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Say I have a collection with documents like—

{
    'name': 'Hawaiian',
    'toppings': ['ham', 'cheese', 'pineapple'],
}

Or—

{
    'name': 'Peperonni',
    'toppings': ['cheese', 'pepperoni'],
}

How can I get a list of all toppings that appear in more than one document? So, for the two documents above, it'd be cheese.

Ideally as "close" to the database as possible—I know I can get a list of all toppings with distinct, then loop through all documents at the application level, but that'd be too expensive.

Thanks!

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2 Answers

Though a long query, but you can take a look. This is the aggregation framework with mongodb 2.2

db.test2.aggregate({$project:{"toppings":1, "_id":0}}, {$unwind:"$toppings"}, {$group:{"_id":"$toppings", count:{$sum:1}}}, {$match:{count:{$gt:1}}}, {$project:{"_id":1}})

{ "result" : [ { "_id" : "cheese" } ], "ok" : 1 }

Explain my query step:

  1. Only want the toppings field
  2. Expand all the values in toppings
  3. Group by values in toppings and count the number
  4. Find the number of the value which bigger than 1
  5. Get only value(toppings), count is not needed.
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I would get the list of all toppings, and then check for

db.coll.find({"topping": topping}).count() > 1

Note that I tried this in the mongo shell, and while the pymongo syntax would be exactly the same, I'm not sure where the count is implemented - in pymongo or in the database.

[EDIT]

pymongo seems to delegate the count() to mongodb, so that instead of a full query, the count operation is performed by the database.

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I'm assuming that's within a loop looping over all toppings—in my case the list of pizzas and toppings is ridiculously long—it takes too long to calculate. I was hoping this could be done in the DB (MapReduce, perhaps?) –  user1569050 Nov 5 '12 at 17:44
    
oh then go for the aggregation framework. There's one answer posted - I've heard a lot about its efficiency, but have never tried it seriously :) –  yati sagade Nov 5 '12 at 18:20
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