1

This question already has an answer here:

How can I use java streams to filter an object by the same porperty?

The HashSet tasks contains:

task=1, name=hello
task=2, name=hello

(I dont want to use equals/hashcode on "name")

Now I want to filter the tasks producing a new HashSet with unique name-property.

All objects having the same name should be treated as equal:

tasks.stream.filter(???);

I can solve that by creating a new list and with 2 for-loops by indexing next element and looking for the name if it was already put into the list. However, maybe there is an one liner for such problems? Maybe with stream.filter()?

marked as duplicate by Naman java Aug 22 at 7:34

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.

  • What would be your output type. Please go through this and update your question with minimum reproducible example: stackoverflow.com/help/minimal-reproducible-example – Ravindra Ranwala Aug 22 at 6:17
  • @RavindraRanwala the same output type as the origin Set. – nimo23 Aug 22 at 6:20
  • Please state the expected output type in your problem statement clearly, otherwise it is misleading and different people may interpret it in a different manner. – Ravindra Ranwala Aug 22 at 7:03
  • @Naman yes, is a duplicate. Thanks for the hint. – nimo23 Aug 22 at 7:15
3

You may first create a map using the task name as the key and the relevant Task as the value. Ignore the duplicate Tasks merely by using a mergeFunction. Then get all the distinct tasks as a Set view.

Set<Task> distinctTasks = tasks.stream().collect(Collectors.collectingAndThen(
    Collectors.toMap(Task::getName, Function.identity(), 
        (a, b) -> a), m -> new HashSet<>(m.values())));
0

I find one solutions:

List<Task> tasksDistinct = tasks.stream()
                    .collect(Collectors.groupingBy(Task::getName))
                    .values()
                    .stream()
                    .flatMap(m -> m.stream())
                    .collect(Collectors.toList());

Are there any better solutions?

  • 1
    where and what are you filtering? – Naman Aug 22 at 6:09
  • It is a indirect filtering by "Task::getName" and knowing that map key is unique. Do you know a solution with explicit stream.filter()? – nimo23 Aug 22 at 6:11
  • But if you don't use that Map anymore, what are you achieving by groupingBy? You eventually have a list of all Tasks, ordered possibly by the keys(name) iterated for the map. – Naman Aug 22 at 6:13
  • groupingBy constructs the map with unique key. The origin task is a HashSet with duplicate names.. – nimo23 Aug 22 at 6:15
  • Yes, groupingBy constructs the map with unique keys and lists of all elements as values. Your subsequent operation joins all of them back to a list containing all elements. You could avoid this by replacing .flatMap(m -> m.stream()) with .map(m -> m.get(0)), to only use the first occurrence for every group, instead of all of them. But that’s less efficient than the accepted answer which doesn’t keep the other occurrences in the first place. – Holger Aug 22 at 9:44
0

You may do it like

Set<String> set = tasks.stream()
                  .map(Task::getName)
                  .collect(Collectors.toCollection(HashSet::new));
  • For String no need to implement equal/hashcode, right ? – Abinash Ghosh Aug 22 at 6:41
  • But the OP needs Set<Task> not the set of task names. Read the problem statement carefully first. – Ravindra Ranwala Aug 22 at 6:54
  • I think it's not clearly mention in question Set<Task> needed ? – Abinash Ghosh Aug 22 at 7:53
  • Yes it is kind of vague, but my imagination says that the OP expects Set<Task> contrary to Set<String> – Ravindra Ranwala Aug 22 at 15:29

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