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I have only one collection "details". It is used in the query twice with different alias. As Mongo does not have alias, I think so mapreduce will give the results. I also tried aggregation with unwind, but it will unwind on a field and not on the collection. Any help with aggregation or mapreduce.

Collection:

"details"
    {
        "user_id":1,
        "lft":2
        "rgt":5
    },
    {
        "user_id":2,
        "lft":1
        "rgt":6
    },
    {
        "user_id":3,
        "lft":3
        "rgt":4
    }

SQL query:

SELECT CONCAT( REPEAT('-', COUNT(parent.user_id) - 1), node.user_id) 
    AS user_id
FROM details AS node,
    details AS parent
WHERE node.lft BETWEEN parent.lft AND parent.rgt
GROUP BY node.user_id
ORDER BY node.lft;

It should output:

  1
  -2
  --3

I have tried:

    $mongodb = Connections::get('default')->connection;
    $details = Details::connection()->connection->command(array(
        'aggregate' => 'details',
        'pipeline' => array( 
            array('$project' => array( 
                    '_id' => array(
                        'parent'=>array(
                            'puser_id'=>'$user_id',
                            'pleft'=>'$left',
                            'pright'=>'$right',                     
                            ),
                        'node'=>array(
                            'nuser_id'=>'$user_id',
                            'nleft'=>'$left',
                            'nright'=>'$right',
                            )
                        ),

                    ),
                    '$group'=>array('_id'=>'$_id.parent.puser_id'),
                    '$match' => array(
                        '$_id.node.nleft'=>array('$gt'=>'$_id.parent.pleft'),
                        '$_id.node.nright'=>array('$gt'=>'$_id.parent.pright')
                            )
            ),
        )
    ));

I am stuck at $group and $match!

share|improve this question
    
Why don't you use the aggregation framework? –  Andreas Jung Jan 13 '13 at 8:03
    
what's your business objective? Might be a simpler way with Mongo –  Will Jan 13 '13 at 14:16
    
I have created a parent child collection in a single table using reference "The Nested Set Model" in: mikehillyer.com/articles/managing-hierarchical-data-in-mysql I am implementing "Finding the Depth of the Nodes" from that article. The collection creation works ok! –  Nilam Doctor Jan 13 '13 at 16:00
    
Have you got any further with this Nilam? –  Ross Feb 5 '13 at 21:32
    
Hi Ross, I compromised with one query which will give parent details and the looping all parents to find their child nodes giving a count. It will work for a few hundred thousand records. But over it the server will be too slow. –  Nilam Doctor Feb 6 '13 at 3:48

1 Answer 1

I found the answer by changing the schema:

{
"_id": ObjectId("5114a7eb9d5d0c640900001e"),
"user_id": "5114a7eb9d5d0c640900001d",
"username": "user8",
"refer_username": "user7",
"refer_id": "5114a7c59d5d0c6409000018",
    "ancestors": {
    "0": null,
     "1": "Initial",
     "2": "user6",
     "3": "user7"
    },
}   

This has helped me to find all ancestors by using the query:

 user_id = '5114a7eb9d5d0c640900001d'
 db.details.find({'user_id':user_id});

and all descendents by using the query:

 username = 'user8'
 db.details.find('ancestors':username)

Without using Map/Reduce, and using aggregation framework, with $unwind function I am able to count all the ancestors and descendents of the user.

You can check this page: http://docs.mongodb.org/manual/tutorial/model-tree-structures/ it will really improve your understanding of Model Tree structure for MongoDB. It is fast and better than MySQL.

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