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I want to select all distinct order_ids from my table, and order that list by the date column. Using DISTINCT is of course a query-wide parameter, so trying something like this doesn't work:

SELECT DISTINCT(orderId, datetime) 
FROM table 
ORDER BY datetime DESC

This returns all DISTINCT combinations of the orderId and datetime, so I'm left with multiple orderIds, which I don't want. Therefore I'm thinking that the DISTINCT clause is not the way to go. Does anyone have any suggestions on how I could solve this problem?

Thanks!

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4 Answers 4

up vote 11 down vote accepted

If there are multiple rows for the order, which date do you want to show? perhaps:

SELECT [orderId], MAX([datetime])
FROM [table]
GROUP BY [orderId]
ORDER BY MAX([datetime]) DESC
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As a follow up, what if I wanted to select all values in the table, not just orderId and datetime? I have a feeling that's a totally separate questions, but... –  Erebus Nov 23 '09 at 20:03
    
You would need to either aggregate all the columns, or select a particular row (min(id), max(id), or similar) and do a join / sub-query. –  Marc Gravell Nov 23 '09 at 20:33

If you have multiple orderIDs in your table (and they each have different datetime values), which one do you want to choose? The newest date, oldest date, or something else?

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Perhaps a CTE would help:

WITH CTE
AS
(

SELECT orderId FROM table ORDER BY datetime DESC

)

SELECT DISTINCT orderId  FROM CTE
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It's specific to SQL Server though, which may not be useful... –  gbn Nov 23 '09 at 19:57
    
Thanks for the correction, for a moment i forgot that this is not the MSDN SQL forum :) –  unclepaul84 Nov 23 '09 at 20:16
SELECT DISTINCT * FROM 
  (SELECT value1 
   FROM table1 
   ORDER BY value2);

That worked for me.

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Could you expand on whit this is good solution. –  Liufa Jun 27 '14 at 11:55

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