Say I have two tables, which I want to calculate their sum differences:

company1(
id INTEGER,
salary INTEGER
)

company2(
id INTEGER,
salary INTEGER
)

How can I select the difference between their SUM(salary) from each of their employees using only one select query?

For example:

SELECT 
(SELECT SUM(company1.salary) FROM company1 GROUP BY id) - (SELECT SUM(company2.salary) FROM company2 GROUP BY id) as diff_between_pay

The end results would be like:

company1
id   salary  
1    40000
2    20000
3    50000

company2
id   salary
1    30000
2    15000
3    25000

end result differences:
id
1    10000
2    5000
3    25000
  • What sum are you talking about in sum(salary)? id is primary key in each table (and presumably that is employee id), so there is only one salary for each employee in each table - so what sum are you talking about? – mathguy Dec 5 '17 at 3:10
up vote 2 down vote accepted

You can do this in a select:

select (select sum(salary) from company1) - (select sum(salary) from company2) as diff_between_pay
from dual;

For your revised question, use a full join:

select ( coalesce(c1.sums, 0) - coalesce(c2.sums, 0) ) as diff_between_pay
from (select id, sum(salary) as sums
      from company1
      group by id
     ) c1 full join
     (select id, sum(salary) as sums
      from company2
      group by id
     ) c2
     on c1.id = c2.id;
  • Apologizes, I was still editing my question. I left out an important piece. What if the sums from each company was GROUPED BY id? Meaning that you have multiple rows from each sum, instead of a single row. – Joesph Dec 5 '17 at 2:40
  • The revised question worked out and gave me the exact result I wanted. Although I think you forgot a ", 0" in the second coalesce argument. Thank you. – Joesph Dec 5 '17 at 2:56
  • I don't understand. If ID is primary key, what is the meaning of GROUPING by ID? – mathguy Dec 5 '17 at 3:12
  • @mathguy Oh, your right. I apologize, it was not meant to be ID, the example I came up with should have had more thought put into it. It was meant to be a non-primary key instead of ID. – Joesph Dec 5 '17 at 4:30

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