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 a table:

lease_id, suite_id

Lease is a key and you can have multiple suite’s to one lease. I’m trying to create a query that shows me all of the suite’s that a lease is associated with, essentially an output like the following:

lease_id: 1 suite_list: A1, A2, B1

Unfortunately I’m unsure how to approach this (or even how to begin) as this is a new kind of problem for me... Any help would be greatly appreciated!

share|improve this question
    
possible duplicate - stackoverflow.com/questions/194852/… –  vmvadivel Jul 19 '12 at 3:11
    
@vmvadivel Except not, please read my question through completely / see the answer I posted with the final solutions –  ElvisLikeBear Jul 19 '12 at 3:19

3 Answers 3

up vote 1 down vote accepted

You can use FOR XML.

The code will be something like this:

-- Sample data tables
select *
into #leases
from (
    select '1' as lease_id
    union 
    select '2' as lease_id
    ) a

select *
into #leaseSuites
from (
    select '1' as lease_id,
        'A1' as suite_id
    union 
    select '1' as lease_id,
        'A2' as suite_id
    union
    select '1' as lease_id,
        'B1' as suite_id
    union 
    select '2' as lease_id,
        'C2' as suite_id
    union
    select '2' as lease_id,
        'B3' as suite_id        
    ) a 


-- Creates comma delimited with child table.
select left(suite_list, LEN(suite_list) - 1) as suite_list
from (
    SELECT 'lease_id: ' + lease_id + ' ' +
      'suite_list: ' + (
      SELECT s.suite_id + ','
      FROM #leaseSuites s
      WHERE l.lease_id = s.lease_id
      ORDER BY s.suite_id
      FOR XML PATH('')
      ) AS suite_list
    FROM #leases l ) a

Click here to see an article with an example.

share|improve this answer
1  
Thanks, I used this for my second approach as my original line of thinking was somewhat slow. Appreciated! –  ElvisLikeBear Jul 19 '12 at 3:21

I'll assume your table is called LeasedSuites.

We'll need a function:

     create function dbo.AllSuite (@l int) returns varchar(100)
     as begin
       declare @v varchar(2);
       declare @r varchar(100);

       DECLARE sc CURSOR FOR select suite_id from LeasedSuites where lease_id = @l
       OPEN sc
       FETCH NEXT FROM sc INTO @v
       WHILE @@FETCH_STATUS = 0 BEGIN
         select @r = @r + ',' + @v;
         FETCH NEXT FROM sc INTO @v
       END
       CLOSE sc
       DEALLOCATE sc

       return substring(@r, 2, len(@r) - 1);
     end

And a query:

     declare @l int;

     create table #out (lease_id int, suite_str varchar(100) null)
     insert #out (lease_id) select distinct lease_id from LeasedSuites

     while (select count(*) from #out where suite_str is null) > 0 begin
       select @l = min(lease_id) from #out where suite_str is null;
       update #out set suite_str = dbo.AllSuite(@l) where lease_id = @l;
     end

     select 'Lease ID: ' + cast(lease_id as varchar(3)) + ' Suites: ' + suite_str from #out order by l;

Hope this helps. Regards JB

If this represents an answer please mark as answer.

share|improve this answer
    
This would work, but isn't very fluid or easy to maintain. Upvote all the same but I think there's a number of better ways to approach this (see other answers) –  ElvisLikeBear Jul 19 '12 at 3:58

I've ended up solving this in two ways. My first method, which was unfortunately quite slow was:

declare @period_id  integer =
                (
                     select period_id
                     from   property.period
                     where  getdate() between period_start and period_end
                 )



;with cte_data as
(
    select  lp.*
    from    property.lease_period lp
    where   period_id = @period_id
)       
, cte_suites as
(
    select  d.lease_id
        ,   (
                select stuff
                ( 
                    (   select ', ' + a.suite_id
                        from 
                        (   select  a.suite_id
                            from    cte_data a
                            where   a.lease_id = d.lease_id
                         ) a
                        for xml path(''))
                     , 1, 2, ''
                ) as suite_list 
            ) suite_list

    from    cte_data d
    group by d.lease_id
) ,
cte_count as
(
    select  lease_id ,
            count(suite_id) as 'suites'
    from    property.lease_period
    where   period_id = @period_id
            and lease_id <> 'No Lease'
    group by lease_id

)
select  d.period_id , 
        d.building_id , 
        d.lease_id , 
        s.suite_list
from    cte_data d
        left outer join cte_suites s
            on d.lease_id = s.lease_id
        inner join cte_count c
            on d.lease_id = c.lease_id
where   period_id = 270
        and d.lease_id <> 'No Lease'
        and c.suites > 1
group by 
        d.period_id , 
        d.building_id , 
        d.lease_id , 
        s.suite_list

I then stripped this back and re-approached it with a new direction, resulting in the following (much, much quicker):

declare @period_id  integer =
            (
                 select period_id
                 from   property.period
                 where  getdate() between period_start and period_end
             )

;with CteLeaseInMultSuites as 
(
    select  period_id, 
            building_id,
            lease_id
    from    property.lease_period
    where   period_id = @period_id
            and lease_id <> 'No Lease'
    group by 
            period_id, 
            building_id, 
            lease_id
    having  count(*) > 1
)

select  period_id, 
        building_id, 
        lease_id, 
        left(x.suite_list, len(x.suite_list) - 1) as suite_list
from    CteLeaseInMultSuites lm
        cross apply
        (
            select  suite_id + ', '
            from    CteLeaseInMultSuites lmx
                    inner join property.lease_period lp
                        on lp.period_id = lmx.period_id
                        and lp.building_id = lmx.building_id
                        and lp.lease_id = lmx.lease_id
            where   lmx.period_id = lm.period_id
                    and lmx.building_id = lm.building_id
                    and lmx.lease_id = lm.lease_id
            for xml path('')
        ) x (suite_list)
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.