651

If I have a List<List<Object>>, how can I turn that into a List<Object> that contains all the objects in the same iteration order by using the features of Java 8?

11 Answers 11

1164

You can use flatMap to flatten the internal lists (after converting them to Streams) into a single Stream, and then collect the result into a list:

List<List<Object>> list = ...
List<Object> flat = 
    list.stream()
        .flatMap(List::stream)
        .collect(Collectors.toList());
4
  • 13
    @arshajii true, but for some reason I prefer the lambda expression. Perhaps I don't like the look of :: :) – Eran Aug 5 '14 at 19:55
  • 30
    Class::method feels a little weird at first, but it has the benefit that it declares what kind of object you are mapping from. That is something you otherwise lose in streams. – ArneHugo Mar 15 '16 at 15:13
  • 2
    Yet you might want to have a container of a List and in that case you might need to use the lambda (l->l.myList.stream()). – Myoch Dec 22 '16 at 10:18
  • 2
    If you need to do explicit casting (array of primitives to List for example) then lambdas may be necessary as well. – Michael Fulton May 28 '17 at 3:58
62

flatmap is better but there are other ways to achieve the same

List<List<Object>> listOfList = ... // fill

List<Object> collect = 
      listOfList.stream()
                .collect(ArrayList::new, List::addAll, List::addAll);
1
  • Note that using flatMap you will not close the stream, because with the collect you will need to reopen it again. – Georgi Peev May 10 at 10:53
51

The flatMap method on Stream can certainly flatten those lists for you, but it must create Stream objects for element, then a Stream for the result.

You don't need all those Stream objects. Here is the simple, concise code to perform the task.

// listOfLists is a List<List<Object>>.
List<Object> result = new ArrayList<>();
listOfLists.forEach(result::addAll);

Because a List is Iterable, this code calls the forEach method (Java 8 feature), which is inherited from Iterable.

Performs the given action for each element of the Iterable until all elements have been processed or the action throws an exception. Actions are performed in the order of iteration, if that order is specified.

And a List's Iterator returns items in sequential order.

For the Consumer, this code passes in a method reference (Java 8 feature) to the pre-Java 8 method List.addAll to add the inner list elements sequentially.

Appends all of the elements in the specified collection to the end of this list, in the order that they are returned by the specified collection's iterator (optional operation).

1
  • 5
    Good alternative suggestion that avoids some unnecessary allocations. Would be interesting to see the top heap usage of this when working with some larger collections, to see how they compare to each other. – Per Lundberg Jul 10 '19 at 12:51
18

Just as @Saravana mentioned:

flatmap is better but there are other ways to achieve the same

 listStream.reduce(new ArrayList<>(), (l1, l2) -> {
        l1.addAll(l2);
        return l1;
 });

To sum up, there are several ways to achieve the same as follows:

private <T> List<T> mergeOne(Stream<List<T>> listStream) {
    return listStream.flatMap(List::stream).collect(toList());
}

private <T> List<T> mergeTwo(Stream<List<T>> listStream) {
    List<T> result = new ArrayList<>();
    listStream.forEach(result::addAll);
    return result;
}

private <T> List<T> mergeThree(Stream<List<T>> listStream) {
    return listStream.reduce(new ArrayList<>(), (l1, l2) -> {
        l1.addAll(l2);
        return l1;
    });
}

private <T> List<T> mergeFour(Stream<List<T>> listStream) {
    return listStream.reduce((l1, l2) -> {
        List<T> l = new ArrayList<>(l1);
        l.addAll(l2);
        return l;
    }).orElse(new ArrayList<>());
}

private <T> List<T> mergeFive(Stream<List<T>> listStream) {
    return listStream.collect(ArrayList::new, List::addAll, List::addAll);
}
13

I just want to explain one more scenario like List<Documents>, this list contains a few more lists of other documents like List<Excel>, List<Word>, List<PowerPoint>. So the structure is

class A {
  List<Documents> documentList;
}

class Documents {
  List<Excel> excels;
  List<Word> words;
  List<PowerPoint> ppt;
}

Now if you want to iterate Excel only from documents then do something like below..

So the code would be

 List<Documents> documentList = new A().getDocumentList();

 //check documentList as not null

 Optional<Excel> excelOptional = documentList.stream()
                         .map(doc -> doc.getExcel())
                         .flatMap(List::stream).findFirst();
 if(excelOptional.isPresent()){
   Excel exl = optionalExcel.get();
   // now get the value what you want.
 }

I hope this can solve someone's issue while coding...

12

You can use the flatCollect() pattern from Eclipse Collections.

