Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have gone through several articles and examples, and have yet to find an efficient way to do this SQL query in MongoDB (where there are millions of rows documents)

First attempt

(e.g. from this almost duplicate question - Mongo equivalent of SQL's SELECT DISTINCT?)

db.myCollection.distinct("myIndexedNonUniqueField").length

Obviously I got this error as my dataset is huge

Thu Aug 02 12:55:24 uncaught exception: distinct failed: {
        "errmsg" : "exception: distinct too big, 16mb cap",
        "code" : 10044,
        "ok" : 0
}

Second attempt

I decided to try and do a group

db.myCollection.group({key: {myIndexedNonUniqueField: 1},
                initial: {count: 0}, 
                 reduce: function (obj, prev) { prev.count++;} } );

But I got this error message instead:

exception: group() can't handle more than 20000 unique keys

Third attempt

I haven't tried yet but there are several suggestions that involve mapReduce

e.g.

Also

It seems there is a pull request on GitHub fixing the .distinct method to mention it should only return a count, but it's still open: https://github.com/mongodb/mongo/pull/34

But at this point I thought it's worth to ask here, what is the latest on the subject? Should I move to SQL or another NoSQL DB for distinct counts? or is there an efficient way?

Update:

This comment on the MongoDB official docs is not encouraging, is this accurate?

http://www.mongodb.org/display/DOCS/Aggregation#comment-430445808

Update2:

Seems the new Aggregation Framework answers the above comment... (MongoDB 2.1/2.2 and above, development preview available, not for production)

http://docs.mongodb.org/manual/applications/aggregation/

share|improve this question
    
I assume you need to do this frequently or performance wouldn't matter that much. In that case I'd store the distinct values in a separate collection that's updated when you insert a new document instead of trying to do a distinct on a collection that large. Either that or I'd re-evaluate my use of MongoDb and possibly move to something else. As you found, MongoDb currently isn't good at what you're trying to do. –  Tim Gautier Aug 2 '12 at 18:48
    
@TimGautier thanks, I was afraid so, it took hours to insert all those values, and I should have thought of that before :) I think I'll spend the time now to insert it to MySQL for those statistics... –  Eran Medan Aug 2 '12 at 18:56
    
You can also do an incremental MR basically emulating delta indexing of aggregate data. I mean it depends on when you need the results as to what you use. I can imagine that MySQL would prolly get a lot of IO and what not from doing this (I can kill a small server with distincting just 100k docs inline on an index) but I suppose it is more flexible in querying for this sort of stuff still. –  Sammaye Aug 2 '12 at 20:34
    
Why the downvote? –  Eran Medan Jun 25 '14 at 19:55

3 Answers 3

up vote 27 down vote accepted

1) The easiest way to do this is via the aggregation framework. This takes two "$group" commands: the first one groups by distinct values, the second one counts all of the distinct values

pipeline = [ 
    { $group: { _id: "$myIndexedNonUniqueField"}  },
    { $group: { _id: 1, count: { $sum: 1 } } }
];

//
// Run the aggregation command
//
R = db.runCommand( 
    {
    "aggregate": "myCollection" , 
    "pipeline": pipeline
    }
);
printjson(R);

2) If you want to do this with Map/Reduce you can. This is also a two-phase process: in the first phase we build a new collection with a list of every distinct value for the key. In the second we do a count() on the new collection.

var SOURCE = db.myCollection;
var DEST = db.distinct
DEST.drop();


map = function() {
  emit( this.myIndexedNonUniqueField , {count: 1});
}

reduce = function(key, values) {
  var count = 0;

  values.forEach(function(v) {
    count += v['count'];        // count each distinct value for lagniappe
  });

  return {count: count};
};

//
// run map/reduce
//
res = SOURCE.mapReduce( map, reduce, 
    { out: 'distinct', 
     verbose: true
    }
    );

print( "distinct count= " + res.counts.output );
print( "distinct count=", DEST.count() );

Note that you cannot return the result of the map/reduce inline, because that will potentially overrun the 16MB document size limit. You can save the calculation in a collection and then count() the size of the collection, or you can get the number of results from the return value of mapReduce().

share|improve this answer
4  
I downloaded Mongo 2.2 RC0, and used your 1st suggestion, and it works! and fast! thank you (well done 10gen...) Created a gist here (used the shortcut aggregate command and put it in one line) gist.github.com/3241616 –  Eran Medan Aug 2 '12 at 22:54
    
@EranMedan I should warn you though, I didn't suggest the aggregation framework because 2.2 rc0 is still not really ready for full deployment, just something to bare in mind, I would wait until the full release of 2.2 before recommending deployment of the aggregation framework. –  Sammaye Aug 3 '12 at 8:49
    
@Sammaye yes, thanks I'm aware of it, will not go to production yet, I needed that for internal statistics and wanted to avoid moving data to SQL if possible (and quench my curiosity) –  Eran Medan Aug 3 '12 at 14:12
    
Why won't Mongo accept :this.plugins.X-Powered-By.string ? How would I escape this? –  EarlyPoster Dec 4 '12 at 22:33
    
I'm wondering if this answer is reliable for a sharded environment. As I understand it, shards will each do their own aggregation and then return the result where the results will then be aggregated. So in this scenario, wouldn't we have the opportunity for duplicates to exist since the distinct values have been lost in the second $group statement before being passed back to mongos? –  Verran Apr 2 at 23:57
db.myCollection.aggregate( 
   {$group : {_id : "$myIndexedNonUniqueField"} }, 
   {$group: {_id:1, count: {$sum : 1 }}});

straight to result:

db.myCollection.aggregate( 
   {$group : {_id : "$myIndexedNonUniqueField"} }, 
   {$group: {_id:1, count: {$sum : 1 }}})
   .result[0].count;
share|improve this answer
    
@JohnnyHK - you are right and I just fixed it –  Stackee007 Mar 4 '13 at 21:45
    
Right, that's better. But isn't that the same answer that William already provided? –  JohnnyHK Mar 4 '13 at 22:01

I do it in 2 phases 1st select distinct values , second count it .

res = posts.find({ "geography": { "$regex": '/europe/', "$options": 'i'}} ).distinct("geography")
res.sort()
for line in res: 
    res2 = posts.find("geography": line )
    print line, res2.count()
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.