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Let's say my MongoDB schema looks like this:

{car_id: "...", owner_id: "..."}

This is a many-to-many relationship. For example, the data might look like this:

+-----+----------+--------+
| _id | owner_id | car_id |
+-----+----------+--------+
|   1 |        1 |      1 |
|   2 |        1 |      2 |
|   3 |        1 |      3 |
|   4 |        2 |      1 |
|   5 |        2 |      2 |
|   6 |        3 |      4 |
|   7 |        3 |      5 |
|   8 |        3 |      6 |
|   9 |        3 |      7 |
|  10 |        1 |      1 | <-- not unique
+-----+----------+--------+

I want to get the number of cars owned by each owner. In SQL, this might look like:

SELECT owner_id, COUNT(*) AS cars_owned
FROM (SELECT owner_id FROM car_owners GROUP BY owner_id, car_id) AS t
GROUP BY owner_id;

In this case, the result would look like this:

+----------+------------+
| owner_id | cars_owned |
+----------+------------+
|        1 |          3 |
|        2 |          2 |
|        3 |          4 |
+----------+------------+

How can I accomplish this same thing using MongoDB using the aggregation framework?

share|improve this question
16  
@JohnnyHK, I don't think me listing the 10 different ways I've tried to accomplish this will help you or anyone else answer this question more effectively, because they didn't work. I have already done some legwork in explaining exactly what I'm trying to do, and the approach I might take in SQL. I have looked up and down the MongoDB documentation, and none of my pipeline aggregation approaches have worked, probably because I'm still new to using the aggregation framework. – Matthew Ratzloff Nov 5 '12 at 21:39
    
In your schema, does each document just have one car (represented by id) ? In that case, to find the number of cars owned by an owner, aren't you really just looking for how many documents in your collection have that owner_id ? In that case, you could do something like db.foo.find( { owner_id : [owner id here] } ).count() to get the number of documents in your collection with that owner_id. – Louisa Nov 5 '12 at 21:46
3  
It's totally fine that your existing code doesn't work, but by posting it we can see what direction you were taking and what concept you may be missing. – JohnnyHK Nov 5 '12 at 21:47
    
@Louisa, it's a many-to-many relationship. There can be many cars and many owners. – Matthew Ratzloff Nov 5 '12 at 21:48
    
Can there be multiple docs with the same owner_id/car_id pair? e.g. two docs where owner_id = 1 and car_id = 1? – JohnnyHK Nov 5 '12 at 21:58
up vote 61 down vote accepted

To accommodate the potential duplicates, you need to use two $group operations:

db.test.aggregate([
    { $group: {
        _id: { owner_id: '$owner_id', car_id: '$car_id' }
    }},
    { $group: {
        _id: '$_id.owner_id',
        cars_owned: { $sum: 1 }
    }},
    { $project: {
        _id: 0,
        owner_id: '$_id',
        cars_owned: 1
    }}]
    , function(err, result){
        console.log(result);
    }
);

Gives a result with a format of:

[ { cars_owned: 2, owner_id: 10 },
  { cars_owned: 1, owner_id: 11 } ]
share|improve this answer
2  
Great answer. I was really close. I had the pipelined 2 groups, but I was supplying a field name to the $sum operator instead of a 1. This solved it. Thanks! – Matthew Ratzloff Nov 5 '12 at 22:18
1  
How can I limit the output to only those that own more than one car (cars_owned > 1)? – Ingvi Gautsson Oct 12 '14 at 22:38

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