30

This is a question that comes up a lot in job interviews. The idea is to define a data structure instead of using Java's built in LinkedHashMap.

An LRU cache deletes the least recently used entry to insert a new one. So, given the following scenario:

 A - B - C - D - E

Where A is the least recently used item, if we were to insert F, we need to remove A.

This can be easily implemented if we keep a HashMap with the cache entries by (key,value) and a separate list that contains the elements' key and time of use. However, we would need to query the list to find the least recently used item, with a potential O(n) time complexity.

How can this structure be implemented in Java for Generic objects and O(1) operations?

This is different from the possible duplicate in that it focuses on efficiency (O(1) ops) and implementing the data structure itself, not extending Java's.

  • 4
    LinkedHashMap#removeEldestEntry(). From the javadoc: "This is useful if the map represents a cache: it allows the map to reduce memory consumption by deleting stale entries." – awksp May 21 '14 at 0:34
  • I think Min Heap is better for your problem – YaleCheung May 21 '14 at 0:36
  • It's a linked queue, so it is O(1). – 卢声远 Shengyuan Lu May 21 '14 at 9:20

13 Answers 13

43

From the question itself, we can see that the problem of O(n) operations arises when querying the linked list. Therefore, we need an alternative data structure. We need to be able to update the items' last access time from the HashMap without searching.

We can keep two separate data structures. A HashMap with (Key,Pointer) pairs and a doubly linked list which will work as the priority queue for deletion and store the Values. From the HashMap, we can point to an element in the doubly linked list and update its' retrieval time. Because we go directly from the HashMap to the item in the list, our time complexity remains at O(1)

For example, our doubly linked list can look like:

least_recently_used  -> A <-> B <-> C <-> D <-> E <- most_recently_used

We need to keep a pointer to the LRU and MRU items. The entries' values will be stored in the list and when we we query the HashMap, we will get a pointer to the list. On get(), we need to put the item at the right-most side of the list. On put(key,value), if the cache is full, we need to remove the item at the left-most side of the list from both the list and the HashMap.

The following is an example implementation in Java:

public class LRUCache<K, V>{

    // Define Node with pointers to the previous and next items and a key, value pair
    class Node<T, U> {
        Node<T, U> previous;
        Node<T, U> next;
        T key;
        U value;

        public Node(Node<T, U> previous, Node<T, U> next, T key, U value){
            this.previous = previous;
            this.next = next;
            this.key = key;
            this.value = value;
        }
    }

    private HashMap<K, Node<K, V>> cache;
    private Node<K, V> leastRecentlyUsed;
    private Node<K, V> mostRecentlyUsed;
    private int maxSize;
    private int currentSize;

    public LRUCache(int maxSize){
        this.maxSize = maxSize;
        this.currentSize = 0;
        leastRecentlyUsed = new Node<K, V>(null, null, null, null);
        mostRecentlyUsed = leastRecentlyUsed;
        cache = new HashMap<K, Node<K, V>>();
    }

    public V get(K key){
        Node<K, V> tempNode = cache.get(key);
        if (tempNode == null){
            return null;
        }
        // If MRU leave the list as it is
        else if (tempNode.key == mostRecentlyUsed.key){
            return mostRecentlyUsed.value;
        }

        // Get the next and previous nodes
        Node<K, V> nextNode = tempNode.next;
        Node<K, V> previousNode = tempNode.previous;

        // If at the left-most, we update LRU 
        if (tempNode.key == leastRecentlyUsed.key){
            nextNode.previous = null;
            leastRecentlyUsed = nextNode;
        }

        // If we are in the middle, we need to update the items before and after our item
        else if (tempNode.key != mostRecentlyUsed.key){
            previousNode.next = nextNode;
            nextNode.previous = previousNode;
        }

        // Finally move our item to the MRU
        tempNode.previous = mostRecentlyUsed;
        mostRecentlyUsed.next = tempNode;
        mostRecentlyUsed = tempNode;
        mostRecentlyUsed.next = null;

        return tempNode.value;

    }

    public void put(K key, V value){
        if (cache.containsKey(key)){
            return;
        }

