Input Data

   Some_Table
   ST_Field1   ST_Field2
   Apple       A
   Apple       A
   Apple       D
   Orange      D
   Orange      E
   Orange      Z
   Pear        D
   Pear        G 
   Pear        C

   Reference_Table
   RT_Field1   RT_Field2
   1           A
   1           B
   1           C
   2           D
   2           E
   2           F
   3           G

Expected Result:

   ST_Field1   ST_Field2
   Orange      D
   Orange      E

CREATE TABLE SOME_TABLE
  ( ST_Field1 VARCHAR(100),
    ST_Field2 VARCHAR(100)
  );

INSERT INTO SOME_TABLE VALUES ('Apple','A');
INSERT INTO SOME_TABLE VALUES ('Apple','A');
INSERT INTO SOME_TABLE VALUES ('Apple','D');
INSERT INTO SOME_TABLE VALUES ('Orange','D');
INSERT INTO SOME_TABLE VALUES ('Orange','E');
INSERT INTO SOME_TABLE VALUES ('Orange','Z');
INSERT INTO SOME_TABLE VALUES ('Pear','D');
INSERT INTO SOME_TABLE VALUES ('Pear','G');
INSERT INTO SOME_TABLE VALUES ('Pear','C');

CREATE TABLE REFERENCE_TABLE
  ( RT_Field1 INTEGER,
    RT_Field2 VARCHAR(100)
  );

INSERT INTO REFERENCE_TABLE VALUES (1,'A');
INSERT INTO REFERENCE_TABLE VALUES (1,'B');
INSERT INTO REFERENCE_TABLE VALUES (1,'C');
INSERT INTO REFERENCE_TABLE VALUES (2,'D');
INSERT INTO REFERENCE_TABLE VALUES (2,'E');
INSERT INTO REFERENCE_TABLE VALUES (2,'F');
INSERT INTO REFERENCE_TABLE VALUES (3,'G');

It can be assumed that RT_Field2 is unique.

I'm looking to get the records from Some_Table which have multiple distinct values from RT_Field2, group by RT_Field1, by ST_Field1.

So from the reference table {A,B,C} are a grouping. I want to see if for a given ST_Field1 I see either {A,B};{B,c},{A,C}. I don't, I see A and C present, but across Apple and Pear.

The only success is Orange, where I'm looking for {D,E},{D,F}, or {E,F} and find D and E both for Orange.

I have:

WITH DUP_VALUES_RTF2 AS
  ( SELECT * 
      FROM (SELECT DST.ST_Field1,
                   DST.ST_Field2,
                   COUNT(1) OVER (PARTITION BY RT.RT_Field1) cnt_RTF1
              FROM (SELECT DISTINCT
                           ST_Field1,
                           ST_Field2
                      FROM Some_Table
                   ) DST
             INNER
              JOIN REFERENCE_TABLE RT
                ON DST.ST_Field2 = RT.RT_Field2
           ) TMP
     WHERE cnt_RTF1 > 1
  )
SELECT * 
  FROM SOME_TABLE ST
 WHERE EXISTS
         ( SELECT 1
             FROM DUP_VALUES_RTF2 DVR
            WHERE ST.ST_Field1 = DVR.ST_Field1
              AND ST.ST_Field2 = DVR.ST_Field2
         );  

Which doesn't even really come close because it doesn't handle the grouping at all correctly and is really ugly. Maybe I'm just going brain dead after 5pm.

up vote 1 down vote accepted

If I understand this correctly, you want to match on st_field1 and rt_field1, looking for duplicates in rt_field2. You can use window functions for this:

select s.*
from (select s.*, rt.rt_field1, rt.rt_field2,
             min(rt.rt_field2) over (partition by s.st_field1, r.rt_field1) as min_rt2,
             max(rt.rt_field2) over (partition by s.st_field1, r.rt_field1) as max_rt2             
      from sometable s join
           reference_table r
           on s.st_field2 = r.rt_field2
     ) s
where min_rt2 <> max_rt2;
  • Works well, thanks – Error_2646 Sep 12 at 22:45

you can try something like below

; with distinctSet as 
(select distinct s.*,RT_Field1 from SOME_TABLE s join REFERENCE_TABLE r on s.ST_Field2=r.RT_Field2
)
, 
uniqueSet as 
(
select RT_Field1,ST_Field1 
from distinctSet
group by RT_Field1,ST_Field1
having count(1)>1
),
resultSet as 
(
select
distinct 
s.*
from SOME_TABLE s 
join REFERENCE_TABLE r 
on s.ST_Field2=r.RT_Field2
join uniqueSet u
on u.RT_Field1=r.RT_Field1
and u.ST_Field1=s.ST_Field1
)
select * from resultSet
  • That does the trick, thanks! Accepted the other answer just because the window function makes it clean, but this one is good in that in just relies on vanilla sql – Error_2646 Sep 12 at 22:49

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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