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I have a very big list of element in my non-sql database.

Every element has a sort order from 1 to N. This sort order specifies how the results appear on the forms.

When in the UI triggers a change of order (put element i in position j) I need to update all the entities between. If the element 1 becomes the lastest, I need to make N updates.

Is there an efficient way to make this operation less costly? Is there an smart way to index the sort value?

Some considerations:

  • I'm re-designing my application so I can afford to reindex the entities with a smarter solution.
  • The cost of a write (update) is +-4 times bigger than a fetch (read 1 entity).
  • The list is big, does not fit in memory.
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As far as javascript goes, the less changes to the DOM you make, the better. It would be best if you could determine your form elements' orders before using appendChild. –  Steve Binder Sep 25 '12 at 20:44
    
First, do the elements have to be actual random-access indices, or just in monotonically-increasing order. (For example, if you could add two elements at position 2.333 and 2.666 and have them show up between 2 and 3, would that be good enough, or do you need to know that the one at position 3 is actually the 4th one rather than the 6th?) –  abarnert Sep 25 '12 at 20:49
    
Second, I'm assuming lookups have to be faster than inserts/moves, but if that's not true, that opens up a wider range of answers, so it's worth asking… –  abarnert Sep 25 '12 at 20:51
    
Third, are you keeping a list/dict/whatever of elements with (among other members) sort orders, plus a separate list/array/whatever in sort order (like a SQL-style index)? What are the actual data structures you're using? –  abarnert Sep 25 '12 at 20:55
1  
What language? You got multiple of them listed. –  Caesar Sep 25 '12 at 20:55

4 Answers 4

up vote 2 down vote accepted
  1. Reindex your entities. Set order property to double.
  2. Every time a user moves an entity to a new position, assign it a new order property between the other two entities:

    entityA.setOrder((entityB.getOrder() + entityC.getOrder())/2);

  3. Save entity A (property "order" should be indexed).

  4. When a user requests entities from 10000 to 10200, build a Query on your order property with a sort order. Retrieve results from 10000 to 10200:

    datastore.prepare(q).asList(FetchOptions.Builder.withOffset(10000).limit(200));

  5. Never reindex your entities again. Datastore does it for you every time you save an entity.

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I agree, this is pretty much the same as what I was suggesting. While doubles are indeed sparse, assuming you have infinite space is courting disaster. Let's say he makes a wildly successful twitter clone and has a trillion entities (about 3 days of tweets if each tweet was an entity). If he sorts once per second, yes, at the worst case he could hit a collision in about 8 years. However in a month, when he has 8x the data, it would only take him 1 year to hit the collision. It really depends how much data and how much sorting he's doing, but it's not impossible. –  dragonx Sep 26 '12 at 15:27
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You are suggesting that his app will have something like 18,000,000 of TRILLIONS of records in about a year? We can safely assume it's not going to happen. If hits just one trillion, he'll be tweeting from his yacht in France. –  Andrei Volgin Sep 26 '12 at 15:37
    
I wish! The practical answer is no, I won't have trillions of entities but the question is which is the most efficient way. We can discuss a lot about what is efficiency. I'd say the best solution is the one it can handle more data with less collisions with the minimum ops. –  Jordi P.S. Sep 27 '12 at 8:15
    
There will be no collisions in my solution, and there is zero cost: no extra reads or writes relative to just saving your entity with a new order number. It won't get more efficient than that. –  Andrei Volgin Sep 27 '12 at 10:58

In my opinion, there is not other alternative with your current model. Like an indexed collection, you have to "re-index" elements when you move them: decrement or increment part of the collection

Change the model could be a solution for your requirements. You could try to design it like a linked list , where remove/move/insert operations are "cheaper". Every element knows its next (simple) or next and previous elements(Double)

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If I use a linked list strategy (I guess you mean by pointing to the next element) then the cost is 2 operations but then at every sort I need to load all the data and then rebuild the list so I can then sort it. –  Jordi P.S. Sep 25 '12 at 21:08
    
@Jordi can you explain what you mean by "loading" all the data and "rebuilding" the list? –  Bitwise Sep 25 '12 at 21:31
    
When I want to display the elements from 10000 to 10200 sorted, assuming I don't have the elements phisically sorted, I need to retrieve the whole data, construct the linked list, go thru it and get those elements. In your solution is cheap to update but not ideal to read. –  Jordi P.S. Sep 25 '12 at 21:40
    
@Jordi, I see your point, but with your current design removing the first element or moving it to the end has the same effect. –  Víctor Herraiz Sep 26 '12 at 9:20
    
I agree. Your solution is 4 times cheaper than mine,since reads are 4 times cheaper but still O(N). –  Jordi P.S. Sep 26 '12 at 13:24

you can separate sort order & UI data from other bulky data in each entity. the later can remain unchanged.

hmm, if you have this:

entitles = [bigdata1, bigdata2, bigdata3, ...]
order_numbers = [2, 3, 1, ...]

order_numbers can be the result of a sort or arbitrarily user defined values.

then you have

display_order = [2, 0, 1, ...]

means bigdata3 is displayed first. If UI wants to change the orders in anyway, only order_numbers and display_order need changes, not entitles. This is my understanding.

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I'm not sure I have understood your answer. Can you extend it? –  Jordi P.S. Sep 25 '12 at 21:42
    
The question is not about UI. It's about efficient way to reindex 2 million entities in a datastore. –  Andrei Volgin Sep 25 '12 at 22:04
    
quote: When in the UI triggers a change of order (put element i in position j) I need to update all the entities between. If the element 1 becomes the lastest, I need to make N updates. What values in an entities need to be updated? it could not be everything. give me an example. –  swang Sep 26 '12 at 1:58

I'm assuming you're storing entities in the GAE datastore and letting the datastore index the entities for you. The datastore uses a linked-list like index, but you don't have access to the linked list.

I don't think there's a perfect mechanism, but instead of sorting your N items from 1..N, I'd use a large sparse set of numbers (for example, use floats), and evenly distribute your entities across that range. Whenever you sort an item, simply generate a new index value that exists between the two new neighbors.

If you hit a worst case scenario, where the neighbors are too close together, generate new indexes for the neighbors, and so forth. A more advanced system might guarantee that there is a minimum amount of space between entities after every re-sort, and reindex a few extra neighbors proactively.

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Appengine stores all floats as doubles. I am not sure what you mean by "too close together". It would take him a billion years to run out of double's precision. –  Andrei Volgin Sep 26 '12 at 14:41

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