        // Put the new node at the right-most end of the linked-list
        Node<K, V> myNode = new Node<K, V>(mostRecentlyUsed, null, key, value);
        mostRecentlyUsed.next = myNode;
        cache.put(key, myNode);
        mostRecentlyUsed = myNode;

        // Delete the left-most entry and update the LRU pointer
        if (currentSize == maxSize){
            cache.remove(leastRecentlyUsed.key);
            leastRecentlyUsed = leastRecentlyUsed.next;
            leastRecentlyUsed.previous = null;
        }

        // Update cache size, for the first added entry update the LRU pointer
        else if (currentSize < maxSize){
            if (currentSize == 0){
                leastRecentlyUsed = myNode;
            }
            currentSize++;
        }
    }
}
  • 5
    I'm pretty sure that this is called a LinkedHashMap... It even has a removeEldestEntry method. – awksp May 21 '14 at 0:32
  • 1
    @user3580294 LinkedHashMap evicts the oldest entry, not the least-recently-used entry. This solution accounts for recent accesses. – templatetypedef May 21 '14 at 0:40
  • 1
    @user3580294 That's certainly a possibility, though I can't imagine it being nearly as efficient as the solution posted here. – templatetypedef May 21 '14 at 0:47
  • 5
    @templatetypedef True... Don't think the difference would be that big though, since the difference is a HashMap insertion. Also turns out the LinkedHashMap constructor takes an argument for access order age, so that would work exactly as the original question desired – awksp May 21 '14 at 0:50
  • 2
    I think you have a minor mistake in your example code. In the get method, when updating a node in the middle, you point the previous node's next and previous to the next node. – Zach Sperske Mar 14 '16 at 20:26
25

Implementation that passes the tests of the leetcode questiton + simple unit tests follow.

I have made a pull request with this at: https://github.com/haoel/leetcode/pull/90/files

LRUCache.java

import java.util.LinkedHashMap;
import java.util.Iterator;

public class LRUCache {

    private int capacity;
    private LinkedHashMap<Integer,Integer> map;

    public LRUCache(int capacity) {
        this.capacity = capacity;
        this.map = new LinkedHashMap<>();
    }

    public int get(int key) {
        Integer value = this.map.get(key);
        if (value == null) {
            value = -1;
        } else {
            this.set(key, value);
        }
        return value;
    }

    public void set(int key, int value) {
        if (this.map.containsKey(key)) {
            this.map.remove(key);
        } else if (this.map.size() == this.capacity) {
            Iterator<Integer> it = this.map.keySet().iterator();
            it.next();
            it.remove();
        }
        map.put(key, value);
    }
}

LRUCacheTest.java:

import java.util.ArrayList;

import org.junit.Test;
import static org.junit.Assert.*;

public class LRUCacheTest {

    private LRUCache c;

    public LRUCacheTest() {
        this.c = new LRUCache(2);
    }

    @Test
    public void testCacheStartsEmpty() {
        assertEquals(c.get(1), -1);
    }

    @Test
    public void testSetBelowCapacity() {
        c.set(1, 1);
        assertEquals(c.get(1), 1);
        assertEquals(c.get(2), -1);
        c.set(2, 4);
        assertEquals(c.get(1), 1);
        assertEquals(c.get(2), 4);
    }

    @Test
    public void testCapacityReachedOldestRemoved() {
        c.set(1, 1);
        c.set(2, 4);
        c.set(3, 9);
        assertEquals(c.get(1), -1);
        assertEquals(c.get(2), 4);
        assertEquals(c.get(3), 9);
    }

    @Test
    public void testGetRenewsEntry() {
        c.set(1, 1);
        c.set(2, 4);
        assertEquals(c.get(1), 1);
        c.set(3, 9);
        assertEquals(c.get(1), 1);
        assertEquals(c.get(2), -1);
        assertEquals(c.get(3), 9);
    }
}

removeEldestEntry() alternative implementation

Not sure it is worth it as it takes the same number of lines, but here goes for completion:

import java.util.LinkedHashMap;
import java.util.Iterator;
import java.util.Map;

class LinkedhashMapWithCapacity<K,V> extends LinkedHashMap<K,V> {
    private int capacity;

    public LinkedhashMapWithCapacity(int capacity) {
        this.capacity = capacity;
    }

