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 have two tables: Car and CarBorrowed.

The Car table contains all cars in the car pool with an ID and a group the car belongs to. For example:

ID 1, Car 1, Group Renault
ID 2, Car 3, Group Renault
ID 3, Car 4, Group VW
ID 4, Car 6, Group BMW
ID 5, Car 7, Group BMW

The CarBorrow table contains all cars which are borrowed on a particular day

Car 1, Borrowed on 23.08.2012
Car 3, Borrowed on 23.08.2012
Car 5, Borrowed on 23.08.2012

Now I want all groups, where no cars are left (today= 23.08.2012). So I should get "Group Renault"

share|improve this question
2  
What have you tried and what error did you get? –  Ollie Aug 23 '12 at 13:31
2  
Have you tried anything at least? People should not answer to this type of questions. –  davidmontoyago Aug 23 '12 at 13:39
    
Yes I tried the whole afternoon, but I had no idea, how to get the group, where no car is left. I only got all groups, where a car is left. –  John Smithv1 Aug 23 '12 at 14:12

4 Answers 4

First, join the tables, so we have for every car its borrows(a day).

select c.id, c.GroupName, cb.day
from car c
left join (select * from CarBorrow where day = '23 Aug 2012') cb 
  on (c.id = cb.id)

All cars not borrowed will have null at day.

After this, we shoud select all Groups that does not have nulls. Bellow an trick to get it:

select GroupName
FROM(
    select c.id, c.GroupName, cb.day
    from car c
    left join (select * from CarBorrow where day = '23 Aug 2012') cb 
      on (c.id = cb.id)
)
group by GroupName
having count(day) = count(*)

(Days that are null are not counted by COUNT)

share|improve this answer
SELECT distinct(D1.CARGROUP)
FROM   den_car d1
MINUS
(SELECT D.CARGROUP
 FROM   den_car d
 WHERE  d.id IN (SELECT c.ID
                 FROM   den_car c
                 MINUS
                 SELECT b.id
                 FROM   den_car_borrow b
                 WHERE  B.DATE_BORROW = TO_DATE (SYSDATE)))

This may be optimized but the idea is simple: Find the borrowed ones, subtract it from all cars. Then find the remaning groups.

Hope it helps. (By the way of course there are lots of other ways to do it.)

share|improve this answer

Hmmm . . . One way to approach this query is to count the cars in a group and also count the cars on a particular day, then take the groups where the borrowed equals the available:

select borrowed.BorrowedOn, available.CarGroup
from (select c.CarGroup, count(*) as cnt
      from car c
      group by c.CarGroup
     ) available left outer join
     (select c.CarGroup, cb.BorrowedOn, count(*) as cnt
      from CarBorrowed cb join
           Car c
           on cb.CarId = c.CarId
      group by c.CarGroup, cb.BorrowedOn
     ) borrowed
     on available.CarGroup = borrowed.CarGroup
where available.cnt = borrowed.cnt

By the way, "Group" is a bad name for a column, since it is a SQL reserved word. I've renamed it to CarGroup.

If the same car can be borrowed more than once on a given day, then change the count(*) in the second subquery to count(distinct cb.carId).

If you want just one day, you can add a clause to the WHERE clause.

share|improve this answer
    
if a car is borrowed twice a day you'll get wrong results. –  Florin Ghita Aug 23 '12 at 13:49
    
@FlorinGhita . . . that is a valid point. I will admit, that without a time stamp, I did make the assumption that cars cannot be borrowed twice in one day. My bigger problem is that the pool of cars might change over time, so there should be date stamps of availability in that table as well. –  Gordon Linoff Aug 23 '12 at 13:59
    
This looks good, but when I run it the following error occurs: 00918. 00000 - "column ambiguously defined" –  John Smithv1 Aug 23 '12 at 14:12

I think I have a solution now:

select x.groupname from 
(select a.groupname, count(*) as cnt from car a  group by a.groupname) x 
inner join  
(
  select b.groupname, count(*) as cnt from car b   where b.carid in (select caraid from modavail where day ='23.08.2012')
  group by b.groupname
  ) y

on x.groupname = y.groupname
where  x.cnt = y.cnt and y.cnt ! = 0 ORDER BY GROUPNAME;

Thanks for your help!!!!

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.