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I have a SQL query and here it is the part I'm stuck on.

$query = "SELECT DISTINCT user.firstname, user.lastname, user.userid FROM user, staff WHERE user.type = 'Staff' AND staff.userid!= user.userid";

For some reason, it only prints out the part where users are staff but the != is not working, where as if I remove the ! and only have staff.user_id = user.user_id it works and prints out all users that are in both of those tables?

Can someone please explain why is this is happen and have a solution.

EDIT

TABLE USER                       TABLE STAFF
ID - NAME - TYPE                ID   -     NUMBER
1  - A    - Staff               1    -      11111
2  - B    - Staff               2    -      22222
3  - C    - Customer
4  - D    - Customer
5  - E    - Staff
6  - F    - Staff

How would I find the users id 5 and 6?

share|improve this question
    
What database engine are you using? –  Jamie Feb 3 '12 at 16:54
    
@Will Ok, I edited my answer to reflect the modified question. –  dgw Feb 3 '12 at 17:35

3 Answers 3

up vote 6 down vote accepted

Try <> instead of !=.

Edited answer for the edited question:

SELECT user.firstname, user.lastname, user.userid 
FROM user LEFT JOIN staff ON user.userid=staff.userid 
WHERE user.type = 'Staff' AND staff.userid IS NULL ;
share|improve this answer
    
I agree, <> is the formal syntax, most SQL databases support != because it's common coder lingo but it's not the official syntax for not equals. –  TravisO Feb 3 '12 at 16:55
    
@Will What is the desired output you want? –  dgw Feb 3 '12 at 17:19
    
@Will Do you want the user tagged with type='Staff' that are NOT listed in the staff table? –  dgw Feb 3 '12 at 17:21

OK, based on your comment, I think this is what you want:

SELECT DISTINCT user.firstname, user.lastname, user.userid 
FROM user u
LEFT JOIN staff s ON (s.userid = u.userid)  
WHERE (s.userid is null) AND (u.type = 'Staff')

The left join will find all the records in user table (the left table) that have a matching userid and for those that don't.

So a modified query

SELECT * 
FROM user u
LEFT JOIN staff s ON (s.userid = u.userid)

would return

 
1  - A    - Staff               1    -      11111
2  - B    - Staff               2    -      22222
3  - C    - Customer            NULL NULL NULL
4  - D    - Customer            NULL NULL NULL
5  - E    - Staff               NULL NULL NULL
6  - F    - Staff               NULL NULL NULL

adding a partial WHERE clause

SELECT *
    FROM user u
    LEFT JOIN staff s ON (s.userid = u.userid)  
    WHERE (s.userid is null)

would return:

 
3  - C    - Customer            NULL NULL NULL
4  - D    - Customer            NULL NULL NULL
5  - E    - Staff               NULL NULL NULL
6  - F    - Staff               NULL NULL NULL

And finally the complete query would return

SELECT *
    FROM user u
    LEFT JOIN staff s ON (s.userid = u.userid)  
    WHERE (s.userid is null) AND (u.type = 'Staff')

would return:

 
5  - E    - Staff               NULL NULL NULL
6  - F    - Staff               NULL NULL NULL

Note: assuming the user table is unique, the 'DISTINCT' is redundant.

share|improve this answer

It's not clear what you are trying to accomplish. You are joining two tables (user and staff) and using a join condition where the user type is staff and the userids between the user and staff table do not match.

using the JOIN syntax you are saying

SELECT DISTINCT user.firstname, user.lastname, user.userid 
FROM user u
JOIN staff s ON (s.userid != u.userid)  
WHERE u.type = 'Staff' 

But you aren't using anything from the Staff table in your select. So I'm unclear on the need to join to it in the first place?

share|improve this answer
    
I have user table with user details, id and the type field will either be staff or customers. The staff table will have the id and the staff number. What I want to do is have a list of all staff that are not in the staff table? With the user.userid = staff.userid, will print all the staff that are in the staff and user table, but I want the staff that are not in the staff table from the user table. If you know what I mean –  Will_S Feb 3 '12 at 17:21
    
Sorry I explain best as I can. –  Will_S Feb 3 '12 at 17:22

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