    @Override
    protected boolean removeEldestEntry(Map.Entry<K,V> eldest) {
        return this.size() > this.capacity;
    }
}

public class LRUCache {

    private LinkedhashMapWithCapacity<Integer,Integer> map;

    public LRUCache(int capacity) {
        this.map = new LinkedhashMapWithCapacity<>(capacity);
    }

    public int get(int key) {
        Integer value = this.map.get(key);
        if (value == null) {
            value = -1;
        } else {
            this.set(key, value);
        }
        return value;
    }

    public void set(int key, int value) {
        if (this.map.containsKey(key))
            this.map.remove(key);
        this.map.get(key);
    }
}
  • This should not work...... Extract From Oracle Doc link... This linked list defines the iteration ordering, which is normally the order in which keys were inserted into the map (insertion-order). Note that insertion order is not affected if a key is re-inserted into the map. (A key k is reinserted into a map m if m.put(k, v) is invoked when m.containsKey(k) would return true immediately prior to the invocation.) – jpincz Sep 14 '18 at 2:10
9

The LinkedHashMap designed with that in mind

From the javadocs:

A special constructor is provided to create a linked hash map whose order of iteration is the order in which its entries were last accessed, from least-recently accessed to most-recently (access-order). This kind of map is well-suited to building LRU caches. Invoking the put, putIfAbsent, get, getOrDefault, compute, computeIfAbsent, computeIfPresent, or merge methods results in an access to the corresponding entry (assuming it exists after the invocation completes). The replace methods only result in an access of the entry if the value is replaced. The putAll method generates one entry access for each mapping in the specified map, in the order that key-value mappings are provided by the specified map's entry set iterator. No other methods generate entry accesses. In particular, operations on collection-views do not affect the order of iteration of the backing map.

The removeEldestEntry(Map.Entry) method may be overridden to impose a policy for removing stale mappings automatically when new mappings are added to the map.

  • An implementation using the above can be found here: codewalk.com/2012/04/… – sam Jun 1 '17 at 14:47
  • Also the same documentation says: Note that insertion order is not affected if a key is re-inserted into the map. (A key k is reinserted into a map m if m.put(k, v) is invoked when m.containsKey(k) would return true immediately prior to the invocation.) – jpincz Sep 14 '18 at 2:12
5

Using a Stack and a HashMap:

import java.util.HashMap;
import java.util.Stack;
public class LRU {
    private HashMap<String,Object> lruList;
    private Stack<String> stackOrder;
    private int capacity;
    LRU(int capacity){
      this.capacity = capacity;
      this.lruList = new HashMap<String, Object>(capacity);
      this.stackOrder = new Stack<String>();
    }
    public void put(String key, Object value){
      if(lruList.containsKey(key) || this.capacity < lruList.size() + 1) {
        if(lruList.containsKey(key)){
            String remove = key;
        }else{
            String remove = this.stackOrder.firstElement();
        }
        this.stackOrder.removeElement(remove);
        this.lruList.remove(remove);
      }
      this.lruList.put(key, value);
      this.stackOrder.add(key);
    }
    public Stack<String> get(){
      return this.stackOrder;
    }
    public Object get(String key){
      Object value = lruList.get(key);
      put(key, value);
      return value;
    }
}

public static void main(String[] args) {
    LRU lru = new LRU(3);
    lru.put("k1","v1");
    lru.put("k2","v2");
    lru.put("k3","v3");
    System.out.println(lru.get());
    lru.get("k1");
    System.out.println(lru.get());
    lru.put("k4","v4");
    System.out.println(lru.get());
}

Output:

[k1, k2, k3]

[k2, k3, k1]

[k3, k1, k4]

