117

Everybody. In mongo group query, the result shows only the key(s) in arguments. How to keep the first document in each group like mysql query group. for example:

-------------------------------------------------------------------------
|  name  | age  |  sex  | province |   city   |   area   |   address     |
-------------------------------------------------------------------------
| ddl1st | 22   | 纯爷们 |  BeiJing |  BeiJing | ChaoYang | QingNianLu    |
| ddl1st | 24   | 纯爷们 |  BeiJing |  BeiJing | XuHui    | ZhaoJiaBangLu |
|  24k   | 220  | ...   |  ....    |  ...     | ...      | ...           |
-------------------------------------------------------------------------



db.users.group({key: { name: 1},reduce: function ( curr, result ) { result.count ++ },initial: {count : 0 } })

result:

[
{
    "name" : "ddl1st",
    "count" : 1
},
{
    "name" : "24k",
    "count" : 1
}
]

How to get the following:

[
   {
   "name" : "ddl1st",
   "age" : 22,
   "sex" : "纯爷们",
   "province" : "BeiJing",
   "city" : "BeiJing",
   "area" : "ChaoYang",
   "address" : "QingNianLu",
   "count" : 1
   },
   {
   "name" : "24k",
   "age" : 220,
   "sex" : "...",
   "province" : "...",
   "city" : "...",
   "area" : "...",
   "address" : "...",
   "count" : 1
}
]

12 Answers 12

250

If you want to keep the information about the first matching entries for each group, you can try aggregating like:

    db.test.aggregate([{
      $group: {
         _id : '$name',
         name : { $first: '$name' },
         age : { $first: '$age' },
         sex : { $first: '$sex' },
         province : { $first: '$province' },
         city : { $first: '$city' },
         area : { $first: '$area' },
         address : { $first: '$address' },
         count : { $sum: 1 },
      }
    }]);
7
  • 6
    Why do you need {$first: '$age'} etc.? Is it possible to just have age: $age? Dec 16 '17 at 8:04
  • 8
    @lightalchemist It is not possible. It's kind of a trick to let 'group' know what to choose.
    – TechWisdom
    Mar 24 '18 at 23:21
  • 4
    What if instead of count this aggregation was doing a $max or $min for age ? The $first would not necessarily match with the min or max age found for the other fields. How to deal with that then?
    – Juliomac
    Jun 1 '18 at 22:48
  • 2
    This does not work, it groups by the other fields which is undesired.
    – Jack Cole
    Aug 2 '18 at 17:24
  • 1
    @Juliomac, I believe if your desired output is $max/$min and keeping fields that are not in the $group _id, you can $sort before with the desired field then group and use $first or $last operators on any field. When accumulating, the idea to include other fields (which are accumulated/funneled/reduced) doesn't make so much sense even theoretically. However, sorting before hand is actually inefficient compared to sorting each group within themselves since sorting algorithms are more complex than O(n). I wish there would be better ways in MongoDB.
    – Vemulo
    May 24 '19 at 8:24
28

[edited to include comment suggestions]

I came here looking for an answer but wasn't happy with the selected answer (especially given it's age). I found this answer that is a better solution (adapted):

db.test.aggregate({
  $group: {
    _id: '$name',
   person: { "$first": "$$ROOT" },
   count: { $sum: 1 }
  },
  {
    "$replaceRoot": { "newRoot": { "$mergeObjects": ["$person", { count: "$count" }]} }
  }
}
2
  • 3
    BUT, you lose the count field. You need use $mergeObjects to keep it.
    – 0zkr PM
    May 21 '20 at 4:34
  • 1
    To elaborate on 0zkr's comment about using $mergeObjects and help others with the syntax, the last pipeline syntax would be {"$replaceRoot": {"newRoot": {"$mergeObjects": ["$person", {count: "$count"}]}}} Sep 14 '20 at 16:32
21

By the way, if you want to keep not only the first document, you can use$addToSet For example:

db.test.aggregate({
  $group: {
    _id: '$name',
    name : { $addToSet: '$name' }
    age : { $addToSet: '$age' },
    count: { $sum: 1 }
  }
}
2
  • 1
    Thanks! Got it better (avoid messing the order with a Set) : data : {$addToSet: {name: '$name', _id: '$_id', age: '$age' } }
    – Benoit
    Jun 19 '19 at 22:59
  • Worth always bearing in mind when using the $addToSet pipeline operator, is that it returns unique values. Jan 27 at 12:16
11

