81

I have used aggregation for fetching records from mongodb.

$result = $collection->aggregate(array(
  array('$match' => $document),
  array('$group' => array('_id' => '$book_id', 'date' => array('$max' => '$book_viewed'),  'views' => array('$sum' => 1))),
  array('$sort' => $sort),
  array('$skip' => $skip),
  array('$limit' => $limit),
));

If I execute this query without limit then 10 records will be fetched. But I want to keep limit as 2. So I would like to get the total records count. How can I do with aggregation? Please advice me. Thanks

  • What would the results look like if there were only 2? – WiredPrairie Dec 3 '13 at 11:45

11 Answers 11

91

This is one of the most commonly asked question to obtain the paginated result and the total number of results simultaneously in single query. I can't explain how I felt when I finally achieved it LOL.

$result = $collection->aggregate(array(
  array('$match' => $document),
  array('$group' => array('_id' => '$book_id', 'date' => array('$max' => '$book_viewed'),  'views' => array('$sum' => 1))),
  array('$sort' => $sort),

// get total, AND preserve the results
  array('$group' => array('_id' => null, 'total' => array( '$sum' => 1 ), 'results' => array( '$push' => '$$ROOT' ) ),
// apply limit and offset
  array('$project' => array( 'total' => 1, 'results' => array( '$slice' => array( '$results', $skip, $length ) ) ) )
))

Result will look something like this:

[
  {
    "_id": null,
    "total": ...,
    "results": [
      {...},
      {...},
      {...},
    ]
  }
]
  • 7
    Documentation on this: docs.mongodb.com/v3.2/reference/operator/aggregation/group/… ... note that with this approach, the entire non-paginated result set must fit in 16MB. – btown Nov 15 '16 at 17:56
  • 6
    This is pure gold! I was going thru hell trying to make this work. – Henrique Miranda Nov 30 '16 at 14:36
  • 4
    Thanks guy ! I juste need { $group: { _id: null, count: { $sum:1 }, result: { $push: '$$ROOT' }}} (insert after {$group:{}} for count total find. – Liberateur Jun 22 '17 at 9:11
  • How do you apply limit to the results set? Results is now a nested array – valen Jan 7 '18 at 18:53
  • @valen You can see last line of code " 'results' => array( '$slice' => array( '$results', $skip, $length ) )" Here you can apply limit and skip params – Anurag pareek Jan 8 '18 at 16:41
59

Since v.3.4 (i think) MongoDB has now a new aggregation pipeline operator named 'facet' which in their own words:

Processes multiple aggregation pipelines within a single stage on the same set of input documents. Each sub-pipeline has its own field in the output document where its results are stored as an array of documents.

In this particular case, this means that one can do something like this:

$result = $collection->aggregate([
  { ...execute queries, group, sort... },
  { ...execute queries, group, sort... },
  { ...execute queries, group, sort... },
  $facet: {
    paginatedResults: [{ $skip: skipPage }, { $limit: perPage }],
    totalCount: [
      {
        $count: 'count'
      }
    ]
  }
]);

The result will be (with for ex 100 total results):

[
  {
    "paginatedResults":[{...},{...},{...}, ...],
    "totalCount":[{"count":100}]
  }
]
  • 7
    This works great, as of 3.4 this should be the accepted answer – Adam Reis Jul 26 '18 at 1:48
  • To convert so arrayful result into simple two field object I need another $project? – SerG Feb 17 '19 at 21:54
  • this must now be the accepted answer. worked like charm. – Arootin Aghazaryan Apr 30 '19 at 23:13
  • 3
    This should be the accepted answer today. However, I found performance issues when using paging with $facet. The other up voted answer also has performance issues with $slice. I found it better to $skip and $limit in the pipeline and make a separate call for count. I tested this against fairly large data sets. – Jpepper Jun 18 '19 at 18:55
50

Use this to find total count in collection.

db.collection.aggregate( [
{ $match : { score : { $gt : 70, $lte : 90 } } },
{ $group: { _id: null, count: { $sum: 1 } } }
] );
  • 3
    Thanks. But, I have used "views" in my coding to get the count of the corresponding group count(i.e, group 1 => 2 records, group 3 => 5 records & so on). I want to get the records count(i.e, total: 120 records). Hope you understood.. – user2987836 Dec 3 '13 at 10:24
24

You can use toArray function and then get its length for total records count.

db.CollectionName.aggregate([....]).toArray().length
  • 1
    While this might not work as a "proper" solution, it helped me debug something - it does work, even if it's not 100% a solution. – Johann Marx Nov 8 '17 at 9:18
  • 2
    This isn't real solution. – Furkan Başaran Feb 19 '19 at 10:59
  • 1
    TypeError: Parent.aggregate(...).toArray is not a function this is the error I gave with this solution. – Mohammad Hossein Shojaeinia Apr 16 '19 at 11:24
15

Use the $count aggregation pipeline stage to get the total document count:

Query :

db.collection.aggregate(
  [
    {
      $match: {
        ...
      }
    },
    {
      $group: {
        ...
      }
    },
    {
      $count: "totalCount"
    }
  ]
)

Result:

{
   "totalCount" : Number of records (some integer value)
}
  • This works just like a charm, but performance-wise is it good? – MaryJane Sep 20 '18 at 18:06
10

I did it this way:

db.collection.aggregate([
     { $match : { score : { $gt : 70, $lte : 90 } } },
     { $group: { _id: null, count: { $sum: 1 } } }
] ).map(function(record, index){
        print(index);
 });

The aggregate will return the array so just loop it and get the final index .