4
/*Java implementation using Deque and HashMap    */

interface Cache<K,V> {
    V get(K key) ;
    void set(K key, V value);
}

class Node <K,V>{
    K key;
    V value;

    public Node (K key, V value) {
        this.key = key;
        this.value = value;
    }
}

public class LRUCache <K,V> implements Cache<K,V>{
    Deque<Node<K,V>> dq = new LinkedList<>();
    Map<K, Node<K, V>> map = new HashMap<>();
    static int SIZE;

    public LRUCache(int size) {
        this.SIZE = size;
    }

    public V get(K key) {
        Node<K,V> result = map.get(key);
        if(result != null) {
            dq.remove(result);
            dq.addFirst(result);
            System.out.println("Get " +key +" : " +result.value);
            return result.value;
        }
        else {
            System.out.println("Cache miss");
            return null;
        }
    }

    public void set(K key, V value) {
        System.out.println("Set " +key +" : " +value);
        Node<K,V> result = map.get(key);
        if(result != null) {
            result.value = value;
            map.put(key, result);
            dq.remove(result);
            dq.addFirst(result);
            System.out.println("Updated frame " +key+" as " + value);
        }
        else {
            if(dq.size() == SIZE) {
                Node<K,V> toRemove = dq.removeLast();
                map.remove(toRemove);
                System.out.println("Frame removed " +toRemove.key +" : " +toRemove.value);
            }
            Node<K,V> newNode = new Node(key, value);
            dq.addFirst(newNode);
            map.put(key, newNode);
            System.out.println("Frame added " + key + " : " +value);
        }
    }

    public static void main(String[] args) {
        Cache<Integer, Integer> lru = new LRUCache<>(5);
        lru.get(2);
        lru.set(1, 11);
        lru.set(2, 22);
        lru.get(2);
        lru.set(3, 33);
        lru.set(4, 44);
        lru.set(5, 55);
        lru.get(2);
        lru.get(1);
        lru.set(6, 66);
    }
}
  • dq.remove(result) would take at WC O(n). wouldn't it? – Elimination May 23 '18 at 14:33
2

@templatetypedef

public LinkedHashMap(int initialCapacity,
         float loadFactor,
         boolean accessOrder)

accessOrder - the ordering mode - true for access-order, false for insertion-order

1

Idea

cache is nothing but circular arrayList. This list contains Entry. when ever new entries are coming add at the end of the list. That means least recently used element at the first. Suppose if you are reusing any element then unlink from the list and add at the end.

In order get any element we need to traverse the list which takes O(n) time complexity. In order to avoid this i'm maintaining HashMap>. Here k is key and IndexNode will contain a pointer to the Entry in the list. so we can get the O(1) time complexity.

working solution

package lrucache;

import java.util.HashMap;

public class LRUCache<K, V> {

    private transient Entry<K, V> header = new Entry<K, V>(null, null, null, null);
    public HashMap<K,IndexNode<Entry<K,V>>> indexMap = new HashMap<K,IndexNode<Entry<K,V>>>();
    private final int CACHE_LIMIT = 3;
    private int size;

    public LRUCache() {
        header.next = header.previous = header;
        this.size = 0;
    }

    public void put(K key,V value){
        Entry<K,V> newEntry = new Entry<K,V>(key,value,null,null);
        addBefore(newEntry, header);
    }

    private void addBefore(Entry<K,V> newEntry,Entry<K,V> entry){
        if((size+1)<(CACHE_LIMIT+1)){
            newEntry.next=entry;
            newEntry.previous=entry.previous;
            IndexNode<Entry<K,V>> indexNode = new IndexNode<Entry<K,V>>(newEntry);
            indexMap.put(newEntry.key, indexNode);
            newEntry.previous.next=newEntry;
            newEntry.next.previous=newEntry;
            size++;
        }else{
            Entry<K,V>  entryRemoved = remove(header.next);
            indexMap.remove(entryRemoved.key);
            addBefore(newEntry, entry);
        }
    }

    public void get(K key){
        if(indexMap.containsKey(key)){
            Entry<K,V> newEntry = remove(indexMap.get(key).pointer);
            addBefore(newEntry,header);
        }else{
            System.out.println("No such element was cached. Go and get it from Disk");
        }
    }

