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How can I select count(*) from two different tables to create view?

There are the tables:

DEPT table

  • DEPTNO
  • DNAME
  • LOC

EMP table

  • EMPNO
  • ENAME
  • JOB
  • MGR
  • HIREDATE
  • SAL
  • COMM
  • DEPTNO

I've tried:

CREATE VIEW PLACE
AS SELECT d.Loc CITY, count(d.Deptno) N_DEPT, count(e.Empno) N_EMP
   FROM Dept d, Emp e
   where d.Deptno = e.Deptno
   GROUP BY d.Loc, d.deptno;

and got this:

CITY          N_DEPT   N_EMP
CHICAGO         6       6
DALLAS          5       5
NEW YORK        3       3

There is only 1 N_DEPT in each city so the result is wrong :/. There should be:

CITY          N_DEPT   N_EMP
CHICAGO         1       6
DALLAS          1       5
NEW YORK        1       3
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2 Answers 2

up vote 4 down vote accepted

use DISTINCT, try

CREATE VIEW PLACE
AS 
SELECT  d.Loc CITY, 
        count(DISTINCT d.Deptno) N_DEPT, 
        count(e.Empno) N_EMP
FROM    Dept d 
        INNER JOIN Emp e
           ON d.Deptno = e.Deptno
GROUP BY d.Loc
share|improve this answer
    
Thanks, it works :). I was confused by lectures that 'distinct' is forbidden for 'view' :/ but it depends on DB i see. Thanks again! –  TheSpaceboy0 Dec 16 '12 at 14:25
    
you're welcome! :D –  John Woo Dec 16 '12 at 14:25

You may also simply count the stuff you want per city without joining the tables to be counted:

create view PLACE
as
select d.Loc as CITY,
       (select count(distinct deptNo) from dept x where x.DeptNo = d.Deptno) as N_DEPT
       (select count(distinct Empno)  from Emp  e where e.DeptNo = d.Deptno) as N_EMP
from Dept d

This is not ment to be a better solution. It just shows a different way to look at the problem and create a solution. What I like about it is that you could add whatever you want to count in the same manner, i.e. it introduces kind of a template.

share|improve this answer
    
It's interesting and clever solution but I got a Message-Log ORA-01427: single-row subquery returns more than one row :/ –  TheSpaceboy0 Dec 16 '12 at 23:26
    
Sorry, there is a stupid error in my query. It should read (select count(distinct ...). Thanks for showing me the error. I updated my proposal. –  alzaimar Dec 17 '12 at 7:20

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