336

I am using TreeBidiMap from the Apache Collections library. I want to sort this on the values which are doubles.

My method is to retrieve a Collection of the values using:

Collection coll = themap.values();

Which naturally works fine.

Main Question: I now want to know how I can convert/cast (not sure which is correct) coll into a List so it can be sorted?

I then intend to iterate over the sorted List object, which should be in order and get the appropriate keys from the TreeBidiMap (themap) using themap.getKey(iterator.next()) where the iterator will be over the list of doubles.

2
  • 5
    You might want to avoid this step by directly using some kind of SortedMap, so the entries are in natural order of the keys being used. Java's own TreeMap implements SortedMap.
    – Axel Knauf
    Jul 24, 2011 at 10:41
  • TreeBidiMap is an OrderedMap, the order should be ok. The sorting required in the question is on values, not on keys.
    – Vlasec
    May 28, 2015 at 15:01

11 Answers 11

515
List list = new ArrayList(coll);
Collections.sort(list);

As Erel Segal Halevi says below, if coll is already a list, you can skip step one. But that would depend on the internals of TreeBidiMap.

List list;
if (coll instanceof List)
  list = (List)coll;
else
  list = new ArrayList(coll);
3
  • 4
    Just to note that there are different side effects to the two approaches: casting the collection to a list and then sorting will also sort the original collection; creating a copy will not.
    – Barney
    Dec 16, 2015 at 1:25
  • This approach degrades performance greatly if used repeatedly. See my answer for a solution that works on-the-fly, it involves a custom collection.
    – Vlasec
    Aug 2, 2016 at 11:30
  • This does not resolve the case when map.values() returns an "inner class" collection. The compiler reports that Collections.sort(List <T>) does not accept Collections.sort(List<InnerClass>). The solution was even to use: List<InnerClass> list = map.values().stream().collect(Collectors.toList())
    – Pereira
    Aug 28, 2018 at 4:14
110

Something like this should work, calling the ArrayList constructor that takes a Collection:

List theList = new ArrayList(coll);
0
34

I think Paul Tomblin's answer may be wasteful in case coll is already a list, because it will create a new list and copy all elements. If coll contains many elemeents, this may take a long time.

My suggestion is:

List list;
if (coll instanceof List)
  list = (List)coll;
else
  list = new ArrayList(coll);
Collections.sort(list);
32

I believe you can write it as such:

coll.stream().collect(Collectors.toList())
3
  • Better way to get around casting
    – Stackee007
    Sep 21, 2017 at 16:46
  • Great! This resolved my case. My map.values() returns an "inner class" collection. The compiler reported that Collections.sort(List <T>) does not accept Collections.sort(List<InnerClass>).
    – Pereira
    Aug 28, 2018 at 4:16
  • didn't worked for my use-case in android. requires minimum api 24 Feb 6, 2020 at 9:12
13

Java 10 introduced List#copyOf which returns unmodifiable List while preserving the order:

List<Integer> list = List.copyOf(coll);
0
10
Collections.sort( new ArrayList( coll ) );
2
  • Missing a reference to access ArrayList? Feb 24, 2009 at 2:15
  • @Zach: mmhh good point. I knew there was a reason for me to mark this as CW. BTW Paul's ans is the one. I don't know why he has only my uv.
    – OscarRyz
    Feb 24, 2009 at 2:26
4

@Kunigami: I think you may be mistaken about Guava's newArrayList method. It does not check whether the Iterable is a List type and simply return the given List as-is. It always creates a new list:

@GwtCompatible(serializable = true)
public static <E> ArrayList<E> newArrayList(Iterable<? extends E> elements) {
  checkNotNull(elements); // for GWT
  // Let ArrayList's sizing logic work, if possible
  return (elements instanceof Collection)
      ? new ArrayList<E>(Collections2.cast(elements))
      : newArrayList(elements.iterator());
}
1
  • How is this not up-voted more? Kunigami's answer is incorrect (as far as it assumes about the underlying implementation). Apr 17, 2014 at 21:44
1

What you request is quite a costy operation, make sure you don't need to do it often (e.g in a cycle).