    private Entry<K,V> remove(Entry<K,V> entry){
        entry.previous.next=entry.next;
        entry.next.previous = entry.previous;
        size--;
        return entry;
    }

    public void display(){
        for(Entry<K,V> curr=header.next;curr!=header;curr=curr.next){
            System.out.println("key : "+curr.key+" value : " + curr.value);
        }
    }

    private static class IndexNode<Entry>{
        private Entry pointer;
        public IndexNode(Entry pointer){
            this.pointer = pointer;
        }
    }

    private static class Entry<K, V> {
        K key;
        V value;
        Entry<K, V> previous;
        Entry<K, V> next;

        Entry(K key, V value, Entry<K, V> next, Entry<K, V> previous) {
            this.key = key;
            this.value = value;
            this.next = next;
            this.previous = previous;
        }
    }

    public static void main(String[] args) {
        LRUCache<String, Integer> cache = new LRUCache<String, Integer>();
        cache.put("abc", 1);
        //cache.display();
        cache.put("def", 2);
        cache.put("ghi", 3);
        cache.put("xyz", 4);
        cache.put("xab", 5);
        cache.put("xbc", 6);
        cache.get("xyz");
        cache.display();
        System.out.println(cache.indexMap);
    }
}

output

key : xab value : 5
key : xbc value : 6
key : xyz value : 4
{xab=lrucache.LRUCache$IndexNode@c3d9ac, xbc=lrucache.LRUCache$IndexNode@7d8bb, xyz=lrucache.LRUCache$IndexNode@125ee71}
1

we can use LinkedHashMap .. it has feature to remove the eldest entry

import java.util.LinkedHashMap;
import java.util.Map;

public LRUCache<K, V> extends LinkedHashMap<K, V> {
  private int cacheSize;

  public LRUCache(int cacheSize) {
  super(16, 0.75, true);
  this.cacheSize = cacheSize;
}

  protected boolean removeEldestEntry(Map.Entry<K, V> eldest) {
  return size() >= cacheSize;
 }
}

The only catch is that by default the linked list order is the insertion order, not access. However one of the constructor exposes an option use the access order instead.

  • 5
    Seems like the answer was copied directly from HERE. Also LRU stands for Lease Recently Used. This algorithm is Delete Oldest Entry. It does not check how many times data (Entry) was accessed before removing it. – A-patel-guy Jan 26 '16 at 4:41
  • This algorithm deletes oldest entry based on the access order of the entry. LRU doesn't check how many times entry was accessed, it only checks if the entry is least recently used. Deleting entry based on least access frequency is LFU. – eriee Sep 24 '18 at 21:16
1

I just write this very simple Generic solution though this one is not Thread safe.

LRUCacheDemo.java (public class)

import java.io.*;
import java.util.*;

/* We can keep two separate data structures. A HashMap with (Key,Pointer) pairs and a doubly linked
  list which will work as the priority queue for deletion and store the Values. From the HashMap, 
  we can point to an element in the doubly linked list and update its' retrieval time. Because we
  go directly from the HashMap to the item in the list, our time complexity remains at O(1) 
*/
public class LRUCacheDemo {
    public static void main(String args[]) {
        LRUCache<Integer, Integer> lru = new LRUCache<>(3);
        for(int i=1; i<=9; ++i) {
            lru.put(i, 100*i+10*i+i); //i   iii
        }

        lru.get(8);
        /* for(Map.Entry<Integer, Integer> entry : lru.entrySet()) {
            System.out.printf("\n%1$-5s  %2$-5s", entry.getKey(), entry.getValue());
        } */

        System.out.println("LRU  : " + lru);
    }
} 

class LRUCache<K, V> extends LinkedHashMap<K, V> {
    private final int CACHE_SIZE;

    //NOTE : LinkedHashMap have already given implementation for LRU, this class has just used those method
    //See http://grepcode.com/file/repository.grepcode.com/java/root/jdk/openjdk/6-b14/java/util/LinkedHashMap.java#LinkedHashMap

