180

I would like to define a $project aggregation stage where I can instruct it to add a new field and include all existing fields, without having to list all the existing fields.

My document looks like this, with many fields:

{
    obj: {
        obj_field1: "hi",
        obj_field2: "hi2"
    },
    field1: "a",
    field2: "b",
    ...
    field26: "z"
}

I want to make an aggregation operation like this:

[
    {
        $project: {
            custom_field: "$obj.obj_field1",
            //the next part is that I don't want to do
            field1: 1,
            field2: 1,
            ...
            field26: 1
        }
    },
    ... //group, match, and whatever...
]

Is there something like an "include all fields" keyword that I can use in this case, or some other way to avoid having to list every field separately?

2

6 Answers 6

243

In 4.2+, you can use the $set aggregation pipeline operator which is nothing other than an alias to $addFieldsadded in 3.4

The $addFields stage is equivalent to a $project stage that explicitly specifies all existing fields in the input documents and adds the new fields.

db.collection.aggregate([
    { "$addFields": { "custom_field": "$obj.obj_field1" } }
])
4
  • 3
    Any idea how to use it in C# driver? seems it does not exist
    – Homam
    Jul 16, 2018 at 23:19
  • I'm not familiar with the C# driver but $addFields is new in MongoDB 3.4 which is supported by the C# driver version 2.5+
    – Sede
    Jul 17, 2018 at 0:59
  • I have been searching for a way to do this in C# driver, and so far it looks like the way to do it would be using something like IAggregateFluent<TResult>.AppendStage(new JsonPipelineStageDefinition<TInput, TOutput>("{ $addFields : { myField: 'myValue' }}")
    – sboisse
    Oct 29, 2018 at 21:36
  • 7
    I discovered that it can even replace a field if you specify the same field name
    – CME64
    Dec 25, 2018 at 9:58
95

You can use $$ROOT to references the root document. Keep all fields of this document in a field and try to get it after that (depending on your client system: Java, C++, ...)

 [
    {
        $project: {
            custom_field: "$obj.obj_field1",
            document: "$$ROOT"

        }
    },
    ... //group, match, and whatever...
]
4
  • 28
    But this will create an embedded doc called document an option to created one merged doc would have been nicer... Sep 1, 2016 at 9:25
  • 2
    Does anyone know of the solution to pass through all the key value pairs without creating the embedded document?
    – ugotchi
    Sep 28, 2016 at 9:28
  • 14
    Hold your breath. MongoDB 3.4 will come with $addFields aggregation stage that does just this. See stackoverflow.com/a/24557029/4653485.
    – Jérôme
    Nov 15, 2016 at 13:01
  • This seems to be the best current solution, as you can (at least in JS) then use the spread operator to rebuild your original object with the new custom_field attached. const newObj = { ...result.document, custom_field: result.custom_field }
    – ffritz
    Mar 13, 2020 at 10:46
10

To add new fields to your document you can use $addFields

from docs

and to all the fields in your document, you can use $$ROOT

db.collection.aggregate([

{ "$addFields": { "custom_field": "$obj.obj_field1" } },
{ "$group": {
        _id : "$field1",
        data: { $push : "$$ROOT" }
    }}
])
1
  • He wants all fields in root. This adds all fields under documents array.
    – Ataberk
    Feb 23, 2022 at 22:52
8

>>> There's something like "include all fields" keyword that I can use in this case or some another solution?

Unfortunaly, there is no operator to "include all fields" in aggregation operation. The only reason, why, because aggregation is mostly created to group/calculate data from collection fields (sum, avg, etc.) and return all the collection's fields is not direct purpose.

2
  • ...because aggregation is mostly created to group/calculate data from collection fields... Best answer in fact! Apr 1, 2016 at 17:07
  • 1
    you have a collection posts with _id, title, body, likes fields. The likes field is an array of user _id who like the post. How could you list all posts with all the _id, title, body, likeCount? Returning all fields is a direct purpose in this case.
    – doc_id
    Oct 6, 2017 at 2:22
3

As of version 2.6.4, Mongo DB does not have such a feature for the $project aggregation pipeline. From the docs for $project:

Passes along the documents with only the specified fields to the next stage in the pipeline. The specified fields can be existing fields from the input documents or newly computed fields.

and

The _id field is, by default, included in the output documents. To include the other fields from the input documents in the output documents, you must explicitly specify the inclusion in $project.

0

according to @Deka reply, for c# mongodb driver 2.5 you can get the grouped document with all keys like below;

var group = new BsonDocument
{
 { "_id", "$groupField" },
 { "_document", new BsonDocument { { "$first", "$$ROOT" } } }
};

ProjectionDefinition<BsonDocument> projection = new BsonDocument{{ "document", "$_document"}};
var result = await col.Aggregate().Group(group).Project(projection).ToListAsync();

// For demo first record 
var fistItemAsT = BsonSerializer.Deserialize<T>(result.ToArray()[0]["document"].AsBsonDocument);

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