And other way of doing it is:

var count = 0 ;
db.collection.aggregate([
{ $match : { score : { $gt : 70, $lte : 90 } } },
{ $group: { _id: null, count: { $sum: 1 } } }
] ).map(function(record, index){
        count++
 }); 
print(count);
  • fwiw you don't need the var declaration nor the map call. The first 3 lines of your first example is sufficient. – Madbreaks Apr 4 '18 at 23:56
6

Solution provided by @Divergent does work, but in my experience it is better to have 2 queries:

  1. First for filtering and then grouping by ID to get number of filtered elements. Do not filter here, it is unnecessary.
  2. Second query which filters, sorts and paginates.

Solution with pushing $$ROOT and using $slice runs into document memory limitation of 16MB for large collections. Also, for large collections two queries together seem to run faster than the one with $$ROOT pushing. You can run them in parallel as well, so you are limited only by the slower of the two queries (probably the one which sorts).

I have settled with this solution using 2 queries and aggregation framework (note - I use node.js in this example, but idea is the same):

var aggregation = [
  {
    // If you can match fields at the begining, match as many as early as possible.
    $match: {...}
  },
  {
    // Projection.
    $project: {...}
  },
  {
    // Some things you can match only after projection or grouping, so do it now.
    $match: {...}
  }
];


// Copy filtering elements from the pipeline - this is the same for both counting number of fileter elements and for pagination queries.
var aggregationPaginated = aggregation.slice(0);

// Count filtered elements.
aggregation.push(
  {
    $group: {
      _id: null,
      count: { $sum: 1 }
    }
  }
);

// Sort in pagination query.
aggregationPaginated.push(
  {
    $sort: sorting
  }
);

// Paginate.
aggregationPaginated.push(
  {
    $limit: skip + length
  },
  {
    $skip: skip
  }
);

// I use mongoose.

// Get total count.
model.count(function(errCount, totalCount) {
  // Count filtered.
  model.aggregate(aggregation)
  .allowDiskUse(true)
  .exec(
  function(errFind, documents) {
    if (errFind) {
      // Errors.
      res.status(503);
      return res.json({
        'success': false,
        'response': 'err_counting'
      });
    }
    else {
      // Number of filtered elements.
      var numFiltered = documents[0].count;

      // Filter, sort and pagiante.
      model.request.aggregate(aggregationPaginated)
      .allowDiskUse(true)
      .exec(
        function(errFindP, documentsP) {
          if (errFindP) {
            // Errors.
            res.status(503);
            return res.json({
              'success': false,
              'response': 'err_pagination'
            });
          }
          else {
            return res.json({
              'success': true,
              'recordsTotal': totalCount,
              'recordsFiltered': numFiltered,
              'response': documentsP
            });
          }
      });
    }
  });
});
2

This could be work for multiple match conditions

            const query = [
                {
                    $facet: {
                    cancelled: [
                        { $match: { orderStatus: 'Cancelled' } },
                        { $count: 'cancelled' }
                    ],
                    pending: [
                        { $match: { orderStatus: 'Pending' } },
                        { $count: 'pending' }
                    ],
                    total: [
                        { $match: { isActive: true } },
                        { $count: 'total' }
                    ]
                    }
                },
                {
                    $project: {
                    cancelled: { $arrayElemAt: ['$cancelled.cancelled', 0] },
                    pending: { $arrayElemAt: ['$pending.pending', 0] },
                    total: { $arrayElemAt: ['$total.total', 0] }
                    }
                }
                ]
                Order.aggregate(query, (error, findRes) => {})
1
//const total_count = await User.find(query).countDocuments();
//const users = await User.find(query).skip(+offset).limit(+limit).sort({[sort]: order}).select('-password');
const result = await User.aggregate([
  {$match : query},
  {$sort: {[sort]:order}},
  {$project: {password: 0, avatarData: 0, tokens: 0}},
  {$facet:{
      users: [{ $skip: +offset }, { $limit: +limit}],
      totalCount: [
        {
          $count: 'count'
        }
      ]
    }}
  ]);
console.log(JSON.stringify(result));
console.log(result[0]);
return res.status(200).json({users: result[0].users, total_count: result[0].totalCount[0].count});
  • It is usually good practice to include explanatory text along with a code answer. – user11563547 Aug 26 '19 at 2:16
0

Sorry, but I think you need two queries. One for total views and another one for grouped records.

You can find useful this answer

0

I needed the absolute total count after applying the aggregation. This worked for me:

db.mycollection.aggregate([
    {
        $group: { 
            _id: { field1: "$field1", field2: "$field2" },
        }
    },
    { 
        $group: { 
            _id: null, count: { $sum: 1 } 
        } 
    }
])

Result:

{
    "_id" : null,
    "count" : 57.0
}

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.