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I have a list of items and when I check an item, it goes at the end of the list. I want the application to be thread safe.

Is the code of "checkItem" thread safe in regards to the list "items"?

  public class ItemListImpl implements ItemList {

        List<Item> items = Collections.synchronizedList(new ArrayList<Item>());

        /**
         * Checks an item and brings it at the end of the list
         */
        public void checkItem(int index) {
            Item item = items.get(index);
            item.check();

            synchronized (items) {
                items.remove(item);
                items.add(items.size(), item);
            }

        }
    }

(forget the fact that I use the item's index. I'll use the object or an id)

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What does item.check() do? –  Jeffrey Aug 17 '12 at 2:25
    
It changes a private property of the item (isChecked = true) –  mrmuggles Aug 17 '12 at 2:41
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2 Answers 2

up vote 2 down vote accepted

We need to realize that items is a synchronized list, and that a synchronized list uses itself as its primitive mutex. This means that all of the individual list operations AND ALSO the synchronized block are synchronizing on items.

Therefore, the only point at where stuff could happen in an unsynchronized fashion is in the gap between the get call completing and the start of the synchronized block. So is that a problem?

Well lets consider what could happen:

  • If some other thread moves the position of the Item, it doesn't matter. We'll find simply move it to the end anyway.

  • If some other thread removes the Item, it doesn't matter. Our call to remove will return false, but we'll still add the Item back.

Problems only arise if it is possible for a given Item to appear at more than one place in the items list. If that occurs, then it is possible that the code will move the items element at the wrong position to the end of the list; e.g.

  1. Thread A calls get(42) to fetch Item I.
  2. Thread B inserts Item I at position 1.
  3. Thread A completes the check, and removes and readds Item I ... but since I now appears at position 1 as well, it actually removes and adds that copy, not the copy at position 42.

In short, the code is thread-safe if we can assume that the a given Item object can appear at most one time in the list. If we can't assume that, then there is a risk that we will move the object at the wrong position.

It should also be noted that the code won't work properly in the case where a given Item can appear more than once. The problem is that remove(item) removes the first reference to the item instance it finds, not necessarily the one at position index. There are two ways to look at this. If this behaviour is unintended, it is a bug. If it is intended, then the thread-safety concern is a probably non-issue.


Either way, the code is safe with respect to the memory model, assuming that the check method is thread-safe.

share|improve this answer
    
+1, Excellent explanation –  Jeffrey Aug 17 '12 at 2:55
    
thanks, it makes sense! –  mrmuggles Aug 17 '12 at 3:02
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Make the following change to make it threadsafe.

 public void checkItem(int index) {
            synchronized (items){    
                Item item = items.get(index);
                item.check();          
                items.remove(item);
                items.add(items.size(), item);
            }

    }
share|improve this answer
    
Why do we have to put the items.get and item.check in the synchronized block? –  mrmuggles Aug 17 '12 at 2:27
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