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I have a set of objects with two kinds of priorities. I can create two PriorityQueues ordered by each of them. The problem is that when I dequeue element from one of them it will obviously not disappear from the other one.

Is it possible to create 2 queues "in sync", so that when element is removed from one then it will be removed from the other?

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That looks like a nice usecase for ScalaSTM nbronson.github.com/scala-stm/index.html –  llemieng Feb 14 '11 at 10:35
    
I don't want to have any concurrency involved. –  Łukasz Lew Feb 14 '11 at 10:37
    
This is just a wild guess based on the class name, but perhaps SynchronizedPriorityQueue could do it? –  Knut Arne Vedaa Feb 14 '11 at 10:49
    
When you say you don't want to have any concurrency involved, do you mean that you don't need this to be used from more than 1 thread? –  Eric Bowman - abstracto - Feb 14 '11 at 11:31
    
My program is single threaded. What I need is a way to remove non-top element from priority queue. –  Łukasz Lew Feb 14 '11 at 16:00

2 Answers 2

This warrants a special kind of a data structure. The standard "binary heap under the hood" priority queue available in the standard library cannot do the trick, because it doesn't know "where" in the other binary heap the required element is.

A similar problem happens when you try to implement Dijkstra's algorithm or A*. The trick that works there is to use 2 ordered trees as if they were queues - you can pop the first element, and you can then search for it in the other tree.

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I don't have to be that efficient. I just need a way to remove non-top element from priority queue. –  Łukasz Lew Feb 14 '11 at 16:01
    
Of course, if you meant - search for the element linearly through the priority queue and then remove it (O(n)), this might make sense to add to the API. Maybe file a ticket. –  axel22 Feb 14 '11 at 16:22

If you do not need logarithmic operations, just use double linked list as queues. They do not guarentee FIFO but provide what you need.

You can easily wrap two of those in one class.

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