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Hi there I'm really struggling getting the following sql query to work, i apologise in advance if ive made a mash of this but im still learning the full advanced areas of SQL.

Here is my code...

"SELECT *,(((acos(sin((".$latitude."*pi()/180)) * 
sin((`latitude`*pi()/180))+cos((".$latitude."*pi()/180)) * 
cos((`latitude`*pi()/180)) * cos(((".$longitude."- `longitude`)*pi()/180))))
*180/pi())*60*1.1515) as distance 
FROM `locations`  l HAVING distance <= '".$distance."' JOIN 
(SELECT * users) u
ON (l.id = u.basic_location)
            WHERE u.id != A $AND2
            ORDER BY distance ASC"

I keep getting the following error message...

You have an error in your SQL syntax; check the manual that corresponds to your 
MySQL server version for the right syntax to use near 
'JOIN (SELECT * users) u ON (l.id = u.basic_location) WHERE u.id' at line 1

Ive tried many combinations of this but ive become stumped and was looking for some help?

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try putting your distance comparison in the where clause –  WhiteboardDev Sep 13 '12 at 5:07
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3 Answers

up vote 3 down vote accepted
  1. JOIN should follow right after FROM tablename or another JOIN
  2. You should use WHERE, not HAVING in this case
  3. You should JOIN users u, not subquery (in this case it makes no sense)
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Yes correctiong this and changing it slightly corrected the issue thanks very much. –  JSweete Sep 13 '12 at 15:36
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Try this

    "SELECT *,

        (((( SELECT 
        acos(
            sin((".$latitude."*pi()/180)) * 
            sin((`latitude`*pi()/180))+
            cos((".$latitude."*pi()/180)) * 
            cos((`latitude`*pi()/180)) * 
            cos(((".$longitude."- `longitude`)*pi()/180))
            ))*180/pi())*60*1.1515) as distance
    FROM `locations`  l )X
    JOIN users u
ON (X.id = u.basic_location)
WHERE u.id != A $AND2
AND distance <= '".$distance."'
ORDER BY distance ASC"

Changes

1) HAVING distance <= needs to be changed to WHERE distance <= .Please note that use HAVING clause for filtering only if you have any aggregate function like SUM,COUNT etc. For any normal filter operation use WHERE clause

2) Join syntax is:

SELECT t1.*
FROM Table1 t1
JOIN Table2 t2
ON t1.Id = t2.Id
Where t1.<Some condition>
AND t2.<some Condition>

And not

SELECT t1.*
FROM Table1 t1 Where t1.<Some condition>
JOIN Table2 t2
ON t1.Id = t2.Id
Where t2.<some Condition>

If you need to filter from the first table before joining then do like

SELECT X.*,Y.* 
FROM (SELECT * FROM Table1 t1 Where t1.<Some condition>) X
JOIN (SELECT * FROM Table2 t2) Y
ON X.Id = Y.Id
Where Y.<some Condition>

Hope you understand.

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This won't work as well because of too much of mistakes –  zerkms Sep 13 '12 at 5:10
    
I donot have MySQL editor(so may be the formatting will be incorrect). But please check the comments I provided. It must work in any DB. –  Niladri Biswas Sep 13 '12 at 5:15
1  
tip: find for WHERE in your query –  zerkms Sep 13 '12 at 5:17
    
Check now..SELECT got missed –  Niladri Biswas Sep 13 '12 at 5:18
    
Nested query? What for? –  zerkms Sep 13 '12 at 5:21
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select * from
(SELECT *,
(((acos(sin((".$latitude."*pi()/180)) * 
sin((`latitude`*pi()/180))+
cos((".$latitude."*pi()/180)) * 
cos((`latitude`*pi()/180)) * 
cos(((".$longitude."- `longitude`)*pi()/180))))*
180/pi())*60*1.1515) as distance 
FROM `locations`  l  INNER JOIN 
`users` u
ON l.id = u.basic_location
WHERE u.id != A $AND2) derived_table dt
where dt.distance <= '".$distance."'
ORDER BY dt.distance ASC
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Hi thanks using this shows a different error of "Every derived table must have its own alias" any ideas? –  JSweete Sep 13 '12 at 15:23
    
@JSweete see update: derived_table dt –  Nathan Sep 13 '12 at 15:27
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