7

I have a table of users and a table of things they have on a list -

to show all users who have items on a list I can join the two tables users and user_lists on user_id

e.g.

select u.emailaddr, u.name from users u
join user_lists uw where u.user_id=uw.user_id
group by u.name

QUESTION: How do I show all users who DO NOT have items on a list - to say it another way, I need a list of users who do not have entries in table user_lists

I tried this but it ran endlessly

select u.emailaddr, u.name from users u
join user_lists uw where u.user_id<>uw.user_id
group by u.name
11

Use LEFT JOIN with IS NULL predicate:

select u.emailaddr, u.name 
from users u
LEFT join user_lists uw ON u.user_id = uw.user_id
WHERE uw.user_id IS NULL;

Or: The NOT IN predicate:

select u.emailaddr, u.name 
from users u
WHERE u.user_id NOT IN (SELECT user_id
                        FROM user_lists);
| improve this answer | |
  • Awesome, many thanks - is there a preference? is one less resource hungry than the other? – Darren Sweeney Mar 23 '13 at 15:56
  • 1
    @DarrenSweeney - It depends on your data, and the indexes setup in your tables, but there is a little thing to note; JOIN is safer than the predicate IN with the NULL values, if there is any user_id in the other table user_lists with NULL values, your query won't return any thing. – Mahmoud Gamal Mar 23 '13 at 18:18
0
SELECT u.user_id FROM users u
EXCEPT
SELECT uw.user_id FROM user_lists uw

it will give you the ids that exist in users and don't exist in userlists.

| improve this answer | |
  • MySQL doesn't support EXCEPT set operator. – Mahmoud Gamal Mar 23 '13 at 12:31

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