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First part of the query:

SET @centerLat = '48.531157';
SET @centerLng = '-123.782959';

SELECT user_id, lat, lng, ( 3959 * acos( cos( radians( @centerLat ) ) * cos( radians( lat ) ) * cos( radians( lng ) - radians(@centerLng) ) + sin( radians( @centerLat ) ) * sin( radians( lat ) ) ) ) AS distance FROM bid_userloc HAVING distance < 25 ORDER BY distance LIMIT 0 , 20

Second aspect is taking the user_id and grabbing a bunch of information from the USERS table

I'm still learning what JOIN even means and I don't quite understand how it all works best...

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try using UNION keyword –  Bhavik Shah Oct 19 '12 at 6:29
    
Do you need distance field in result-set? –  Devart Oct 19 '12 at 6:32
    
yeah, I like that there... it's useful –  dcolumbus Oct 19 '12 at 6:32
    
Do you need INNER or LEFT JOIN? –  Devart Oct 19 '12 at 6:36

3 Answers 3

you may try this

  SELECT user_id, lat, lng, ( 3959 * acos( cos( radians( @centerLat ) )
  * cos( radians( lat ) ) * cos( radians( lng ) - radians(@centerLng) )
   + sin( radians( @centerLat ) ) * sin( radians( lat ) ) ) ) 
   AS distance,columnsfromuserstable FROM bid_userloc bid
   inner join users us on bid.user_id=us.user_id 
    HAVING distance < 25
   ORDER BY distance LIMIT 0 , 20
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You can try something like this:

select * from users where user_id in (select user_id from(

SELECT user_id, lat, lng, ( 3959 * acos( cos( radians( @centerLat ) ) * cos( radians( lat ) ) * cos( radians( lng ) - radians(@centerLng) ) + sin( radians( @centerLat ) ) * sin( radians( lat ) ) ) ) AS distance FROM bid_userloc HAVING distance < 25 ORDER BY distance LIMIT 0 , 20

));
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Variant with JOIN -

SET @centerLat = '48.531157';
SET @centerLng = '-123.782959';

SELECT
  t1.user_id, t1.lat, t1.lng,
  (3959 * ACOS(COS(RADIANS(@centerLat)) * COS(RADIANS(t1.lat)) * COS(RADIANS(t1.lng) - RADIANS(@centerLng)) + SIN(RADIANS(@centerLat)) * SIN(RADIANS(t1.lat)))) distance,
  t2.*
FROM
  bid_userloc t1
JOIN users t2
  ON t1.user_id = t2.user_id
HAVING
  distance < 25
ORDER BY
  distance
LIMIT
  0, 20;
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