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Let's say you have a database with two tables named "clients" and "referrals".

TABLE clients has two columns: "id" and "name".
TABLE referrals also has two columns: "id" and "referred_by"

Both "id" columns are PRIMARY_KEY, AUTO_INCREMENT, NOT_NULL

TABLE clients has three rows:

1 | Jack  
2 | Frank  
3 | Hank  

TABLE referrals also has three rows:

1 | 0  
2 | 1  
3 | 2  

Meaning, Jack is client 1 and was referred by no one; Frank is client 2 and was referred by Jack; Hank is client 3 referred by Frank.

The SELECT command I used to display the meaning above was:

mysql_query("SELECT clients.id, clients.name, referrals.referred_by FROM clients INNER JOIN referrals ON clients.id=referrals.id");

while ($row = mysql_fetch_array($result))
{
    echo $row['id'] . " " . $row['name'] . " " . $row['referred_by'] . "<br>";
}

Which outputs:

1 Jack 0  
2 Frank 1  
3 Hank 2  

Now the real question is:

How should I modify the code so that it outputs the name of the referrer instead of their id?

Meaning, it should look like this:

1 Jack  
2 Frank Jack  
3 Hank Frank

Thanks in advance ~

Edit: Make sure to mention how I should update the array as I'm lost on how I should update that whole echo line.

share|improve this question
    
Why do you need 2 tables for this? One should be enough, with columns: id, name, referred_by. –  ypercube Aug 13 '11 at 21:36
    
If I had 2 tables, it would make more sense to have in table referrals both the id and referred_by columns as FOREIGN KEYs to clients.id –  ypercube Aug 13 '11 at 21:39
    
And do not even store the 1,0 record. Client 1,Jack has not been reffered, so no record for him in the referrrals table. –  ypercube Aug 13 '11 at 21:41
    
I simplified my real world project to a simple example so that it would be easier for someone to jump in and help. Also it made it easier for me to learn. I did try a bunch of different variations but I kept getting errors and after a couple frustrating hours I decided to just post the question on here. –  no-name Aug 14 '11 at 0:28
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1 Answer 1

up vote 3 down vote accepted

You're almost there - you just need to join back to the clients table a 2nd time to get the referrer name:

mysql_query("SELECT clients.id, clients.name, rclients.name as referred_by
FROM clients 
INNER JOIN referrals ON clients.id=referrals.id
LEFT JOIN clients as rclients ON referrals.referred_by = rclients.id");

while ($row = mysql_fetch_array($result))
{
    echo $row['id'] . " " . $row['name'] . " " . $row['referred_by'] . "<br>";
}
share|improve this answer
    
How should I update the array? –  no-name Aug 13 '11 at 5:53
    
What to u mean by Update the array ? –  anasanjaria Aug 13 '11 at 13:11
    
I dont' know what you're asking for with "updating the array". You were asking how to retrieve the names of the referrer, which the query supplied will do. –  Derek Kromm Aug 13 '11 at 13:21
    
I'm asking how to display what I selected. Clearly, I'm using this line to display what was selected: echo $row['id'] . " " . $row['name'] . " " . $row['referred_by'] . "<br>"; I'm simply asking how to update that line so it works. It's not like copy and pasting your code fixes everything. In fact, the whole first row doesn't even display. If I were to copy it, it would only show entries starting after the first client. –  no-name Aug 13 '11 at 17:44
    
see edited query –  Derek Kromm Aug 13 '11 at 20:15
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