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The following query works in phpMyAdmin but doesn't work when I run it in through the website in PHP.

SELECT * FROM 
      (SELECT name, zone FROM staff 
        LEFT OUTER JOIN zones 
          ON staff.suburb=zones.suburb
      ) A WHERE zone='2'

The following query also doesn't work on the website but works in phpMyAdmin:

SELECT name, zone FROM staff 
  LEFT OUTER JOIN zones 
    ON staff.suburb=zones.suburb 
  WHERE zone='2'

Both give an error:

Unknown column 'zone' in 'where clause'.

What am I doing wrong here?

share|improve this question
    
Are you sure there is column "zone" in the table you're querying? Maybe you made a typo when creating that column? –  Darvex May 10 '12 at 13:28
1  
Make sure to put the query in "double quotes" in your code... and that you connect to the right database. You could also try zones.zone instead of only zone. –  Quasdunk May 10 '12 at 13:31
    
phpMyAdmin has a "Export PHP" function, did you use that or copy/paste the query? –  ccKep May 10 '12 at 13:33
    
I ccKep I copied and paste the query. It works in phpmyadmin –  user1034912 May 10 '12 at 13:45
    
I guess you are not connecting to the same database. –  ypercube May 10 '12 at 13:48

2 Answers 2

Try this :

SELECT `name`, `zone`
FROM `staff` AS s
LEFT OUTER JOIN `zones` AS z ON `s`.`suburb`=`z`.`suburb`
WHERE `s`.`zone`='2';

Supposing that the column zone is in the table staff. If it's in the table zones, change the WHERE to :

WHERE `z`.`zone`='2';

The key part here is the precision in the WHERE clause. Maybe MySQL don't know where to look up (in which table), so adding a precision on the table will reduce the risk. Moreover, make sur this column exists in that table (and with that typo. zones or Zone could lead to errors).

share|improve this answer

If you want to run the first query the way you provided, it should be more like this:

SELECT * 
FROM (
    SELECT name,zone 
    FROM staff 
    LEFT OUTER JOIN zones ON staff.suburb=zones.suburb
) A 
WHERE A.zone='2'

But I totaly do not understand why you are doing a SUB-SELECT, that is totally unnecessary. The second query should work, unless you have made a typographical error. Also it is good practice to escape every column, or table name used in query, like so:

SELECT `name`, `zone` 
FROM `staff` s 
LEFT OUTER JOIN `zones` z 
    ON s.`suburb` = z.`suburb` 
WHERE z.`zone` = '2'
share|improve this answer
    
what do you mean by escape every column? –  user1034912 May 10 '12 at 13:41
    
@user1034912 It means that You enclose every column name or table name in the backquotes... As in mine exmaple above... –  shadyyx May 10 '12 at 14:01

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