55

This question already has an answer here:

I am trying to remove duplicates from a List of objects based on some property.

can we do it in a simple way using java 8

List<Employee> employee

Can we remove duplicates from it based on id property of employee. I have seen posts removing duplicate strings form arraylist of string.

marked as duplicate by buræquete, Mark Rotteveel java Apr 12 at 15:52

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  • 8
    Why you use List for that...use Set instead of List. – Ranjeet Apr 16 '15 at 9:08
  • do you want to search for duplicates of employee.name? or what is your purpose, please give more information – Dude Apr 16 '15 at 9:16
  • @Ranjeet that only works if Employee properly implements equals and hashCode in such a way as to correctly identify duplicates. – Madbreaks Sep 27 '17 at 21:50
86

You can get a stream from the List and put in in the TreeSet from which you provide a custom comparator that compares id uniquely.

Then if you really need a list you can put then back this collection into an ArrayList.

import static java.util.Comparator.comparingInt;
import static java.util.stream.Collectors.collectingAndThen;
import static java.util.stream.Collectors.toCollection;

...
List<Employee> unique = employee.stream()
                                .collect(collectingAndThen(toCollection(() -> new TreeSet<>(comparingInt(Employee::getId))),
                                                           ArrayList::new));

Given the example:

List<Employee> employee = Arrays.asList(new Employee(1, "John"), new Employee(1, "Bob"), new Employee(2, "Alice"));

It will output:

[Employee{id=1, name='John'}, Employee{id=2, name='Alice'}]

Another idea could be to use a wrapper that wraps an employee and have the equals and hashcode method based with its id:

class WrapperEmployee {
    private Employee e;

    public WrapperEmployee(Employee e) {
        this.e = e;
    }

    public Employee unwrap() {
        return this.e;
    }

    @Override
    public boolean equals(Object o) {
        if (this == o) return true;
        if (o == null || getClass() != o.getClass()) return false;
        WrapperEmployee that = (WrapperEmployee) o;
        return Objects.equals(e.getId(), that.e.getId());
    }

    @Override
    public int hashCode() {
        return Objects.hash(e.getId());
    }
}

Then you wrap each instance, call distinct(), unwrap them and collect the result in a list.

List<Employee> unique = employee.stream()
                                .map(WrapperEmployee::new)
                                .distinct()
                                .map(WrapperEmployee::unwrap)
                                .collect(Collectors.toList());

In fact, I think you can make this wrapper generic by providing a function that will do the comparison:

class Wrapper<T, U> {
    private T t;
    private Function<T, U> equalityFunction;

    public Wrapper(T t, Function<T, U> equalityFunction) {
        this.t = t;
        this.equalityFunction = equalityFunction;
    }

    public T unwrap() {
        return this.t;
    }

    @Override
    public boolean equals(Object o) {
        if (this == o) return true;
        if (o == null || getClass() != o.getClass()) return false;
        @SuppressWarnings("unchecked")
        Wrapper<T, U> that = (Wrapper<T, U>) o;
        return Objects.equals(equalityFunction.apply(this.t), that.equalityFunction.apply(that.t));
    }

    @Override
    public int hashCode() {
        return Objects.hash(equalityFunction.apply(this.t));
    }
}

and the mapping will be:

.map(e -> new Wrapper<>(e, Employee::getId))
  • 3
    Your first suggestion is a far better answer than the wrapper one :). Wrapper is obvious, but the first one is much better. I wasnt aware of collectingAndThen – Jatin Apr 16 '15 at 11:21
  • Thank you so much – Patan Apr 16 '15 at 13:19
  • 1
    @Patan Hard to tell without the test cases, check if you don't have any null reference in the list. – Alexis C. Apr 21 '15 at 7:25
  • 1
    The first example works for me but I don't understand why :) – Bevor Jan 3 '17 at 16:57
  • 1
    @AvijitBarua you can compare as many fields as you want. The TreeSet constructor will accept any Comparator. In Java 8 and onward the comparingInt method is just a quick way to create a Comparator that compares int fields. If you want to add another field to the comparison you can use the thenComparing chained to the original compare so it would look something like comparingInt(Employee::getId).thenComparing(Employee::getName). This seems like a good article explaining Comparators - baeldung.com/java-8-comparator-comparing. – cbender Mar 24 at 14:07
47

The easiest way to do it directly in the list is

HashSet<Object> seen=new HashSet<>();
employee.removeIf(e->!seen.add(e.getID()));
  • removeIf will remove an element if it meets the specified criteria
  • Set.add will return false if it did not modify the Set, i.e. already contains the value
  • combining these two, it will remove all elements (employees) whose id has been encountered before

Of course, it only works if the list supports removal of elements.

