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I have a table:

quiz userid  attempt grade

1      3        1     33

2      3        1     67

1      3        2     90

10     3        4     20

2      3        2     67

1      3        3     55

Now For first quiz, an user gave 3attempts i.e., (33, 90, 55), Now I need the average for last 2 attempts ( (90 + 55)/2) for that scormid and userid too

Now, I want the last two attempts i.e., 4 and 3 and I want average grade of these 2 grades i.e, 90 and 20 Need the OP like

userid quiz No.of Attempts Grade

3      1         3           (90+55)/2 i.e., 72.5
3      2         2            (67+67)/2 i.e., 67
3      10        1               20
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1  
Can you have more users or quizzes? If so, how should that be handled? –  user166390 Dec 15 '11 at 18:53
    
what's wrong with @rich_adams 's answer? If you don't get it, you might want to add that to the question, but it looks good, doesn't it? –  Nanne Dec 18 '11 at 12:47
    
In Rich Adams query, Iam getting only one row, but i should get all the rows for the quiz –  user1067018 Dec 18 '11 at 16:09

5 Answers 5

First you need to select just the two rows with highest attempts, which is what the subquery does, then average the grades from the derived table.

SELECT 
    AVG(grade) 
FROM (
      SELECT 
          grade 
      FROM 
          `table`
      ORDER BY attempt DESC 
      LIMIT 2
     ) t;

This will give you a result of 55.0000, which is the average of 90 and 20, the grades for the last two attempts.

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Why using a subquery if you can use a GROUP BY statement? –  Michiel van Vaardegem Dec 15 '11 at 18:41
    
Because a GROUP BY will show you the average for each attempt value, not the combined average, which is what I think the OP wants (although that may not be what they're after). –  Rich Adams Dec 15 '11 at 18:46
    
OP wants the averages per attempt, i thought –  Michiel van Vaardegem Dec 15 '11 at 18:51
    
I'm not sure this will work the general case -- of more users or quizzes :( This seems like a case for "group-by-bottom-n". –  user166390 Dec 15 '11 at 18:52
    
I want to get the last two attempts and and get average by calculating both the grades (90 and 20) and all in one column I need the output –  user1067018 Dec 15 '11 at 18:55
SELECT AVG(grade), attempt
FROM table
GROUP BY attempt
ORDER BY attempt DESC
LIMIT 2
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this will not give solution –  Dewasish Mitruka Dec 15 '11 at 18:44
    
Hi Guys, I need to display only last two attempts please, so that i could try for avg –  user1067018 Dec 15 '11 at 18:46

Selecting the last two rows = selecting the first two rows of a reversed set.

Simply order by attempt DESC (that makes it 4,3,2,1) and then grab the first two (4,3).

SELECT * FROM table WHERE <...> ORDER BY attempt DESC LIMIT 2

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Hi Tom, Lets work on your suggestion SELECT userid, quiz, attempt, AVG(grade) FROM mdl_scorm_scoes_track ORDER BY attempt DESC LIMIT 2 It displays a wrong percentage value (I think it is taking all the 3 attempts average, but I need only last two attempts –  user1067018 Dec 18 '11 at 16:58

Makes 2 assumption: that all you attempts are sequential and have no voids (Ie 1,2,3,4) exists and not 1,3,4,6) IF the latter, I can correct. (will use a limit/order descending)

assumes you want the avg of the 2 grades per person/per quiz.

Explanation: Executes a sub query to : get quiz, user where attempt is equal to max attempt for the same quiz/user less 1. Performance isn't ideal there is likely a faster way but this shold work.

SELECT T1.quiz, T1.userID, avg(T1.grade)
FROM TABLE T1
   T1.Attempt >= 
    (Select max(T3.attempt) -1
     from table T3
     where T3.QUIZ=T1.Quiz 
     AND T3.UserID=T1.UserID)
GROUP BY T1.Quiz, T1.UserID
share|improve this answer
    
Hi xObert, I don't have one more table, as everything is in one table –  user1067018 Dec 18 '11 at 13:18
    
Table is the same in both cases: its a subselect to get max-1 attempt per user per quiz. (use the same name in both spots). So if your table name is SCORES: then replace Table with SCORES in both places. –  xQbert Dec 18 '11 at 13:45
    
This is the error i am getting when I execute the query " #1064 - 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 'T1.attempt &gt;= (SELECT MAX(T3.attempt) -1 FROM mdl_scorm_scoes_track T3' at line 3 –  user1067018 Dec 18 '11 at 16:29

Try this (assuming your table is called 'grades')

SELECT last_two_grades.userid, last_two_grades.quiz, AVG(last_two_grades.grade) AS average
  FROM (
        SELECT grades.userid, grades.quiz, grades.grade
          FROM grades
      ORDER BY grades.attempt DESC
         LIMIT 2
       ) AS last_two_grades
GROUP BY last_two_grades.userid, last_two_grades.quiz

With that you can select the average of the last two grades on a per user basis. If you want to select it for a specific user you can do so by adding

HAVING last_two_grades.userid = 3

to the end of the query and for a certain quiz you can add

HAVING last_two_grades.quiz = 1

and to get the average grades for a user at a certain quiz you must specify

HAVING last_two_grades.quiz = 1 AND last_two_grades.userid = 3
share|improve this answer
    
The output displays like this userid average 3 662019123 only one row –  user1067018 Dec 18 '11 at 13:14
    
Of course. You want to know the grades average of the last two attempts of a user right? why are you expecting more than one row per user? Oh, and I just saw that attempts can be the same values for one user, so you must specify another order (respectively group by or where) criteria... i guess the quiz is the thing to go... –  Vapire Dec 18 '11 at 14:36
    
Just edited my answer for supporting the quiz column as well –  Vapire Dec 18 '11 at 14:40
    
Hi Vapire, still i get only one row, i need the OP as stated above under my question. Please kindly check –  user1067018 Dec 20 '11 at 20:38

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