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I am trying to modify the SCOTT schema by raising employees salaries by 15%. If the resulting salary exceeds his or her highest possible salary, HISAL, in SALGRADE we just use HISAL, my code is:

select 
  coalesce((
    select   sal*1.15 
    from emp , salgrade  
    where 
      sal*1.15<=hisal
   ) , 
   (select hisal from emp ,salgrade where sal*1.15>hisal )) raised_sal
from emp ;

The inner select returns multiple rows

Does anyone have suggestions or different code?

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3 Answers 3

If we break-down what you're trying to do:

coalesce gives the first value, unless that is null then the second etc. You haven't specified any join condition, so you're doing a cartesian join between emp and salgrade. This will return the number of rows in emp multiplied by the number of rows in salgrade; subject to your join condition.

The second part of your query does exactly the same in the opposite direction.

Assuming a table_structure of:

create table emp (
        emp_id number
      , salary number -- current salary
      , salgrade_id number -- current salary grade 
      , dept_id -- current department
         );

create table salgrade (
      , salgrade_id number
      , hisal number -- max salary for that grade
       );

You want to be doing something like this:

select least( e.salary * 1.15, s.hisal )
  from emp e
  join salgrade s
    on e.salgrade_id = s.salgrade_id

The least function is similar to min; in that it will take the minimum value. However, it works over multiple columns on the same row, rather than multiple rows over the same column.

By taking the least of hisal and salary * 1.15 we ensure that if the salary increase is higher than hisal then hisal is taken instead.

In this case join means that for every emp_id we're taking the hisal for the appropriate salary grade. I would highly recommend reading up on SQL joins - this link was 7th on Google, which was a bit of a surprise ( Jeff seems to be everywhere ), but it's quite good and has many more links.

To change the query to enable you to do it for all employees earning over 100,000 ( the rich get richer ) it would look something like this:

select least( e.salary * 1.15, s.hisal )
  from emp e
  join salgrade s
    on e.salgrade_id = s.salgrade_id
 where e.salary > 100000

Or to complicate matters if you wanted to do it for only IT peoples ( why not ), you could extend it to something like this:

select least( e.salary * 1.15, s.hisal )
  from emp e
  join salgrade s
    on e.salgrade_id = s.salgrade_id
  join dept d
    on e.dept_id = d.dept_id
 where d.dept = 'IT' 

These joins by being inner joins as opposed to outer joins ( normally left outer joins - see the link ) imply that every employee has a grade and a department.

share|improve this answer
    
Ben, salgrade_id don't exists. –  danihp Feb 19 '12 at 16:28
    
@danihp, not having or being able to find out a schema I had to improvise. There must be a unique identifier in salgrade with a foreign key using this identifier in emp otherwise the schema is, essentially, useless; substitute this identifier for salgrade_id –  Ben Feb 19 '12 at 16:30
    
The major issue is to know how to join emp with salgrade through non equijoin. THe schema is not useless without this foreigh key. –  danihp Feb 19 '12 at 16:45
    
@danihp, it's a fair point. "Useless" is a very strong word; but it's still well designed. –  Ben Feb 19 '12 at 19:42
    
Is only for academic purposes. –  danihp Feb 19 '12 at 19:51

You should join emp with salgrade through a non equijoin:

    select   sal*1.15 
    from 
      emp 
        inner join
      salgrade sg
        on emp.sal BETWEEN sg.losal AND sg.hisal  <-- here!
    where 
      sal*1.15<=hisal

More info: Introduction to Basic SQL, Part 3 - Complex Joins and Sub-queries:

"we joined using the BETWEEN operator. The paybands in the SALGRADE table use a range of salary to designate a grade."

EDIT

To calculate the employee grade you should look for employee salary and look into salgrade for a salary range that contains employee salary.

This is the salgrade data:

...
INSERT INTO SALGRADE VALUES (2,1201,1400);
INSERT INTO SALGRADE VALUES (3,1401,2000);
...

If employee salary is 1495 that means that his grade is 2.

If you increase 1395 in 15% then this is out of range of your salrange and, as you explain, you should set salary at 1400 that is the hisal for range 2.

Your query:

select 
  coalesce((
    select   sal*1.15 
    from emp e2
    inner join
       salgrade sg
            on e2.sal BETWEEN sg.losal AND sg.hisal
    where 
      e2.EMPNO = e1.EMPNO and
      sal*1.15<=hisal
   ) , 
   (select hisal from emp e2 inner join salgrade sg
    on e2.sal BETWEEN sg.losal AND sg.hisal
    where e2.EMPNO = e1.EMPNO 
   )) raised_sal
from emp e1 ;

Without subqueries:

select 
   case 
     when sal*1.15  < hisal then sal*1.15 
     when sal*1.15  >= hisal then hisal
   end
   raised_sal
from 
   emp e1 
     inner join
   salgrade sg
     on e1.sal BETWEEN sg.losal AND sg.hisal

Disclaimer, not tested.

share|improve this answer
    
but danihp it will not give hisal value when employee has salary value greater then hisal? employee having this kind of case will not be a part of this output .. Right ? –  pratik garg Feb 19 '12 at 15:26
    
See edited answer. –  danihp Feb 19 '12 at 16:22
    
Denihp I think I didn't describe properly that time ... What I wanna to say that 'e1.sal between sg.losal AND sg.hisal' this condition should not be there to satisfy the second condition of this 'when case ' sentence .. please think again .. you will surely get my point.. by the way your way of query is very good .. –  pratik garg Feb 19 '12 at 18:04
    
are you talking about employees that has salary * 1.15 greater than greatest hisal? I think that this is not a special case, is a regular case, will not be a part of output –  danihp Feb 19 '12 at 18:07
    
thank you all i wrote also these codes --using union select ename , sal , sal*1.15 from emp , salgrade where sal between losal and hisal and emp.sal*1.15<=salgrade.hisal union select ename , sal , sal*1.15 from emp , salgrade where sal between losal and hisal and emp.sal*1.15>salgrade.hisa --using case select ename , sal, ( case when sal*1.15<=hisal then sal*1.15 when sal*1.15>hisal then hisal end ) new_sal from emp , salgrade where sal between losal and hisal ; –  ahmed gad Feb 20 '12 at 12:37

I think you missed only join condition ...

in both the query you can give join condition, if any (like emp.employee_name = salgrade.employee_name)

and have to give inner query condition also... like

select 
  coalesce((
    select   sal*1.15 
    from emp e2, salgrade  
    where 
      sal*1.15<=hisal
and e2.employee_name = e1.employee_name
   ) , 
   (select hisal from emp e3,salgrade where sal*1.15>hisal 
and e3.employee_name = e1.emplyee_name
)) raised_sal
from emp e1;
share|improve this answer
    
Joining on name is a way to make very large mistakes, you need to use a unique identifier and name is not guaranteed to be unique. I got bored of counting the number of Pratik Garg's registered with Facebook when I found 38. –  Ben Feb 19 '12 at 16:22
    
that was just hint not a proper query .. what I was telling that you are getting multiple rows exception just because of absence of the sub query conditions .. if you will add these conditions then you will get single row (most probably,.... if you don't have multiple records for a customer in your table .. ) –  pratik garg Feb 19 '12 at 18:13

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