13

I'm new using MongoDB, and I don't know how to solve the next problem:

I have a collection of documents like this:

{
 "URL": "www.stackoverflow.com",
 "TAGS": [
         {"NAME": "question", "VOTES": 3},
         {"NAME": "answer", "VOTES": 5},
         {"NAME": "problem", "VOTES": 2}
         ]
}

First of all, I wanted all the Urls that have all the tags given in a list. I have solved this by quering:

db.links.find( { "Tags.Name" : { $all: ["question","answers"] } } );

But this query return the whole correct document, insted of only the correct document with only the tags I have asked for.

The result I'm looking for is:

{
 "URL": "www.stackoverflow.com",
 "TAGS": [{"NAME": "question", "VOTES": 3},
         {"NAME": "answer", "VOTES": 5}]
}

and not:

{
 "URL": "www.stackoverflow.com",
 "TAGS": [{"NAME": "question", "VOTES": 3},
         {"NAME": "answer", "VOTES": 5},
         {"NAME": "problem", "VOTES": 2}]
}

Because I've only asked for the tags ["question","answers"].

I thought about using MapReduce or parsing the resultset, but I don't know if it is the correct way of solving the problem. Maybe there is a builtin function that solve it more efficiently.

Thanks!

18

You can use aggregation framework of MongoDB.

If you have a doc in your collection like ;

{
 "URL": "www.stackoverflow.com",
 "TAGS": [
         {"NAME": "question", "VOTES": 3},
         {"NAME": "answer", "VOTES": 5},
         {"NAME": "problem", "VOTES": 2}
         ]
}

and you want to filter some elements of the array out you can use the aggregation sample;

db.sof_table.aggregate
([
{$unwind:'$TAGS'}, 
{$match:{'TAGS.NAME':{$in:['answer','question']}}},
{$group:{_id:'$URL',TAGS:{$push:'$TAGS'}}}
])

This will result;

{
    "result" : [
        {
            "_id" : "www.stackoverflow.com",
            "TAGS" : [
                {
                    "NAME" : "question",
                    "VOTES" : 3
                },
                {
                    "NAME" : "answer",
                    "VOTES" : 5
                }
            ]
        }
    ],
    "ok" : 1
}

as your expected result.

8

Generally speaking any find() operation on MongoDB returns all the documents that match the query and all documents are retrieved in their entirety. If you only want a specific section of a document then you have to do that processing on the client side.

This is a fundamental difference between document databases and SQL databases. Typically in a document database a query returns all documents that match it while in an SQL database you can choose to return only portions of the table. Unless of course like you say you do a MapReduce but that kinda seems like overkill for your use case.

Not to discourage you from using MongoDB but whatever project you work on consider whether NoSQL databases actually fit the bill (do they fill a requirement that SQL cannot) or whether you'd still be better going with a traditional SQL database.

  • 1
    Thanks @RobV. What you say is true, but I know that there are ways of return only certains keys of the document. Ex.: .find({},{"name":1, "age":0}). So that, I thought that maybe exist some way to filter inside an Array. But no problem, I will do it on the client side, although it will be really performance expensive. – Martin Zugnoni Jan 15 '11 at 19:06
  • @Martin RobV's answer is the best one. You should give him the checkmark. – Martin Apr 21 '12 at 7:45
3

It is possible to suppress keys and array elements in the returned document, but not in the way that you want.

In your example, you can suppress the URL key with the following query, which uses the second argument to find():

db.links.find({"TAGS.NAME" : {$all : ["question","answer"]}}, {"URL" : 0})

However, I don't believe it is possible to suppress individual members of an array on the server-side with find() based on which array members were specified with $all.

You can use $slice to return only certain members of an array, but it is position-based. For example,

{$slice : [1, 2]}

skips the first element of the array and returns up to the next two.

  • Thanks Robert. I have realized that the featured I'm looking for is not implemented at this moment. Here is the link of the issue: jira.mongodb.org/browse/SERVER-828. I hope that the MongoDB cominuty implements it in a short time. Thanks! – Martin Zugnoni Jan 16 '11 at 15:31
-1

Thanks Robert. I have realized that the featured I'm looking for is not implemented at this moment. Here is the link of the issue. I hope that the MongoDB cominuty implements it in a short time. Thanks!

  • 2
    Note: While that jira issue is solved. The solution does not answer the problem. It only retrieves the first matching sub-document. $elemMatch – i3arnon May 22 '14 at 16:04
  • Seems that I've located a solution that filters the array and not just returns the first element. See if it fits your need: stackoverflow.com/questions/46323106/… – Vaiden Sep 20 '17 at 13:24
-1

This might help you.

The $elemMatch projection operator takes an explicit condition argument. This allows you to project based on a condition not in the query, or if you need to project based on multiple fields in the array’s embedded documents.**

https://docs.mongodb.com/manual/reference/operator/projection/elemMatch/

  • ..."to contain only the first element matching the $elemMatch condition" – Vaiden Sep 19 '17 at 12:09

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