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How we can do something as follows?

$results = $DB->query("SELECT * FROM users WHERE id!='{$id}' ");

Even I don't know to code,

$a = $DB->query("SELECT * FROM friends WHERE(someone is not friends with you)' ");

Columns in friends: user_id, friends_id

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1  
What have you tried? –  Tim S. Jan 22 '13 at 11:52
    
SELECT * FROM friends WHERE friends_id != {$id}? –  ATaylor Jan 22 '13 at 11:53
1  
SELECT x.* FROM my_table x LEFT JOIN my_table y ON y.user_id = x.user_id AND y.friend_id = 'me' WHERE y.user_id IS NULL; –  Strawberry Jan 22 '13 at 11:54
    
@mud nazmi - why not give it a go and see for yourself! –  Strawberry Jan 22 '13 at 12:04
    
Yes it is , @SparKot –  Muhd Nazmi Jan 22 '13 at 12:34

4 Answers 4

$DB->query("SELECT x.* FROM users x WHERE x.id NOT IN (myid, friendids)");
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Use NOT IN

ID NOT IN (IDs OF FRIEND)

Example

$DB->query("SELECT * FROM user AS User WHERE User.id NOT IN (select * from friends where user_id = User.id)");
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No. Do not use NOT IN. –  Strawberry Jan 22 '13 at 12:03
    
@Strawberry so what's your suggestion bro.? –  Dipesh Parmar Jan 22 '13 at 12:04
    
See above. It's incomplete, but better performancewise - as is NOT EXISTS –  Strawberry Jan 22 '13 at 12:28

You need to get the persons whom are not your friends. right? So you have your user_id as $my_id. Then you can select the friend_ID's from friends for whom the user_id field does not contain your user_id value($my_id). Then from those friend_ID's retrieved, you can select the users from Users table. Use this:

$DB->query(SELECT * FROM users WHERE id IN(select friend_id FROM friends WHERE user_id != {$my_id}))

Will work. :)

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Not knowing the exact structure of your db makes your question a bit trick however going by the idea that someone is said to be your friend when he is your friend or you are his friend, you have to select those who you didn't add as friend and they as well didn't add you.

A query like this should help you.

"SELECT * FROM users WHERE users.id NOT IN (select * from friends where user_id != '{$your_id}' AND friend_id != '{$your_id}')"

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