Retrieve only the queried element in an object array in MongoDB collection

Question

Suppose you have the following documents in my collection:

{  
   "_id":ObjectId("562e7c594c12942f08fe4192"),
   "shapes":[  
      {  
         "shape":"square",
         "color":"blue"
      },
      {  
         "shape":"circle",
         "color":"red"
      }
   ]
},
{  
   "_id":ObjectId("562e7c594c12942f08fe4193"),
   "shapes":[  
      {  
         "shape":"square",
         "color":"black"
      },
      {  
         "shape":"circle",
         "color":"green"
      }
   ]
}

---

Do query:

db.test.find({"shapes.color": "red"}, {"shapes.color": 1})

Or

db.test.find({shapes: {"$elemMatch": {color: "red"}}}, {"shapes.color": 1})

---

Returns matched document (Document 1), but always with ALL array items in shapes:

{ "shapes": 
  [
    {"shape": "square", "color": "blue"},
    {"shape": "circle", "color": "red"}
  ] 
}

However, I'd like to get the document (Document 1) only with the array that contains color=red:

{ "shapes": 
  [
    {"shape": "circle", "color": "red"}
  ] 
}

How can I do this?

Answer 1

MongoDB 2.2's new $elemMatch projection operator provides another way to alter the returned document to contain only the first matched shapes element:

db.test.find(
    {"shapes.color": "red"}, 
    {_id: 0, shapes: {$elemMatch: {color: "red"}}});

Returns:

{"shapes" : [{"shape": "circle", "color": "red"}]}

In 2.2 you can also do this using the $ projection operator, where the $ in a projection object field name represents the index of the field's first matching array element from the query. The following returns the same results as above:

db.test.find({"shapes.color": "red"}, {_id: 0, 'shapes.$': 1});

MongoDB 3.2 Update

Starting with the 3.2 release, you can use the new $filter aggregation operator to filter an array during projection, which has the benefit of including all matches, instead of just the first one.

db.test.aggregate([
    // Get just the docs that contain a shapes element where color is 'red'
    {$match: {'shapes.color': 'red'}},
    {$project: {
        shapes: {$filter: {
            input: '$shapes',
            as: 'shape',
            cond: {$eq: ['$$shape.color', 'red']}
        }},
        _id: 0
    }}
])

Results:

[ 
    {
        "shapes" : [ 
            {
                "shape" : "circle",
                "color" : "red"
            }
        ]
    }
]

Answer 2

The new Aggregation Framework in MongoDB 2.2+ provides an alternative to Map/Reduce. The $unwind operator can be used to separate your shapes array into a stream of documents that can be matched:

db.test.aggregate(
  // Start with a $match pipeline which can take advantage of an index and limit documents processed
  { $match : {
     "shapes.color": "red"
  }},
  { $unwind : "$shapes" },
  { $match : {
     "shapes.color": "red"
  }}
)

Results in:

{
    "result" : [
        {
            "_id" : ObjectId("504425059b7c9fa7ec92beec"),
            "shapes" : {
                "shape" : "circle",
                "color" : "red"
            }
        }
    ],
    "ok" : 1
}

Answer 3

Another interesing way is to use $redact, which is one of the new aggregation features of MongoDB 2.6. If you are using 2.6, you don't need an $unwind which might cause you performance problems if you have large arrays.

db.test.aggregate([
    { $match: { 
         shapes: { $elemMatch: {color: "red"} } 
    }},
    { $redact : {
         $cond: {
             if: { $or : [{ $eq: ["$color","red"] }, { $not : "$color" }]},
             then: "$$DESCEND",
             else: "$$PRUNE"
         }
    }}]);

$redact "restricts the contents of the documents based on information stored in the documents themselves". So it will run only inside of the document. It basically scans your document top to the bottom, and checks if it matches with your if condition which is in $cond, if there is match it will either keep the content($$DESCEND) or remove($$PRUNE).

In the example above, first $match returns the whole shapes array, and $redact strips it down to the expected result.

Note that {$not:"$color"} is necessary, because it will scan the top document as well, and if $redact does not find a color field on the top level this will return false that might strip the whole document which we don't want.

Answer 4

Caution: This answer provides a solution that was relevant at that time, before the new features of MongoDB 2.2 and up were introduced. See the other answers if you are using a more recent version of MongoDB.

The field selector parameter is limited to complete properties. It cannot be used to select part of an array, only the entire array. I tried using the $ positional operator, but that didn't work.

The easiest way is to just filter the shapes in the client.

