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I'm doing a query on a set of users that returns the users within a specific radius. The users belong to 1 of 3 different types of user groups. I need to sort the return list by showing the users from group 1 (sorted by distance) and then the users from group 2 & 3 combined (sorted by distance). I could easily use an ORDER BY clause, but I don't know how to be sure that groups 2 & 3 are combined together in the results.

Here is the statement that returns the users first by group 1, then 2, then 3 and sorted by distance inside those groups. I need to return group 1, then 2&3, sorted by distance.

Also I'm not sure if I'm using the INNER JOIN properly, should this be a LEFT JOIN?

SELECT
  SQL_CALC_FOUND_ROWS 
  a.*, 
  b.group_id,
  ROUND(( 3959 * acos( cos( radians( $lat ) ) * cos( radians( a.latitude ) ) * cos( radians( a.longitude ) - radians( $lon ) ) + sin( radians( $lat ) ) * sin( radians( a.latitude ) ) ) ), 1) AS distance
FROM `users` AS a
INNER JOIN `user_group_map` AS b
  ON a.`id` = b.`user_id`
HAVING distance <= $radius
ORDER BY
  b.`group_id` DESC,
  distance ASC
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1 Answer 1

up vote 2 down vote accepted

You can use an ORDER BY CASE to conditionally apply the order forcing group 1 first. I think this should do the job:

ORDER BY
  CASE WHEN b.group_id = 1 THEN 0 ELSE 1 END,
  distance ASC

The CASE statement returns 0 for group_id = 1 and 1 for any other value of group_id. The 0 sorts ahead of the 1, and these two subgroups (0 & 1) are then subordered by distance ASC so group_id 2 & 3 sort together.

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Thank you sir! That worked perfectly in my program. –  Joe Patterson Jul 10 '12 at 18:24

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