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I have this table that I hold userlist for my msn application. There's another table for the friendship where it has two foreign keys from userlist.

user: id, name, online, ip... friend: id1, id2

I want the information of the users that are friend with a specific id.

I'm using this sql query:

SELECT (latest_ip, email, online, pass, status) 
from im.user JOIN im.friend ON = friend.id1 

what am i missing?

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Oh and the mysql error: Error code: 1241: Operand should contain 1 column(s) – Barışcan Kayaoğlu Dec 15 '12 at 13:11
you are missing some informations regarding your question, (1) what do you get when you execute the query? (2) can you show sample records with desired output? – John Woo Dec 15 '12 at 13:13
Well the friend table contains the information about which id is friend with who. its like id 5 friend with id 12. The problem i see here is that id 5 might have more then one friend so the WHERE part contains more then one id. The thing i want to do is that check friend table for friends of id 5, get those id s and query them on user table to get the other information like name, latest ip etc. – Barışcan Kayaoğlu Dec 15 '12 at 13:17
I am also using this query that makes similar execution: SELECT (latest_ip, email, online, pass, status) from im.user WHERE = (SELECT id2 from im.friend WHERE id1 = 5) but the problem is the same, second query might return more then one id – Barışcan Kayaoğlu Dec 15 '12 at 13:19

1 Answer 1

remove the parenthesis on your select clause, you don't need them

SELECT latest_ip, email, online, pass, status
from   im.user 
       INNER JOIN im.friend 
           ON = friend.id1 


you need to have extra join with the table user again since you want to get the informations of the user's friends.

from    im.user a
        INNER JOIN im.friend b
            ON = b.id1 
        INNER JOIN im.user c
            ON b.id2 =
share|improve this answer
Oh well. Thanks for the help. The first query that i wrote seems not working but the second one with the sub query seems working when i remove the paranthesis. Again, thanks for the help :) – Barışcan Kayaoğlu Dec 15 '12 at 13:25
@BarışcanKayaoğlu see my updated answer. – John Woo Dec 15 '12 at 13:28

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