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I need a Query to get distinct keys with sorted on basis of score in Mongodb 1.6.5

I have records Like

{key ="SAGAR" score =16 note ="test1" }

{key ="VARPE" score =17 note ="test1" }

{key ="SAGAR" score =16 note ="test2" }

{key ="VARPE" score =17 note ="test2" }

I need a query which sorts all records on score and returns me distinct key.....

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So what would the desired results be if you ran this query on this set of data (always the best thing to show when asking query questions) –  James Avery Jan 21 '11 at 14:08
    
What programming language you use? –  Andrew Orsich Jan 21 '11 at 16:10
    
@Bugal13 I am using SCALA –  Sagar Varpe Jan 24 '11 at 11:30

2 Answers 2

up vote 7 down vote accepted

There is distinct command in mongodb:

you can use distinct like this:

db.test.distinct({"key":true,"score":true,"note":true}); 

the same in relational database:

SELECT DISTINCT key,score,note FROM test; 

And than sort result by adding following code:

.sort({score : 1}) // 1 = asc, -1 = desc

Total result will be like this:

 db.test.distinct({"key":true,"score":true,"note":true}).sort({score : 1}); 
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2  
Evidently this is no longer feasible (v3.8.0) - yields error that sort cannot be used with distinct. Can you confirm? –  Yashua Nov 6 '13 at 3:45
    
sort can not be used with distinct –  Maksym Polshcha Jan 2 at 12:55
    
There's a feature request active, please vote for it if you have the same issue: jira.mongodb.org/browse/SERVER-2130 –  UpTheCreek Feb 19 at 11:11

You can use the aggregation framework to group by the element you want to be distinct (group makes it distinct). So if you wish to sort on score then get distinct keys you could do the following - sort by score, group by key and add score as arrays of elements (already sorted):

db.test.aggregate([
    { $sort : { score : -1 } },
    { $group : {_id : "$key", scores : { $push : "$score" } } }
])

This will result in distinct keys along with an array of scores which are those scores contained in the documents with duplicate keys. I'm not sure this is exactly what you're looking for and I know this is an old question but I thought this might help out someone else looking at it in the future - as an alternative way of doing this.

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