MongoDB distinct aggregation
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"}} }
]);
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" },
{ $project: { _id: 0 }},
])
Distinct and the aggregation framework are not inter-operable.
Instead you just want:
db.zips.aggregate([
{$group:{_id:{city:'$city', state:'$state'}, numberOfzipcodes:{$sum:1}}},
{$sort:{numberOfzipcodes:-1}},
{$group:{_id:'$_id.state', city:{$first:'$_id.city'},
numberOfzipcode:{$first:'$numberOfzipcodes'}}}
]);