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I am selecting column used in group by and count, and query looks something like

SELECT s.country, count(*) AS posts_ct
FROM   store          s
JOIN   store_post_map sp ON sp.store_id = s.id
GROUP  BY 1;

However, I want to select some more fields, like store name or store address from store table where count is max, but I don't to include that in group by clause.

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1 Answer 1

up vote 0 down vote accepted

For instance, to get the stores with the highest post-count per country:

SELECT DISTINCT ON (s.country)
       s.country, s.store_id, s.name, sp.post_ct
FROM   store          s
JOIN  (
    SELECT store_id, count(*) AS post_ct
    FROM   store_post_map
    GROUP  BY store_id
    ) sp ON sp.store_id = s.id
ORDER  BY s.country, sp.post_ct DESC

Add any number of columns from store to the SELECT list.

Details about this query style in this related answer:
SQL: Select first row in each GROUP BY group?

Reply to comment

This produces the count per country and picks (one of) the store(s) with the highest post-count:

SELECT DISTINCT ON (s.country)
       s.country, s.store_id, s.name
      ,sum(post_ct) OVER (PARTITION BY s.country) AS post_ct_for_country
FROM   store          s
JOIN  (
    SELECT store_id, count(*) AS post_ct
    FROM   store_post_map
    GROUP  BY store_id
    ) sp ON sp.store_id = s.id
ORDER  BY s.country, sp.post_ct DESC;

This works because the window function sum() is applied before DISTINCT ON per definition.

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This is returning store details with posts_ct of store having max posts in each group, however what I am looking for is posts_ct for sum of posts for group and details of store having max post in the group, hope this is clear now and apology for the confusion. –  bhupesh Feb 14 '13 at 12:12
    
@bhupesh: How would you pick the "winning" store in a group, when multiple stores share the same highest count? Pick one randomly? Show multiple rows? –  Erwin Brandstetter Feb 14 '13 at 12:35
    
yes, details of random store will work in my case, however posts_count must be sum from each store in group (city, country etc), can you please help with that? –  bhupesh Feb 14 '13 at 12:52
    
@bhupesh: Added another solution. I guess we are getting there now? :) –  Erwin Brandstetter Feb 14 '13 at 13:15
    
thanks Erwin, you rock :-) –  bhupesh Feb 14 '13 at 13:54

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