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 want to get the sum of several columns from 2 different tables (these tables share the same structure).

If I only consider one table, I would write this kind of query:

SELECT MONTH_REF, SUM(amount1), SUM(amount2)
    FROM T_FOO
    WHERE seller = XXX
    GROUP BY MONTH_REF;

However, I would like to also work with the data from the table T_BAR, and then have a select query that return the following columns:

  • MONTH_REF
  • SUM(T_FOO.amount1) + SUM(T_BAR.amount1)
  • SUM(T_FOO.amount2) + SUM(T_BAR.amount2)

everything grouped by the value of MONTH_REF.

Note that a record for a given MONTH_REF can be found in one table but not in the other table. In this case, I would like to get the sum of T_FOO.amount1 + 0 (or 0 + T_BAR.amount1).

How can I write my SQL query to get this information?

For information, my database is Oracle 10g.

share|improve this question

4 Answers 4

up vote 7 down vote accepted

You can union your tables before the group by (this is on Oracle, by the way):

SELECT t.month_ref, SUM(t.amount1), SUM(t.amount2)
  FROM (SELECT month_ref, amount1, amount2
          FROM T_FOO
         WHERE seller = XXX
         UNION ALL
        SELECT month_ref, amount1, amount2
          FROM T_BAR
         WHERE seller = XXX
         ) t
 GROUP BY t.month_ref

You may also union the tables with the seller field and filter by it later (in case you need more advanced logic):

 SELECT t.month_ref, SUM(t.amount1), SUM(t.amount2)
   FROM (SELECT month_ref, amount1, amount2, seller
           FROM T_FOO
          UNION ALL
         SELECT month_ref, amount1, amount2, seller
           FROM T_BAR) t
  where t.seller = XXX
  GROUP BY t.month_ref
share|improve this answer
    
Finally I prefer your solution (the first one) as it is clearer than the Lieven solution... –  romaintaz Sep 7 '09 at 9:26
    
First one is more efficient because you are reducing the number of rows sooner than when you move the WHERE clause outside of the sub SELECT. –  JohnB Feb 20 '12 at 5:54

Have you tried using a union?

SELECT MONTH_REF, SUM(amount1), SUM(amount2)
FROM (
  SELECT MONTH_REF, SUM(amount1) AS amount1, SUM(amount2) as amount2
      FROM T_FOO
      WHERE seller = XXX
      GROUP BY MONTH_REF
  UNION ALL SELECT MONTH_REF, SUM(amount1), SUM(amount2)
      FROM T_BAR
      WHERE seller = XXX
      GROUP BY MONTH_REF
  ) tmp
GROUP BY MONTH_REF
share|improve this answer
    
@romaintaz: no problem. One question, have you profiled the different solutions? I assume that grouping by - union - grouping by will be faster on large datasets than just union - grouping by solution. –  Lieven Keersmaekers Sep 7 '09 at 11:13

Alternatively, an outer join should also work:

SELECT month_ref, 
       SUM(t_foo.amount1) + SUM(t_bar.amount1), 
       SUM(t_foo.amount2)+SUM(t_bar.amount2)
FROM   t_foo FULL OUTER JOIN t_bar
       ON t_foo.month_ref = t_bar.month_ref
GROUP BY month_ref
share|improve this answer
    
This query takes too much time (especially compared to the Lieven's answer), and in addition it returns wrong results. It also need NVL(SUM(...), 0) otherwise I will get null values... –  romaintaz Sep 7 '09 at 9:09

I finally get this working using the Lieven's answer.

Here is the correct code (amount1 = ... is not working on my environment, and there are too many ; in the query):

SELECT MONTH_REF, SUM(sumAmount1), SUM(sumAmount2)
FROM (
  SELECT MONTH_REF, SUM(amount1) as sumAmount1, SUM(amount2) as sumAmount1
      FROM T_FOO
      WHERE seller = XXX
      GROUP BY MONTH_REF
  UNION ALL SELECT MONTH_REF, SUM(amount1), SUM(amount2)
      FROM T_BAR
      WHERE seller = XXX
      GROUP BY MONTH_REF
  ) tmp
GROUP BY MONTH_REF
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.