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I have user document collection,like this:

User {
   id:"001"
   name:"John",
   age:30,
   friends:["userId1","userId2","userId3"....]
}

some user have many many friends(10000), How can I do like in SQL:

select * from user where in (select friends from user where id=?) order by age.

I would like to have only one query but i dont know if its possible.

Thanks

share|improve this question
    
Maybe you need Database References - docs.mongodb.org/manual/reference/database-references – Sergey Boguckiy May 7 '13 at 14:35
up vote 22 down vote accepted

I'm just learning MongoDB myself but I think you can't do what you want in just one query. You would have to first retrieve the list of friend user ids, then pass those ids to the second query to retrieve the documents and sort them by age.

var user = db.user.findOne({"id" : "001"}, {"friends": 1})
db.user.find( {"id" : {$in : user.friends }}).sort("age" : 1);

Hope this helps.

share|improve this answer
2  
Note that the SQL posted in the question is also two queries (although it would be possible with one with better organization ie a friends table) – Pete V. Feb 12 '12 at 20:00
1  
I think if you were to convert that to a "proper" database friends would automatically end up in a separate table by anyone that knows anything about database design and normalization. – wobbily_col Nov 10 '13 at 16:41
    
Actually, you would be better off with a relational entity on the sql side so that you could do select users.* from users join friends on friends.friend_id = users.id and friends.user_id = ? order by users.age ... rather than two effective users tables ... – EmeraldD. Jul 2 '15 at 21:57

https://docs.mongodb.org/manual/reference/operator/aggregation/lookup/

This is the doc for join query in mongodb , this is new feature from version 3.2.

So this will be helpful.

share|improve this answer

MongoDB doesn't have joins, but in your case you can do:

db.coll.find({friends: userId}).sort({age: -1})
share|improve this answer
    
Hi,I not understand you,I want to get friends of the specified user ,and sort these friends by age. – L.J.W Dec 30 '10 at 15:09
    
mongodb.org/display/DOCS/Querying – pingw33n Dec 30 '10 at 17:38
    
Hi,I have read the mongodb.org/display/DOCS/Querying,but I can not find the solution..So I question here. – L.J.W Dec 31 '10 at 1:07
4  
This is a correct solution if the friends list is symmetric: if A is a friend of B, then B will be a friend of A. What pingw33n is doing here is to say: give me all users who have userId as a friend. So this isn't finding a user, then finding their friends. If your friendship relation isn't symmetric (if it is a follow-type relation such as Twitter, then you'll have to go with dannie.t's approach, of doing it in two stages. Or else add a field for the reverse relation ('friendedBy', say) and do it this way. This is "de-normalization": storing the same data in more than one way for speed. – Ian Nov 4 '11 at 17:11
    
with MongoDB 3.2 you can use aggregate function ($lookup) which will have left join – user3280472 Jun 28 at 17:23

Looks like nobody talked about this option of using Pivot in addtion to MapReduce. There is a good article that could be your answer here http://cookbook.mongodb.org/patterns/pivot/ Hope this will help you in your projects

share|improve this answer

To have everything with just one query using the $lookup feature of the aggregation framework, try this :

db.User.aggregate(
    [
        // First step is to extract the "friends" field to work with the values
        {
            $unwind: "$friends"
        },
        // Lookup all the linked friends from the User collection
        {
            $lookup:
            {
                from: "User",
                localField: "friends",
                foreignField: "_id",
                as: "friendsData"
            }
        },
        // Sort the results by age
        {
            $sort: { 'friendsData.age': 1 }
        },
        // Get the results into a single array
        {
            $unwind: "$friendsData"
        },
        // Group the friends by user id
        {
            $group:
            {
                _id: "$_id",
                friends: { $push: "$friends" },
                friendsData: { $push: "$friendsData" }
            }
        }
    ]
)

Let's say the content of your User collection is the following:

{
    "_id" : ObjectId("573b09e6322304d5e7c6256e"),
    "name" : "John",
    "age" : 30,
    "friends" : [
        "userId1",
        "userId2",
        "userId3"
    ]
}
{ "_id" : "userId1", "name" : "Derek", "age" : 34 }
{ "_id" : "userId2", "name" : "Homer", "age" : 44 }
{ "_id" : "userId3", "name" : "Bobby", "age" : 12 }

The result of the query will be:

{
    "_id" : ObjectId("573b09e6322304d5e7c6256e"),
    "friends" : [
        "userId3",
        "userId1",
        "userId2"
    ],
    "friendsData" : [
        {
            "_id" : "userId3",
            "name" : "Bobby",
            "age" : 12
        },
        {
            "_id" : "userId1",
            "name" : "Derek",
            "age" : 34
        },
        {
            "_id" : "userId2",
            "name" : "Homer",
            "age" : 44
        }
    ]
}
share|improve this answer

You can use playOrm to do what you want in one Query(with S-SQL Scalable SQL).

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I guess the question is not about choosing the tools (I don't suppose these guys have invented a magic wand after all). – incarnate Jul 6 '13 at 16:26
    
yup, but always good to know/have more options though.....I know personally I appreciate answers like this. – Dean Hiller Jul 8 '13 at 14:21

one kind of join a query in mongoDB, is ask at one collection for id that match , put ids in a list (idlist) , and do find using on other (or same) collection with $in : idlist

u = db.friends.find({"friends": ? }).toArray()
idlist= []
u.forEach(function(myDoc) { idlist.push(myDoc.id ); } )
db.friends.find({"id": {$in : idlist} } )
share|improve this answer
2  
An explanation might help. – Brian Carlton Oct 19 '14 at 3:55
var p = db.sample1.find().limit(2) , 
    h = [];
for (var i = 0; i < p.length(); i++) 
{
  h.push(p[i]['name']);
}
db.sample2.find( { 'doc_name': { $in : h } } ); 

it works for me.

share|improve this answer
    
awesome solution. – Curious_k.shree Dec 31 '14 at 4:19

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