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I am using postgresql 9.2.

I have a dataset like this:

ID  A   B
1   x   x  
2   x   x 
2   x   x
2   x   x
3   x   x
4   x   x
4   x   x

I want to display records with ID that has the top n count. Say, top 2 counts of ID--in this case, ID=2 and 4. So the dataset should be:

ID  A  B
2   x  x
2   x  x   
2   x  x
4   x  x
4   x  x

My first thought was to create a new view by calculating the top n count, and then match the ID of the new view with the ID of the original table, thanks for this
However, the query runs forever, since EXISTS takes enormous time.

I wonder if there's a better way to do this?

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wonder if there's a better way to do this? Now: what did you do? why is `EXISTS() that bad? show us! –  wildplasser Jun 7 '13 at 22:16
    
stackoverflow.com/q/16992558/905902 : complete duplicate. –  wildplasser Jun 7 '13 at 22:19
    
@wildplasser: That one doesn't t look like a duplicate to me. –  Erwin Brandstetter Jun 7 '13 at 23:39
    
@wildplasser I over-simplified the problem here so that not to confuse people. My actual task is to dealing with data of millions of records, that's why EXISTS without creating index will not finish the work at all (I said this clearly in Q). Gordon's answer exactly solved the problem. I didn't know what to do, that's why I came here. Also please read Q carefully before arguing it's a complete duplicate. –  kostia Jun 12 '13 at 23:07
    
The OQ does not show any effort. There is no schema, no query, only the mentioning of the word EXISTS. The fact that Gordon's query works good for you could be by sheer coincidence, IMHO. If your data would be 10* as big, things would probably be different. And simplifying things does not make things simpler, it only confuses people. –  wildplasser Jun 12 '13 at 23:34

2 Answers 2

up vote 4 down vote accepted

You can do this with nested window functions:

select t.id, t.a, t.b
from (select t.*, dense_rank() over (order by idcnt desc, id) as seqnum
      from (select t.*, count(*) over (partition by id) as idcnt
            from t
           ) t
     ) t
where seqnum <= 2;

You can check out the SQLFiddle.

share|improve this answer
    
Thanks! I will end my query now (run for 40 minutes already) and try this. –  kostia Jun 7 '13 at 22:13
    
I just edited it a bit since there are 3 t here, but they have different purpose. The first t means the original table, while the other two t look like a temporary table name. –  kostia Jun 7 '13 at 22:33
    
@JohnSmith . . . I just generically use t for both tables and aliases when there is no better name to use. In the innermost query, you could write from <your table name> t, and the rest of the query would work. –  Gordon Linoff Jun 7 '13 at 23:39

This should be considerably simpler and faster than two subquery levels with window functions.

SELECT *
FROM   t
JOIN  (
   SELECT id
   FROM   t
   GROUP  BY 1
   ORDER  BY count(*) DESC
   LIMIT  2
   ) top2 USING (id)

As mentioned before, you need an index for this to be really fast. If id is your primary key you are all set.

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