    // LinkedHashMap(int initialCapacity, float loadFactor, boolean accessOrder)
    // accessOrder - to maintain in order of elements from least-recently accessed to most-recently.
    LRUCache(final int sizeIn) {
        super(sizeIn, 0.75F, true);
        this.CACHE_SIZE = sizeIn;
    }

    @Override 
    protected boolean removeEldestEntry(Map.Entry<K,V> eldest) {
        return size() > this.CACHE_SIZE; 
        /* Returns true if this map should remove its eldest entry. This method is invoked by put and putAll after 
           inserting a new entry into the map. It provides the implementor with the opportunity to remove the eldest 
           entry each time a new one is added. This is useful if the map represents a cache.
        */
    }
}

O/P :

LRU : {7=777, 9=999, 8=888}
1

Here is the java implementation with Generics and LinkedHashMap, and complexity of O(1) on get() and put().

import java.util.LinkedHashMap;

public class LRUCache<K, V> {

    private LinkedHashMap<K, V> lruCacheMap;
    private final int capacity;
    private final boolean SORT_BY_ACCESS = true;
    private final float LOAD_FACTOR = 0.75F;

    public LRUCache(int capacity){
        this.capacity = capacity;
        this.lruCacheMap = new LinkedHashMap<>(capacity, LOAD_FACTOR, SORT_BY_ACCESS);
    }

    public V get(K k){
        return lruCacheMap.get(k);
    }

    public void put(K k, V v){
        if(lruCacheMap.containsKey(k)){
            lruCacheMap.remove(k);
        }else if(lruCacheMap.size() >= capacity){
            lruCacheMap.remove(lruCacheMap.keySet().iterator().next());
        }
        lruCacheMap.put(k, v);
    }

    public void printSequence(){
        System.out.println(lruCacheMap.keySet());
    }
}

This is the code for testing it:

import java.util.Arrays;
import java.util.HashMap;
import java.util.Map;

public class TestLruCache {

    static class MyHardDrive {
        Map<String, Object> resources = new HashMap<>();

        MyHardDrive(){
            for(Character i='A'; i<='Z'; i++){
                resources.put(i.toString(), new Object());
            }
        }

        Object loadResource(String name){
            return resources.get(name);
        }
    }

    public static void main(String[] args) {
        MyHardDrive hd = new MyHardDrive();
        LRUCache<String,Object> cache = new LRUCache<>(4);

        for(String key: Arrays.asList("A","B","C","A","D","E","F","E","F","G","A")){
            Object object = cache.get(key);
            if(object==null){
                object = hd.loadResource(key);
                cache.put(key, object);
            }
            cache.printSequence();
        }
    }
}
  • 1
    This is essentially the same as Ciro's answer from 2 years ago. – Stephen C Nov 10 '17 at 4:07
  • Almost, his Generics is on the extended class. Here the Generics is on the LRUCache itself. Additionally, on this implementation, we're taking advantage of the construtor that sorts by access, so we don't have to call a put() during a get(). – wwesantos Nov 10 '17 at 4:21
0

Here is the java implementation

import java.util.HashMap;
import java.util.Map;

import com.nadeem.app.dsa.adt.Cache;
// Kind of linkedHashMap
public class LRUCache <K, V> implements Cache<K, V> {

private int capacity;
private Node<K, V> head, tail;
private Map<K, Node<K, V>> map;

private static final int DEFAULT_CAPACITY = 10;

public LRUCache(int capacity) {
    this.capacity = capacity;
    this.map = new HashMap<K, Node<K,V>>();
}

public LRUCache() {
    this(DEFAULT_CAPACITY);
}

@Override
public V get(K key) {
    V result = null;
    Node<K, V> node = this.map.get(key);
    if (node != null) {
        result = node.value;
        remove(node);
        addAsHead(node);
    }
    return result;
}

