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I'm probably missing something since I'm still learning the in's and outs of MongoDB. But I need help with paging a collection.

I have a collection that has a list of names.

Bottom Round of Beef
Chicken Breast 6oz
Chicken Breast 8oz
Chicken Breast 8oz
Chicken Breast 8oz
Chicken Breast Random
Chicken Legs
Chicken Tenderloin
Chicken Thighs
Kosher Salt

I created an compound index on "ProductName,_id".

I run this query.

db.ProductGuideItem.find( { ProductName: { $gt: "Chicken Breast 8oz" } } ).sort({ProductName:1,_id:1}).limit(3); 

Notice there are 3 "Chicken Breast 8oz" items.

If I run that query I get...
Chicken Breast Random
Chicken Legs
Chicken Tenderloin

If I was paging and started from the top. The query would have missed the other 2 "Chicken Breast 8oz".

So if each page can only have 3 items and I want to see page 2 then I should see..
Chicken Breast 8oz
Chicken Breast 8oz
Chicken Breast Random.

But I'm not. Its going to the last Chicken Breast 8oz and starting from there instead.

Is there a way around this?
Also how would I do this if the list was sorted the opposite way?

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What is your claim? The three returned rows are perfectly fine and matching your query or what do you expect and why? –  Andreas Jung Apr 2 '11 at 19:26
    
First of all relax. Obvously I'm not explaining this correctly. If each page can only have 3 items and I want to see page 2 then I should see Chicken Breast 8oz, Chicken Breast 8oz, Chicken Breast Random. But I'm not. Its going to the last Chicken Breast 8oz and starting from there instead. –  Donny V. Apr 2 '11 at 19:32
1  
@Donny, IMO, RestRisiko has a point here (perhaps not not so delicately put, but let's leave it at that). You could have posted a link to your question on the mailing list, so that people who might want to answer you here could first check if the answer they were planning to post wasn't already suggested elsewhere. –  Bart Kiers Apr 2 '11 at 20:07
6  
@RestRisiko: Even if this question has been answered somewhere else, it's perfectly valid to ask again unless it's already been asked and answered here. If you find reading the same question again to be boring, then there's no need to click the link. StackOverflow is intended to be a community resource, and the questions are, at least in concept, intended to provide answers to more than just the OP, and saying something like "look at the answers to your question on the mailing list" is not particularly helpful in accomplishing that. –  Adam Robinson Apr 2 '11 at 21:08
2  
@Donny V.: I agree with @Adam Robinson. You can ask here as long as it's not already asked here. I don't think we owe anything to any other site... –  user357812 Apr 2 '11 at 21:19

2 Answers 2

up vote 15 down vote accepted

Since the collection I was paging had duplicate values I had to create a compound index on ProductName and id.

Create Compound Index

db.ProductGuideItem.ensureIndex({ ProductName:1, _id:1});

This solved my problem.
Reference: https://groups.google.com/d/msg/mongodb-user/3EZZIRJzW_A/oYH79npKZHkJ

Assuming you have these values:

{a:1, b:1}
{a:2, b:1}
{a:2, b:2}
{a:2, b:3}
{a:3, b:1}

So you do this for the range based pagination (page size of 2):

1st Page

find().sort({a:1, b:1}).limit(2)
{a:1, b:1}
{a:2, b:1}

2nd Page

find().min({a:2, b:1}).sort({a:1, b:1}).skip(1).limit(2)

{a:2, b:2}
{a:2, b:3}

3rd Page

find().min({a:2, b:3}).sort({a:1, b:1}).skip(1).limit(2)
{a:3, b:1}

Here are the docs for $min/max: http://www.mongodb.org/display/DOCS/min+and+max+Query+Specifiers

If you don't have duplicate values in your collection, you don't need to use min & max or create a compound index. You can just use $lt & $gt.

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I think this is an interesting and useful perspective for range based paging on non-unique fields. However, I do not think that your compound index is much use if the _id field is part of the query. The reason is that the _id field is unique, and it will automatically be able to use the default _id index rather than the compound index. See here for the reasoning stackoverflow.com/questions/9598633/… –  Zaid Masud Jun 26 '12 at 14:16
    
When using this method you need to force mongodb to use the index { ProductName:1, _id:1} If you don't your results will be out of order. –  Donny V. Jun 27 '12 at 14:18
    
This is not suitable for pagination where you display a pagination component (e.g. Page 1, Page 2, Page 3, ..., Page 10) to the user, as you cannot randomly click on a Page #N link, because for that to work, first you would need the last ObjectID for Page #N-1. This is more appropriate for "infinite scroll" pages like Google+, Facebook, or Twitter. –  Behrang Feb 9 at 12:05
    
Actually I ended up creating an index of the first item of every page and using that as a way to jump from one page to another. I was only dealing with a couple hundred items, so it wasn't a big deal. Probably wouldn't scale with a large set. –  Donny V. Aug 5 at 18:31

You just need to call skip on the cursor

see MongoDB documentation on cursor skip "This approach may be useful in implementing “paged” results".

This example is taken from Mongodb's example

function printStudents(pageNumber, nPerPage) {
   print("Page: " + pageNumber);
   db.students.find().skip((pageNumber-1)*nPerPage).limit(nPerPage).forEach( function(student) { print(student.name + "<p>"); } );
}
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