977

I have a MongoDB collection with documents in the following format:

{
  "_id" : ObjectId("4e8ae86d08101908e1000001"),
  "name" : ["Name"],
  "zipcode" : ["2223"]
}
{
  "_id" : ObjectId("4e8ae86d08101908e1000002"),
  "name" : ["Another ", "Name"],
  "zipcode" : ["2224"]
}

I can currently get documents that match a specific array size:

db.accommodations.find({ name : { $size : 2 }})

This correctly returns the documents with 2 elements in the name array. However, I can't do a $gt command to return all documents where the name field has an array size of greater than 2:

db.accommodations.find({ name : { $size: { $gt : 1 } }})

How can I select all documents with a name array of a size greater than one (preferably without having to modify the current data structure)?

4
  • 4
    The newer versions of MongoDB have the $size operator; you should check out @tobia's answer Commented Mar 27, 2014 at 17:55
  • 9
    Actual solution: FooArray:{$gt:{$size:'length'}} --> lenght can be any number Commented Jul 17, 2018 at 9:32
  • 1
    @SergiNadal: I don't think this FooArray:{$gt:{$size:'length'}} is working! Well at least on nested object which is an array person:{ids:[123,456]} Commented Apr 29, 2021 at 23:14
  • Arrays should have a plural name so your array field name should be named names.
    – Paul
    Commented Aug 21, 2021 at 16:25

16 Answers 16

1795

There's a more efficient way to do this in MongoDB 2.2+ now that you can use numeric array indexes (0 based) in query object keys.

// Find all docs that have at least two name array elements.
db.accommodations.find({'name.1': {$exists: true}})

You can support this query with an index that uses a partial filter expression (requires 3.2+):

// index for at least two name array elements
db.accommodations.createIndex(
    {'name.1': 1},
    {partialFilterExpression: {'name.1': {$exists: true}}}
);
13
  • 23
    Could somebody please explain how to index this.
    – Ben
    Commented Oct 18, 2013 at 6:28
  • 59
    I'm really impressed with how effective this is and also how 'out of the box' you were thinking to find this solution. This works on 2.6, as well.
    – earthmeLon
    Commented Jul 4, 2014 at 19:13
  • 2
    Works on 3.0 aswell. Thank you so much for finding this.
    – pikanezi
    Commented Aug 12, 2015 at 16:18
  • 4
    It'd be helpful to mention in the answer that indexation is 0-based here. Commented Jun 15, 2017 at 21:26
  • 2
    This isn't a good answer, because x.1 can exist while x.0 is undefined.
    – Hobbyist
    Commented Dec 29, 2017 at 11:47
624

Update:

For mongodb versions 2.2+ more efficient way to do this described by @JohnnyHK in another answer.


  1. Using $where

    db.accommodations.find( { $where: "this.name.length > 1" } );

But...

Javascript executes more slowly than the native operators listed on this page, but is very flexible. See the server-side processing page for more information.

  1. Create extra field NamesArrayLength, update it with names array length and then use in queries:

    db.accommodations.find({"NamesArrayLength": {$gt: 1} });

It will be better solution, and will work much faster (you can create index on it).

7
  • 6
    Great, that was perfect thank you. Although I actually have some documents that don't have a name so had to modify the query to be: db.accommodations.find( { $where: "if (this.name && this.name.length > 1) {return this; } "} );
    – emson
    Commented Oct 18, 2011 at 17:51
  • you are welcome, yes you can use any javascript in $where, it is very flexible. Commented Oct 18, 2011 at 17:58
  • 8
    @emson I would think it would be quicker to do something like { "name": {$exists:1}, $where: "this.name.lenght > 1"} ... minimizing the part in the slower javascript query. I assume that works and that the $exists would have higher precedence.
    – nairbv
    Commented Dec 13, 2012 at 19:40
  • 1
    I had no idea you could embed javascript in the query, json can be cumbersome. Many of these queries are one time only entered by hand so optimization is not required. I'll use this trick often +1
    – pferrel
    Commented Mar 20, 2014 at 15:37
  • 3
    After adding/removing elements from the Array, we need to update the count of "NamesArrayLength". Can this done in a single query? Or it requires 2 queries, one for updating the array and another for updating the count?
    – WarLord
    Commented Dec 5, 2016 at 13:44
180

I believe this is the fastest query that answers your question, because it doesn't use an interpreted $where clause -- it uses the $size array operator and the $exists element operator combined with $nor logical operator

{$nor: [
    {name: {$exists: false}},
    {name: {$size: 0}},
    {name: {$size: 1}}
]}

It means "all documents except those without a name (either non existant or empty array) or with just one name."

