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For a social web application I needed to create a MySQL table in following way,

id | user_id | friend_id
 0 |    5    |   6
 1 |    6    |   5

user 5 and another user 6 are now friends. How can I get a list of friends for a particular user. Could somebody point me in to the right direction please?

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SELECT the friend id WHERE the user id equals to something ? –  iamsleepy Apr 6 '14 at 16:09
Problem is that something is what? –  shan Apr 6 '14 at 16:10
@shan @iamsleepy means SELECT friend_id FROM table_name WHERE user_id = 5 –  Rahil Wazir Apr 6 '14 at 16:12
Is that the complete table,or do you have more columns?> –  Mihai Apr 6 '14 at 16:21
@Mihai: thats all I got, Thats the problem I'm facing. I wrote other codes, except code to get friends list. So I cannot change the table structure now. –  shan Apr 6 '14 at 16:23

3 Answers 3

up vote 1 down vote accepted
SELECT f1.user_id, f2.user_id as 'Friend'
    FROM friends f1 left join friends f2
   on f1.user_id = f2.friend_id 

For more information please refer to this post What's the difference between INNER JOIN, LEFT JOIN, RIGHT JOIN and FULL JOIN?

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Thank you for the answer. How can I get this list for a particular userid? –  shan Apr 7 '14 at 4:23
Add a where condition to the same query - 'where f1.user_id = 5' –  Ananth C Apr 7 '14 at 7:04

If you store friend_ids for all users, you can try this:

SELECT friend_id FROM TableName WHERE user_id=@userID

Pass the parameter @userID from the program.


SELECT friend_id FROM TableName WHERE user_id=5


For both fields:

SELECT CASE WHEN friend_id=5 THEN user_id 
            WHEN user_id=5 THEN friend_id 
            END AS Friend
 FROM TableName
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The both rows is a must to make a comeplete friendship. There may be one. But I need the both rows are met by the query. –  shan Apr 6 '14 at 16:13
@shan: See the edit. –  Raging Bull Apr 6 '14 at 16:16
yeah!!! I was looking for something like that. Thanks for enlightening me @Raging Bull –  shan Apr 6 '14 at 16:19

@userid should have the same datatype as in table or you need to convert it to the same

select friend_id where user_id=@userid
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