92

I'm working on a query to find cities with most zips for each state:

db.zips.distinct("state", db.zips.aggregate([ 
    { $group:
      { _id: {
           state: "$state", 
           city: "$city" 
         },
        numberOfzipcodes: { 
           $sum: 1
         }
      }
    }, 
    { $sort: {
        numberOfzipcodes: -1
         }
      }
  ])
)

The aggregate part of the query seems to work fine, but when I add the distinct I get an empty result.

Is this because I have state in the id? Can I do something like distinct("_id.state ?

1
  • 4
    For those looking for how to use Mongo's aggregation to get distinct values, try this (inspired by dam1's answer and Mongo's documentation): db.collectionName.aggregate([{$group: {_id: null, uniqueValues: {$addToSet: "$fieldName"}}}])
    – tscizzle
    Feb 8, 2017 at 17:35

4 Answers 4

168

You can use $addToSet with the aggregation framework to count distinct objects.

For example:

db.collectionName.aggregate([{
    $group: {_id: null, uniqueValues: {$addToSet: "$fieldName"}}
}])

Or extended to get your unique values into a proper list rather than a sub-document inside a null _id record:

db.collectionName.aggregate([
    { $group: {_id: null, myFieldName: {$addToSet: "$myFieldName"}}},
    { $unwind: "$myFieldName" },
    { $project: { _id: 0 }},
])
4
  • 4
    Not a generic solution, if you have a large number of unique zip codes per result, this array would be very large. The question was to get the city with MOST zip codes for each state, not to get the actual zip codes. What happens if you have 10,000,000 zip codes for a given city? Sep 6, 2016 at 7:50
  • 1
    Just saw this, it would not count distinct objects at all, instead it will place, distinctly, objects into an array, not only that but distinction would be on === which is not always a good idea. Instead, you would want to group on distinct values counting the amount of times that value exists, at which point you could easily add a stage to sum it up as the number of unique objects. This, as a method of counting, would be highly inefficient in terms of memory and resource and processor.
    – Sammaye
    Mar 27, 2018 at 19:50
  • 1
    this might be a much better answer if it provided an actual answer to the OP, and not just a generic example of the syntax that group/addtoSet uses.. Apr 12, 2018 at 17:19
  • seems pymongo does not support it..
    – Han.Oliver
    Dec 13, 2021 at 18:19
68

Distinct and the aggregation framework are not inter-operable.

Instead you just want:

db.zips.aggregate([ 
    {$group:{_id:{city:'$city', state:'$state'}, numberOfzipcodes:{$sum:1}}}, 
    {$sort:{numberOfzipcodes:-1}},
    {$group:{_id:'$_id.state', city:{$first:'$_id.city'}, 
              numberOfzipcode:{$first:'$numberOfzipcodes'}}}
]);
6
  • 5
    @alex23 Distinct is a completely different command which returns an array of distinct values. It is completely in-compatible with the aggregation framework
    – Sammaye
    May 3, 2013 at 23:01
  • this is a query i had before, but i need to get the distinct cities for each state not the states
    – LemonMan
    May 3, 2013 at 23:01
  • @Lemonio Added city back in, that should give off the zips in each city in each state now
    – Sammaye
    May 3, 2013 at 23:02
  • @ sammaye i think this is exactly what i had before though? i wanted only the city with most zips for each state which is why i tried to do distinct. this way i get all the cities in each state, which is the query i had before
    – LemonMan
    May 3, 2013 at 23:05
  • @Lemonio ok you will need to do a second group, edited, edit: fixed some other errors edit: and more
    – Sammaye
    May 3, 2013 at 23:09
37

SQL Query: (group by & count of distinct)

select city,count(distinct(emailId)) from TransactionDetails group by city;

Equivalent mongo query would look like this:

db.TransactionDetails.aggregate([ 
{$group:{_id:{"CITY" : "$cityName"},uniqueCount: {$addToSet: "$emailId"}}},
{$project:{"CITY":1,uniqueCustomerCount:{$size:"$uniqueCount"}} } 
]);
1
  • 1
    This solution is much more clear and only selects the total count.
    – Sushin Pv
    Apr 7, 2019 at 7:30
4

You can call $setUnion on a single array, which also filters dupes:

{ $project: {Package: 1, deps: {'$setUnion': '$deps.Package'}}}

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