Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to retrieve a few things from the database with just one single query: - the number of friend requests - the number of new private messages - the number of notifications - and username of the user who eg. sent the PM to you or invited you to friends.

The user id specified below in the query is the user who is checking to see if there are any notifications for this user.

The problem is: if there are no notifications it will not return the number of friend requests or private messages as well.

This is the query I have build, and it works apart from the problem above:

SELECT 
    n.id, 
    n.type,
    u.username,
    COUNT(fr.friend_id) as frc,
    COUNT(pm.pm_id) as pmc
FROM 
    notifications as n,
    users as u
LEFT JOIN
    private_messages as pm
ON
    pm.to_user = '1'
AND 
    pm.status = 'unread'
LEFT JOIN
    friends as fr
ON  
    fr.friend_id = '1'
AND
    fr.status = 'pending'
WHERE 
    n.user_id='1'
AND
    u.id = n.from_id
ORDER BY
    n.id ASC

I am not sure what I am missing, so if anyone can share their sql knowledge and help me out I would deeply appreciate it.

Thanks!

Ps. I am still very new to more complex queries, so if I am completely off track with my above query, please do let me know :).

Table Structures:

Sample friends table structure
+--------------------------+-----------------------------+
| Field                    | Type                        |
+--------------------------+-----------------------------+
| user_id                  | int(10)                     |
| friend_id                | int(10)                     |
| status                   | ENUM('pending','accepted')  |
| user_id                  | int(10)                     |
+--------------------------+-----------------------------+

Sample notifications table structure
+--------------------------+---------------------+
| Field                    | Type                |
+--------------------------+---------------------+
| id                       | int(10)             |
| type                     | ENUM('pm','friend') |
| user_id                  | int(10)             |
| from_id                  | int(10)             |
+--------------------------+---------------------+

Sample private message table structure
+--------------------------+-----------------------+
| Field                    | Type                  |
+--------------------------+-----------------------+
| pm_id                    | int(12)               |
| to_user                  | int(10)               |
| from_user                | int(10)               |
| status                   | ENUM('read','unread') |
+--------------------------+-----------------------+

Sample users table structure
+--------------------------+---------------+
| Field                    | Type          |
+--------------------------+---------------+
| id                       | int(10)       |
| username                 | varchar(50)   |
+--------------------------+---------------+
share|improve this question
    
Have you tried "UNION SELECT" ? –  Stephen Quan Jan 27 '12 at 15:37
    
I have no idea what it is, so can't say I have no. :( –  MrE Jan 27 '12 at 15:38
    
If you post the table structure it could help (not necessarily all the columns, just whatever you're using in the query) –  Ian Jacobs Jan 27 '12 at 15:42
    
I have added the tables now :) cheers! –  MrE Jan 27 '12 at 16:07
add comment

3 Answers 3

up vote 0 down vote accepted

Your query mixes up unrelated things - a list of notifications, and a scalar set of counts. It also ties whether or not you get any results to the requirement to have at least one notification. From a design standpoint, these two should not be mixed, so I would re-write it as two queries.

You should use a correlated subquery for your counts:

select
    u.username,
    (select COUNT(fr.friend_id) from friends as fr where fr.friend_id = u.id AND fr.status = 'pending') as frc,
    (select COUNT(pm.pm_id) from private_messages as pm where pm.to_user = u.id AND pm.status = 'unread') as pmc
from users u
where u.id='1'

The query for notifications is a simplified version of your original query:

SELECT 
    n.id, 
    n.type,
    u.username
FROM 
    users as u
LEFT JOIN
    notifications as n ON n.from_id=u.id
WHERE
    u.id = '1'
ORDER BY
    n.id ASC
share|improve this answer
    
I am just trying to keep the query count to a minimum (however is 2 queries sometimes better than one, performance wise?). But if this is not really possible with 1 query, then I guess I'll have to go with 2. –  MrE Jan 27 '12 at 16:08
    
@MrE The problem is that your two queries return fundamentally unrelated results. In cases like that I always disregard performance considerations, because understandability of my code is more important than a few milliseconds that I could save. –  dasblinkenlight Jan 27 '12 at 16:13
    
Guess you are right, will mark this as the answer. Thanks for your help, I appreciate it! –  MrE Jan 27 '12 at 16:14
add comment

Sorry I don't know mysql syntax, but can you try

...
From 
   users as u
LEFT JOIN 
   notifications as n ON <whatever>
...

What you have may be the equivalent for all i know. But assuming your User table always has data this may work.

share|improve this answer
    
Good thinking, but I do not think it would help me with this query (I could be very wrong, I am not that experienced with SQL queries). Thanks for the help though, Appreciated! –  MrE Jan 27 '12 at 15:43
add comment

Forgotten group by perhaps:

WHERE 
        n.user_id='1'
    AND
        u.id = n.from_id
   GROUP BY  n.id, 
    n.type,
    u.username
    ORDER BY
        n.id ASC

Cheers

share|improve this answer
    
Will give it a try :). Update: I have tried a couple of combinations, but without luck :/. –  MrE Jan 27 '12 at 15:38
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.