Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm looking for a Mongo equivalent of the following:

select distinct event_type_id from events
order by created_at desc
limit 10,20

The Event Mongo document is as follows:

{
  _id: BSON(), event_type_id: 1, created_at: Date(), other_data: {}
}

Thank you for your help.

share|improve this question

3 Answers 3

up vote 2 down vote accepted

You can use Aggregation Framework on new mongo versions. Here is the example to start from:

db.events.aggregate([
    {$sort:{"created_at":-1}},
    {$project:{"event_type_id":1}},
    {$group:{"_id":"$event_type_id"}},
    {$skip:10},
    {$limit:20}
])

Here is another approach, thanks to @JoachimIsaksson

db.events.aggregate([
    {$group:{"_id":"$event_type_id", "created_at":{$max:"$created_at"}}},
    {$sort:{"created_at":-1}},
    {$skip:10},
    {$limit:20},
    {$project:{"event_type_id":1}}
])
share|improve this answer
1  
Is there any way of doing the distinct too? –  Joachim Isaksson Jan 10 '13 at 22:25
    
Sorry, missed that moment. I've updated the code. –  madhead Jan 10 '13 at 22:28
    
Sorry to be a pain, trying to learn... :) Can you really group after sort and keep the order? –  Joachim Isaksson Jan 10 '13 at 22:30
    
Hmmm.. thats a question. –  madhead Jan 10 '13 at 22:32
1  
I was thinking something along; {$group:{_id:"$event_type_id", ord:{ $max:"$created_at"}}},{$sort:{"ord":-1}},{$project:{"event_type_id":1}},{$skip:1‌​0},{$limit:20} but I'm freetexting here without anything to try on :) –  Joachim Isaksson Jan 10 '13 at 22:37

You can always do this via the aggregation framework introduced in v2.2:

db.col.aggregate(
    {$group: {_id: "$event_type_id", created_at: "$created_at"}},
    ($sort: {"$created_at":-1}
);

Something like that will group, which will be the same as distinct really, all event_type_id values and sort by created_at descending.

This should be OK but be warned that at the moment it has a 16meg output limit (atm) so if you are looking to output a huge document you might find it difficult.

Edit

For performance you can actually make the sort occur first using an index and then $group:

db.col.aggregate(
    { $sort: {"$created_at":-1} },
    { $group: {_id: "$event_type_id", created_at: {$first: "$created_at"}} }
);

This uses the $first ( http://docs.mongodb.org/manual/reference/aggregation/first/ ) operator to get the first value for that field on this group. You can also use the $last operator too, these of course translate to the normal $min and $max but for a sorted set.

share|improve this answer

I don't think you can combine limit and skip commands with distinct query in mongo. The below code will return the equivalent of following sql statement:

select distinct event_type_id from events
order by created_at desc

db.events.distinct( 'event_type_id', {}, {createdAt: -1} })

After retrieving the results you may extract the subset out of it according to your need. Also you might check the following post too: How to use Distinct, Sort, limit with mongodb

Apparently this is an open ticket on mongo community, you can check the issue too, it looks like they won't implement combination of limit and distinct for awhile https://jira.mongodb.org/browse/SERVER-2130

share|improve this answer
1  
I can only find 2 parameters to distinct documented, where did you find the third? :) –  Joachim Isaksson Jan 10 '13 at 22:17
    
I just tried it on mongo shell and it worked out =) –  cubbuk Jan 10 '13 at 22:22
    
javascript lets you call a method with arbitrary number of params, but this won't work. –  Sohan Jan 10 '13 at 22:29
    
But it gives the correct result from the shell, how can that happen? –  cubbuk Jan 10 '13 at 22:33
    
@cubbuk It may be returning the results in insertion order, and that order happens to be what you're expecting? Does it work to reverse the order by sorting ascending? –  Joachim Isaksson Jan 10 '13 at 22:48

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.