182

In Java, I have a Set, and I want to turn it into a sorted List. Is there a method in the java.util.Collections package that will do this for me?

10 Answers 10

221

The answer provided by the OP is not the best. It is inefficient, as it creates a new List and an unnecessary new array. Also, it raises "unchecked" warnings because of the type safety issues around generic arrays.

Instead, use something like this:

public static
<T extends Comparable<? super T>> List<T> asSortedList(Collection<T> c) {
  List<T> list = new ArrayList<T>(c);
  java.util.Collections.sort(list);
  return list;
}

Here's a usage example:

Map<Integer, String> map = new HashMap<Integer, String>();
/* Add entries to the map. */
...
/* Now get a sorted list of the *values* in the map. */
Collection<String> unsorted = map.values();
List<String> sorted = Util.asSortedList(unsorted);
6
  • @erickson where I have to find Util class, I mean from which package.Please help me.
    – sunleo
    Commented Nov 17, 2012 at 6:19
  • 4
    @sunleo The Util class is the one that contains the asSortedList() method I wrote. In other words, you write the Util class yourself, and put that code in it.
    – erickson
    Commented Nov 17, 2012 at 9:19
  • 1
    ha ha I thought its from default pack like java.util ok thank you.
    – sunleo
    Commented Nov 17, 2012 at 9:32
  • 3
    This might be a nice generic Utility function, but the fact is, it is still not efficient. Consider in-place sorting by making sure you have your set in the right container to begin with. Also consider usage of the TreeSet as a direct container of your data. If your data needs to be unique anyhow, and you need a Set, then use the TreeSet, catches two flies in one swat.
    – YoYo
    Commented Apr 9, 2013 at 0:17
  • 1
    As a note to the people only reading the top answer: Have a look at nschum's answer below, which uses Java 8's streams. If you can use Java 8, go for it. they are more flexible and efficient.
    – Felk
    Commented Jun 25, 2016 at 19:35
84

Sorted set:

return new TreeSet(setIWantSorted);

or:

return new ArrayList(new TreeSet(setIWantSorted));
5
  • This was my first thought, but the asker wanted a List
    – Alex B
    Commented Apr 11, 2009 at 15:34
  • @Alex: This approach can still be used; return new ArrayList(new TreeSet(setIWantSorted))
    – Jonik
    Commented Apr 11, 2009 at 16:14
  • 1
    I actually used this solution, but I wouldn't advise this. As the documentation on TreeSet states (see download.oracle.com/javase/1.4.2/docs/api/java/util/…), it effectively uses the compareTo() method instead of the equals() method - so if you have two objects in the set that have the same equals() outcome, they will be seen as duplicates and, as such, will not be added to the TreeSet. Beware.
    – cthulhu
    Commented Dec 22, 2010 at 15:02
  • 25
    @fwielstra: How can you have objects that are equal in the input since the input is also a Set ? Commented Jul 27, 2011 at 19:38
  • 2
    @ryanprayogo It's worth mentioning, as new TreeSet accepts Collections, not just Sets. Not everyone who is reading this answer is going to be using a Set, even though that's what the original question is asking.
    – Chris
    Commented May 14, 2015 at 16:26
57

Here's how you can do it with Java 8's Streams:

mySet.stream().sorted().collect(Collectors.toList());

or with a custom comparator:

mySet.stream().sorted(myComparator).collect(Collectors.toList());
1
  • Best. Best. Best.
    – Arthur
    Commented Jan 17, 2023 at 21:45
46
List myList = new ArrayList(collection);
Collections.sort(myList);

… should do the trick however. Add flavour with Generics where applicable.

5
  • I had a useful snippet I wanted to donate to the community. When I searched for the information, I couldn't find it. I was trying to make the next person's job easier. stackoverflow.com/questions/18557/… Commented Apr 11, 2009 at 15:46
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    Yeah, sure, but that link you provided is actually talking about a real questions (i.e. those for which don't have the answer, then find it). Your question here was only to give the answer... I could actually enter hundreds of questions and answer myself; that's not the point!
    – Seb
    Commented Apr 11, 2009 at 16:10
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    @Seb: I disagree. I don't see anything wrong with this question. It obviously wasn't an extremely simple question, and now he knows a better way than he did before!
    – Michael Myers
    Commented Apr 11, 2009 at 16:56
  • 3
    It was a real question, but I found the answer myself after Google came up short. Stackoverflow didn't exist at the time. I had it posted on my website and it helped someone else, so I thought it might be useful here. Commented Apr 13, 2009 at 18:40
  • Bonus: And if you happen to be sorting your own object type then you can always implement Comparable and override compareTo method.
    – nabster
    Commented Jan 17, 2020 at 18:00
10

Always safe to use either Comparator or Comparable interface to provide sorting implementation (if the object is not a String or Wrapper classes for primitive data types) . As an example for a comparator implementation to sort employees based on name

    List<Employees> empList = new LinkedList<Employees>(EmpSet);

    class EmployeeComparator implements Comparator<Employee> {

            public int compare(Employee e1, Employee e2) {
                return e1.getName().compareTo(e2.getName());
            }

        }

   Collections.sort(empList , new EmployeeComparator ());

Comparator is useful when you need to have different sorting algorithm on same object (Say emp name, emp salary, etc). Single mode sorting can be implemented by using Comparable interface in to the required object.

5

There's no single method to do that. Use this:

@SuppressWarnings("unchecked")
public static <T extends Comparable> List<T> asSortedList(Collection<T> collection) {
  T[] array = collection.toArray(
    (T[])new Comparable[collection.size()]);
  Arrays.sort(array);
  return Arrays.asList(array);
}
2
  • There is also a Collections.sort function, but I think it does the same thing. +1 anyways. Commented Apr 11, 2009 at 15:30
  • 1
    Collections.sort takes a list as a parameter. Commented Apr 11, 2009 at 15:47
3

You can convert a set into an ArrayList, where you can sort the ArrayList using Collections.sort(List).

Here is the code:

keySet = (Set) map.keySet();
ArrayList list = new ArrayList(keySet);     
Collections.sort(list);
0
3
TreeSet sortedset = new TreeSet();
sortedset.addAll(originalset);

list.addAll(sortedset);

where originalset = unsorted set and list = the list to be returned

1
  • TreeSet also de-dupes the list which can result in the wrong outcome if you don't assume that. Commented Jun 12, 2020 at 9:44
3

@Jeremy Stein I wanted to implement same code. As well I wanted to sort the set to list, So instead of using Set I converted set values into List and sort that list by it's one the variable. This code helped me,

set.stream().sorted(Comparator.comparing(ModelClassName::sortingVariableName)).collect(Collectors.toList());
0

I am using this code, which I find more practical than the accepted answer above:

List<Thing> thingList = new ArrayList<>(thingSet);
thingList.sort((thing1, thing2) -> thing1.getName().compareToIgnoreCase(thing2.getName()));

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