If you really need the correct output directly from MongoDB, you can use a map-reduce to filter the shapes.

function map() {
  filteredShapes = [];

  this.shapes.forEach(function (s) {
    if (s.color === "red") {
      filteredShapes.push(s);
    }
  });

  emit(this._id, { shapes: filteredShapes });
}

function reduce(key, values) {
  return values[0];
}

res = db.test.mapReduce(map, reduce, { query: { "shapes.color": "red" } })

db[res.result].find()

Answer 5

Better you can query in matching array element using $slice is it helpful to returning the significant object in an array.

db.test.find({"shapes.color" : "blue"}, {"shapes.$" : 1})

$slice is helpful when you know the index of the element, but sometimes you want whichever array element matched your criteria. You can return the matching element with the $ operator.

Answer 6

 db.getCollection('aj').find({"shapes.color":"red"},{"shapes.$":1})

OUTPUTS

{

   "shapes" : [ 
       {
           "shape" : "circle",
           "color" : "red"
       }
   ]
}

Answer 7

The syntax for find in mongodb is

    db.<collection name>.find(query, projection);

and the second query that you have written, that is

    db.test.find(
    {shapes: {"$elemMatch": {color: "red"}}}, 
    {"shapes.color":1})

in this you have used the $elemMatch operator in query part, whereas if you use this operator in the projection part then you will get the desired result. You can write down your query as

     db.users.find(
     {"shapes.color":"red"},
     {_id:0, shapes: {$elemMatch : {color: "red"}}})

This will give you the desired result.

Answer 8

Thanks to JohnnyHK.

Here I just want to add some more complex usage.

// Document 
{ 
"_id" : 1
"shapes" : [
  {"shape" : "square",  "color" : "red"},
  {"shape" : "circle",  "color" : "green"}
  ] 
} 

{ 
"_id" : 2
"shapes" : [
  {"shape" : "square",  "color" : "red"},
  {"shape" : "circle",  "color" : "green"}
  ] 
} 


// The Query   
db.contents.find({
    "_id" : ObjectId(1),
    "shapes.color":"red"
},{
    "_id": 0,
    "shapes" :{
       "$elemMatch":{
           "color" : "red"
       } 
    }
}) 


//And the Result

{"shapes":[
    {
       "shape" : "square",
       "color" : "red"
    }
]}

Answer 9

You just need to run query

db.test.find(
{"shapes.color": "red"}, 
{shapes: {$elemMatch: {color: "red"}}});

output of this query is

{
    "_id" : ObjectId("562e7c594c12942f08fe4192"),
    "shapes" : [ 
        {"shape" : "circle", "color" : "red"}
    ]
}

as you expected it'll gives the exact field from array that matches color:'red'.

Answer 10

Likewise you can find for the multiple

db.getCollection('localData').aggregate([
    // Get just the docs that contain a shapes element where color is 'red'
  {$match: {'shapes.color': {$in : ['red','yellow'] } }},
  {$project: {
     shapes: {$filter: {
        input: '$shapes',
        as: 'shape',
        cond: {$in: ['$$shape.color', ['red', 'yellow']]}
     }}
  }}
])

Answer 11

Along with $project it will be more appropriate other wise matching elements will be clubbed together with other elements in document.

db.test.aggregate(
  { "$unwind" : "$shapes" },
  { "$match" : { "shapes.color": "red" } },
  { 
    "$project": {
      "_id":1,
      "item":1
    }
  }
)

Answer 12

db.test.find( {"shapes.color": "red"}, {_id: 0})

Answer 13

Use aggregation function and $project to get specific object field in document

db.getCollection('geolocations').aggregate([ { $project : { geolocation : 1} } ])

result:

{
    "_id" : ObjectId("5e3ee15968879c0d5942464b"),
    "geolocation" : [ 
        {
            "_id" : ObjectId("5e3ee3ee68879c0d5942465e"),
            "latitude" : 12.9718313,
            "longitude" : 77.593551,
            "country" : "India",
            "city" : "Chennai",
            "zipcode" : "560001",
            "streetName" : "Sidney Road",
            "countryCode" : "in",
            "ip" : "116.75.115.248",
            "date" : ISODate("2020-02-08T16:38:06.584Z")
        }
    ]
}

Answer 14

Although the question was asked 9.6 years ago, this has been of immense help to numerous people, me being one of them. Thank you everyone for all your queries, hints and answers. Picking up from one of the answers here.. I found that the following method can also be used to project other fields in the parent document.This may be helpful to someone.

