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Could somebody please help me work out the relational algebra for these 2 SQL statements. I cant get my head around it

SELECT EMP.*
     , DEPT.DEPTNAME
     , DEPT.BUILDING
     , MANAGER.NAME DEPT_MANAGER
  FROM DEPT DEPARTMENT
     , EMPLOYEES EMP
     , EMPLOYEES MANAGER
 WHERE DEPT.DEPTMANAGERID = MANAGER.EMPID
   AND EMP.DEPTNO = DEPT.DEPTNO;

and:

SELECT rep.repname SalesRep
     , prod.productno ProdID
     , prod.productname Name
     , prod.productdesc ProdDesc
     , prod.units Unit
     , prod.productprice Price
     , paint.*
     , chem.*
     , feed.*
     , sup.repname Supervisor
  FROM products prod
     , salesreps rep
     , salesreps sup
     , paintproducts paint
     , chemicalproducts chem
     , animalfeedproducts feed
 WHERE rep.salesrepid = prod.productsalesrepid
   AND rep.supervisor = sup.salesrepid (+)
   AND prod.productno = paint.productno (+)
   AND prod.productno = chem.productno (+)
   AND prod.productno = feed.productno (+);

I tried this this for the first one:

π emp.*, dept.deptname, dept.building, manager.name (Department |×| deptmanagerid = empid Employees) X (Employee |×| Emp.Deptno = Dept.DeptNo Department) 

(Sorry have no idea how to change the layout so it looks readable) Dont know whether thats even remotely right and as for the second one I just have no idea where to start with it

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Have you tried to convert the queries and got stuck? It would be better if you showed us what you tried and why you are having problems, then just asking for people to convert it for you. –  bluefeet Nov 14 '12 at 14:58
    
@bluefeet I tried this this for the first one: π emp.*, dept.deptname, dept.building, manager.name (Department |×| deptmanagerid = empid Employees) X (Employee |×| Emp.Deptno = Dept.DeptNo Department) (Sorry have no idea how to change the layout so it looks readable) Dont know whether thats even remotely right and as for the second one I just have no idea where to start with it –  ToniHopkins Nov 14 '12 at 16:36

2 Answers 2

For your first query, seams like you are looking for the manager's info, you tell me if I missunderstood, but how about this:

SELECT MANAGER.*
 , DEPT.DEPTNAME
 , DEPT.BUILDING
 , DEPT_MANAGER
FROM DEPT DEPARTMENT
 , EMPLOYEES MANAGER
WHERE DEPT.DEPTMANAGERID = MANAGER.EMPID
AND MANAGER.DEPTNO = DEPT.DEPTNO;

If you want the employees of the manager, you have to use two tables like you intended in the first place

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for the second query, maybe you can provide a little bit more info –  Jorge Alvarado Nov 14 '12 at 15:06
    
Im just trying to convert the queries into relational agrebra so for the first query I made something that looks like π emp.*, dept.deptname, dept.building, manager.name (Department |×| deptmanagerid = empid Employees) X (Employee |×| Emp.Deptno = Dept.DeptNo Department) (Sorry have no idea how to change the layout so it looks readable) –  ToniHopkins Nov 14 '12 at 16:37

The translation between SQL query block and relational algebra is straightforward: the from clause is cartesian product, the where clause lists restrictions (aka selections), and the select clause is projection, applied in the order I just had described. These kind of relational queries are called SPJ (select-project-join) or SPC in the literature.

The translation between the query with outer join and relational algebra doesn't make sense: contrary to wikipedia RA page, the outer join (let alone the one written in oracle proprietary error-prone syntax) is not a part of standard relational algebra.

P.S. Latex would render your relational algebra query readable.

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