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I have a table like the following

User   Item
 A      1
 A      1
 A      1
 B      1
 B      2
 C      2
 C      2
 A      2

I'm trying to run a query so I can get an output such as

User    Item    Count
 A       1       3
 B       1       1
 B       2       1
 A       2       1
 C       2       2 

I've tried the following query, however I'm not getting the output right.

  select f.item,f.uid, COUNT(f.uid) as count 
    from fresh f, 
         product p
   where f.locationid = p.iid   
group by f.locationid, f.uid 
order by f.uid desc;

Can anyone point out how I write a query to get the required output? I could write it up in python / ruby but I think it'll take a lot longer to run! :(

share|improve this question
1  
Why are you grouping by f.locationid and f.uid? If you group by only f.uid, you might get the results you want. – thehiatus Jan 26 '11 at 23:21
up vote 3 down vote accepted
Select user, Item, count(*) Count From tablename
Group by User, Item
Order by Item
share|improve this answer
    
+1 for the only answer that shows order by item, which seems to be the only problem with @steve's original query. – Ken Downs Jan 27 '11 at 2:27
    
...although for clarity most programmers would order by item,uid, as something there is in a programmer that hates randomness. – Ken Downs Jan 27 '11 at 2:28
SELECT user, item, count(*) FROM fresh GROUP BY user, item
share|improve this answer

Why are you joining to the product table, when it is not used in the results?

That is likely cause of the issue, since it is an inner join, when there isn't a match, there will be no result, so you'll lose data, try just:

select 
    item,
    uid, 
    COUNT(*) as count 
from  
    fresh
group by 
    locationid,
    uid 
order by
    uid desc
;
share|improve this answer
    
I'm joining to make sure its a valid product for a specific shop. If the iid isn't in there I don't want it in the result set. Does that make sense? – steve Jan 26 '11 at 23:46
    
Um, the validity should have been checked on the way in via foreign key. – Ken Downs Jan 27 '11 at 2:25

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