For the following document, the need was to find out if an employee (emp #7839) has his leave history set for the year 2020. Leave history is implemented as an embedded document within the parent Employee document.

db.employees.find( {"leave_history.calendar_year": 2020}, 
    {leave_history: {$elemMatch: {calendar_year: 2020}},empno:true,ename:true}).pretty()


{
        "_id" : ObjectId("5e907ad23997181dde06e8fc"),
        "empno" : 7839,
        "ename" : "KING",
        "mgrno" : 0,
        "hiredate" : "1990-05-09",
        "sal" : 100000,
        "deptno" : {
                "_id" : ObjectId("5e9065f53997181dde06e8f8")
        },
        "username" : "none",
        "password" : "none",
        "is_admin" : "N",
        "is_approver" : "Y",
        "is_manager" : "Y",
        "user_role" : "AP",
        "admin_approval_received" : "Y",
        "active" : "Y",
        "created_date" : "2020-04-10",
        "updated_date" : "2020-04-10",
        "application_usage_log" : [
                {
                        "logged_in_as" : "AP",
                        "log_in_date" : "2020-04-10"
                },
                {
                        "logged_in_as" : "EM",
                        "log_in_date" : ISODate("2020-04-16T07:28:11.959Z")
                }
        ],
        "leave_history" : [
                {
                        "calendar_year" : 2020,
                        "pl_used" : 0,
                        "cl_used" : 0,
                        "sl_used" : 0
                },
                {
                        "calendar_year" : 2021,
                        "pl_used" : 0,
                        "cl_used" : 0,
                        "sl_used" : 0
                }
        ]
}

Answer 15

if you want to do filter, set and find at the same time.

let post = await Post.findOneAndUpdate(
          {
            _id: req.params.id,
            tasks: {
              $elemMatch: {
                id: req.params.jobId,
                date,
              },
            },
          },
          {
            $set: {
              'jobs.$[i].performer': performer,
              'jobs.$[i].status': status,
              'jobs.$[i].type': type,
            },
          },
          {
            arrayFilters: [
              {
                'i.id': req.params.jobId,
              },
            ],
            new: true,
          }
        );

Answer 16

This answer does not fully answer the question but it's related and I'm writing it down because someone decided to close another question marking this one as duplicate (which is not).

In my case I only wanted to filter the array elements but still return the full elements of the array. All previous answers (including the solution given in the question) gave me headaches when applying them to my particular case because:

• I needed my solution to be able to return multiple results of the subarray elements.
• Using $unwind + $match + $group resulted in losing root documents without matching array elements, which I didn't want to in my case because in fact I was only looking to filter out unwanted elements.
• Using $project > $filter resulted in loosing the rest of the fields or the root documents or forced me to specify all of them in the projection as well which was not desirable.

So at the end I fixed all of this problems with an $addFields > $filter like this:

db.test.aggregate([
    { $match: { 'shapes.color': 'red' } },
    { $addFields: { 'shapes': { $filter: {
      input: '$shapes',
      as: 'shape',
      cond: { $eq: ['$$shape.color', 'red'] }
    } } } },
])

Explanation:

1. First match documents with a red coloured shape.
2. For those documents, add a field called shapes, which in this case will replace the original field called the same way.
3. To calculate the new value of shapes, $filter the elements of the original $shapes array, temporarily naming each of the array elements as shape so that later we can check if the $$shape.color is red.
4. Now the new shapes array only contains the desired elements.

Answer 17

For the new version of MongoDB, it's slightly different.

For db.collection.find you can use the second parameter of find with the key being projection

db.collection.find({}, {projection: {name: 1, email: 0}});

You can also use the .project() method.
However, it is not a native MongoDB method, it's a method provided by most MongoDB driver like Mongoose, MongoDB Node.js driver etc.

db.collection.find({}).project({name: 1, email: 0});

And if you want to use findOne, it's the same that with find

db.collection.findOne({}, {projection: {name: 1, email: 0}});

But findOne doesn't have a .project() method.

