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Which implementation is less "heavy": PriorityQueue or a sorted LinkedList (using a Comparator)?

I want to have all the items sorted. The insertion will be very frequent and ocasionally I will have to run all the list to make some operations.

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msr - you should accept good answers to your questions, or people will stop answering you and your teeth will fall out. –  Will Dean Jul 27 '10 at 15:56

10 Answers 10

up vote 20 down vote accepted

A LinkedList is the worst choice. Either use an ArrayList (or, more generally, a RandomAccess implementor), or PriorityQueue. If you do use a list, sort it only before iterating over its contents, not after every insert.

One thing to note is that the PriorityQueue iterator does not provide the elements in order; you'll actually have to remove the elements (empty the queue) to iterate over its elements in order.

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+1 for mentioning the iteration order for PriorityQueue. –  Natix Oct 14 '12 at 22:55
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You don't have to empty the queue to iterate over the elements in order. As per java documentation : "If you need ordered traversal, consider using Arrays.sort(pq.toArray())". Link: docs.oracle.com/javase/8/docs/api/java/util/PriorityQueue.html –  SobiborTreblinka Aug 21 '14 at 13:50
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@SobiborTreblinka Then you aren't iterating over the elements of the queue, but the elements of a new List. Since the user was specifically asking whether to use a List or a PriorityQueue, it wouldn't make sense to use a queue with its extra overhead if you end up using a list every time anyway. –  erickson Aug 21 '14 at 15:16

adding objects to the priority queue will be O log(n) and the same for each pol. If you are doing inserts frequently on very large queues then this could impact performance. Inserting into the top of an ArrayList is constant so on the whole all those inserts will go faster on the ArrayList than on the priority queue.

If you need to grab ALL the elements in sorted order the Collections.sort will work in about O n log (n) time total. Where as each pol from the priority queue will be O log(n) time, so if you grab all n things from the queue that will again be O n log (n).

The use case where priority queue wins is if you are trying to find what the biggest value in the queue is at any given time. To do that with the ArrayList you have to sort the whole list each time you want to know the biggest. But with the priority queue it always knows what the biggest value is.

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Does the java documentation mandate the algorithms that would give the performance you suggest? –  SheetJS Sep 21 '13 at 22:54

I have made a small benchmark on this issue. If you want your list to be sorted after the end of all insertions then there is almost no difference between PriorityQueue and LinkedList(LinkedList is a bit better, from 5 to 10 percents quicker on my machine), however if you use ArrayList you will get almost 2 times quicker sorting than in PriorityQueue.

In my benchmark for lists I measured time from the beginning of filling it with values till the end of sorting. For PriorityQueue - from the beginning of filling till the end of polling all elements(because elements get ordered in PriorityQueue while removing them as mentioned in erickson answer)

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I can see two options, which one is better depends on whether you need to be able to have duplicate items.

If you don't need to maintain duplicate items in your list, I would use a SortedSet (probably a TreeSet).

If you need maintain duplicate items, I would go with an LinkedList and insert new items into the list in the correct order.

The PriorityQueue doesn't really fit unless you want to remove the items whenever you do operations.

Going along with the others, make sure you use profiling to make sure you're picking out the correct solution for your particular problem.

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The issue with PriorityQueue is that you have to empty the queue to get the elements in order. If that is what you want then it is a fine choice. Otherwise you could use an ArrayList that you sort only when you need the sorted result or, if the items are distinct (relative to the comparator), a TreeSet. Both TreeSet and ArrayList are not very 'heavy' in terms of space; which is faster depends on the use case.

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There is a fundamental difference between the two data structures and they are not as easily interchangeable as you might think.

According to the PriorityQueue documentation:

The Iterator provided in method iterator() is not guaranteed to traverse the elements of the priority queue in any particular order.

Use an ArrayList and call Collections.sort() on it only before iterating the list.

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java.util.PriorityQueue is

"An unbounded priority queue based on a priority heap"

. The heap data structure make much more sense than a linked list

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Do you need it sorted at all times? If that's the case, you might want to go with something like a tree-set (or other SortedSet with a fast lookup).

If you only need it sorted occasionally, go with a linked list and sort it when you need access. Let it be unsorted when you don't need access.

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If you use a LinkedList, you would need to resort the items each time you added one and since inserts are frequent, I wouldn't use a LinkedList. So in this case, I would use a PriorityQueue's If you will only be adding unique elements to the list, I recommend using a SortedSet (one implementation is the TreeSet).

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An insert on PriorityQuery is documented as O(ln n). (Insertion into a LinkedList is O(n)) –  Kathy Van Stone May 20 '10 at 22:06
    
java.util.LinkedList is optimized for adding elements to the end of the list, making it an O(1) operation. However, sorting a LinkedList has horrible performance. –  erickson May 20 '10 at 22:19
    
@erickson: Even for first and last inserts there is a better alternative in Java 6: java.util.ArrayDeque. –  Alexander Pogrebnyak May 20 '10 at 22:37
    
Be careful with SortedSet! It is the set's Ordering that determines whether or not a value is already in the set, not equals(). For example, if you have a SortedSet of Vectors ordered on the size of the vector, then the set will only hold one vector of length 4. Only use SortedSet if you are sure that different values will never be considered equal by the set's Ordering#compare. –  AmigoNico Dec 22 '13 at 10:11

You should implement both and then do performance testing on actual data to see which works best in your specific circumstances.

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Is there ever a circumstance where LinkedList would actually be faster for maintaining sorted entries with frequent inserts? –  Jeff Storey May 20 '10 at 21:57
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Yes. If the inserts happen very often, and the lookups don't, it might be best to just appened and sort on the lookup. You can cache whether it's been sorted or not. It depends on how often each occurs. That's where the testing comes in. This really should be a test question in a sophomore Data Structures class. –  corsiKa May 20 '10 at 21:59
    
I meant if the list needed to be constantly sorted and not only sorted on demand. No need to be condescending. –  Jeff Storey May 20 '10 at 22:04
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I'd go with @Jeff's TreeSet. No need to implement and test. In a Linked List, both the insert and lookup will be O(n) assuming the list is always sorted. That's because unlike Arrays or ArrayLists, LinkedList will have to iterate from beginning to nth index to get the nth element, so you can't efficiently do Binary Search. The inserts are O(n) as well because it will first have to search the location to insert (assuming list is sorted) even though the insert operation itself will be O(1). –  Cem Catikkas May 20 '10 at 22:13

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