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.

SQL Returns the following results from table: CowTracking

    ID  cow_id  barn_id
    --  ------  -------
    19    5       3
    20    5       2
    21    5       9
    22    5       1

I am trying to get the following results with a PIVOT in SQL

     cow_id  barn1  barn2  barn3  barn4
     ------  -----  -----  -----  -----
       5       3      2      9      1

This is the code I have so far.

    SELECT *
    FROM 
    (
        SELECT TOP 4 *
        FROM CowTracking
            WHERE cow_id = 5
    ) AS DataTable
    PIVOT
    (
        MIN(barn_id) **IDK what function to use and which column to use it on**
        FOR ID  ??<---**NOT SURE**
        IN 
        (
        [barn1], [barn2], [barn3], [barn4]
        )
    ) AS PivotTable


    ERRORS: Error converting data type nvarchar to int
            The incorrect value "barn1" is supplied in the PIVOT operator

NOTE: The barn_id is a varchar. It will not be possible to change the datatype.

I am not trying to add/multiply/aggregate or whatever. I am simply trying to move the row to a column

How would I go about doing this? Is this the correct thought process?

Do I even need to use PIVOT?

share|improve this question

1 Answer 1

up vote 5 down vote accepted

As there is no barn1..4 in your tables, you somehow have to replace the ID's with their corresponding barns.

One solution using PIVOT might be like this

SELECT  cow_id
        , [19] as [barn1]
        , [20] as [barn2]
        , [21] as [barn3]
        , [22] as [barn4]
FROM    (       
            SELECT  *
            FROM    DataTable
            PIVOT   (   MIN(barn_id)
                        FOR ID IN ([19], [20], [21], [22])
                    ) AS PivotTable
        ) q                 

another solution using CASE and GROUP BY could be

SELECT  cow_id
        , [barn1] = SUM(CASE WHEN ID = 19 THEN barn_id END)
        , [barn2] = SUM(CASE WHEN ID = 20 THEN barn_id END)
        , [barn3] = SUM(CASE WHEN ID = 21 THEN barn_id END)
        , [barn4] = SUM(CASE WHEN ID = 22 THEN barn_id END)
FROM    DataTable
GROUP BY
        cow_id

but in essence, this all boils down to hardcoding an ID to a barn.


Edit

If you always return a fixed number of records, and using SQL Server you might make this a bit more robust by

  • adding a ROW_NUMBER to each result
  • pivot on this upfront known number

SQL Statement

SELECT  cow_id  
        , [barn1] = SUM(CASE WHEN rn = 1 THEN barn_id END)
        , [barn2] = SUM(CASE WHEN rn = 2 THEN barn_id END)
        , [barn3] = SUM(CASE WHEN rn = 3 THEN barn_id END)
        , [barn4] = SUM(CASE WHEN rn = 4 THEN barn_id END)
FROM    (
            SELECT  cow_id
                    , rn = ROW_NUMBER() OVER (ORDER BY ID)
                    , barn_id
            FROM    DataTable       
        ) q
GROUP BY
        cow_id

Test script

;WITH DataTable (ID, cow_id, barn_id) AS (
    SELECT * FROM (VALUES 
        (19, 5, 3)
        , (20, 5, 2)
        , (21, 5, 9)
        , (22, 5, 1)
    ) AS q (a, b, c)        
)
SELECT  cow_id  
        , [barn1] = SUM(CASE WHEN rn = 1 THEN barn_id END)
        , [barn2] = SUM(CASE WHEN rn = 2 THEN barn_id END)
        , [barn3] = SUM(CASE WHEN rn = 3 THEN barn_id END)
        , [barn4] = SUM(CASE WHEN rn = 4 THEN barn_id END)
FROM    (
            SELECT  cow_id
                    , rn = ROW_NUMBER() OVER (ORDER BY ID)
                    , barn_id
            FROM    DataTable       
        ) q
GROUP BY
        cow_id
share|improve this answer
1  
your first suggestion is spot on. at first i was worried because the ID would always change. but then i declared a new column and had it set so that it would always be 1 - 4. then i was able to accomplish it. thanks mate, much appreciated. took me a little bit to get my head around this concept –  sQuijeW Feb 2 '12 at 20:34
    
@sQuijeW - you're welcome. If this answers your question, you can mark it as such (How does accepting an answer work?) –  Lieven Keersmaekers Feb 2 '12 at 20:49

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.