MutableList<List<Object>> list = Lists.mutable.empty();
MutableList<Object> flat = list.flatCollect(each -> each);

If you can't change list from List:

List<List<Object>> list = new ArrayList<>();
List<Object> flat = ListAdapter.adapt(list).flatCollect(each -> each);

Note: I am a contributor to Eclipse Collections.

2
  • 26
    why use a third party dependency when the functionality is provided by Java 8? – saw303 Oct 20 '17 at 8:34
  • 2
    Eclipse Collections API is on the collection itself, so the code is concise, is one of the main reasons in this case. – Nikhil Nanivadekar Oct 21 '17 at 18:18
4

Method to convert a List<List> to List :

listOfLists.stream().flatMap(List::stream).collect(Collectors.toList());

See this example:

public class Example {

    public static void main(String[] args) {
        List<List<String>> listOfLists = Collections.singletonList(Arrays.asList("a", "b", "v"));
        List<String> list = listOfLists.stream().flatMap(List::stream).collect(Collectors.toList());

        System.out.println("listOfLists => " + listOfLists);
        System.out.println("list => " + list);
    }

}       

It prints:

listOfLists => [[a, b, c]]
list => [a, b, c]

In Python this can be done using List Comprehension.

list_of_lists = [['Roopa','Roopi','Tabu', 'Soudipta'],[180.0, 1231, 2112, 3112], [130], [158.2], [220.2]]

flatten = [val for sublist in list_of_lists for val in sublist]

print(flatten)
['Roopa', 'Roopi', 'Tabu', 'Soudipta', 180.0, 1231, 2112, 3112, 130, 158.2, 220.2]
2

An expansion on Eran's answer that was the top answer, if you have a bunch of layers of lists, you can keep flatmapping them.

This also comes with a handy way of filtering as you go down the layers if needed as well.

So for example:

List<List<List<List<List<List<Object>>>>>> multiLayeredList = ...

List<Object> objectList = multiLayeredList
    .stream()
    .flatmap(someList1 -> someList1
        .stream()
        .filter(...Optional...))
    .flatmap(someList2 -> someList2
        .stream()
        .filter(...Optional...))
    .flatmap(someList3 -> someList3
        .stream()
        .filter(...Optional...))
    ...
    .collect(Collectors.toList())

This is would be similar in SQL to having SELECT statements within SELECT statements.

2
  • Why not use recursion? :) – Yassin Hajaj Apr 22 at 20:03
  • In my years of experience, recursion in languages like Java is dangerous because it is very easy to eat all of your system's resources by accident. You could do it, but I wouldn't. But maybe an alternative would be to use a loop to build a nested stream, then run the stream. You can't really have an infinite loop in streams from my understanding. – cody.tv.weber Apr 22 at 20:58
1

We can use flatmap for this, please refer below code :

 List<Integer> i1= Arrays.asList(1, 2, 3, 4);
 List<Integer> i2= Arrays.asList(5, 6, 7, 8);

 List<List<Integer>> ii= Arrays.asList(i1, i2);
 System.out.println("List<List<Integer>>"+ii);
 List<Integer> flat=ii.stream().flatMap(l-> l.stream()).collect(Collectors.toList());
 System.out.println("Flattened to List<Integer>"+flat);
1

Since , you can use Stream#mapMulti

List<Object> result = listOfLists.stream()
                                 .mapMulti((List<Object> list, Consumer<Object> consumer) -> {
                                     list.forEach(consumer::accept);
                                 })
                                 .collect(Collectors.toList());

If you need an immutable List you can even use toList() as terminal operation

List<Object> result = listOfLists.stream()
                                 .mapMulti((List<Object> list, Consumer<Object> consumer) -> {
                                     list.forEach(consumer::accept);
                                 })
                                 .toList();
-1

List<List> list = map.values().stream().collect(Collectors.toList());

    List<Employee> employees2 = new ArrayList<>();
    
     list.stream().forEach(
             
             n-> employees2.addAll(n));
4
  • Assume that i have List<List<Employee>> in the above code – nagendra babu Jan 24 at 6:08
  • 2
    Please have a read of this help page about how to format code properly. Also, you can edit your answer at any time, rather than posting followup comments. – costaparas Jan 24 at 6:46
  • While this code may solve the question, including an explanation of how and why this solves the problem would really help to improve the quality of your post, and probably result in more up-votes. Remember that you are answering the question for readers in the future, not just the person asking now. Please edit your answer to add explanations and give an indication of what limitations and assumptions apply. – Yunnosch Jan 26 at 6:35
  • Thanks Yunnosch for the suggestion..I will do it..Happy Coding! – nagendra babu Jan 28 at 14:18

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