65

When using MongoDB's $in clause, does the order of the returned documents always correspond to the order of the array argument?

10 Answers 10

63

As noted, the order of the arguments in the array of an $in clause does not reflect the order of how the documents are retrieved. That of course will be the natural order or by the selected index order as shown.

If you need to preserve this order, then you basically have two options.

So let's say that you were matching on the values of _id in your documents with an array that is going to be passed in to the $in as [ 4, 2, 8 ].

Approach using Aggregate


var list = [ 4, 2, 8 ];

db.collection.aggregate([

    // Match the selected documents by "_id"
    { "$match": {
        "_id": { "$in": [ 4, 2, 8 ] },
    },

    // Project a "weight" to each document
    { "$project": {
        "weight": { "$cond": [
            { "$eq": [ "$_id", 4  ] },
            1,
            { "$cond": [
                { "$eq": [ "$_id", 2 ] },
                2,
                3
            ]}
        ]}
    }},

    // Sort the results
    { "$sort": { "weight": 1 } }

])

So that would be the expanded form. What basically happens here is that just as the array of values is passed to $in you also construct a "nested" $cond statement to test the values and assign an appropriate weight. As that "weight" value reflects the order of the elements in the array, you can then pass that value to a sort stage in order to get your results in the required order.

Of course you actually "build" the pipeline statement in code, much like this:

var list = [ 4, 2, 8 ];

var stack = [];

for (var i = list.length - 1; i > 0; i--) {

    var rec = {
        "$cond": [
            { "$eq": [ "$_id", list[i-1] ] },
            i
        ]
    };

    if ( stack.length == 0 ) {
        rec["$cond"].push( i+1 );
    } else {
        var lval = stack.pop();
        rec["$cond"].push( lval );
    }

    stack.push( rec );

}

var pipeline = [
    { "$match": { "_id": { "$in": list } }},
    { "$project": { "weight": stack[0] }},
    { "$sort": { "weight": 1 } }
];

db.collection.aggregate( pipeline );

Approach using mapReduce


Of course if that all seems to hefty for your sensibilities then you can do the same thing using mapReduce, which looks simpler but will likely run somewhat slower.

var list = [ 4, 2, 8 ];

db.collection.mapReduce(
    function () {
        var order = inputs.indexOf(this._id);
        emit( order, { doc: this } );
    },
    function() {},
    { 
        "out": { "inline": 1 },
        "query": { "_id": { "$in": list } },
        "scope": { "inputs": list } ,
        "finalize": function (key, value) {
            return value.doc;
        }
    }
)

And that basically relies on the emitted "key" values being in the "index order" of how they occur in the input array.


So those essentially are your ways of maintaining the order of a an input list to an $in condition where you already have that list in a determined order.

  • 1
    Great answer. For those who need it, a coffeescript version here – Lawrence Jones Jun 25 '14 at 18:35
  • 1
    @NeilLunn I tried the approach using aggregate, but I get the id's and the weight. Do you know how to retrieve the posts (object)? – Juanjo Lainez Reche Dec 17 '14 at 13:40
  • 1
    @NeilLunn I did actually (it's here stackoverflow.com/questions/27525235/… ) But the only comment was referring here, even though I checked this before posting my question. Can you help me there? Thank you! – Juanjo Lainez Reche Dec 17 '14 at 15:20
  • 1
    know this is old, but I wasted a lot of time debugging why inputs.indexOf() was not matching with this._id. If you're just returning the value of the object Id, you may have to opt for this syntax : obj.map = function() { for(var i = 0; i < inputs.length; i++){ if(this._id.equals(inputs[i])) { var order = i; } } emit(order, {doc: this}); }; – NoobSter Aug 9 '16 at 19:40
  • 1
    you can use "$addFields" instead of "$project" if you want to have all the original fields too – Jodo Oct 28 '17 at 19:57
19

If you don't want to use aggregate, another solution is to use find and then sort the doc results client-side using array#sort:

If the $in values are primitive types like numbers you can use an approach like:

var ids = [4, 2, 8, 1, 9, 3, 5, 6];
MyModel.find({ _id: { $in: ids } }).exec(function(err, docs) {
    docs.sort(function(a, b) {
        // Sort docs by the order of their _id values in ids.
        return ids.indexOf(a._id) - ids.indexOf(b._id);
    });
});

If the $in values are non-primitive types like ObjectIds, another approach is required as indexOf compares by reference in that case.