@Override
public void set(K key, V value) {
    Node<K, V> node = this.map.get(key);
    if (node == null) {
        Node<K, V> temp = new Node<K, V>(key, value);
        if (this.map.size() < this.capacity) {
            addAsHead(temp);
        } else {
            this.map.remove(this.tail.key);
            remove(this.tail);
            addAsHead(temp);
        }
        this.map.put(key, temp);
    } else {
        node.value = value;
        remove(node);
        addAsHead(node);
    }
}

private void remove(Node<K, V> node) {

    if (node.pre == null) {
        this.head = node.next;
    } else {
        node.pre.next = node.next;
    }

    if (node.next == null) {
        this.tail = node.pre;
    } else {
        node.next.pre = node.pre;
    }       
}

private void addAsHead(Node<K, V> node) {
    if (this.head == null) {
        this.head = node;
        this.tail = node;
    } else {
        this.head.pre = node;
        node.next = this.head;
        this.head = node;
    }
}

@Override
public void remove(K key) {
    Node<K, V> node = this.map.get(key);
    if (node != null) {
        this.remove(node);
    }       
}

private static class Node <S, T> {
    public S key;
    public T value;
    Node<S, T> pre;
    Node<S, T> next;

    Node(S key, T value) {
        this.key = key;
        this.value = value;
    }       
}

@Override
public int size() {
    return this.map.size();
}

}

Here is the unit test

public class LRUCacheTest {

private LRUCache<Integer, Integer> cache;

@Before
public void doBeforeEachTestCase() {
    this.cache = new LRUCache<Integer, Integer>(2);
}

@Test
public void setTest() {
    this.cache.set(1, 1);
    assertThat(this.cache.size(), equalTo(1));
    assertThat(this.cache.get(1), equalTo(1));

    this.cache.set(2, 2);
    assertThat(this.cache.size(), equalTo(2));
    assertThat(this.cache.get(2), equalTo(2));

    this.cache.set(3, 3);
    assertThat(this.cache.size(), equalTo(2));
    assertThat(this.cache.get(3), equalTo(3));

    this.cache.set(1, 3);
    assertThat(this.cache.size(), equalTo(2));
    assertThat(this.cache.get(1), equalTo(3));

    assertThat(this.cache.get(4), equalTo(null));
}

}

0
public class LeastRecentlyUsed {

    public static <K, V> Map<K, V> leastRecentlyUsedCache(final int maxSize) {
        return new LinkedHashMap<K, V>(maxSize , 0.7f, true) {
            private static final long serialVersionUID = -3588047435434569014L;
            @Override
            protected boolean removeEldestEntry(Map.Entry<K, V> eldest) {
                return size() > maxSize;
            }
        };
    }

    public static void main(String[] args) {
        Map<Object, Object> leastRecentlyUsed = LeastRecentlyUsed.leastRecentlyUsedCache(3);
        leastRecentlyUsed.put("Robert", "Raj");
        leastRecentlyUsed.put("Auzi", "Aiz");
        leastRecentlyUsed.put("Sandy", "S");
        leastRecentlyUsed.put("Tript", "tty");  
        System.out.println(leastRecentlyUsed);
    }
  }
  • 1
    Please explain how your post answers the question. – Julien Lopez Oct 21 '16 at 9:51
0

As K and Others have said this can be done with the LinkedHashMap class. At a squeeze you can get a minimal version in 15 lines of code.

@Ciro Santilli, why not just cut out the extra class definition? If the tests used put like other java maps then we wouldn't have to alias that method with a set method, which we would actually expect to return some sort of set view from the map.

import java.utils.LinkedHashMap
import java.util.Map;

public class LRUCache<K,V> extends LinkedHashMap<K,V> {
    private int maxSize;

    // and other constructors for load factor and hashtable capacity
    public LRUCache(int initialCapacity, float loadFactor, int maxSize) {
        super(initialCapacity, loadFactor, true);
        this.maxSize = maxSize;
    }

    @Override
    protected boolean removeEldestEntry(Map.Entry<K,V> eldest) {
        return size() > maxSize;
    }

    // I don't like this. set should return a set put should put an item
    public V set(K key, V value) {
        put(key, value)
    }
}

see here and In the Docs for more.

  • please write tests.your code not work. – oyss Jan 10 at 18:50

protected by Stephen C Nov 10 '17 at 4:02

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