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I did search around and I found this SQL selecting rows by most recent date Which is so close to what I want but I can't seem to make it work.
I get an error Column 'ID' is invalid in the select list because it is not contained in either an aggregate function or the GROUP BY clause.

I want the newest row by date for each Distinct Name

Select ID,Name,Price,Date
From  table
Group By Name
Order By Date ASC

Here is an example of what I want

         Table
ID| Name | Price |   Date
---------------------------------
0 |  A   |  10   | 2012-05-03
1 |  B   |   9   | 2012-05-02
2 |  A   |   8   | 2012-05-04
3 |  C   |  10   | 2012-05-03
4 |  B   |   8   | 2012-05-01

desired result

ID| Name | Price |   Date
------------------------------
2 |  A   |   8   | 2012-05-04
3 |  C   |  10   | 2012-05-03    
1 |  B   |   9   | 2012-05-02

I am using microsoft sql server 2008

Thanks for any help or points in the right direction

share|improve this question
up vote 14 down vote accepted
Select ID,Name, Price,Date
From  temp t1
where date = (select max(date) from temp where t1.name =temp.name)
order by date desc

Here is a SQL Fiddle with a demo

or as Conrad points out you can use an INNER JOIN:

SELECT t1.ID, t1.Name, t1.Price, t1.Date 
FROM   temp t1 
INNER JOIN 
(
    SELECT Max(date) date, name
    FROM   temp 
    GROUP BY name 
) AS t2 
    ON t1.name = t2.name
    AND t1.date = t2.date 
ORDER BY date DESC 
share|improve this answer
1  
While this does work you can't create a tie-breaker without some field concatenation. Which is why I typically use an inner join instead like this when not using row_number() – Conrad Frix May 4 '12 at 17:05
    
@ConradFrix agreed, that was the second version that I was going to post, I just got this one done first. I will edit my answer with the second option as well. thanks for the suggestion. – bluefeet May 4 '12 at 17:07
    
I went with the first part of this and it works percectly. Tie breaker will not be a concern since I am actually using a datetime, and the chances of two datetimes matching are less then the chances of me winning the lottery. I appreciate your help on this guys. – K'Leg May 4 '12 at 17:24
    
@K'Leg happy to help. :) – bluefeet May 4 '12 at 17:25

There a couple ways to do this. This one uses ROW_NUMBER. Just partition by Name and then order by what you want to put the values you want in the first position.

WITH cte 
     AS (SELECT Row_number() OVER (partition BY NAME ORDER BY date DESC) RN, 
                id, 
                name, 
                price, 
                date 
         FROM   table1) 
SELECT id, 
       name, 
       price, 
       date 
FROM   cte 
WHERE  rn = 1 

DEMO

Note you should probably add ID (partition BY NAME ORDER BY date DESC, ID DESC) in your actual query as a tie-breaker for date

share|improve this answer
    
This looks very complicated, I will give a go and report back how it works – K'Leg May 4 '12 at 17:07
    
I am not saying this method doesn't work, but there are too many question Unanswered for me, I can't access the demo (work internet has blocked that page) and instead of bothering you guys with more questions I tried one of the other answers which seems to be working for me. +1 upvote since I have no doubt it works – K'Leg May 4 '12 at 17:22
    
@K'Leg do you know why your work internet is blocking sqlfiddle? I ask because sqlfiddle.com is my site (I'll try not to take it too personally, heh). – Jake Feasel May 4 '12 at 18:47
    
They block all sites that have no category "This Websense category is filtered: Uncategorized." – K'Leg May 4 '12 at 18:52
1  
@JakeFeasel My Pleasure. And thanks for building SQLFiddle. As I've said before its awesome. – Conrad Frix May 4 '12 at 19:24
select * from (
    Select
        ID, Name, Price, Date,
        Rank() over (partition by Name order by Date) RankOrder
    From table
) T
where RankOrder = 1
share|improve this answer

Use Distinct instead of Group By

Select Distinct ID,Name,Price,Date
From  table
Order By Date ASC

http://technet.microsoft.com/en-us/library/ms187831.aspx

share|improve this answer

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