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The other threads about this didn't seem to help me. I want to select all the information from one table, but order them by a value in another table.

SELECT message,
date,
ip,
name,
website,
id
FROM guestbook_message
WHERE deleted = 0
AND date > DATE_SUB(NOW(), INTERVAL 1 DAY)
ORDER BY date DESC";

Except I need to ORDER BY 'votes' DESC; which is in another table called m_votes.

Is it possible to do this? I have read on another website that this query is impossible.

$query="SELECT g.message, g.date, g.ip, g.name, g.website, g.id FROM guestbook_message AS g JOIN m_votes AS v ON g.id = v.vid WHERE g.deleted = 0 AND v.messageid = $mid AND g.date > DATE_SUB(NOW(), INTERVAL 1 DAY) ORDER BY SUM(v.votes) DESC;"

^^This doesn't work

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3  
you'll need either a join or a subquery to reference the 'votes' column in your query, otherwise it will not work. –  Brian Driscoll Feb 21 '11 at 16:21
    
Please post the table definitions for both tables (SHOW CREATE TABLE guestbook_message and SHOW CREATE TABLE m_votes) as well as a short description of how they are related if this is not obvious from the table definition. –  Mark Byers Feb 21 '11 at 16:24

3 Answers 3

You need a join:

SELECT
     g.message,
     g.date,
     g.ip,
     g.name,
     g.website,
     g.id 
FROM guestbook_message AS g
LEFT JOIN m_votes AS v
ON g.id = v.message_id
WHERE g.deleted = 0 
AND g.date > NOW() - INTERVAL 1 DAY
GROUP BY g.id
ORDER BY COUNT(v.message_id) DESC
share|improve this answer
    
+1 Beat me to it! –  Sean Vieira Feb 21 '11 at 16:24

I'm a bit of a beginner and to me this is a very hard query as it needs to find the SUM of 'votes' in m_votes and order by that. As well as get the information from the other query. This is the query that gets the information about the message:

 "SELECT message,  
         `date`,  
         ip,  
         name,  
         website,  
         id   
  FROM `guestbook_message`   
  WHERE deleted = 0   
     AND date > DATE_SUB(NOW(), INTERVAL 1 DAY)   
  ORDER BY `date` DESC";  

And this is the query that gets the information about the votes:

"SELECT SUM(votes) as votes FROM m_votes WHERE messageid = $mid"

But I have no idea who I would put them into one query that will gather all the information from the first query, then ORDER them by votes.

share|improve this answer
    
Mark's answer seems very good, but I'm not sure how I get the rest of the 2nd qurey in. –  Tom Feb 21 '11 at 16:33
1  
This doesn't answer the question. You should include this information in your question, not post it as an answer. –  Mark Byers Feb 21 '11 at 16:39
    
Sorry, I have edited my original post now. –  Tom Feb 21 '11 at 16:47

You have to join the data, that is, you need to have the votes for each guestbook message.

Let's suppose for simplicity you have the following tables:

Message
----
id INT
messsageText VARCHAR(5000)

and

MessageVotes
------------
messageId INT (references the `id` column in table Message)
voteValue INT (suppose it can be +1 or -1, whatever)
votingIp  VARCHAR(100)

Then you could do something like

SELECT
  m.id,
  m.messageText,
  SUM(mv.voteValue) AS votes
FROM
  Message AS m,
  MessageVotes AS mv
WHERE
  mv.messageId = m.id
GROUP BY
  m.id, m.messageText /* here you need to place every field you `select` from Message */
ORDER BY
  SUM(mv.voteValue) DESC

or even better:

SELECT
  m.id,
  m.messageText,
  SUM(mv.voteValue) AS votes
FROM
  Message AS m
  LEFT JOIN MessageVotes AS mv ON mv.messageId = m.id
GROUP BY
  m.id, m.messageText
ORDER BY
  SUM(mv.voteValue) DESC

See:

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