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I have two tables:

Contact (id,name) Link (id, contact_id, source_id)

I have the following query which works that returns the contacts with the source_id of 8 in the Link table.

SELECT name FROM `Contact` LEFT JOIN Link ON Link.contact_id = Contact.id WHERE Link.source_id=8;

However I am a little stumped on how to return a list of all the contacts which are NOT associated with source_id of 8. A simple != will not work as contacts without any links are not returned.

Thanks.

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5 Answers 5

up vote 1 down vote accepted

Use:

   SELECT c.name 
     FROM CONTACT c
LEFT JOIN LINK l ON l.contact_id = c.id
                AND l.source_id = 8
    WHERE l.contact_id IS NULL
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Nice one, thank you so much. I will accept it in a few mins when I can! –  igluratds Mar 31 '10 at 3:04
    
@iglurat: NP. You can also use either NOT IN or NOT EXISTS, but on MySQL the LEFT JOIN/IS NULL is more efficient: explainextended.com/2009/09/18/… –  OMG Ponies Mar 31 '10 at 3:06
    
Thanks, will read into that! –  igluratds Mar 31 '10 at 3:36

Just say WHERE Link.source_id != 8;

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Sorry for the insults but this is a typical numb nuts reply of "lets get as much rep as I can". –  igluratds Mar 31 '10 at 2:59
    
Just trying to help you out. Thanks anyway... –  Justin Ethier Mar 31 '10 at 3:09
    
Sorry a bit harsh there, I guess some peoples questions are even simpler than mine! –  igluratds Mar 31 '10 at 3:09

There's a straight-forwarrd way to do it just as you expressed it.

SELECT name FROM .... WHERE Link.source_id != 8;

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You can change the where condition from:

Link.source_id = 8;

to

Link.source_id != 8;

You can also use <> in place of !=

Both are the not equal operator in MySQL

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Shouldnt this work?

WHERE Link.source_id <> 8 OR Link.source_id IS NULL
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