Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I've been banging my head on this one. I think I'm close. (Oracle, SQL)

I've got a table that looks like the following.

Company    Code
Apple      A
Google     A
Microsoft  B
Apple      C
Google     B
Microsoft  B
Apple      C
Google     C
Microsoft  B

Each company can resolve to multiple codes. What I want to do is create a SQL statement that for each company will give me the company with code that appears the most frequently. So in my example I'd get

Apple      C
Google     <nothing since there's no clear max>
Microsoft  B

What I've put together so far is the following. This query returns to me the company with the code that appears the most, however if I have a tie between two codes for a company, I get both back. For Google in my example I'd get (Google, A), (Google, B), (Google, C). I want nothing returned.

I believe that I can join the whole thing again with itself and some additional where clauses to filter out the duplicate companies, however I was wondering if there is a better way to do this. What's killing me is the aggregation functions along with the group by since sometimes I get an Oracle single-group group error. Any suggestions are appreciated.

SELECT m1, c.company sp1, b.code ul1 FROM
  (SELECT MAX(c1) m1, company FROM
    (SELECT COUNT(company||code) c1, company, code FROM table GROUP BY company, code ) a
  GROUP BY company) c
left OUTER JOIN
  (SELECT COUNT(company||code) c1, company, code FROM table GROUP BY company, code ) b
ON c.company=b.company and
m1=b.c1;

mj

share|improve this question
    
Oracle Database 11g Enterprise Edition Release 11.2.0.1.0 - 64bit Production –  mj_ Nov 12 '12 at 17:46

3 Answers 3

up vote 2 down vote accepted

you can do it with this:

select company, case when c > 1 then null else code1 end code1
  from (select company, code1, recs, count(*) over (partition by company, recs ) c, 
           row_number() over (partition by company order by recs desc) rn
  from (select company, code1, count(*) recs
          from table
         group by company, code1))
 where rn = 1
 order by 1

breaking this down:

select company, code1, count(*) recs
 from table
 group by company, code1

this gets us each company with their code count:

COMPANY   C       RECS
--------- - ----------
Google    A          1
Google    B          1
Microsoft B          3
Apple     A          1
Apple     C          2
Google    C          1

from this we want the most popular. we do this with an analyic:

select company, code1, recs,
       row_number() over (partition by company order by recs desc) rn
  from (select company, code1, count(*) recs
          from t1
         group by company, code1)

giving:

COMPANY   C       RECS         RN
--------- - ---------- ----------
Apple     C          2          1 <- we want all rn= "1" rows
Apple     A          1          2
Google    A          1          1<- we want all rn= "1" rows
Google    B          1          2
Google    C          1          3
Microsoft B          3          1<- we want all rn= "1" rows

but now if theres duplicates (as google has)..we count(*) the rows that have RN=1.

select company, code1, recs,
       row_number() over (partition by company order by recs desc) rn,
       count(*) over (partition by company, recs ) c
  from (select company, code1, count(*) recs
          from t1
         group by company, code1)

giving

COMPANY   C       RECS         RN          C
--------- - ---------- ---------- ----------
Apple     C          2          1          1
Apple     A          1          2          1
Google    A          1          1          3
Google    B          1          2          3
Google    C          1          3          3
Microsoft B          3          1          1

so we need to say where RN=1 and also c = 1 (ie only ONE row had that number of recs. so we end up with:

select company, case when c > 1 then null else Code1 end Code1
  from (select company, code1, recs, count(*) over (partition by company, recs ) c, 
           row_number() over (partition by company order by recs desc) rn
  from (select company, code1, count(*) recs
          from t1
         group by company, code1))
 where rn = 1

ie rn = 1 and the c > 1 check is in the case at the top (as we don't want to filter rows out, just mark them as ambiguous.

share|improve this answer

Try

with
tcount as
(
select t.company, t.code, count(*) c
from table1 t 
group by t.company, t.code) 

select distinct tt.company,
decode(count(tt.company) over(partition by tt.company),
1,
tt.code,
null)
from tcount tt
where tt.c =
(select max(c) from tcount tti where tt.company = tti.company) 

Here is a fiddle

share|improve this answer
SELECT company,CASE WHEN count_ > 1 THEN NULL ELSE code END
(
SELECT company,MAX(code) code,count(1) count_
(SELECT company,code,rank() OVER(PARTITION BY company ORDER BY count_ DESC) rn FROM
(
select
       company,code,count(1) count_
from   table
group by
       company,code
) 
)
where rn = 1
GROUP BY 
   company
)
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.