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Each student has some scores (and each score has student_id column).

I want to calculate student average, compare his average with other student, and find his position in his class.

Is it possible to find his position based on his average with 1 query? (may contains subqueries or joins)

I can sort all students by their average by this query:

SELECT s.*
FROM
  scores s LEFT JOIN lessons lesson
  ON lesson.id = s.lesson_id
WHERE lesson.display = 1
GROUP BY s.student_id
ORDER BY AVG(s.score) DESC

but it needs processing with PHP array_search function. (I think using MySQL functions is better, in this situation)

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4 Answers

select student_id, AVG(scores) as 'average' from lessons as l, scores as s 
where lessons.id = s.lesson_id and lesson.display = 1 
GROUP BY s.student_id order by average desc`

Try this query

sample http://sqlfiddle.com/#!2/4fb8d/1

Hope this helps

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Thanks, but it sort students by their average. I've got it before... (read my question again), I want to find 1 student position. (whose hist id is 100, for example) –  kikio Jan 31 '13 at 12:38
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    select s.id, AVG(l.scores) as average from lessons as l, student as s 
    where l.id = s.lessonid and l.display = 1 
    GROUP BY s.id order by average desc

can solve your problem
Check this link

Thanks to Meherzad's sql query

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Thanks, but I want to find student position. Not the student who is the third one in his class. (at the end of your query, you have WHERE rank = 3) –  kikio Jan 31 '13 at 12:42
    
I added rank=3 for your convenience that you can even search within their ranks....Else you print complete table.... –  Wazzzy Jan 31 '13 at 12:45
    
Yes, but I don't need complete table or the third student. I want student number 100 position in his class. –  kikio Jan 31 '13 at 12:48
    
Try the update answer –  Wazzzy Jan 31 '13 at 13:00
    
Thanks, but nothing... I think I should go with PHP array_search... –  kikio Jan 31 '13 at 13:13
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I think you are looking for something like this:

SELECT COUNT(DISTINCT average)
FROM (
  SELECT AVG(score) as average
  FROM scores INNER JOIN lessons
       ON scores.lesson_id = lessons.id
  WHERE display=1
  GROUP BY student_id
  ) sub_scores
WHERE average >= (SELECT AVG(score)
                  FROM scores INNER JOIN lessons
                       ON scores.lesson_id = lessons.id
                  WHERE display=1
                        AND student_id=1)

In the subquery sub_scores I'm calculating all averages of all students, in the outer query I'm calculating the number of distinct averages bigger than the average of student 1.

This will return the position of student 1.

Depending on what you are after, you might want to remove DISTINCT clause.

See this fiddle.

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@kikio isn't it correct? I'm returning the position of a given student... it's not clear if you are looking for this, or if you need to rank students (like in Bohemian's answer) –  fthiella Jan 31 '13 at 14:55
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You need to use a user defined variable over the result set.

Try this:

SELECT *, (@rank := if(@rank is null, 1, @rank + 1)) as rank
FROM (SELECT s.*
  FROM scores s 
  LEFT JOIN lessons lesson ON lesson.id = s.lesson_id
  WHERE lesson.display = 1
  GROUP BY s.student_id 
  ORDER BY AVG(s.score) DESC
) x
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what's x? it also returns syntax error. –  kikio Jan 31 '13 at 14:41
    
x is the required alias for the nested query (it can be anything, but it must be something. I found the syntax error - I forgot that mysql is sensitive to the position of * in the SELECT list: it must be first. I have edited the query and it should work now –  Bohemian Jan 31 '13 at 20:08
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