  • You assume that id is unique, what if I have composite key – Kamil Nekanowicz Mar 23 '17 at 7:54
  • 2
    @user3871754: you need an object holding the composite key and having appropriate equals and hashCode implementations, e.g. yourList.removeIf(e -> !seen.add(Arrays.asList(e.getFirstKeyPart(), e.getSecondKeyPart()));. Composing the key via Arrays.asList works with an arbitrary number of components, whereas for small numbers of components a dedicated key type might be more efficient. – Holger Mar 23 '17 at 9:42
  • what do you mean all? I need to left at least one – user25 Sep 9 '18 at 13:57
  • Great answer! This worked better for me than the accepted answer, even though both are good! – OmNiOwNeR Oct 13 '18 at 21:14
14

Try this code:

Collection<Employee> nonDuplicatedEmployees = employees.stream()
   .<Map<Integer, Employee>> collect(HashMap::new,(m,e)->m.put(e.getId(), e), Map::putAll)
   .values();
11

If you can make use of equals, then filter the list by using distinct within a stream (see answers above). If you can not or don't want to override the equals method, you can filter the stream in the following way for any property, e.g. for the property Name (the same for the property Id etc.):

Set<String> nameSet = new HashSet<>();
List<Employee> employeesDistinctByName = employees.stream()
            .filter(e -> nameSet.add(e.getName()))
            .collect(Collectors.toList());
  • This was pretty fine, it takes advantage of the simple functionality of filter that decide to filter or maintain every element based on a predicate (predicate to apply to each element to determine if it should be included), based on the property (String type) insertion in a set : true if newly inserted, false if it exists already...that was smart ! work great for me ! – Shessuky Jul 18 '18 at 10:24
4

If order does not matter and when it's more performant to run in parallel, Collect to a Map and then get values:

employee.stream().collect(Collectors.toConcurrentMap(Employee::getId, Function.identity(), (p, q) -> p)).values()
3

This worked for me:

list.stream().distinct().collect(Collectors.toList());

You need to implement equals, of course

  • You need to implement equals, of course – Seba D'Agostino Jun 8 '18 at 10:57
  • 1
    @Andronicus I added my comment into my response. – Seba D'Agostino Mar 21 at 13:25
2

Another solution is to use a Predicate, then you can use this in any filter:

public static <T> Predicate<T> distinctBy(Function<? super T, ?> f) {
  Set<Object> objects = new ConcurrentHashSet<>();
  return t -> objects.add(f.apply(t));
}

Then simply reuse the predicate anywhere:

employees.stream().filter(distinctBy(e -> e.getId));

Note: in the JavaDoc of filter, which says it takes a stateless Predicte. Actually, this works fine even if the stream is parallel.


About other solutions:

1) Using .collect(Collectors.toConcurrentMap(..)).values() is a good solution, but it's annoying if you want to sort and keep the order.

2) stream.removeIf(e->!seen.add(e.getID())); is also another very good solution. But we need to make sure the collection implemented removeIf, for example it will throw exception if we construct the collection use Arrays.asList(..).

0

Another version which is simple

BiFunction<TreeSet<Employee>,List<Employee> ,TreeSet<Employee>> appendTree = (y,x) -> (y.addAll(x))? y:y;

TreeSet<Employee> outputList = appendTree.apply(new TreeSet<Employee>(Comparator.comparing(p->p.getId())),personList);
  • 3
    This is an obfuscated version of TreeSet<Employee> outputList = new TreeSet<>(Comparator.comparing(p->p.getId())); outputList.addAll(personList); The straight-forward code is much simpler. – Holger Jul 7 '17 at 6:21
0

There are a lot of good answers here but I didn't find the one about using reduce method. So for your case, you can apply it in following way:

 List<Employee> employeeList = employees.stream()
      .reduce(new ArrayList<>(), (List<Employee> accumulator, Employee employee) ->
      {
        if (accumulator.stream().noneMatch(emp -> emp.getId().equals(employee.getId())))
        {
          accumulator.add(employee);
        }
        return accumulator;
      }, (acc1, acc2) ->
      {
        acc1.addAll(acc2);
        return acc1;
      });
  • working with parallel Streams there's a chance that the combiner will add together employees with the same id again.. in that case you need to check there aswell for duplicates. – Sven Dhaens Aug 23 '17 at 15:50

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