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 have tried now for a couple of hours to return, a fourth row which would tell me the number of disctinct doman_namn. I keep trying to add a COUNT(DISTINCT doman_namn) but then i need a group by, which in turn destroys the purpose.

This is stored proc which takes two parameters:

@keyword[varchar](100),
@domannamn [varchar](100)

It uses two tables which looks like this

FIRST TABLE table t_doman columns; doman_id doman_name

SECOND TABLE table t_ranking columns; ranking_position ranking_date ranking_keyword ranking_id_doman

I use the @keyword to look up the correct rows in t_ranking table, there then i join on ranking_id_doman on doman_id to get the "doman_name", There will be a set of name's for every date, which in turn makes the names reapeat themselves for every date, i need to check how many distinct names there are and return that in a row.

I need it to work like:

Ranking position,   date,       name,  number of distinct name's
1___________________2012-11-11, tony,  3 
2___________________2012-11-11, chris, 3
3___________________2012-11-11, peter, 3
1___________________2012-11-10, tony,  3
2___________________2012-11-10, chris, 3
3___________________2012-11-10, peter, 3

 SELECT
 ranking_position,
 CONVERT(varchar(10),ranking_date, 120),
 doman_namn
 --Here's my my attempt COUNT(DISTINCT doman_namn) as 'number_of_discint_names'
 FROM 
     (SELECT 
      ranking_position,
      ranking_date,
      ranking_id_doman
      FROM dbo.t_ranking
      WHERE ranking_keyword = 'keyword'
      AND ranking_date BETWEEN DATEADD(day, -30, GETDATE()) AND GETDATE()
      AND ranking_id_doman IN (SELECT doman_id FROM dbo.t_doman WHERE doman_namn LIKE 'doman' + '%')) as tr
JOIN dbo.t_doman td on tr.ranking_id_doman = td.doman_id
--GROUP BY doman_namn ALSO IT DOES NOT WORK
ORDER BY ranking_date ASC
share|improve this question
    
@Laurence I tried that but it keeps asking for more.. to groupt with eventually i get it but the the count row only shows 1's, it want s to group with doman_namn also.. –  8bitcat Nov 11 '12 at 22:01
    
Cool would be nice to learn how to do that ;) –  8bitcat Nov 11 '12 at 22:05

1 Answer 1

up vote 2 down vote accepted
Declare
  @keyword nvarchar(20) = N'keyword',
  @domannamn nvarchar(20) = N'C'

Select
  r.ranking_position,
  r.ranking_date,
  d.doman_name,
  Count(r.ranking_id_doman) Over (Partition By r.ranking_date)
From
  dbo.t_ranking r
    inner join
  dbo.t_doman d
    on r.ranking_id_doman = d.doman_id
Where
  ranking_keyword = @keyword And
  ranking_date Between DateAdd(day, -30, GetDate()) And GetDate() And
  d.doman_name like @domannamn + '%'
Order By
  2, 1

http://sqlfiddle.com/#!3/ccf10/2

As Richard points out, this doesn't work if you have duplicate ranking_id_doman values within a ranking date and you want the distinct ones.

share|improve this answer
    
The COUNT needs a DISTINCT, which won't work with OVER(). –  RichardTheKiwi Nov 11 '12 at 22:10
    
Fair point, though the example data doesn't have duplicates, so it may be the way the question is worded. –  Laurence Nov 11 '12 at 22:15
    
@Laurence that is just to get all the names my visitor searches for, they will type in a name. Say for example they type in chris, they should also find christoffer aswell as chris –  8bitcat Nov 11 '12 at 22:40
    
you get what i need? –  8bitcat Nov 11 '12 at 22:45
    
@Laurence wow works like a charms and it's beautiful to ;) –  8bitcat Nov 11 '12 at 22:54

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.