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I have a table that list system licences, multiple licences for each system (the expired ones and existing ones). I've only posted two columns in this question as they're the only important ones.

| id | systemid | 
|  1 |        1 |
|  2 |        1 |
|  3 |        2 |
|  4 |        2 |
|  5 |        3 |
|  6 |        3 |

I need to get the rows with the id of 2, 4 and 6.

I need to collect 1 record for each systemid and it has to be the earliest (youngest) record, so in this case, the record with the highest id. I've been exploring GROUP BY, ORDER BY and LIMIT but I'm not producing the result I'm after. How do you collect one record for each individual value in one column and make sure it's the record with the highest id?

I KNOW this is wrong, but it's what I'm currently starring at:

SELECT * FROM licences GROUP BY systemid ORDER BY id DESC LIMIT 1

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1  
select max(id), systemid from licences group by systemid perhaps? –  Chrisky Apr 16 '14 at 22:16
1  
Spot on Chrisky, you should have added it as an answer :) –  Arbiter Apr 16 '14 at 22:27
    
The arrow here won't click itself... –  Chrisky Apr 16 '14 at 22:49

2 Answers 2

up vote 1 down vote accepted

SELECT max(id), systemid FROM table GROUP BY systemid

Note that with a GROUP BY, all columns you select must either be in the GROUP BY clause or wrapped in an aggregating function, like max, min, sum, or average.

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This works, thank you! I had to use MAX(id) as id to get the output I was after, thanks! I can accept in 2 minutes. –  Arbiter Apr 16 '14 at 22:23

This will grab the highest id per systemid.

SELECT MAX(id), systemid
FROM ...
GROUP BY systemid
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This works, thanks –  Arbiter Apr 16 '14 at 22:24

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