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I've a table we have userids of people and the langauges they can speak. just two columns, userid and language.

I want to find all those users who can speak hindi AND english AND german AND french. How should I write this query ? I cannot use Inner Join 4 times. Problem being the check for number of languages might increase, I might want to check for more languages.

userid | language
1 | english
4 | english
1 | french
1 | german
.................

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You can use group by and count. Google "Relational Division" –  Martin Smith May 19 '11 at 10:19
    
Or see this link –  Martin Smith May 19 '11 at 10:25
    
COUNT(*) and GROUP BY would only give you how many languages each user spoke, not which languages. –  Chris Fulstow May 19 '11 at 10:26
2  
@Chris. You use WHERE language in('english','hindi', 'french','german') , GROUP BY userid then check HAVING COUNT(DISTINCT language) = 4 –  Martin Smith May 19 '11 at 10:28
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4 Answers

up vote 8 down vote accepted

If using MySQL, you could do something like (to be debugged, not tested):

SELECT userid FROM (
    SELECT userid, GROUP_CONCAT(language SEPARATOR ',') AS languages
    FROM UserLanguage 
    ORDER BY userid ASC, language ASC 
    GROUP BY userid)
WHERE languages LIKE '%english%french%german%hindi%';

(the languages in the LIKE clause have to be sorted)

How to use GROUP BY to concatenate strings in MySQL?


Or maybe faster:

SELECT userid 
FROM UserLanguage 
WHERE language IN ('fr', 'en, 'de', 'hi') 
GROUP BY userid 
HAVING COUNT(DISTINCT(language)) >= 4
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+1 for the group-having solution - does the same as what I suggested, but with a simpler query :) –  mingos May 19 '11 at 10:41
    
Thanks marvin. It works great. I couldn't understand why >=4 has been added at the end and I suppose the check should have been for =4 only as only 4 languages are being checked for? Could you elaborate this a bit. thanks –  Nands May 19 '11 at 11:48
    
Correct, =4 should work just as well. –  MarvinLabs May 19 '11 at 12:00
    
I've been waiting about 10 years for a built-in GROUP_CONCAT aggregate function in SQL Server. Still waiting. +1 btw, great answer. –  Chris Fulstow May 19 '11 at 12:34
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I think as you don't have count and name of language then you should try following query...

select userid 
from UserLanguage 
group by userid 
having count(language)= (select count(distinct language) from userid)
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You could use a correlated subquery, like this:

SELECT UserId
FROM UserLanguage UL1
WHERE
    EXISTS (SELECT * FROM UserLanguage UL2 WHERE UL2.UserId = UL1.UserId
        AND UL2.Language = 'english') AND
    EXISTS (SELECT * FROM UserLanguage UL2 WHERE UL2.UserId = UL1.UserId
        AND UL2.Language = 'hindi') AND
    EXISTS (SELECT * FROM UserLanguage UL2 WHERE UL2.UserId = UL1.UserId
        AND UL2.Language = 'german') AND
    EXISTS (SELECT * FROM UserLanguage UL2 WHERE UL2.UserId = UL1.UserId
        AND UL2.Language = 'french')
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You can use a subquery:

SELECT userid
FROM (
    SELECT userid, COUNT(*) AS cnt
    FROM mytable
    WHERE language IN ('hindi','german','french','english')
    GROUP BY userid
) AS t
WHERE cnt = 4;
share|improve this answer
    
+1 Like it, easier than using the correlated subquery. –  Chris Fulstow May 19 '11 at 10:34
    
It is - the only thing that's still a bit shaky about it is that you have to know how many languages you're looking for. It's usually not a problem if you use PHP or another server side language to construct the query, but then again, who knows - the OP isn't specific about this :). –  mingos May 19 '11 at 10:36
    
Could you load the languages into a table variable @Languages, then do WHERE language IN (SELECT * FROM @Languages) and have declare @Count = (SELECT COUNT(*) FROM @Languages) and HAVING cnt = @Count? –  Chris Fulstow May 19 '11 at 10:40
    
Aye, having is the way to go :) –  mingos May 19 '11 at 10:42
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