If you're using Node.js 4.x+, you can use Array#findIndex and ObjectID#equals to handle this by changing the sort function to:

docs.sort((a, b) => ids.findIndex(id => a._id.equals(id)) - 
                    ids.findIndex(id => b._id.equals(id)));

Or with any Node.js version, with underscore/lodash's findIndex:

docs.sort(function (a, b) {
    return _.findIndex(ids, function (id) { return a._id.equals(id); }) -
           _.findIndex(ids, function (id) { return b._id.equals(id); });
});
  • how does the equal function know to compare a id property to id 'return a.equals(id);', cause a holds all the properties returned for that model? – lboyel May 22 '16 at 15:19
  • 1
    @lboyel I didn't mean it to be that clever :-), but that worked because it was using Mongoose's Document#equals to compare against the doc's _id field. Updated to make the _id comparison explicit. Thanks for asking. – JohnnyHK May 22 '16 at 17:59
17

Another way using the Aggregation query only applicable for MongoDB verion > 3.4 -

The credit goes to this nice blog post.

Example documents to be fetched in this order -

var order = [ "David", "Charlie", "Tess" ];

The query -

var query = [
             {$match: {name: {$in: order}}},
             {$addFields: {"__order": {$indexOfArray: [order, "$name" ]}}},
             {$sort: {"__order": 1}}
            ];

var result = db.users.aggregate(query);

Another quote from the post explaining these aggregation operators used -

The "$addFields" stage is new in 3.4 and it allows you to "$project" new fields to existing documents without knowing all the other existing fields. The new "$indexOfArray" expression returns position of particular element in a given array.

Basically the addToSet operator appends a new order field to every document when it finds it and this order field represents the original order of our array we provided. Then we simply sort the documents based on this field.

  • is there a way of storing the order array as a variable in the query so we don't have this massive query of the same array twice if the array is big? – Ethan SK Sep 25 '18 at 23:20
4

Similar to JonnyHK's solution, you can reorder the documents returned from find in your client (if your client is in JavaScript) with a combination of map and the Array.prototype.find function in EcmaScript 2015:

Collection.find({ _id: { $in: idArray } }).toArray(function(err, res) {

    var orderedResults = idArray.map(function(id) {
        return res.find(function(document) {
            return document._id.equals(id);
        });
    });

});

A couple of notes:

  • The above code is using the Mongo Node driver and not Mongoose
  • The idArray is an array of ObjectId
  • I haven't tested the performance of this method vs the sort, but if you need to manipulate each returned item (which is pretty common) you can do it in the map callback to simplify your code.
2

Always? Never. The order is always the same: undefined (probably the physical order in which documents are stored). Unless you sort it.

  • $natural order normally which is logical rather than physical – Sammaye Apr 2 '14 at 21:24
2

I know this question is related to Mongoose JS framework, but the duplicated one is generic, so I hope posting a Python (PyMongo) solution is fine here.

things = list(db.things.find({'_id': {'$in': id_array}}))
things.sort(key=lambda thing: id_array.index(thing['_id']))
# things are now sorted according to id_array order
1

I know this is an old thread, but if you're just returning the value of the Id in the array, you may have to opt for this syntax. As I could not seem to get indexOf value to match with a mongo ObjectId format.

  obj.map = function() {
    for(var i = 0; i < inputs.length; i++){
      if(this._id.equals(inputs[i])) {
        var order = i;
      }
    }
    emit(order, {doc: this});
  };

How to convert mongo ObjectId .toString without including 'ObjectId()' wrapper -- just the Value?

0

You can guarantee order with $or clause.

So use $or: [ _ids.map(_id => ({_id}))] instead.

0

This is a code solution after the results are retrieved from Mongo. Using a map to store index and then swapping values.

catDetails := make([]CategoryDetail, 0)
err = sess.DB(mdb).C("category").
    Find(bson.M{
    "_id":       bson.M{"$in": path},
    "is_active": 1,
    "name":      bson.M{"$ne": ""},
    "url.path":  bson.M{"$exists": true, "$ne": ""},
}).
    Select(
    bson.M{
        "is_active": 1,
        "name":      1,
        "url.path":  1,
    }).All(&catDetails)

if err != nil{
    return 
}
categoryOrderMap := make(map[int]int)

for index, v := range catDetails {
    categoryOrderMap[v.Id] = index
}

counter := 0
for i := 0; counter < len(categoryOrderMap); i++ {
    if catId := int(path[i].(float64)); catId > 0 {
        fmt.Println("cat", catId)
        if swapIndex, exists := categoryOrderMap[catId]; exists {
            if counter != swapIndex {
                catDetails[swapIndex], catDetails[counter] = catDetails[counter], catDetails[swapIndex]
                categoryOrderMap[catId] = counter
                categoryOrderMap[catDetails[swapIndex].Id] = swapIndex
            }
            counter++
        }
    }
}
0

An easy way to order the result after mongo returns the array is to make an object with id as keys and then map over the given _id's to return an array that is correctly ordered.

async function batchUsers(Users, keys) {
  const unorderedUsers = await Users.find({_id: {$in: keys}}).toArray()
  let obj = {}
  unorderedUsers.forEach(x => obj[x._id]=x)
  const ordered = keys.map(key => obj[key])
  return ordered
}

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