33

I have Set of that structure. I do not have duplicates but when I call: set.add(element) -> and there is already exact element I would like the old to be replaced.

import java.io.*;

public class WordInfo implements Serializable {
    File plik;
    Integer wystapienia;

    public WordInfo(File plik, Integer wystapienia) {
        this.plik = plik;
        this.wystapienia = wystapienia;
    }

    public String toString() {
    //  if (plik.getAbsolutePath().contains("src") && wystapienia != 0)
            return plik.getAbsolutePath() + "\tWYSTAPIEN " + wystapienia;
    //  return "";
    }
    @Override
    public boolean equals(Object obj) {
        if(this == obj) return true;
        if(!(obj instanceof WordInfo)) return false;
        return this.plik.equals(((WordInfo) obj).plik);
    }

    @Override
    public int hashCode() {        
        return this.plik.hashCode();
    }
}
5
  • Unable to understand the relation between the code snippet and the question. Can you explain, where is the Set it in your code? Also, if your objects are exactly same, then why you want to replace? Nov 19 '12 at 4:15
  • @YogendraSingh - OP wants to be able to replace an old WordInfo in a set with a newer one that equals() the old one but is not the same object. (Note that the equals() test ignores the value of wystapienia.)
    – Ted Hopp
    Nov 19 '12 at 4:27
  • @TedHopp: Thanks, but still return this.plik.equals(((WordInfo) obj).plik); will make it to return true, no?? Nov 19 '12 at 4:32
  • @YogendraSingh - My point was that two WordInfo objects can be equals() without being ==. When two are equals() but not ==, OP wants to be able to replace one with the other in a Set. OP's question is: how to make the replace happen.
    – Ted Hopp
    Nov 19 '12 at 5:01
  • @TedHopp: I am trying to understand the question itself with the OP, i.e. why?, which I am still not convinced(may be this was pseudo example). I see your answer for how, which is good. I will leave it now. Thanks for your inputs. Nov 19 '12 at 5:08
60

Do a remove before each add:

 someSet.remove(myObject);
 someSet.add(myObject);

The remove will remove any object that is equal to myObject. Alternatively, you can check the add result:

 if(!someSet.add(myObject)) {
     someSet.remove(myObject);
     someSet.add(myObject);
 }

Which would be more efficient depends on how often you have collisions. If they are rare, the second form will usually do only one operation, but when there is a collision it does three. The first form always does two.

4
  • This causes me Exception in thread "main" java.util.ConcurrentModificationException when used with an Iterator
    – ThreaT
    Jun 18 '15 at 15:35
  • 2
    @ThreaT That is a separate problem from this question, which was about changing the behavior of add in a situation in which it could be called. I suggest asking it as a new question, with more background than you can put in a comment, unless you can find existing questions that help you. Jun 18 '15 at 16:03
  • hmm, then we can use simple List instead of Set
    – YTerle
    Apr 16 '18 at 12:03
  • The if statement from the second block of code could be simplified to if(someSet.remove(myObject))... as the remove method also returns true if myObject exists in the set. I would also think contains would be more efficient for the if, but less efficient on a whole when running the contents of the if statement.
    – dzimney
    Feb 23 '21 at 23:27
5

If the set already contains an element that equals() the element you are trying to add, the new element won't be added and won't replace the existing element. To guarantee that the new element is added, simply remove it from the set first:

set.remove(aWordInfo);
set.add(aWordInfo);
1
  • Just did it like a minute ago : ) Worked
    – Yoda
    Nov 19 '12 at 4:21
1

I was working on a problem where I had a set then I wanted to replace/override some of the objects with objects from another set.

In my case what I ended up doing was creating a new set and putting the overrides in first then adding the current objects second. This works because a set won't replace any existing objects when adding new objects.

If you have:

Set<WordInfo> currentInfo;
Set<WorldInfo> overrides;

Instead of:

for each override, replace the object in current info

I did:

Set<WordInfo> updated = new HashSet<>();
updated.addAll(overrides);
updated.addAll(currentInfo);
0

Try something as follows (this will only make sense if the equals and hashCode depends on one field, but the other fields could have different values):

if(!set.add(obj)) {
    //set already contains the element (not the same object though) 
    set.remove(obj); //remove the one in  the set
    set.add(obj); //add the new one
}

Check out the documentation for the Set.add method

If this set already contains the element, the call leaves the set unchanged and returns false.

2
  • -1 this won't work. you always want to add, regardless of what set() returns
    – Bohemian
    Nov 19 '12 at 4:19
  • ok no -1, but now your answer is just the same as Patricia's, and she was first to answer "correctly"
    – Bohemian
    Nov 19 '12 at 5:06
-2

Check the HashSet code within the JDK. When an element is added and is a duplicate, the old value is replaced. Folk think that the new element is discarded, it's wrong. So, you need no additional code in your case.

UPDATED---------------------

I re-read the code in JDK, and admit a mistake that I've made.

When put is made, the VALUE is replaced not the KEY from an HashMap.

Why am I talking about Hashmap??!! Because if you look at the HashSet code, you will notice:

public boolean add(E e) {
    return map.put(e, PRESENT)==null;
}

So the PRESENT value is replaced with the new one as shown in this portion of code:

      public V put(K key, V value) {
        if (key == null)
            return putForNullKey(value);
        int hash = hash(key);
        int i = indexFor(hash, table.length);
        for (Entry<K,V> e = table[i]; e != null; e = e.next) {
            Object k;
            if (e.hash == hash && ((k = e.key) == key || key.equals(k))) {
                V oldValue = e.value;
                e.value = value;
                e.recordAccess(this);
                return oldValue;
            }
        }

        modCount++;
        addEntry(hash, key, value, i);
        return null;
    }

But I agree, the key isn't replaced, and since the keys represent the HashSet's values, this one is said to be "untouched".

9
  • 2
    That is an internal implementation detail that should not be relied on.
    – Perception
    Nov 19 '12 at 4:17
  • If the replacement happens, then HashSet is not following the Set contract for add: "the call leaves the set unchanged and returns false" Nov 19 '12 at 4:20
  • 3
    -1 this is just plain wrong: same hashcode does not mean same object. The new element is discarded! See javadoc: If this set already contains the element, the call leaves the set unchanged and returns false
    – Bohemian
    Nov 19 '12 at 4:20
  • @Bohemian I've never said that I'm talking about same hashcodes. Talking about same objects.
    – Mik378
    Nov 19 '12 at 4:24
  • 1
    I've run a test, and I'm glad to confirm that HashSet does indeed conform to the Set contract, keeping the old object in case of an attempt to add an object that is equal to an existing element of the Set. Nov 19 '12 at 4:31

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