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 am using VS2005 C# and SQL Server 2005. I want to form an SQL query with the following condition:

Check for duplicated user in Table1 tb1 where tb1 has more than one [Emp.Name]

EDIT:

Simply saying, if I am only checking duplicate for [emp name], there's no way I can select [employeeID]?

Because if I use

INSERT INTO DuplicateUserInTb1(EmployeeID, [Emp Name], Status, Issue)
SELECT tb1.EmployeeID, tb1.[Emp Name], 'Active', 'Duplicated user in Table1'
FROM Table1 tb1 GROUP BY tb1.[employeeID], tb1.[emp name] HAVING COUNT(tb1.[emp name]) >1 

I will not be able to see any duplicated [emp name] rows inserted.

However, if I use

INSERT INTO DuplicateUserInTb1([Emp Name], Status, Issue)
SELECT tb1.EmployeeID, tb1.[Emp Name], 'Active', 'Duplicated user in Table1'
FROM Table1 tb1 GROUP BY tb1.[emp name] HAVING COUNT(tb1.[emp name]) >1

I am able to retrieve duplicated [emp name], however, without [employeeID].


EDITED:

Working on these 2 queries provided by Zohalib and Michal Powaga respectively:

 INSERT INTO DuplicateUserInTb1(EmployeeID, [Emp Name], Status, Issue) 
 select t.emp_id, t.empname, t.active, t.du 
from (select s1.emp_id, s1.empname,'Active' as active, 'Duplicate User' as du,
ROW_NUMBER() OVER (PARTITION BY s1.empName ORDER BY s1.empName) as rowNum 
from table s1, 
(select emp_name, count(*)
 from table 
 group by emp_name
 having count(*) > 1) s2
 where s1.emp_name = s2.emp_name 
) t where t.rowNum = 1

Error : No column was specified for column 2 of 's2


insert into DuplicateUserInTb1(EmployeeID, [Emp Name], Status, Issue)
select employeeID, [emp name], 'Active', 'Duplicated user in Table1'
from Table1 t1
join (
    select [emp name]
    from Table1
    group by [emp name]
    having count(*) > 1
) t on t1.[emp name] = t.[emp name]

Error: *Ambiguous column name '[Emp name]'


Would appreciate any help, thank you.

share|improve this question
3  
This query has 3 columns in the INSERT, but 4 in the SELECT? –  Adam Wenger Dec 9 '11 at 5:42
    
My mistake. Edited: Added the additional column for the SELECT statement –  user1084683 Dec 9 '11 at 5:45
    
You are inserting into and selecting from the same table. What are you trying to achieve? I thought you are moving them elsewhere. –  Kangkan Dec 9 '11 at 5:47
    
simply do this select employeeID, t.[emp name], 'Active', 'Duplicated user in Table1' in second query @user1084683 –  Zohaib Dec 9 '11 at 10:05
    
@user1084683 and for my query, you just need to mention the name for the column of count(), do it like this. select (select emp_name, count() as counts –  Zohaib Dec 9 '11 at 10:13
add comment

3 Answers

up vote 3 down vote accepted

When you use Group By clause, then your select clause can only contain columns

which are either mentioned in group by clause

Or aggregate functions, eg Count, SUM e.t.c http://www.w3schools.com/sql/sql_groupby.asp

Moreover, in your query, you are inserting values in three columns, but your select clause is selecting four values, should'nt this be a problem ?

try following query to insert duplicates based on empname

    INSERT INTO DuplicateUserInTb1(EmployeeID, [Emp Name], Status, Issue) 
select t.emp_id, t.empname, t.active, t.du 
from (select s1.emp_id, s1.empname,'Active' as active, 'Duplicate User' as du, ROW_NUMBER() OVER (PARTITION BY s1.empName ORDER BY s1.empName) as rowNum 
from table s1, 
(select emp_name, count(*) as counts
 from table 
 group by emp_name
 having count(*) > 1) s2
 where s1.emp_name = s2.emp_name 
) t where t.rowNum = 1
share|improve this answer
    
@Zohalib. My mistake, I have made the necessary changes. –  user1084683 Dec 9 '11 at 5:45
    
@user1084683 shouldnt the problem be solved if you add other two columns in group by clause ? –  Zohaib Dec 9 '11 at 5:47
    
@Zohalib in my sql for duplicate user check for table2, it has 2 variables in the GROUP by clause, so it is taking both the columns of [EmployeeID] and [Emp Name], and checking them by pair for any duplicates. Now I would only want to take in [Emp Name] for duplicate check, so i assume i only need GROUP BY tb2.[Emp Name]? –  user1084683 Dec 9 '11 at 5:50
1  
@RUiHAO Sorry, My bad, forgot to self Join, Idea is to join table with itself, and select rows such that empname exists in both, duplicate names will come out, now assign them row number, and select only 1 to insert i other table. –  Zohaib Dec 9 '11 at 6:55
1  
@RUiHAO I have edited the above sql query in the answer, I dont have dbms installed right now, so could not test the query. –  Zohaib Dec 9 '11 at 7:00
show 10 more comments
insert into DuplicateUserInTb1(EmployeeID, [Emp Name], Status, Issue)
select t1.employeeID, t1.[emp name], 'Active', 'Duplicated user in Table1'
from Table1 t1
join (
    select [emp name]
    from Table1
    group by [emp name]
    having count(*) > 1
) t on t1.[emp name] = t.[emp name]
share|improve this answer
    
it gave me an error which says Ambiguous column name '[Emp name]'. –  RUiHAO Dec 9 '11 at 8:23
    
@RUiHAO, sorry, corrected. –  Michał Powaga Dec 9 '11 at 8:37
    
HI Michal Powaga, I have added SELECT DISTINCT as it is showing the same records for each duplicated user found. However, is there a way to match both of the same duplicated user found together? as the list of duplicated users found are scattered in the table. is it possible to sort them together by name? if I don't put in the DISTINCT, each duplicated records found will be listed x6 times in the table. any idea why is it so? –  user1084683 Dec 9 '11 at 10:00
add comment

Michal Powaga method works. Just add a DISTINCT on top of his solution and it'll be okay.

insert into DuplicateUserInTb1(EmployeeID, [Emp Name], Status, Issue)
select DISTINCT t1.employeeID, t1.[emp name], 'Active', 'Duplicated user in Table1'
from Table1 t1
join (
    select [emp name]
    from Table1
    group by [emp name]
    having count(*) > 1
) t on t1.[emp name] = t.[emp name]
share|improve this answer
add comment

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.