Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I'm having some trouble writing a query.

For example:

Let's say I have just one table with the following values:

    Items
+-----+--------+
| ID  |  NAME  |
+-----+--------+
| A1  | Item_1 |
| A1  | Item_2 |
| A1  | Item_3 |
| A2  | Item_1 |
| A2  | Item_2 |
| A3  | Item_1 |
+-----+--------+

From this, I want to identify all of the item names that are associated with more than one ID, along with the associated ID names.

Given this example the output would be --

+----+--------+
| ID |  Name  |
+----+--------+
| A1 | Item_1 |
| A2 | Item_1 |
| A3 | Item_1 |
| A1 | Item_2 |
| A2 | Item_2 |
+----+--------+

Item_3 would be excluded since there is only one instance of it, associated with A3.

I'm using SQL Server 2008. Thanks in advance!

share|improve this question

3 Answers 3

up vote 1 down vote accepted

use

SELECT * FROM MyTable A WHERE A.Name IN
(SELECT T.Name FROM MyTable T GROUP BY T.Name HAVING COUNT(DISTINCT T.ID) > 1)
ORDER BY A.Name, A.ID
share|improve this answer

You could use windowed aggregating:

WITH Counted AS (
  SELECT
    ID,
    NAME,
    IDCount = COUNT(*) OVER (PARTITION BY NAME)
  FROM atable
)
SELECT
  ID,
  NAME
FROM Counted
WHERE IDCount > 1

References:

share|improve this answer

Try this

SELECT id,name
FROM Table1
where name in ( select name from(
select name,count(name) as cnt from table1
group by name)
where cnt>1)

This query was written in MS Access / Oracle try to convert into SQL. I don't know syntax for those.

I will explain logic from inner most query First you are taking names which are greater than count 1 Then you are selecting your required id's and names.

The most simplest form of above is as follows

SELECT id,name
FROM Table1 
where name in (
  select name as cnt from table1
  group by name
  having count(name)>1)
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.