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 like this (of course there are many more values but you get the idea):

ID      Name
---     ----
1       A
1       B
2       C
3       D
4       A
4       D
4       E
4       F
4       G
4       H

I want to write a query that would output this, given that an ID cannot have more than 6 names.

ID      Name1        Name2       Name3     Name4     Name5    Name6
---    ------        ------     ------    ------    ------    -----
1        A             B
2        C
3        D
4        A             D           E         F         G        H
share|improve this question
    
@Lwoodyiii - I found a fault in my response. I don't think it will extrapolate up to 6 - suggest you extend your question slightly to give the full picture. –  martin clayton Jan 18 '10 at 0:28
    
@Martin I edited it. Please put your answer back up, I think it could be extended to the correct answer. I thought it was a useful start. Thanks! –  LWoodyiii Jan 18 '10 at 0:32
    
What version of SQL Server? –  OMG Ponies Jan 18 '10 at 0:37
    
It didn't work - fatally flawed. –  martin clayton Jan 18 '10 at 0:41
    
@OMG Ponies 2008 –  LWoodyiii Jan 18 '10 at 0:49

2 Answers 2

up vote 4 down vote accepted

Try:

WITH rows AS (
   SELECT t.id,
          t.name,
          ROW_NUMBER() OVER (PARTITION BY t.id ORDER BY t.name) 'rank'
     FROM TABLE t)
  SELECT r.id,
         MAX(CASE WHEN r.rank = 1 THEN r.name ELSE NULL END) AS Name1,
         MAX(CASE WHEN r.rank = 2 THEN r.name ELSE NULL END) AS Name2,
         MAX(CASE WHEN r.rank = 3 THEN r.name ELSE NULL END) AS Name3,
         MAX(CASE WHEN r.rank = 4 THEN r.name ELSE NULL END) AS Name4,
         MAX(CASE WHEN r.rank = 5 THEN r.name ELSE NULL END) AS Name5,
         MAX(CASE WHEN r.rank = 6 THEN r.name ELSE NULL END) AS Name6,
    FROM rows r
GROUP BY r.id

Non CTE equivalent:

SELECT r.id,
       MAX(CASE WHEN r.rank = 1 THEN r.name ELSE NULL END) AS Name1,
       MAX(CASE WHEN r.rank = 2 THEN r.name ELSE NULL END) AS Name2,
       MAX(CASE WHEN r.rank = 3 THEN r.name ELSE NULL END) AS Name3,
       MAX(CASE WHEN r.rank = 4 THEN r.name ELSE NULL END) AS Name4,
       MAX(CASE WHEN r.rank = 5 THEN r.name ELSE NULL END) AS Name5,
       MAX(CASE WHEN r.rank = 6 THEN r.name ELSE NULL END) AS Name6,
  FROM (SELECT t.id,
               t.name,
               ROW_NUMBER() OVER (PARTITION BY t.id ORDER BY t.name) 'rank'
          FROM TABLE t) r
GROUP BY r.id

Reference:

share|improve this answer
    
I'll try this tomorrow and +1 if you got it! :) Thanks! –  LWoodyiii Jan 18 '10 at 6:40
    
It worked!!! Thanks :) –  LWoodyiii Jan 19 '10 at 12:32

I created a stored procedure named pivot_query to make the PIVOT statement a little more flexible. The source for it is here. There is also an example of how to use it.

Borrowing a piece of code from OMG Ponies below, and changing the query a bit, then the call to pivot_query would look like this:

declare @mySQL varchar(MAX)

set @mySQL = '
SELECT
   t.id,
   t.name,
   ''Name'' + cast(ROW_NUMBER() OVER (PARTITION BY t.id ORDER BY t.name) as varchar(2)) rank
FROM
   TestData t'

exec pivot_query @mySQL, 'Id', 'rank', 'max(Name)'

and the results now look like this:

Id         Name1 Name2 Name3 Name4 Name5 Name6 
---------- ----- ----- ----- ----- ----- ----- 
1          A     B     NULL  NULL  NULL  NULL  
2          C     NULL  NULL  NULL  NULL  NULL  
3          D     NULL  NULL  NULL  NULL  NULL  
4          A     D     E     F     G     H     

Not exactly sure what you're trying to show, though. :-)

This will not intrinsically limit the output to the 6 name columns though, it will keep going up unless you add a where clause to specifically exclude ranks above 6.

share|improve this answer
    
Close, but no cigar. I don't want G & H to show up in Name_7 and Name_8 column, but in Name5 and Name 6 column. I also don't want to have to put in the Names in the test data table. –  LWoodyiii Jan 18 '10 at 1:16

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.