28

This is the table structure:

CREATE TABLE `reports` (
  `report_id` int(11) NOT NULL auto_increment,
  `computer_id` int(11) NOT NULL default '0',
  `date_entered` datetime NOT NULL default '1970-01-01 00:00:00',
  `total_seconds` int(11) NOT NULL default '0',
  `iphone_id` int(11) default '0',
  PRIMARY KEY  (`report_id`),
  KEY `computer_id` (`computer_id`),
  KEY `iphone_id` (`iphone_id`)
) ENGINE=MyISAM AUTO_INCREMENT=120990 DEFAULT CHARSET=latin1

I need a SELECT statement that will list the report_id per computer_id from latest entered date_entered, and I have no clue how to do that.

0

12 Answers 12

51

This should do it:

SELECT report_id, computer_id, date_entered
FROM reports AS a
WHERE date_entered = (
    SELECT MAX(date_entered)
    FROM reports AS b
    WHERE a.report_id = b.report_id
      AND a.computer_id = b.computer_id
)
3
  • 2
    Almost. I left out "a.report_id = b.report_id" and that did the trick. Thank you
    – poetter747
    Oct 20 '11 at 13:23
  • 12
    This is a little inefficient because you are generating too many subqueries. Instead, try to use a uncorrelated subquery. dev.mysql.com/doc/refman/5.6/en/…
    – Pablo
    Jul 20 '17 at 20:01
  • 3
    Pablo is correct. The filtering can be done earlier by joining a subquery, thus saving performance.
    – twicejr
    Dec 15 '17 at 9:45
15

Are you only wanting it to show the last date_entered, or to order by starting with the last_date entered?

SELECT report_id, computer_id, date_entered
FROM reports
GROUP BY computer_id
ORDER BY date_entered DESC
-- LIMIT 1 -- uncomment to only show the last date.
1
  • 6
    When id do this, I get the wrong report_id. I checked the statement with a WHERE computer_id = 30. The result was the first report_id of all found report_ids in combination with the latest date_entered
    – poetter747
    Oct 20 '11 at 12:55
2

Accordig to this: https://bugs.mysql.com/bug.php?id=54784 casting as char should do the trick:

SELECT report_id, computer_id, MAX(CAST(date_entered AS CHAR))
FROM reports
GROUP BY report_id, computer_id
1
  • 4
    This will get you the max date, but not necessarily the other values from the same row.
    – Vincent
    Jan 4 '18 at 2:22
2

This is a very old question but I came here due to the same issue, so I am leaving this here to help any others.

I was trying to optimize the query because it was taking over 5 minutes to query the DB due to the amount of data. My query was similar to the accepted answer's query. Pablo's comment pushed me in the right direction and my 5 minute query became 0.016 seconds. So to help any others that are having very long query times try using an uncorrelated subquery.

The example for the OP would be:

SELECT 
    a.report_id, 
    a.computer_id, 
    a.date_entered
FROM reports AS a
    JOIN (
        SELECT report_id, computer_id, MAX(date_entered) as max_date_entered
        FROM reports
        GROUP BY report_id, computer_id
    ) as b
WHERE a.report_id = b.report_id
    AND a.computer_id = b.computer_id
    AND a.date_entered = b.max_date_entered

Thank you Pablo for the comment. You saved me big time!

1

It works great for me

SELECT report_id,computer_id,MAX(date_entered) FROM reports GROUP BY computer_id

0

Workaround but working solution

Only if ID is autoincrement, you can search for the maximum id instead of the max date. So, by the ID you can find all others fields.

select *
from table
where id IN ( 
              select max(id)
              from table
              group by #MY_FIELD#
              )
0

Works perfect for me:

(SELECT content FROM tblopportunitycomments WHERE opportunityid = 1 ORDER BY dateadded DESC LIMIT 1);
0

This would work perfectely, if you are using current timestamp

SELECT * FROM reports WHERE date_entered = (SELECT max(date_entered) FROM REPORTS)

This would also work, if you are not using current timestamp but you are using date and time column seperately

SELECT * FROM reports WHERE date_entered = (SELECT max(date_entered) FROM REPORTS) ORDER BY time DESC LIMIT 1
0
select report_id, computer_id, date_entered
into #latest_date
from reports a
where exists(select 'x' from reports 
                where a.report_id = report_id
                group by report_id having max(date_entered) =   a.date_entered)

select * from #latest_leave where computer_id = ##
1
  • I have verified
    – siraj k
    Nov 24 '20 at 7:44
-1
SELECT report_id, computer_id, date_entered
FROM reports
WHERE date_entered = (
    SELECT date_entered 
    FROM reports 
    ORDER date_entered 
    DESC LIMIT 1
)
1
  • 2
    Thank you for this code snippet, which might provide some limited, immediate help. A proper explanation would greatly improve its long-term value by showing why this is a good solution to the problem, and would make it more useful to future readers with other, similar questions. Please edit your answer to add some explanation, including the assumptions you've made. Dec 15 '17 at 10:29
-1

Did this on a blog engine to get the latest blog. I adapted it to your table structure.

SELECT * FROM reports WHERE date_entered = (SELECT max(date_entered) FROM REPORTS)
-1

I use this solution having max(date_entered) and it works very well

SELECT 
  report_id, 
  computer_id, 
  date_entered
FROM reports
GROUP BY computer_id having max(date_entered)
1
  • 1
    This didn't work for me, still getting the first value, not the max Jun 20 '19 at 13:32

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