16

I'm relatively new to Java8 and I have a scenario where I need to retrieve all the keys from the Map which matched with the objects.

Wanted to know if there is a way to get all keys without iterating them from the list again.

Person.java
private String firstName;
private String lastName;
//setters and getters & constructor


MAIN Class.

String inputCriteriaFirstName = "john";   

Map<String, Person> inputMap = new HashMap<>();
Collection<Person> personCollection = inputMap.values();
List<Person> personList = new ArrayList<>(personCollection);
List<Person> personOutputList = personList.stream()
.filter(p -> p.getFirstName().contains(inputCriteriaFirstName ))
.collect(Collectors.toList());


//IS There a BETTER way to DO Below ??

Set<String> keys = new HashSet<>();
for(Person person : personOutputList) {
    keys.addAll(inputMap.entrySet().stream().filter(entry -> Objects.equals(entry.getValue(), person))
        .map(Map.Entry::getKey).collect(Collectors.toSet()));
}
0

4 Answers 4

15
inputMap.entrySet() 
        .stream()
        .filter(entry -> personOutputList.contains(entry.getValue()))
        .map(Entry::getKey)
        .collect(Collectors.toCollection(HashSet::new))
5
  • Why use Collectors.toCollection(HashSet::new) instead of Collectors.toSet(), as was used in the question?
    – Andreas
    Mar 16, 2018 at 22:18
  • @Andreas Collectors.toSet returns an undefined Set ( may be immutable ), while the OP wanted a HashSet exactly
    – Eugene
    Mar 16, 2018 at 22:24
  • I don't see that OP wanted a HashSet exactly. I see that OP wants a Set (see Set<String> keys), and that OPs attempt is creating a HashSet for the purpose, but I don't see any requirement that it must be a HashSet.
    – Andreas
    Mar 16, 2018 at 22:32
  • Hi Eugene; what do you think the answer provided by Andreas below? Mar 16, 2018 at 23:05
  • @Andreas well I inferred that from Set<String> keys = new HashSet<>(); thinking that he wants guarantees to be a mutable Set. If that would have been a properly coded method that returns a Set, I would have not said that
    – Eugene
    Mar 17, 2018 at 9:12
7

Instead of iterating over all the entries of the Map for each Person, I suggest iterating over the Map once:

Set<String> keys =
     inputMap.entrySet()
             .stream()
             .filter(e -> personOutputList.contains(e.getValue()))
             .map(Map.Entry::getKey)
             .collect(Collectors.toCollection(HashSet::new));

This would still result in quadratic running time (since List.contains() has linear running time). You can improve that to overall linear running time if you create a HashSet containing the elements of personOutputList, since contains for HashSet takes constant time.

You can achieve that by changing

List<Person> personOutputList = 
    personList.stream()
              .filter(p -> p.getFirstName().contains(inputCriteriaFirstName))
              .collect(Collectors.toList());

to

Set<Person> personOutputSet = 
    personList.stream()
              .filter(p -> p.getFirstName().contains(inputCriteriaFirstName))
              .collect(Collectors.toCollection(HashSet::new));
6
  • 2
    small nitpick: OP wants a HashSet, Collectors.toSet does not guarantee that...
    – Eugene
    Mar 16, 2018 at 21:34
  • @Eugene fair enough
    – Eran
    Mar 16, 2018 at 21:36
  • also we might both be very wrong here for a certain case where e.getValue returns a null and in future the OP might have List.of(..) for personOutputList, thus this failing with a NullPointer, just a thought
    – Eugene
    Mar 16, 2018 at 21:40
  • @Eugene It makes little sense to me to have null values in that Map, so I don't see a need to account for such possibility.
    – Eran
    Mar 16, 2018 at 21:42
  • generally I could not agree more. But may be there is some sense in OP using Objects.equals(entry.getValue(), person)...
    – Eugene
    Mar 16, 2018 at 21:43
6

You can also use foreach api provided in java8 under lambda's

Below is code for your main method :

public static  void main() {

        String inputCriteriaFirstName = "john";   

        Map<String, Person> inputMap = new HashMap<>();
        Set<String> keys = new HashSet<>();

        inputMap.forEach((key,value) -> {
            if(value.getFirstName().contains(inputCriteriaFirstName)){
                keys.add(key);
            }
        });
    }
2
  • 1
    not the most stylish approach, but the least expensive, only O(n).
    – arthur
    Mar 17, 2018 at 16:07
  • 1
    @arthur the least expensive one would be to use a for loop. If you only care for O(n), this answer is O(n) too and it only differs in memory complexity due to also providing the personOutputList. If the OP doesn’t need it, it would be easy to simplify the solution to a “stylish” approach having the same complexity as this forEach approach.
    – Holger
    Mar 19, 2018 at 9:52
1

So, you want a personOutputList with all the selected persons, and a keys set with the keys for those selected persons?

Best (for performance) option is to not discard the keys during search, then split the result into separate person list and key set.

Like this:

String inputCriteriaFirstName = "john";
Map<String, Person> inputMap = new HashMap<>();

Map<String, Person> tempMap = inputMap.entrySet()
        .stream()
        .filter(e -> e.getValue().getFirstName().contains(inputCriteriaFirstName))
        .collect(Collectors.toMap(Entry::getKey, Entry::getValue));
List<Person> personOutputList = new ArrayList<>(tempMap.values());
Set<String> keys = new HashSet<>(tempMap.keySet());

The keys set is explicitly made an updatable copy. If you don't need that, drop the copying of the key values:

Set<String> keys = tempMap.keySet();

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