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I tried running this:

db.col.find().skip(5).distinct("field1")

But it throws an error.

How to use them together?

I can use aggregation but results are different:

db.col.aggregate([{$group:{_id:'$field1'}}, {$skip:3},{$sort:{"field1":1}}])

What I want is links in sorted order i.e numbers should come first then capital letters and then small letters.

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Have you tried to read manuals? docs.mongodb.org/manual/reference/method/db.collection.distinct –  u_mulder Jan 16 '14 at 5:40
    
Tried your query. Got TypeError: db.col.find().distinct("field1") is not a function in shell –  wannaC Jan 16 '14 at 5:40
    
@u_mudler: Yes I did. Initially I was trying this: db.col.distinct("field1").skip(5) but distinct returns a list instead of cursor so can't use skip on this. –  wannaC Jan 16 '14 at 5:45
    
Ok, really a good question. –  u_mulder Jan 16 '14 at 5:46
    
Here's a similar question, but it's done with aggregation framework: stackoverflow.com/questions/16055868/… –  u_mulder Jan 16 '14 at 5:48

1 Answer 1

Distinct method must be run on COLLECTION not on cursor and returns an array. Read this http://docs.mongodb.org/manual/reference/method/db.collection.distinct/ So you can't use skip after distinct.

May be you should use this query db.col.aggregate([{$group:{_id:'$field1'}}, {$skip:3},{$sort:{"_id":1}}]) because field field1 will not exists in result after first clause of grouping.

Also I think you should do sort at first and then skip because in your query you skip 3 unsorted results and then sort them.

(If you provide more information about structure of your documents and what output you want it would be more clearly and I will correct answer properly)

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