39

I have a deeply nested collection in my MongoDB collection.

When I run the following query:

db.countries.findOne({},{'data.country.neighbor.name':1,'_id':0})

I end up with this nested result here:

{"data" : {
  "country" : [
    {
      "neighbor" : [
        {
          "name" : "Austria"
        },
        {
          "name" : "Switzerland"
        }
      ]
    },
    {
      "neighbor" : {
        "name" : "Malaysia"
      }
    },
    {
      "neighbor" : [
        {
          "name" : "Costa Rica"
        },
        {
          "name" : "Colombia"
        }
      ]
    }
  ]
}}

Now, this is what I want:

['Austria', 'Switzerland', 'Malaysia', 'Costa Rica', 'Colombia']

or this:

{'name':['Austria', 'Switzerland', 'Malaysia', 'Costa Rica', 'Colombia']}

or anything else similar... Is this possible?

57

You can use $project & $unwind & $group of aggregation framework to get the result closer to your requirement.

> db.countries.aggregate({$project:{a:'$data.country.neighbor.name'}},
                         {$unwind:'$a'},
                         {$unwind:'$a'},
                         {$group:{_id:'a',res:{$addToSet:'$a'}}})
  {
    "result" : [
        {
            "_id" : "a",
            "res" : [
                "Colombia",
                "Malaysia",
                "Switzerland",
                "Costa Rica",
                "Austria"
            ]
        }
    ],
    "ok" : 1
}

$unwind used twice since the name array is nested deep. And It will only work if the neighbor attribute is an array. In your example one neighbor field (Malaysia) is not an array

  • Thanks! I'm getting the following though: { "result" : [ ], "ok" : 1 } :/ – Marsellus Wallace Nov 8 '12 at 3:32
  • @Gevorg, updated the answer. pls check out – RameshVel Nov 8 '12 at 3:34
  • Interesting. It still feels like a lot of work but I guess that I'll just have to get used to it. Thanks – Marsellus Wallace Nov 8 '12 at 14:33
  • 3
    Seeing this 5 years after the fact... Mongo - which I love - is still ****ing bizarre. – The Dembinski Mar 30 '18 at 21:53
2

Done it much simpler way, maybe it is recent

db.countries.aggregate({$unwind:'$data.country.neighbor.name'})
-6

It's pretty straightforward under the new aggregation framework. The $project and $unwind operation are right for the purpose.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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