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I've been for some help on getting the highest value on a column for a mongo document. I can sort it and get the top/bottom, but I'm pretty sure there is a better way to do it.

I tried the following (and different combinations):

transactions.find("id" => x).max({"sellprice" => 0})

But it keeps throwing errors. What's a good way to do it besides sorting and getting the top/bottom?

Thank you!

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You should include the errors it's throwing. –  Andy Lindeman Jan 21 '11 at 19:41

8 Answers 8

up vote 38 down vote accepted

max() does not work the way you would expect it to in SQL for Mongo. This is perhaps going to change in future versions but as of now, max,min are to be used with indexed keys primarily internally for sharding.

see http://www.mongodb.org/display/DOCS/min+and+max+Query+Specifiers

Unfortunately for now the only way to get the max value is to sort the collection desc on that value and take the first.

transactions.find("id" => x).sort({"sellprice" => -1}).limit(1).first()
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3  
You should also do .first otherwise you just get a cursor. –  Matthew Rathbone Oct 3 '11 at 22:17

Sorting might be overkill. You can just do a group by

db.messages.group(
           {key: { created_at:true },
            cond: { active:1 },
            reduce: function(obj,prev) { if(prev.cmax<obj.created_at) prev.cmax = obj.created_at; },
            initial: { cmax: **any one value** }
            });
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3  
This is exactly the right way to do that with MongoDB ! –  Thomas Decaux Jun 25 '12 at 18:24
1  
I wouldn't say it's an overkill considering this quote from the manual "When a $sort immediately precedes a $limit in the pipeline, the $sort operation only maintains the top n results as it progresses, where n is the specified limit" –  aioobe May 11 at 18:34
db.collectionName.aggregate(
  {
    $group : 
    {
      _id  : "",
      last : 
      {
        $max : "$sellprice"
      }
    }
  }
)
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Example mongodb shell code for computing aggregates.

see mongodb manual entry for group (many applications) :: http://docs.mongodb.org/manual/reference/aggregation/group/#stage._S_group

In the below, replace the $vars with your collection key and target variable.

db.activity.aggregate( 
  { $group : {
      _id:"$your_collection_key", 
      min: {$min : "$your_target_variable"}, 
      max: {$max : "$your_target_variable"}
    }
  } 
)
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Use aggregate():

db.transactions.aggregate([
  {$match: {id: x}},
  {$sort: {sellprice:-1}},
  {$limit: 1},
  {$project: {sellprice: 1}}
]);
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If the column's indexed then a sort should be OK, assuming Mongo just uses the index to get an ordered collection. Otherwise it's more efficient to iterate over the collection, keeping note of the largest value seen. e.g.

max = nil
coll.find("id" => x).each do |doc| 
    if max == nil or doc['sellprice'] > max then
        max = doc['sellprice'] 
    end
end

(Apologies if my Ruby's a bit ropey, I haven't used it for a long time - but the general approach should be clear from the code.)

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1  
Consider to iterate with MapReduce !!! This why MongoDB is cool, else use flat files ;-) –  Thomas Decaux Jun 25 '12 at 18:18

Assuming I was using the Ruby driver (I saw a mongodb-ruby tag on the bottom), I'd do something like the following if I wanted to get the maximum _id (assuming my _id is sortable). In my implementation, my _id was an integer.

result = my_collection.find({}, :sort => ['_id', :desc]).limit(1)

To get the minimum _id in the collection, just change :desc to :asc

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Wouldn't find_one() be better than using limit()? result = my_collection.find_one({}, :sort => ['_id', :desc]) –  Anurag Oct 11 '12 at 21:20

Following query does the same thing: db.student.find({}, {'_id':1}).sort({_id:-1}).limit(1)

For me, this produced following result: { "_id" : NumberLong(10934) }

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