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I have a huge collection with ~1 billion documents, very few of those documents (less then 200) contain some field "rare_field".

How can I, as quickly as possible find all documents containing that field?

If I simply do:

collection.find({ "rare_field" : { $exists : true }})

it times out. This might take days to complete, so I'm not sure that even preventing timeout via a query flag will help here, but maybe I'm wrong.

I can also write a script to go over all documents but this will be slow as it'll need to pass all 1 billions documents over the wire to my server, I want some solution that will not require any passing of data on the wire, and will be quick.

Notes: this is a sharded collection.

I'll post my current solution as an answer, but I'm not sure it's 100% correct, and it's not as fast as I want it.

  • put this rare-field in your sharding query! and because of it, mongo would index this field too! so it's gonna be fast! – Mohsen ZareZardeyni Dec 12 '16 at 10:17
  • thanks. this is a one time thing, so I don't really need an index here. this might have been a good solution when the db was empty, but indexing this field now would take a lot of time, just like going over all docs manually (i think) – marmor Dec 12 '16 at 10:21
  • you're right about the time consumption! so it's totally up to ur application! another way is to keep the result in cache! store the result in a new collection or in redis or smtn! – Mohsen ZareZardeyni Dec 12 '16 at 10:29
  • create a sparse index? – joao Dec 12 '16 at 11:34
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Without an index on rare-field, in the worst case, mongodb will need to go over all documents in the collection. In such a case the cursor may time out, so you need to add a flag to the cursor to prevent it from doing so.

In the mongo shell, this would mean a query like:

var cursor = db.collection.find({ "rare_field" : { $exists : true }}).noCursorTimeout();

If your concern is that network problems or other issues will interrupt the query before the cursor has been populated with batchSize matching documents, then you can indeed get the documents one by one as you suggested in your answer, however you'll need to sort by { _id: 1 }, and use noCursorTimeout() and limit(1), i.e.:

var doc = db.collection.find({ "rare_field" : { $exists : true }})
            .sort({ _id: 1 })
            .limit(1)
            .noCursorTimeout()
            .next();

Then as you suggested, retrieve the next document by repeating the query while adding the condition { _id: { $gt: doc._id } } to the query object.

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A possible solution is to use findOne instead of find:

var doc = collection.findOne({ "rare_field" : { $exists : true }});

and then loop to get the next one:

var doc = collection.findOne({ _id : { $gt : doc._id}, "rare_field" : { $exists : true }});

However, I'm not 100% sure that these calls must give me results ordered by _id, and I'm not sure that single findOne won't timeout as well.

I fear that explicitly adding sort({_id : 1}) will force the query to get all results, and then to deliver the first one.

  • I don't think this would be a good idea! like you're doing the worst thing ever! you're mongo would do the same thing as find({ "rare_field" : { $exists : true }}); would do! but you're breaking it into several pieces with a lot of overhead! – Mohsen ZareZardeyni Dec 12 '16 at 10:23
  • also your fear is kinda explain why you shouldn't do this!:) – Mohsen ZareZardeyni Dec 12 '16 at 10:24

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