Answer 18

for more details refer =

mongo db official referance

suppose you have document like this (you can have multiple document too) - 

{
  "_id": {
    "$oid": "63b5cfbfbcc3196a2a23c44b"
  },
  "results": [
    {
      "yearOfRelease": "2022",
      "imagePath": "https://upload.wikimedia.org/wikipedia/en/d/d4/The_Kashmir_Files_poster.jpg",
      "title": "The Kashmir Files",
      "overview": "Krishna endeavours to uncover the reason behind his parents' brutal killings in Kashmir. He is shocked to uncover a web of lies and conspiracies in connection with the massive genocide.",
      "originalLanguage": "hi",
      "imdbRating": "8.3",
      "isbookMark": null,
      "originCountry": "india",
      "productionHouse": [
        "Zee Studios"
      ],
      "_id": {
        "$oid": "63b5cfbfbcc3196a2a23c44c"
      }
    },
    {
      "yearOfRelease": "2022",
      "imagePath": "https://upload.wikimedia.org/wikipedia/en/a/a9/Black_Adam_%28film%29_poster.jpg",
      "title": "Black Adam",
      "overview": "In ancient Kahndaq, Teth Adam was bestowed the almighty powers of the gods. After using these powers for vengeance, he was imprisoned, becoming Black Adam. Nearly 5,000 years have passed, and Black Adam has gone from man to myth to legend. Now free, his unique form of justice, born out of rage, is challenged by modern-day heroes who form the Justice Society: Hawkman, Dr. Fate, Atom Smasher and Cyclone",
      "originalLanguage": "en",
      "imdbRating": "8.3",
      "isbookMark": null,
      "originCountry": "United States of America",
      "productionHouse": [
        "DC Comics"
      ],
      "_id": {
        "$oid": "63b5cfbfbcc3196a2a23c44d"
      }
    },
    {
      "yearOfRelease": "2022",
      "imagePath": "https://upload.wikimedia.org/wikipedia/en/0/09/The_Sea_Beast_film_poster.png",
      "title": "The Sea Beast",
      "overview": "A young girl stows away on the ship of a legendary sea monster hunter, turning his life upside down as they venture into uncharted waters.",
      "originalLanguage": "en",
      "imdbRating": "7.1",
      "isbookMark": null,
      "originCountry": "United States Canada",
      "productionHouse": [
        "Netflix Animation"
      ],
      "_id": {
        "$oid": "63b5cfbfbcc3196a2a23c44e"
      }
    },
    {
      "yearOfRelease": "2021",
      "imagePath": "https://upload.wikimedia.org/wikipedia/en/7/7d/Hum_Do_Hamare_Do_poster.jpg",
      "title": "Hum Do Hamare Do",
      "overview": "Dhruv, who grew up an orphan, is in love with a woman who wishes to marry someone with a family. In order to fulfil his lover's wish, he hires two older individuals to pose as his parents.",
      "originalLanguage": "hi",
      "imdbRating": "6.0",
      "isbookMark": null,
      "originCountry": "india",
      "productionHouse": [
        "Maddock Films"
      ],
      "_id": {
        "$oid": "63b5cfbfbcc3196a2a23c44f"
      }
    },
    {
      "yearOfRelease": "2021",
      "imagePath": "https://upload.wikimedia.org/wikipedia/en/7/74/Shang-Chi_and_the_Legend_of_the_Ten_Rings_poster.jpeg",
      "title": "Shang-Chi and the Legend of the Ten Rings",
      "overview": "Shang-Chi, a martial artist, lives a quiet life after he leaves his father and the shadowy Ten Rings organisation behind. Years later, he is forced to confront his past when the Ten Rings attack him.",
      "originalLanguage": "en",
      "imdbRating": "7.4",
      "isbookMark": null,
      "originCountry": "United States of America",
      "productionHouse": [
        "Marvel Entertainment"
      ],
      "_id": {
        "$oid": "63b5cfbfbcc3196a2a23c450"
      }
    }
  ],
  "__v": 0
}



=======


mongo db query by aggregate command - 


mongomodels.movieMainPageSchema.aggregate(
        [
            {
               $project: {
                _id:0,  // to supress id
                results: {
                     $filter: {
                        input: "$results",
                        as: "result",
                        cond: { $eq: [ "$$result.yearOfRelease", "2022" ] }
                     }
                  }
               }
            }
         ]

    )
    
    
    

Answer 19

If you want to return the first matching shapes, find() will do the trick (as detailed here), but if you want to return every matching shapes with the original document you can do the following aggregate:

db.collection.aggregate([
  {
    $set: {
      shapes: {
        $filter: {
          input: "$shapes",
          as: "shape",
          cond: {$eq: ["$$shape.color", "red"]}
        }
      }
    }
  },
  {
    $match: {
      $nor: [
        {shapes: {$exists: false}},
        {shapes: {$size: 0}}
      ]
    }
  }
])

Play with it in mongo playground. This is filtering the shapes attribute in place and keeping the others (instead of using $project which remove others attributes, and need an extra step to get the doc back).

The additional $match is optionnal, it removes documents with empty shapes array.

Answer 20

    db.collection.aggregate([
      {
        "$unwind": "$shapes"
      },
      {
        "$match": {
          "$and": [
            {
              "shapes.color": "red"
            },
            {
              "shapes.shape": "circle"
            }
          ]
        }
      },
      //remove objectid
      {
        "$project": {
          _id: 0
        }
      }
    ])