Test:

> db.test.save({})
> db.test.save({name: []})
> db.test.save({name: ['George']})
> db.test.save({name: ['George', 'Raymond']})
> db.test.save({name: ['George', 'Raymond', 'Richard']})
> db.test.save({name: ['George', 'Raymond', 'Richard', 'Martin']})
> db.test.find({$nor: [{name: {$exists: false}}, {name: {$size: 0}}, {name: {$size: 1}}]})
{ "_id" : ObjectId("511907e3fb13145a3d2e225b"), "name" : [ "George", "Raymond" ] }
{ "_id" : ObjectId("511907e3fb13145a3d2e225c"), "name" : [ "George", "Raymond", "Richard" ] }
{ "_id" : ObjectId("511907e3fb13145a3d2e225d"), "name" : [ "George", "Raymond", "Richard", "Martin" ] }
>
5
  • 15
    @viren I don't know. This was certainly better than Javascript solutions, but for newer MongoDB you should probably use {'name.1': {$exists: true}}
    – Tobia
    Commented Mar 14, 2016 at 9:20
  • @Tobia my first use was $exists only but it actually use whole table scan so very slow. db.test.find({"name":"abc","d.5":{$exists:true},"d.6":{$exists:true}}) "nReturned" : 46525, "executionTimeMillis" : 167289, "totalKeysExamined" : 10990840, "totalDocsExamined" : 10990840, "inputStage" : { "stage" : "IXSCAN", "keyPattern" : { "name" : 1, "d" : 1 }, "indexName" : "name_1_d_1", "direction" : "forward", "indexBounds" : { "name" : [ "[\"abc\", \"abc\"]" ], "d" : [ "[MinKey, MaxKey]" ] } } If you see it scanned whole table.
    – viren
    Commented Mar 16, 2016 at 4:33
  • 1
    Would be nice to update the answer to recommend other alternatives (like 'name.1': {$exists: true}}, and also because this is hardcoded for "1" and doesn't scale to an arbitrary or parametric minimum array length. Commented Jul 20, 2018 at 10:12
  • 2
    This may be fast but falls apart if you're looking for lists > N, where N isn't small. Commented Jan 21, 2019 at 20:14
  • This doesn't work if you're looking for a nested array where the inside array has length of at least 2, but {'foo.bar.details.2': {$exists: true}} will find those. Commented Jan 28, 2022 at 18:27
96

You can use aggregate, too:

db.accommodations.aggregate(
[
     {$project: {_id:1, name:1, zipcode:1, 
                 size_of_name: {$size: "$name"}
                }
     },
     {$match: {"size_of_name": {$gt: 1}}}
])

// you add "size_of_name" to transit document and use it to filter the size of the name

2
  • This solution is the most general, along with @JohnnyHK's since it can be used for any array size.
    – arun
    Commented Sep 23, 2015 at 19:01
  • if i want to use "size_of_name" inside projection then how can i do that ?? Actually i want to use $slice inside projection where its value is equal to $slice : [0, "size_of_name" - skip] ?? Commented Jul 12, 2016 at 20:27
94

You can use $expr ( 3.6 mongo version operator ) to use aggregation functions in regular query.

Compare query operators vs aggregation comparison operators.

db.accommodations.find({$expr:{$gt:[{$size:"$name"}, 1]}})
3
  • 1
    How would you pass instead of $name an array that is a subdocument, for example in a "person" record, passport.stamps? I tried various quoting combinations but I get "The argument to $size must be an array, but was of type: string/missing". Commented Jul 20, 2018 at 10:23
  • 5
    @DanDascalescu It looks like stamps is not present in all documents. You can use ifNull to output empty array when the stamps is not present. Something like db.col.find({$expr:{$gt:[{$size:{$ifNull:["$passport.stamps", []]}}, 1]}})
    – s7vr
    Commented Jul 20, 2018 at 13:29
  • Thanks, I was looking to size an array key and this works perfectly! db.getCollection("companies").find({ $expr: {$gt: [{$size:"$keywords"}, 0]} }) Also, you may change $gt to $eq to query those docs with no data to size: db.getCollection("companies").find({ $expr: {$eq: [{$size:"$keywords"}, 0]} }) Commented Nov 13, 2022 at 15:46
64

Try to do something like this:

db.getCollection('collectionName').find({'ArrayName.1': {$exists: true}})

1 is number, if you want to fetch record greater than 50 then do ArrayName.50 Thanks.