You can try out this

db.test.aggregate({
      { $group: 
            { _id: '$name',count: { $sum: 1 }, data: { $push: '$$ROOT' } } },
      {
        $project: {
          _id:0,
          data:1,
          count :1
        }
      }

}
7

Use $first with the $$ROOT document and then use $replaceRoot with the first field.

db.test.aggregate([
  { "$group": {
    "_id": "$name",
    "doc": { "$first": "$$ROOT" }
  }},
  { "$replaceRoot": { "newRoot": "$doc" }}
])
0
5

This is what i did, it works fine.

db.person.aggregate([
{
  $group: { _id: '$name'}, // pass the set of field to be grouped
   age : { $first: '$age' }, // retain remaining field
   count: { $sum: 1 } // count based on your group
},
{
  $project:{
       name:"$_id.name",
       age: "$age",
       count: "$count",
       _id:0 
  }
}])
5

Just a quick update if one faces the same issue with documents with numerous fields. One can use the power of combining the $replaceRoot pipeline stage and the $mergeObjects pipeline operator.

db.users.aggregate([
  {
    $group: {
      _id: '$name',
      user: { $first: '$$ROOT' },
      count: { $sum: 1 }
    },
  },
  {
    $replaceRoot: {
      newRoot: { $mergeObjects: [{ count: '$count' }, '$user'] }
    }
  }
])
1

I didn't know about .group helper, but if you prefer to go with the Aggregation Framework, then you'll have to specify which fields to return. Correct me if I'm wrong, but in SQL you would have to do that anyway.

Well, this is how you would do it with the Aggregation Framework mentioned before:

db.test.aggregate({
  $group: {
    _id: { name: "$name", city: "$city", fieldName: "$fieldName" },
    count: { $sum: 1 }
  }
})
1
  • 10
    thanks for you help. in this query is group specified fields, i just want group by one field, and then result others specify fields. any good idea?
    – plusor
    May 21 '13 at 5:23
1

I created this function to generalise reversing an unwind stage... let me know if you guys come across any bugs with it, but it's working well for me!

const createReverseUnwindStages = unwoundField => {
  const stages = [
    //
    // Group by the unwound field, pushing each unwound value into an array,
    //
    // Store the data from the first unwound document
    // (which should all be the same apart from the unwound field)
    // on a field called data.
    // This is important, since otherwise we have to specify every field we want to keep individually.
    //
    {
      $group: {
        _id: '$_id',
        data: {$first: '$$ROOT'},
        [unwoundField]: {$push: `$${unwoundField}`},
      },
    },

    //
    // Copy the array of unwound fields resulting from the group into the data object,
    // overwriting the singular unwound value
    //
    {
      $addFields: {[`data.${unwoundField}`]: `$${unwoundField}`},
    },

    //
    // Replace the root with our data object
    //
    {
      $replaceRoot: {
        newRoot: '$data',
      },
    },
  ]

  return stages
}
1
  • Best one when documents into the same collection have various field name. Dec 4 '19 at 10:39
1

If you want to project all fields document this use below query.

db.persons.aggregate({
      { $group: { _id: '$name', data: { $push: '$$ROOT' }, total: { $sum: 1 }} },
      {
        $project: {
          _id:0,
          data:1,
          total :1
        }
      }
}
0

I like to put everything that is going to be used with the $first option into a dictionary to extract from at the end.

{'$set': 
  {'collection_name':
    'collection_item1': '$collection_item1',
    'collection_item2': '$collection_item2',
    ...
  }
}

Now, just copy the dictionary and you no longer have to lug around all that information 1 at a time!

{'$group':
  '_id': ['$id'],
  'collection_name': {'$first': '$collection_name'}
}
-1

Here is the answer >>>>

    $m = new \MongoDB\Driver\Manager();

    $command = new \MongoDB\Driver\Command([
        'aggregate' => 'mytestusers',
        'pipeline' => [
            ['$match' => ['name' => 'Pankaj Choudhary']],

            ['$unwind'=>'$skills'],
            ['$lookup' => array('from'=>'mytestskills','localField'=>'skills','foreignField'=>'_id','as'=>'sdfg')],
            ['$unwind'=>'$sdfg'],

            ['$group'=>array('_id'=>array('_id'=>'$_id','name'=>'$name','email'=>'$email'),'skills'=>array('$push'=>'$skills'),'sdfg'=>array('$push'=>'$sdfg'))],


        ],
        'cursor' => new \stdClass,
    ]);
    $cursor = $m->executeCommand('targetjob-plus', $command);
    $result = $cursor->toArray();
1
  • set your input table please first May 4 '17 at 7:37

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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