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I have two field name $date and $time.

     date  |  time
2011/01/09 | 08:22:25
2011/01/09 | 13:00:55
2011/01/09 | 17:45:18
2011/01/09 | 17:30:26
2011/01/08 | 18:22:00
2011/01/08 | 12:06:39

How to let the newest before the oldest. I want them to be:

     date  |  time
2011/01/09 | 17:45:18
2011/01/09 | 17:30:26
2011/01/09 | 13:00:55
2011/01/09 | 08:22:25
2011/01/08 | 18:22:00
2011/01/08 | 12:06:39

How to write a select * from article order by...desc...? Thanks.

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Is the date in the format YYYY/MM/DD or YYYY/DD/MM? –  marcog Jan 9 '11 at 20:37

3 Answers 3

up vote 5 down vote accepted

select * from yourtable order by date desc, time desc

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select * from article order by date desc, time desc
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SELECT * FROM article WHERE 1 ORDER BY `date` DESC, `time` DESC;

should do just fine.

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The WHERE 1 is unnecessary. –  marcog Jan 9 '11 at 20:38
    
It is, but I like to have it anyway, so when I read my code I don't think "Woah, did I forget something"? It's like an explicit "really, really, get ALL data". –  xrstf Jan 9 '11 at 20:51

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