3

What I want:

For every User that is connected to Group_ID=1 I want to count the amount of activities this User have attended, and use that info to order by User with the most attendings DESC(ending).

A table that connects Users to Groups:

user_r_group:

ID    User_ID    Group_ID

1     1          1
2     3          1
3     2          1
4     1          2  <-- User 1 connected to another group

A table that shows which activities User have attended:

activities_attended:

ID    Activity_ID    User_ID

1     1              1  <-- User 1 have attended 3 activities
2     1              3
3     1              2
4     2              1  <-- User 1 have attended 3 activities
5     2              3
6     3              1  <-- User 1 have attended 3 activities

The outcome I'm looking for:

User_ID    Attendings

1          3
3          2
2          1

Is there a way to write a mysql_query to achieve this?

It sure feels like it. Or will I need to puzzle myself with loops in php with querycombinations?

I've checked out ways to join tables, and I'm slightly familiar with ORDER BY, but I have no real clue how to store the attendings-info for every User and then order by it, to then put it all together in a query as wanted ;/ A lil help please?


Solved it!

Thanks to GordonM for guidance on where to look, and thanks to Milen Pavlov as well as Kirill Fuchs for the code-samples. I combined the codes into my own prefered version. Kirill's code was however accurate on exception that he forgot the 'ORDER BY Attendings DESC' in the end ;)

SELECT
    COUNT(aa.User_ID) as Attendings,
    urg.User_ID
FROM
    activities_attended aa
    INNER JOIN user_r_group urg ON urg.User_ID=aa.User_ID
WHERE
    urg.Group_ID=1
GROUP BY
    urg.User_ID
ORDER BY
    Attendings DESC
  • Yes, there is. It involves a join and an aggregate function, hopefully that's more than enough info for you to find what you're looking for – GordonM Oct 20 '13 at 21:31
  • 1
    And don't use mysql_* functions as they're error-prone and deprecated. Either use mysqli_* or even better: PDO – nietonfir Oct 20 '13 at 21:39
  • 1
    @GordonM, found it! Thx. Combined some answers here to get what I wanted(Kirills at ~95% accuracy code-wise), will post my own answer to it with exact working result as well as recognition to involved parts. (Just waiting for 10+ rep or 8hours-limit for new users -.-) – Tim Lind Oct 20 '13 at 23:04
  • @nietonfir, you are right, and I'm currently in the process of converting to PDO. Though, since I just started to code I wanted to get a glimpse of the standard issue to gain some perspective on the differences :) – Tim Lind Oct 20 '13 at 23:08
  • @TimLind Glad you had some success. It's always better if you can work things out for yourself as they're more likely to stay with you in the future. – GordonM Oct 21 '13 at 10:25
3

You will have to use a join. Example below:

SELECT `user_r_group`.`User_ID`, count(`activities_attended`.`ID`) AS Attendings
            FROM `user_r_group`
            INNER JOIN `activities_attended`
                    ON `user_r_group`.`User_ID` = `activities_attended`.`User_ID`
            WHERE `user_r_group`.`Group_ID` = 1
                    GROUP BY `user_r_group`.`User_ID`
                    ORDER BY Attendings DESC

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