3

This question already has an answer here:

I have two lists of dogs - dogsList1, dogsList2
I want to create a single list of all dogs with unique name field.
(meaning, if I encounter a second dog with the same name I do not add it to the result list)

This is the best I could do in java, but it collects unique names, not Dogs:
(Dog contains other fields than name)

// collect all dogs names from first list
List<String> dogNames1 = dogsList1.stream()
     .map(x -> x.getName()).collect(Collectors.toList()); 

dogList2.stream()
     .filter(x->!dogNames1.contains(x.getName()))
     .forEach( x->
            dogsList1.add(x);
     );

Can it be improved ? Any other better solution or optimized approach?

marked as duplicate by Aomine, Andrew Tobilko, marstran, Andremoniy java Jan 8 '18 at 15:54

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • If you're concerned about performance in case of huge (>100.000) element lists, there are some ways. Otherwise I recommend keeping it this way. – Mark Jeronimus Jan 8 '18 at 15:00
  • 2
    When two dogs have the same name, do you just pick one at random/first one? – marstran Jan 8 '18 at 15:04
  • @marstran for the example, lets say the default would be taken from the first list – Ran Galili Jan 8 '18 at 15:10
  • @Pshemo list of dog objects – Ran Galili Jan 8 '18 at 15:11
6

You can use merge multiple stream and drop duplicates.

For the first dog of a given name, you can do

import java.util.ArrayList;
import java.util.Arrays;
import java.util.List;
import java.util.stream.Collectors;
import java.util.stream.Stream;

public class A {

    public static void main(String[] args) {
        List<Dog> dogList1 = Arrays.asList(new Dog("a", 1), new Dog("b", 2), new Dog("f", 3));
        List<Dog> dogList2 = Arrays.asList(new Dog("b", 4), new Dog("c", 5), new Dog("f", 6));
        List<Dog> dogList3 = Arrays.asList(new Dog("b", 7), new Dog("d", 8), new Dog("e", 9));
        List<Dog> dogs = new ArrayList<>(
                Stream.of(dogList1, dogList2, dogList3)
                        .flatMap(List::stream)
                        .collect(Collectors.toMap(Dog::getName,
                                d -> d,
                                (Dog x, Dog y) -> x == null ? y : x))
                        .values());
        dogs.forEach(System.out::println);
    }
}

class Dog {
    String name;
    int id;

    public Dog(String name, int id) {
        this.name = name;
        this.id = id;
    }

    public String getName() {
        return name;
    }

    @Override
    public String toString() {
        return "Dog{" +
                "name='" + name + '\'' +
                ", id=" + id +
                '}';
    }
}

prints

Dog{name='a', id=1}
Dog{name='b', id=2}
Dog{name='c', id=5}
Dog{name='d', id=8}
Dog{name='e', id=9}
Dog{name='f', id=3}

In each case, you can see the first instance of a name is retained.

For unique names

Set<String> names = Stream.of(dogList1, dogList2, dogList3)
                          .flatMap(List::stream)
                          .map(Dog::getName)
                          .collect(Collectors.toSet());
  • 1
    If the OP does indeed want what you've shown in both your examples then this is a duplicate. However, if it's not then your implementation is still not quite correct because if you look at the OP's current code they are not removing all duplicates by a property rather he is preventing adding duplicates to the accumulator, so dogNames1 could contain an arbitrary amount of duplicates but the key point here is do not add an object from the second list if it's already present in the first list which your code doesn't seem to take into account. – Aomine Jan 8 '18 at 16:08
  • @Aominè I take your point that duplicates in the first list appear to be allowed, however I don't understand what you mean by the bold statement. Can you give an example? – Peter Lawrey Jan 8 '18 at 16:13
  • @Aominè it might be a duplicate but it's not clear to me that it is either. – Peter Lawrey Jan 8 '18 at 16:14
  • 1
    this might in fact not be a duplicate if and only if the OP states that duplicates in the first list are allowed(which I believe is what he wants). My bold statement might not be clear but it simply means duplicates in the first list are allowed which your examples doesn’t seem to take into account. – Aomine Jan 8 '18 at 16:21
2

That could be an option

  List<String> dogNames = Stream.concat(dogsList1.stream(),dogsList2.stream())
                          .map(x -> x.getName())
                          .distinct()
                          .collect(Collectors.toList());
  • unfortunately, the OP wants a List<Dog> not List<String>. – Aomine Jan 8 '18 at 16:03
  • That's true, my fault, in that case implementing equal and hashcode in Dog class is enough? – Frablamo Jan 9 '18 at 16:56

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