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It's said that using skip() for pagination in MongoDB collection with many records is slow and not recommended.

Ranged pagination (based on >_id comparsion) could be used

db.items.find({_id: {$gt: ObjectId('4f4a3ba2751e88780b000000')}});

It's good for displaying prev. & next buttons - but it's not very easy to implement when you want to display actual page numbers 1 ... 5 6 7 ... 124 - you need to pre-calculate from which "_id" each page starts.

So I have two questions:

1) When should I start worry about that? When there're "too many records" with noticeable slowdown for skip()? 1 000? 1 000 000?

2) What is the best approach to show links with actual page numbers when using ranged pagination?

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2 Answers 2

up vote 51 down vote accepted

Good question!

"How many is too many?" - that, of course, depends on your data size and performance requirements. I, personally, feel uncomfortable when I skip more than 500-1000 records.

The actual answer depends on your requirements. Here's what modern sites do (or, at least, some of them).

First, navbar looks like this:

1 2 3 ... 457

They get final page number from total record count and page size. Let's jump to page 3. That will involve some skipping from the first record. When results arrive, you know id of first record on page 3.

1 2 3 4 5 ... 457

Let's skip some more and go to page 5.

1 ... 3 4 5 6 7 ... 457

You get the idea. At each point you see first, last and current pages, and also two pages forward and backward from the current page.

Queries

var current_id; // id of first record on current page.

// go to page current+N
db.collection.find({_id: {$gt: current_id}}).
              skip(N * page_size).
              limit(page_size).
              sort({_id: 1});

// go to page current-N
db.collection.find({_id: {$lt: current_id}}).
              skip((N-1)*page_size).
              limit(page_size).
              sort({_id: 1});
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Thanks, that's exactly what I need. Great combined aprroach - range by "_id" + skip(), very easy to use, much better than all aproaches I have read today while searching about the subject. –  oyatek Mar 14 '12 at 15:03
1  
good answer, but in this approach you must know current page number. Only way to know it - is to send it in request –  vacuum May 24 '12 at 8:41
    
Not the only one, but the one I'd choose. –  Sergio Tulentsev May 24 '12 at 8:46
    
will this work if index need to be reversed? sort({_id: -1}) –  vacuum May 28 '12 at 11:53
    
and one more question: how to effectively get last page ? –  vacuum May 28 '12 at 13:11

It's hard to give a general answer because it depends a lot on what query (or queries) you are using to construct the set of results that are being displayed. If the results can be found using only the index and are presented in index order then db.dataset.find().limit().skip() can perform well even with a large number of skips. This is likely the easiest approach to code up. But even in that case, if you can cache page numbers and tie them to index values you can make it faster for the second and third person that wants to view page 71, for example.

In a very dynamic dataset where documents will be added and removed while someone else is paging through data, such caching will become out-of-date quickly and the limit and skip method may be the only one reliable enough to give good results.

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thanks for the answer! –  oyatek Mar 14 '12 at 15:10

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