I have a map and I would like to retrieve the last 50 items inserted onto the map or items added to the map in the last 2 seconds (whichever greater) ..

What's the most efficient way I can do that?

Map<Date, Book> books = new HashMap<Date, Book>();

Notes: - I want to maximize throughput and minimize latency. - I want to run on the JVM and minimize heap footprint.

New contributor
Kshitij Roshan is a new contributor to this site. Take care in asking for clarification, commenting, and answering. Check out our Code of Conduct.
  • You can make use of TreeMap or similar data structure that keeps the order. – zenwraight Oct 11 at 18:46
  • And if you are building an application, I would recommend storing all the data into db and run a query to fetch data either by date or last 50 items. – zenwraight Oct 11 at 18:47
  • @zenwraight I am not allowed to use a external db.. – Kshitij Roshan Oct 11 at 18:49
  • TreeMap maintains order in sorted order but I want to maintain last insertion order.. – Kshitij Roshan Oct 11 at 18:50
  • And you have to do it using only hashmap or u can use some other data structure also ? – zenwraight Oct 11 at 18:50

Use a stack to store the Date and then pop items as a key from the stack. Just push Date as key whenever you make an entry in HashMap.

  • I want to maximize throughput and minimize latency.I want to run on the JVM and minimize heap footprint. – Kshitij Roshan Oct 11 at 19:12
  • @KshitijRoshan push and pop operation are very much efficient in Stack so I think you should use Stack in this case. – suvojit_007 Oct 12 at 10:43
  • Stack is deprecated (since long ago). Use an ArrayDeque instead – Federico Peralta Schaffner Oct 12 at 15:01
  • @FedericoPeraltaSchaffner LinkedList can be used too. – suvojit_007 Oct 12 at 15:09
  • @suvojit_007 Agreed. It can be used too, it's a matter of preference. I think ArrayDeque is better for most cases, but in this particular case, LinkedList would do the job. – Federico Peralta Schaffner Oct 12 at 15:11

To answer your question in one sentence:

Per default, Maps don't have a last entry, it's not part of their contract. A (Hash)Map Stores the items memory optimized.

Possible Solutions Sorted Maps:

You can access the last entry through the lastEntry method:

NavigableMap<String,Integer> map = new TreeMap<String, Integer>();
// add some entries
Entry<String, Integer> lastEntry = map.lastEntry();

Or u use a Linked map:

Map<String,String> map = new LinkedHashMap<String, Integer>();
// add some entries
List<Entry<String,Integer>> entryList =
    new ArrayList<Map.Entry<String, Integer>>(map.entrySet());
Entry<String, Integer> lastEntry =
    entryList.get(entryList.size()-1);

both are native Java libs.

New contributor
Joschy is a new contributor to this site. Take care in asking for clarification, commenting, and answering. Check out our Code of Conduct.
  • TreeMap.lastEntry() gives the entry with the largest/smallest key value. Iterating a LinkedHashMap backwards should do the trick. – Mick Mnemonic Oct 11 at 19:33

Since you want to get last items by date, thus the key of the Map<Date, Book> books you can do the following:

  protected static List<Book> getLastXBooks(Map<Date, Book> books, int x) {
    return books.entrySet().stream()
      .sorted(Comparator.<Entry<Date, Book>, Date> comparing(Entry::getKey).reversed())
      .limit(x)
      .map(Entry::getValue)
      .collect(Collectors.toList());
  }

  protected static List<Book> getBooksOfLastXSeconds(Map<Date, Book> books, int seconds) {
    long now = System.currentTimeMillis();
    long msAgo = System.currentTimeMillis() - seconds * 1000;
    return books.entrySet().stream()
      .filter(e -> e.getKey().getTime() <= now && e.getKey().getTime() >= msAgo)
      .sorted(Comparator.<Entry<Date, Book>, Date> comparing(Entry::getKey).reversed())
      .map(Entry::getValue)
      .collect(Collectors.toList());
  }

In getBooksOfLastXSeconds I added the sorting to make the result easy to compare. As of the question it isn't necessary.

Let's have an example:

  public static void main(String[] args) {
    Map<Date, Book> books = new HashMap<Date, Book>();
    for (int i = 0; i < 100; i++) {
      Book book = new Book("Book " + (100 - i));
      books.put(new Date(System.currentTimeMillis() - i * 100), book);
      System.out.println(book);
    }
    List<Book> last50 = getLastXBooks(books, 50);
    System.out.println(last50); // [Book: Book 100, Book: Book 99, ... Book 51, Book: Book 50]
    List<Book> booksOfLast2Seconds = getBooksOfLastXSeconds(books, 2);
    System.out.println(booksOfLast2Seconds); // [Book: Book 100, Book: Book 99, ... Book 82, Book: Book 81]
  }

EDIT
What's the most efficient way I can do that?
The most efficient way would be, to have the books already ordered by insertion date. Then it's not necessary to compare all books (do the sort above) to get the last 50 books. You could use a LinkedHashMap to preserve the insertion order. The insertion order has to be the natural order of Date thus the chronological order.

  • I want to maximize throughput and minimize latency.I want to run on the JVM and minimize heap footprint. – Kshitij Roshan Oct 11 at 19:12
  • I've updated my answer. – LuCio Oct 11 at 20:12

Your Answer

Kshitij Roshan is a new contributor. Be nice, and check out our Code of Conduct.
 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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