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For some collection with a field { wins: Number }, how could I use MongoDB Aggregation Framework to get the total number of wins across all documents in a collection?

Example:

If I have 3 documents with wins: 5, wins: 8, wins: 12 respectively, how could I use MongoDB Aggregation Framework to return the total number, i.e. total: 25.

  • Use a $group operation as shown in the docs. – JohnnyHK Jun 11 '13 at 12:54
  • @JohnnyHK I've tried db.characters.aggregate([{$group:{_id:'id',wins:{$sum:1}}}]); but without any luck. It returns how many wins fields i have instead of values from the wins. – Sahat Yalkabov Jun 11 '13 at 13:19
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    db.characters.aggregate( [ { $group: { _id: null, total: { $sum: "$wins" } } } ] ) – WiredPrairie Jun 11 '13 at 13:22
  • 1
    @WiredPrairie Thank you it worked. Do you want to post it as an answer so I could accept it? – Sahat Yalkabov Jun 11 '13 at 13:24
131

Sum

To get the sum of a grouped field when using the Aggregation Framework of MongoDB, you'll need to use $group and $sum:

db.characters.aggregate([ { 
    $group: { 
        _id: null, 
        total: { 
            $sum: "$wins" 
        } 
    } 
} ] )

In this case, if you want to get the sum of all of the wins, you need to refer to the field name using the $ syntax as $wins which just fetches the values of the wins field from the grouped documents and sums them together.

Count

You can sum other values as well by passing in a specific value (as you'd done in your comment). If you had

{ "$sum" : 1 },

that would actually be a count of all of the wins, rather than a total.

  • What would you do if this query takes a long time? (runs across many documents) – refaelos Aug 30 '14 at 10:30
  • 3
    As this algorithm must scan every document, you'll need to resort to caching, precalculation, or filtering the results to reduce the overall time spent. – WiredPrairie Aug 30 '14 at 15:01
  • How do you get the result? I get a cursor back. – chovy Mar 5 '17 at 6:35
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    Why do you need the [ ] ? It works without them, i.e. db.characters.aggregate({$group ... }) instead of db.characters.aggregate([{$group ... }]) . – foobarbecue Sep 18 '17 at 1:26
  • 2
    Wow, _id: null is the key here. +1 you tried to use the aggregation framework without thinking about using _id: null. – Pablo Burgos Nov 16 '18 at 18:02

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