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I receive an error that the column ls.amount is in field list when I run the following query.

Can anyone help me diagnose the problem.

SELECT c.name, ic.keyword, COUNT(ic.keyword), SUM(ls.amount), ls.buyer FROM in_clicks AS ic
       INNER JOIN ads AS a ON ic.ad_id = a.id
       INNER JOIN ad_groups AS ag ON a.ad_group_id = ag.id
       INNER JOIN campaigns AS c ON ag.campaign_id = c.id;
       INNER JOIN leads AS l ON (ic.id = l.in_click_id)
       INNER JOIN lead_status AS ls ON (l.id = ls.lead_id)
WHERE ic.create_date LIKE '%2011-08-19%' AND ic.location NOT LIKE '%Littleton%' AND discriminator LIKE '%AUTO_POST%'
GROUP BY ic.keyword ORDER BY COUNT(ic.keyword) DESC

The exact error message is:

Error Code: 1054
Unknown column 'ls.amount' in 'field list'
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1  
Can we have the exact error please? –  Bojangles Aug 24 '11 at 19:27
    
I'm not sure what you are trying to achieve but having ic.keyword and COUNT(ic.keyword) in the same query seems very suspicious to me... –  a1ex07 Aug 24 '11 at 19:30
    
@a1ex07 He's grouping by ic.keyword so he wants to know what keyword it is and how many occurrences there are. –  Vache Aug 24 '11 at 19:33
    
@Vache : I believe in the original (not updated ) question there was GROUP BY c.name, not by ic.keyword, so it's why I posted my comment. –  a1ex07 Aug 24 '11 at 19:36
    
@gbn Maybe I didn't understand what you meant, but it definitely should work with COUNT(ic.keyword). Example: ideone.com/RjFJ9 –  Vache Aug 24 '11 at 19:42

1 Answer 1

up vote 10 down vote accepted

Drop the semicolon (;) on line 4. I suspect that is ending you query before you can define the ls alias.

SELECT c.name,
       ic.keyword,
       COUNT(ic.keyword),
       SUM(ls.amount),
       ls.buyer
FROM   in_clicks AS ic
       INNER JOIN ads AS a
         ON ic.ad_id = a.id
       INNER JOIN ad_groups AS ag
         ON a.ad_group_id = ag.id
       INNER JOIN campaigns AS c
         ON ag.campaign_id = c.id
       INNER JOIN leads AS l
         ON ( ic.id = l.in_click_id )
       INNER JOIN lead_status AS ls
         ON ( l.id = ls.lead_id )
WHERE  ic.create_date LIKE '%2011-08-19%'
       AND ic.location NOT LIKE '%Littleton%'
       AND discriminator LIKE '%AUTO_POST%'
GROUP  BY ic.keyword
ORDER  BY COUNT(ic.keyword) DESC  
share|improve this answer
2  
doh, i can't believe I missed that. Thank You! –  ATMathew Aug 24 '11 at 19:35
1  
It happens to all of us from time to time :) –  Adrian Carneiro Aug 24 '11 at 19:36
1  
+1. Nice catch! –  Ken White Aug 24 '11 at 19:41

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