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.

This is a SQL Server table's data

id   user_id     start_date   status_id    payment_id
======================================================
2      4         20-nov-11         1          5
3      5         23-nov-11         1         245
4      5         25-nov-11         1         128
5      6         20-nov-11         1         223
6      6         25-nov-11         2         542
7      4         29-nov-11         2         123
8      4         05-jan-12         2         875

I need to get distinct values by user_id also order by id asc, but only one user_id with highest start_date

I need the following output:

id   user_id     start_date   status_id    payment_id
======================================================
8      4         05-jan-12         2         875
4      5         25-nov-11         1         128
6      6         25-nov-11         2         542

Please help!

What is SQL query for this?

share|improve this question
    
Please show us what you have tried so far –  marc_s Nov 19 '12 at 20:46
    
Can you assume that ID is sequential and therefore will always be the highest or is the ID is re-used when deletions occur? (Notice 8,4,6 in your example all are the highest ID for that user Thus you want the max ID for each user_ID. –  xQbert Nov 19 '12 at 21:19

2 Answers 2

You can use row_number() in either a sub-query or using CTE.

Subquery Version:

select id, user_id, start_date, status_id, payment_id
from
(
  select id, user_id, start_date, status_id, payment_id, 
    row_number() over(partition by user_id order by start_date desc) rn
  from yourtable
) src
where rn = 1

See SQL Fiddle with Demo

CTE Version:

;with cte as
(
  select id, user_id, start_date, status_id, payment_id, 
    row_number() over(partition by user_id order by start_date desc) rn
  from yourtable
)
select id, user_id, start_date, status_id, payment_id
from cte
where rn = 1

See SQL Fiddle with Demo

Or you can join the table to itself:

select t1.id, 
  t1.user_id, 
  t1.start_date, 
  t1.status_id, 
  t1.payment_id
from yourtable t1
inner join 
(
  select user_id, max(start_date) start_date
  from yourtable
  group by user_id
) t2
  on t1.user_id = t2.user_id
  and t1.start_date = t2.start_date

See SQL Fiddle with Demo

All of the queries will produce the same result:

| ID | USER_ID |                      START_DATE | STATUS_ID | PAYMENT_ID |
---------------------------------------------------------------------------
|  8 |       4 |  January, 05 2012 00:00:00+0000 |         2 |        875 |
|  4 |       5 | November, 25 2011 00:00:00+0000 |         1 |        128 |
|  6 |       6 | November, 25 2011 00:00:00+0000 |         2 |        542 |
share|improve this answer
    
at least the last query would return multiple rows for User_Ids with duplicate max start_date. I have to get used to SQL Fiddle, it's really cool. –  alzaimar Nov 19 '12 at 20:55
    
@alzaimar it will only return multiple if the same user has multiple entries for the same date. –  bluefeet Nov 19 '12 at 20:58
    
That's what I meant ('duplicate max start_date'). In fact, it would ONLY return multiple rows per user if the highest start_date for a given user occurs twice. But, as it might happen, I would recommend using your other great ideas. –  alzaimar Nov 20 '12 at 7:26

Not the best and untested:

select *
  from ServersTable 
  join (
    select User_Id, max(Id) as ID
      from ServersTable x
     where x.start_date = (
          select max(start_date)
            from ServersTable y
           where y.UserID = x.UserId
           )
     group by User_Id) s on ServersTable.Id = s.Id
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.