3
  • 8
    The same answer was given three years earlier. Commented Jun 30, 2019 at 4:01
  • 1
    can we put some dynamic number like "ArrayName.<some_num>" inside the query? Commented Jul 22, 2019 at 15:11
  • Yes you can use any number. If you want to fetch record greater than N then pass n.
    – Aman Goel
    Commented Jul 23, 2019 at 7:02
55

MongoDB 3.6 include $expr https://docs.mongodb.com/manual/reference/operator/query/expr/

You can use $expr in order to evaluate an expression inside a $match, or find.

{ $match: {
           $expr: {$gt: [{$size: "$yourArrayField"}, 0]}
         }
}

or find

collection.find({$expr: {$gte: [{$size: "$yourArrayField"}, 0]}});
1
47

None of the above worked for me. This one did so I'm sharing it:

db.collection.find( {arrayName : {$exists:true}, $where:'this.arrayName.length>1'} )
1
47

Although the above answers all work, What you originally tried to do was the correct way, however you just have the syntax backwards (switch "$size" and "$gt")..

Correct:

db.collection.find({items: {$gt: {$size: 1}}})
11
  • 4
    I don't see why so many downvotes - this works perfectly for me! Commented Nov 25, 2018 at 18:38
  • 1
    Works perfectly fine, v 4.2.5
    – jperl
    Commented May 19, 2020 at 18:27
  • 3
    always post version when posting solutions like that. not working on 4.2 Commented Jun 16, 2020 at 21:36
  • 1
    Works fine on "4.4.8" Commented Sep 18, 2021 at 11:54
  • 3
    It does not work for me. I have 300K records, they all have either 1 or 2 entries. If I do {items: {$gt: {$size: 2}}} I get back all 300K and it should be empty list. (assumming items is the array) ver 5.0.15
    – Geoduck
    Commented Mar 7, 2023 at 0:49
28
db.accommodations.find({"name":{"$exists":true, "$ne":[], "$not":{"$size":1}}})
2
  • 3
    This doesn't scale well to other minimum sizes (say, 10). Commented Jul 20, 2018 at 10:25
  • same as first answer
    – arianpress
    Commented Jun 3, 2020 at 6:52
16

I found this solution, to find items with an array field greater than certain length

db.allusers.aggregate([
    { $match: { username: { $exists: true } } },
    { $project: { count: { $size: "$locations.lat" } } },
    { $match: { count: { $gt: 20 } } },
]);

The first $match aggregate uses an argument that's true for all the documents. Without it, I would get an error exception

"errmsg" : "exception: The argument to $size must be an Array, but was of type: EOO"
1
  • This is essentially the same answer as this one, provided 2 years earlier. Commented Jul 20, 2018 at 10:17
13

You can MongoDB aggregation to do the task:

db.collection.aggregate([
  {
    $addFields: {
      arrayLength: {$size: '$array'}
    },
  },
  {
    $match: {
      arrayLength: {$gt: 1}
    },
  },
])
6

this will work for you

db.collection.find({
  $expr: {
    $gt: [{ $size: "$arrayField" }, 1]
  }
})
2

This will work in Compass also. This is the fastest of all i have tried without indexing.

 {$expr: {
            $gt: [
              {
                $size: { "$ifNull": [ "$name", [] ] }
              },
              1
            ]
          }}
2

you can use $expr to cover this

// $expr: Allows the use of aggregation expressions within the query language.
// syntax: {$expr: {<expression>}}

db.getCollection("person_service").find(
    { 
        "$expr" : { 
            // services is Array, find services length gt 3
            "$gt" : [
                { 
                    "$size" : "$services"
                }, 
                3.0
            ]
        }
    }
)
0

This worked for me:

{ $where: function() { return this.name && this.name.length > 2;}}

The trick was the check for if the value existed first before checking for the length.

I kept getting an error:

Executor error during find command :: caused by :: TypeError: this.name is undefined : @:1:15

That's because not all the documents had a name field (or whatever field you call it, replace name with the array you are interested in, e.g scores).

Unfortunately the error was very vague and I tried a whole bunch of other things before realising this was the issue.

Note: I'm using MongoDB (Atlas) v6.0.10

1
  • Ohh, I just realised mine is basically like stackoverflow.com/a/23644055/1495634 but with a single $where, but the answer by @lesolorzanov is probably more performant if you have an index and it's a concern for you. But this one is probably easier to remember. Depends on your use case. Commented Sep 18, 2023 at 11:10

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