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 apologize in advance for my poor description, I couldn't think of a way to word it better, but I'll try to explain it thoroughly.

Let's say that I have a table setup in this manner:

Input Table

Itm Type
A   Apple
B   Orange
C   Apple
B   Grape
D   Peaches
B   Apple
C   Grapes
E   Apple
A   Apple

The goal is to produce a table showing each item (A, B, C, D, and E) with the total number of each type that was assigned to that item.

Goal Output Table

Itm    Apple  Orange  Grape  Peaches    
A       2       0       0       0   
B       1       1       1       0
C       1       0       1       0
D       0       0       0       1
E       1       0       0       0

The query I'm using now displays a table where it seems to be summing up all of the types for all of the items and placing that value on each row.

Thanks in advance!

share|improve this question
    
Thanks, I'll take a look. –  Bob Ryder Oct 26 '12 at 4:56
    

3 Answers 3

SELECT 
    Item, 
    ISNULL([Apple], 0) 'Apple', 
    ISNULL([Orange], 0) 'Orange', 
    ISNULL([Grapes], 0) 'Grapes', 
    ISNULL([Peaches], 0) 'Peaches'
FROM
(
    SELECT 
        Item, Type, count(*) 'ItemTypeCount'
    FROM 
        ItemTypes
    GROUP BY Item, Type
) AS T
PIVOT
(
    SUM(ItemTypeCount) FOR Type IN ([Apple], [Orange], [Grapes], [Peaches])
) As PivotResults
share|improve this answer
    
Worked like a charm, thanks! I'll have to learn more about this Pivot feature. –  Bob Ryder Oct 26 '12 at 5:27

The query:

select Itm, Apple, Orange, Grape, Peaches
from items
pivot(count(Type) for Type in (Apple, Orange, Grape, Peaches)) p

Sample schema and data. You should always provide these when posting questions on StackOverflow.

create table items(Itm char(1), Type varchar(10));
insert items select
'A',   'Apple' union all select
'B',   'Orange' union all select
'C',   'Apple' union all select
'B',   'Grape' union all select
'D',   'Peaches' union all select
'B',   'Apple' union all select
'C',   'Grapes' union all select
'E',   'Apple' union all select
'A',   'Apple';

The result:

| ITM | APPLE | ORANGE | GRAPE | PEACHES |
------------------------------------------
|   A |     2 |      0 |     0 |       0 |
|   B |     1 |      1 |     1 |       0 |
|   C |     1 |      0 |     0 |       0 |
|   D |     0 |      0 |     0 |       1 |
|   E |     1 |      0 |     0 |       0 |

SQL Fiddle

share|improve this answer

Try to run this one

SELECT 
         ITEM 
         , SUM(APPLE) AS APPLE 
         , SUM(Grapes) AS Grapes
         ,SUM(Orange) AS Orange 
         , SUM(Peaches) AS Peaches
FROM(SELECT 
        ITEM 
        ,CASE WHEN TYPE = 'APPLE' THEN  COUNT(*) ELSE 0 END AS APPLE
        ,CASE WHEN TYPE = 'Grapes' THEN  COUNT(*) ELSE 0 END AS  Grapes
        ,CASE WHEN TYPE = 'Orange' THEN  COUNT(*) ELSE 0 END AS Orange
        ,CASE WHEN TYPE = 'Peaches' THEN  COUNT(*) ELSE 0 END AS Peaches 
    FROM ITEM
    GROUP BY ITEM , TYPE 
    ) AS A GROUP BY ITEM
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.