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I've got a bit of a complicated query that I'm struggling with. You will notice that the schema isn't the easiest thing to work with but it's what I've been given and there isn't time to re-design (common story!).

I have rows like the ones below. Note: The 3 digit value numbers are just random numbers I made up.

id     field_id     value
1      5            999 
1      6            888
1      7            777
1      8            foo <--- foo so we want the 3 values above
1      9            don't care

2      5            123 
2      6            456
2      7            789
2      8            bar <--- bar so we DON'T want the 3 values above
2      9            don't care

3      5            623 
3      6            971
3      7            481
3      8            foo <--- foo so we want the 3 values above
3      9            don't care

...
...

n      5            987 
n      6            654
n      7            321
n      8            foo <--- foo so we want the 3 values above
n      9            don't care

I want this result:

id     result
1      999*888*777
3      623*971*481
...
n      987*654*321

Is this clear? So we have a table with n*5 rows. For each of the sets of 5 rows: 3 of them have values we might want to multiply together, 1 of them tells us if we want to multiply and 1 of them we don't care about so we don't want the row in the query result.

Can we do this in Oracle? Preferably one query.. I guess you need to use a multiplication operator (somehow), and a grouping.

Any help would be great. Thank you.

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just to clarify then. value is a varchar2 string. is foo always field_id = 8 and the values to multiply are always field_id 5-7? –  DazzaL Jan 19 '13 at 14:48
    
@DazzaL: Yes, yes and yes to your three questions :). –  ale Jan 19 '13 at 14:50
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2 Answers 2

up vote 2 down vote accepted

something like this:

select m.id, exp(sum(ln(m.value)))
  from mytab m
 where m.field_id in (5, 6, 7)
   and m.id in (select m2.id
                  from mytab m2
                 where m2.field_id = 8
                   and m2.value = 'foo')
 group by m.id;

eg:

SQL> select * from mytab;

        ID   FIELD_ID VAL
---------- ---------- ---
         1          5 999
         1          6 888
         1          7 777
         1          8 foo
         1          9 x
         2          5 123
         2          6 456
         2          7 789
         2          8 bar
         2          9 x
         3          5 623
         3          6 971
         3          7 481
         3          8 foo
         3          9 x

15 rows selected.

SQL> select m.id, exp(sum(ln(m.value))) result
  2    from mytab m
  3   where m.field_id in (5, 6, 7)
  4     and m.id in (select m2.id
  5                    from mytab m2
  6                   where m2.field_id = 8
  7                     and m2.value = 'foo')
  8   group by m.id;

        ID     RESULT
---------- ----------
         1  689286024
         3  290972773
share|improve this answer
    
Perfect :) thank you very much! +1 and solved. –  ale Jan 19 '13 at 15:12
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Same logic; just removed the hard-coded values. posting this answer thinking might be helpful to some others.

    SELECT a.id,
           exp(sum(ln(a.val)))
    FROM mytab a,
      (SELECT DISTINCT id,
                       field_id
       FROM mytab
       WHERE val = 'foo') b
    WHERE a.id = b.id
      AND a.field_id < b.field_id
    GROUP BY a.id;
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