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Let's say I have 3 MySQL table. A song db called songs that has a song's artist, album, etc. The main thing here is lastfm_id which is the song's UNIQUE id.

Then there's a list (with 10 spots, like top 10 songs). People can create lists by adding songs to their list and rank them 1 to 10. This db doesn't really needed to be touched for this.

Finally, we have song_listed which is the songs people picked to be put into a list. Here ti is:

enter image description here

As you can see, the song_id in song_listed is the same as lastfm_id in the table songs. Now since there is only one list in the database, there is 10 songs. If there 3 lists created, there would be 30 rows in song_listed each with their own rank of 1-10.

How would I get the average rank in the song_listed of each song in a list?

Imagine there's a page that shows a list via list.php?id=11912 or something like that. You would then get the songs from song_listed where list_id was 11912.

Here's what I got so far:

$listSongs = 0;
while ($listSongs <= 9) {

    // Don't worry, I did a query and $songID[x] works.
    $songID = $songID[$listSongs]; // ex: 12949331
    $getAvgRank = mysql_query("") or die(mysql_error());

    }
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Could anyone throw the normal mysql_* comment? –  Madara Uchiha Jul 1 '12 at 11:37
    
if song A is in 2 lists on the 1st place, do you want it to be better than song B that is in 200 lists every time on 2nd place? –  Aprillion Jul 1 '12 at 11:39
1  
Avoid using the dated mysql_* functions. Using them for new code is highly discouraged. More modern alternatives are available and better maintained. Consider learning about prepared statements instead and use either PDO or MySQLi. When used strictly they avoid the tedious and manual escaping part, thus become heaps easier and as by-product safer to use. See a PDO tutorial for starting. –  Ben Jul 1 '12 at 12:01
    
@Truth, this one? –  Ben Jul 1 '12 at 12:02

2 Answers 2

up vote 2 down vote accepted
SELECT song_id, AVG(rank)
FROM song_listed
WHERE song_id in 
  (SELECT s1.song_id FROM song_listed s1 WHERE s1.list_id = <the id of your list_id>)
GROUP BY song_id

EDIT

if you want one request by song_id (which is not a great idea, but)

SELECT AVG(rank)
FROM song_listed
WHERE song_id = $songID[$realArray]

CAUTION : this is just the "logical" solution. Use parametrized queries (and read Ben' comment on mysql_* functions).

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You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '?) group by song_id' at line 1 Hmmm –  naknode Jul 1 '12 at 11:56
1  
well, think you're able to change ? by your parameter, no (for example 'gjX....') ? –  Raphaël Althaus Jul 1 '12 at 11:57
    
Riiight. I got this $getAvgRank = mysql_query("select song_id, AVG(rank) FROM song_listed WHERE song_id in (select s1.song_id from song_listed s1 where s1.list_id = $songID[$realArray]) group by song_id") or die(mysql_error()); and I output as <?=$getAvgRank?> and I get resource id #13 or something like that. –  naknode Jul 1 '12 at 12:04
    
@weka a) does mysql_query store the query or does it automatically execute the query? b) read the comments to your question about using mysql_* functions –  Aprillion Jul 1 '12 at 12:06
    
@weka : something strange, you speak about list_id, then 11912, which looks like a song_id. So you want song_id, of list_id ? –  Raphaël Althaus Jul 1 '12 at 12:09

i don't thing average rank gives you the correct information - imagine 2 songs from a list - song A is present in 2 lists total, every time with rank 1,, song B in 200 lists, every time with rank 2 => song A will have average rank 1 and song B 2 even if it is much more popular

i suggest you to use a "popularity" metric instead (e.g. 10 points for rank 1 ... 1 point for rank 10):

select s.song_id, sum(11 - s.rank) popularity_points
from song_listed s
join song_listed l on s.song_id = l.song_id and l.list_id = :my_list_id
group by s.song_id
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