  private Comparator<V> valueComparator;

  public static <K, V extends Comparable<V>> SortedValueMap<K, V> reverse() {
    return new SortedValueMap<K, V>(Ordering.<V> natural().reverse());
  }

  public static <K, V> SortedValueMap<K, V> create(Comparator<V> valueComparator) {
    return new SortedValueMap<K, V>(valueComparator);
  }

  protected SortedValueMap(Comparator<V> valueComparator) {
    this.valueComparator = checkNotNull(valueComparator);

  }

  @Override
  protected Map<K, V> delegate() {
    return delegate;
  }

  @Override
  public Set<K> keySet() {
    return new StandardKeySet();
  }

  @Override
  public Set<Map.Entry<K, V>> entrySet() {
    TreeSet<Map.Entry<K, V>> result = newTreeSet(new Comparator<Map.Entry<K, V>>() {
      @Override
      public int compare(Map.Entry<K, V> o1, Map.Entry<K, V> o2) {
        return ComparisonChain.start()
            .compare(o1.getValue(), o2.getValue(), valueComparator)
            .compare(o1.getKey(), o2.getKey(), Ordering.arbitrary())
            .result();
      }

    });
    result.addAll(Collections.unmodifiableMap(delegate).entrySet());
    return result;
  }

  @Override
  public Collection<V> values() {
    return new StandardValues();
  }

  public static void main(String[] args) {
    SortedValueMap<String, String> svm = SortedValueMap.reverse();
    svm.put("foo", "1");
    svm.put("bar", "3");
    svm.put("baz", "2");

    System.out.println(Joiner.on(", ").withKeyValueSeparator("=").join(svm));
    System.out.println(Joiner.on(", ").join(svm.values()));
    System.out.println(Joiner.on(", ").join(svm.keySet()));
  }
}

Fail-fast iterators are not present in this implementation; please add them for yourself if required. Please also note that setting a value via Map.Entry.setValue would cause havoc with the sort order, which is why I used unmodifyableMap in entry set.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.