5

Some fields in my mongoDB documents look like this:

{
...
Countries: [["Spain", "France"]]
...
}

Or this:

{
...
Countries: [["Spain"],["Russia", "Egypt"]]
...
}

What I want to do is to turn [["Spain", "France"]] into ["Spain", "France"] and [["Spain"],["Russia", "Egypt"]] into ["Spain", "Russia", "Egypt"], similar to using the flatten method in Ruby.

Is there a way to flatten arrays in mongoDB? I need to flatten arrays in all documents in entire collection, not just a single doc, if that matters, also, the values and their quantity in arrays varies between documents.

I am also using Ruby as a driver for mongo, so a method using a Ruby driver would be also useful to me.

0

Your data for Countries are not in a good format, so you may consider to convert them. This is a script to flatten the array in Countries field and save it the origin documents that you can run in a mongo shell:

function flattenArray(inArr) {
    var ret = [];
    inArr.forEach(function(arr) {
        if (arr.constructor.toString().indexOf("Array") > -1) {
           ret = ret.concat(flattenArray(arr));
        } else {
           ret.push(arr);                   
        }
    });
    return ret;
}


db.collection.find({
  'Countries': {
    '$exists': true
  }
}).forEach(function(doc){
  doc.Countries = flattenArray(doc.Countries);
  db.collection.save(doc);
});
4

You need perform an aggregation operation with two unwind stages and a single group stage. The basic rule being you unwind as many times as the level of nest depth. Here the level of nesting is 2, so we unwind two times.

 collection.aggregate([
 {$unwind => "$Countries"},
 {$unwind => "$Countries"},
 {$group => {"_id":"$_id","Countries":{$push => "$Countries"}}}
 ])

The first $unwind stage produces the result:

{
        "_id" : ObjectId("54a32e0fc2eaf05fc77a5ea4"),
        "Countries" : [
                "Spain",
                "France"
        ]
}
{
        "_id" : ObjectId("54a32e4ec2eaf05fc77a5ea5"),
        "Countries" : [
                "Spain"
        ]
}
{
        "_id" : ObjectId("54a32e4ec2eaf05fc77a5ea5"),
        "Countries" : [
                "Russia",
                "Egypt"
        ]
}

The second $unwind stage further flattens the Countries array:

{ "_id" : ObjectId("54a32e0fc2eaf05fc77a5ea4"), "Countries" : "Spain" }
{ "_id" : ObjectId("54a32e0fc2eaf05fc77a5ea4"), "Countries" : "France" }
{ "_id" : ObjectId("54a32e4ec2eaf05fc77a5ea5"), "Countries" : "Spain" }
{ "_id" : ObjectId("54a32e4ec2eaf05fc77a5ea5"), "Countries" : "Russia" }
{ "_id" : ObjectId("54a32e4ec2eaf05fc77a5ea5"), "Countries" : "Egypt" }

Now the final $group stage groups the records based on the _id,and accumulates the country names in a single array.

{
        "_id" : ObjectId("54a32e4ec2eaf05fc77a5ea5"),
        "Countries" : [
                "Spain",
                "Russia",
                "Egypt"
        ]
}
{
        "_id" : ObjectId("54a32e0fc2eaf05fc77a5ea4"),
        "Countries" : [
                "Spain",
                "France"
        ]
}

If you wish to keep other fields in the document then you need to explicitly specify the names of the fields other than the country field,(field1,field2,etc..), using the $first operator. You can write/overwrite a collection by specifying the name of the collection in the $out stage.

collection.aggregate([
 {$unwind => "$Countries"},
 {$unwind => "$Countries"},
 {$group => {"_id":"$_id","Countries":{$push => "$Countries"},
             "field1":{$first => "$field1"}}},
 {$out => "collection"}
 ])

You need to explicitly specify the fields so that you don't get a redundant Countries field.

You can use the $$ROOT system variable to store the entire document, but that would make the Countries field redundant.One outside the doc and one inside the doc.

collection.aggregate([
 {$unwind => "$Countries"},
 {$unwind => "$Countries"},
 {$group => {"_id":"$_id","Countries":{$push => "$Countries"},
             "doc":{$first => "$$ROOT"}}},
 {$out => "collection"}
 ])
  • I wrote the result 3 seconds sooner than you ;), it was just interesting. anyway +1 – Disposer Jan 1 '15 at 23:12
  • @Disposer Yeah - you beat me to it. Took time to format the results :), +1 for your aggregation. :) – BatScream Jan 1 '15 at 23:14
  • Thanks. Can I clarify two more questions then. I have noticed that this group operator returns only specified fields (id and countries). Is it possible to include all other fields without manually specifying each of them. Because there are many other fields, and the db is not optimized yet, there are even unique fields shared only by a very small portion of docs and it would be bloody hard to search and specify all of them. And second, maybe stupid question: how do I overwrite original collection with aggregate output? – A.V. Arno Jan 2 '15 at 0:58
  • @AntonDinoMois, You should explicitly specify all the other fields. You can make a list of fields and come up with a unified structure, separate the mandatory and optional fields and make entries. That would be my suggestion. You need to use the $out stage of the pipeline to overwrite the collection. Please see my updated answer. – BatScream Jan 2 '15 at 2:00
4

In Mongo 3.4+ you can use $reduce to flatten 2d arrays.

db.collection.aggregate(
  [
    {
      $project: {
        "countries": {
          $reduce: {
            input: '$Countries',
            initialValue: [],
            in: {$concatArrays: ['$$value', '$$this']}
          }
        }
      }
    }
  ]
)

Docs: https://docs.mongodb.com/manual/reference/operator/aggregation/reduce/

3

Try this:

db.test2.aggregate([
   {"$unwind" : "$Countries"},
   {"$unwind" : "$Countries"},
   {$group : { _id : '$_id', Countries: { $addToSet: "$Countries" }}},
]).result

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