If you need it to stay sorted and you update it frequently, you can create a custom collection. For example, I came up with one that has your TreeBidiMap and TreeMultiset under the hood. Implement only what you need and care about data integrity.

class MyCustomCollection implements Map<K, V> {
    TreeBidiMap<K, V> map;
    TreeMultiset<V> multiset;
    public V put(K key, V value) {
        removeValue(map.put(key, value));
        multiset.add(value);
    }
    public boolean remove(K key) {
        removeValue(map.remove(key));
    }
    /** removes value that was removed/replaced in map */
    private removeValue(V value) {
        if (value != null) {
            multiset.remove(value);
        }
    }
    public Set<K> keySet() {
        return Collections.unmodifiableSet(map.keySet());
    }
    public Collection<V> values() {
        return Collections.unmodifiableCollection(multiset);
    }
    // many more methods to be implemented, e.g. count, isEmpty etc.
    // but these are fairly simple
}

This way, you have a sorted Multiset returned from values(). However, if you need it to be a list (e.g. you need the array-like get(index) method), you'd need something more complex.

For brevity, I only return unmodifiable collections. What @Lino mentioned is correct, and modifying the keySet or values collection as it is would make it inconsistent. I don't know any consistent way to make the values mutable, but the keySet could support remove if it uses the remove method from the MyCustomCollection class above.

2
  • keySet() and values() are Views to the original Map, so when they are modified the backing Map needs to be modified too, your solution does not support this
    – Lino
    Jun 15, 2020 at 11:48
  • 1
    Yeah, you're right about that. To do it right, I'd need to create at least two more collection classes to ensure both keySet and values are backed by both collections. I update my answer.
    – Vlasec
    Jun 24, 2020 at 11:54
1

Java 8 onwards...

You can convert Collection to any collection (i.e, List, Set, and Queue) using Streams and Collectors.toCollection().

Consider the following example map

Map<Integer, Double> map = Map.of(
    1, 1015.45,
    2, 8956.31,
    3, 1234.86,
    4, 2348.26,
    5, 7351.03
);

to ArrayList

List<Double> arrayList = map.values()
                            .stream()
                            .collect(
                                Collectors.toCollection(ArrayList::new)
                            );

Output: [7351.03, 2348.26, 1234.86, 8956.31, 1015.45]

to Sorted ArrayList (Ascending order)

List<Double> arrayListSortedAsc = map.values()
                                        .stream()
                                        .sorted()
                                        .collect(
                                            Collectors.toCollection(ArrayList::new)
                                        );

Output: [1015.45, 1234.86, 2348.26, 7351.03, 8956.31]

to Sorted ArrayList (Descending order)

List<Double> arrayListSortedDesc = map.values()
                                        .stream()
                                        .sorted(
                                            (a, b) -> b.compareTo(a)
                                        )
                                        .collect(
                                            Collectors.toCollection(ArrayList::new)
                                        );

Output: [8956.31, 7351.03, 2348.26, 1234.86, 1015.45]

to LinkedList

List<Double> linkedList = map.values()
                                .stream()
                                .collect(
                                    Collectors.toCollection(LinkedList::new)
                                );

Output: [7351.03, 2348.26, 1234.86, 8956.31, 1015.45]

to HashSet

Set<Double> hashSet = map.values()
                            .stream()
                            .collect(
                                Collectors.toCollection(HashSet::new)
                            );

Output: [2348.26, 8956.31, 1015.45, 1234.86, 7351.03]

to PriorityQueue

PriorityQueue<Double> priorityQueue = map.values()
                                            .stream()
                                            .collect(
                                                Collectors.toCollection(PriorityQueue::new)
                                            );

Output: [1015.45, 1234.86, 2348.26, 8956.31, 7351.03]

Reference

Java - Package java.util.stream

Java - Package java.util

0

Use streams:

someCollection.stream().collect(Collectors.toList())
-4

Here is a sub-optimal solution as a one-liner:

Collections.list(Collections.enumeration(coll));

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