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I have a table that includes 3 columns Company, DateTime and Price.

I want to get the last row ordered by date of each company like

Google, 2012/7/17 5:24:32, 23
Google, 2012/7/17 5:46:23, 72
Google, 2012/7/17 5:43:46, 15
Apple, 2012/7/17 5:24:45, 36
Apple, 2012/7/17 5:26:42, 57
Apple, 2012/7/17 5:15:12, 25

and the desired results would be:

Google, 2012/7/17 5:46:23, 72
Apple, 2012/7/17 5:26:42, 57
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1  
what you are tried....??? –  Jalpesh Jul 17 '12 at 9:03
1  
whathaveyoutried.com –  Scharron Jul 17 '12 at 9:03
1  
What DBMS? –  Tim Schmelter Jul 17 '12 at 9:09
    
all of these show me the all rows –  user1526898 Jul 17 '12 at 9:14
1  
Do you have to deal with duplicate time values? If so, what do you want? All of them or just one? –  Gordon Linoff Jul 17 '12 at 13:31

5 Answers 5

If your DBMS is SQL-Server (at least 2005) you can use a CTE with ROW_NUMBER function:

WITH CTE AS(
    SELECT Company, DateTime, Price
    , RN = ROW_NUMBER()OVER(PARTITION BY Company ORDER BY DateTime DESC)
    FROM Table
)
SELECT Company, DateTime, Price
FROM CTE
WHERE RN = 1
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select 
    Company, DateTime,Price 
from
    (
    select *,row_number() over (Partition by Company order by Date desc) as sno 
      from table
    ) as t
where sno=1
share|improve this answer

try this

select t.* from <table> t join
(select Company,max(DateTime) max_DateTime
from <table>
group by Company)a
on t.Company=a.Company
and t.DateTime=a.max_DateTime
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This is a DBMS-agnostic solution and should work regardless of what DBMS you're using (as you did not specify):

SELECT a.*
FROM tbl a
INNER JOIN
(
    SELECT company, MAX(datetime) AS maxdate
    FROM tbl
    GROUP BY company
) b ON a.company = b.company AND a.datetime = b.maxdate
ORDER BY a.datetime DESC
share|improve this answer

An easy one:

select company, MAX(datetime), price 
from table_name
group by company;
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