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I have a query I am trying to "convert" to mysql. Here is the query:

select top 5 * 
from
   (select id, firstName, lastName, sum(fileSize) as TotalBytes, sum(fileSize)/count(b.*)  as Average
    from roster_cs368 a
    join htmp_cs3868 b on b.id =  a.id
)
union
(
    select id, firstName, lastName, sum(fileSize) as TotalBytes, sum(fileSize)/count(b.*) as Average
    from roster_cs368 a
    join atmp_cs3868 b on b.id = a.id
)
order by TotalBytes desc

I am hoping someone can show me the "mysql: way of doing it. I really appreciate it. This is part of a Java program I am doing and not very familiar with sql queries as of yet.

UPDATE:

mysql> select * from roster_cs368
-> ;
+--------+-----------+-----------+
| id     | firstName | lastName  |
+--------+-----------+-----------+
| apn7cf | Allen     | Newton    |
| atggg3 | andrew    | goebel    |
| aysfgd | Alfred    | Santos    |
| cdq6c  | chris     | declama   |

where "id" is the primary key

mysql> select * from htmp_cs368;
+------------+----------+------------+----------+----------+-------+------+-------+----------------------+
| filePerms  | numLinks | id         | idGroup  | fileSize | month | day  | time  | fileName             |
+------------+----------+------------+----------+----------+-------+------+-------+----------------------+
| drwx------ |        2 | schulte    | faculty  |      289 | Nov   |    7 | 2011  | Java                 |
| -rw-r--r-- |        1 | schulte    | faculty  |      136 | Apr   |   29 | 2012  | LD                   |
| drwxr-xr-x |        3 | schulte    | faculty  |      177 | Mar   |   20 | 2012  | Upgrade              |

no primary key here, and the last table:

mysql> select * from atmp_cs368;
+------------+----------+--------------+----------+----------+-------+------+-------+-----------------------------+
| filePerms  | numLinks | id           | idGroup  | fileSize | month | day  | time  | fileName                    |
+------------+----------+--------------+----------+----------+-------+------+-------+-----------------------------+
| drwxr-xr-x |        2 | remierm      | 203      |      245 | Sep   |   17 | 14:40 | 148360_sun_studio_12        |
| drwx---rwx |       31 | antognolij   | sasl     |     2315 | Oct   |   24 | 12:28 | 275                         |
| -rwx------ |        1 | kyzvdb       | student  |       36 | Sep   |   19 | 13:05 | 275hh                       |
| drwx---rwx |       26 | antognolij   | sasl     |     1683 | Nov   |   12 | 14:00 | 401                         |

no primary key here either.

The query I am to answer is:

produce a list of the five members of roster_cs368
and their ids who use the most space (number of bytes)
in htmp_cs368 and atmp_cs368 in descending order--
greediest first.

Hope this info helps. Please note, there is much more information in the tables then presented. What is here is just a snippet.

share|improve this question
    
What happens if a user appears in both tables? Should their totals be aggregated, or do you view a user's total filesize from each table independently? –  eggyal Dec 2 '12 at 18:07

1 Answer 1

up vote 3 down vote accepted

As documented under SELECT Syntax:

The LIMIT clause can be used to constrain the number of rows returned by the SELECT statement.

Therefore:

(
  SELECT id,
         firstName,
         lastName,
         SUM(fileSize) AS TotalBytes,
         SUM(fileSize)/COUNT(*) AS Average
  FROM   roster_cs368 AS a
    JOIN htmp_cs3868  AS b USING (id)
) UNION (
  SELECT id,
         firstName,
         lastName,
         SUM(fileSize) AS TotalBytes,
         SUM(fileSize)/COUNT(*) AS Average
  FROM   roster_cs368 AS a
    JOIN atmp_cs3868  AS b USING (id)
)
ORDER BY TotalBytes DESC
LIMIT 5

Note that id, firstName and lastName are hidden columns, the values of which are indeterminate unless the same for every record.

share|improve this answer
    
Thank You very much! –  user1318371 Dec 2 '12 at 17:02
    
@user1318371: Also note that there can only ever be a maximum of two records from this query, so the LIMIT is rather pointless. –  eggyal Dec 2 '12 at 17:07
    
Yah, I noticed that, it actually gave me 1 user and NULL. I need to have the "top 5" users. How would I go about that? –  user1318371 Dec 2 '12 at 17:31
    
@user1318371: Without knowing your schema? Not a scooby. –  eggyal Dec 2 '12 at 17:33
    
I've updated my question with the schema. –  user1318371 Dec 2 '12 at 17:57

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