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I have the following table:

select * from points
+---------+-------------------+------+------+
| NAME    | TITLE             | Type | RANK |
+---------+-------------------+------+------+
| A       | Hippo             | H    |  1   |
| A       | Hippo             | M    |  1   |
| A       | Hippo             | H    | N/A  |
| A       | Hippo             | H    |  1   |
| A       | Hippo             | H    | N/A  |
| B       | Snail             | H    |  1   |
| B       | Snail             | M    |  1   |
| B       | Snail             | L    |  1   |
| C       | Dog               | H    |  1   |
| C       | Dog               | M    |  1   |
+---------+-------------------+------+------+

Desired output

+---------+----------+-------+
| NAME    | TITLE    | SCORE |
+---------+----------+-------+
| A       | Hippo    |   60  | <--[(2xH)=40 + (1xM)=20] =60
| B       | Snail    |  100  | <--[(1xH)=70 + (1xM)=20 + (1xL)=10] =100
| C       | Dog      |  100  | <--This should happen because [(1xH)=80 + (1xM)=20] =100
+---------+----------+-------+

Computations required:

  • Type can have only three values: {H, M, L};
  • When all values are present, they are graded as followed:

    H=70 M=20 L=10

  • If an name has more than one kind of Type (H, M, or L) then points are distributed as followed:

  • H/(number of H) ; M/(number of M); L/(number of L) = 100

-- Example: A has 4 H therefore 70 / 4 = 17.5 for each H

But some names have a complete set with out having all 'Types. -- example : C has Type values: 'H&M` only

  • CASE H&M

H=80 M=20

  • CASE M&L

M=60 L=40

  • CASE H&L

H=90 L=10

And also

  • if only H is presnet H=100

  • if only M is presnet M=100

  • if only L is presnet L=100

share|improve this question
    
Where do these 40, 20, 70, 20, 10 values come from? – ypercubeᵀᴹ Mar 5 '12 at 20:57
    
@ypercube crap I hosed the info on an edit – stackoverflow Mar 5 '12 at 21:03
    
Well, I don't see it. Or, in other words, I don't get why (for type H for eample) Hippos get 40, Snails get 70 and Dogs get 80. – ypercubeᵀᴹ Mar 5 '12 at 21:05
    
@ypercube There it is – stackoverflow Mar 5 '12 at 21:11
    
Ok, this is interesting, now. – ypercubeᵀᴹ Mar 5 '12 at 21:19
up vote 2 down vote accepted

If I understand correctly, this is what you want:

SELECT name,
       title,
       CAST(
       (      -- only have H, or only have M, or only have L:
         CASE WHEN  `# of H` = 0  AND  `# of M` = 0  THEN  100 * `# of active L` / `# of L`
              WHEN  `# of H` = 0  AND  `# of L` = 0  THEN  100 * `# of active M` / `# of M`
              WHEN  `# of M` = 0  AND  `# of L` = 0  THEN  100 * `# of active H` / `# of H`
              -- only have H & M, or only have H & L, or only have M & L:
              WHEN  `# of H` = 0  THEN  60 * `# of active M` / `# of M` + 40 * `# of active L` / `# of L`
              WHEN  `# of M` = 0  THEN  0  -- ??????????
              WHEN  `# of L` = 0  THEN  80 * `# of active H` / `# of H` + 20 * `# of active M` / `# of M`
              -- have all three:
              ELSE  70 * `# of active H` / `# of H` + 20 * `# of active M` / `# of M` + 10 * `# of active L` / `# of L`
         END
       ) AS SIGNED ) AS score
  FROM ( SELECT name,
                title,
                SUM(IF(         type = 'H', 1, 0))  AS `# of H`,
                SUM(IF(rank AND type = 'H', 1, 0))  AS `# of active H`,
                SUM(IF(         type = 'M', 1, 0))  AS `# of M`,
                SUM(IF(rank AND type = 'M', 1, 0))  AS `# of active M`,
                SUM(IF(         type = 'L', 1, 0))  AS `# of L`,
                SUM(IF(rank AND type = 'L', 1, 0))  AS `# of active L`
           FROM points
          GROUP
             BY name,
                title
       ) t
 ORDER
    BY name
;
share|improve this answer
    
Thanks greatly for the response ruakh. You were right that was a typo on my part. Thanks for picking that up. What does '# of H' do/return? Or is that pseudo code? I've never seen or used that syntax before in MySQL – stackoverflow Mar 2 '12 at 22:57
1  
@Gah_Jamn-it: It's just a name. Just like how a column can be named title, a column can be named `` # of H . (Because of the special characters, it has to be wrapped in backticks ` `` so that MySQL can tell where it starts and ends.) – ruakh Mar 2 '12 at 23:14
    
Ruakh Even if a 'Rank' is N/A, that entry will still need to be accounted for. Hence, if you have three 'Bird' entries and all of Bird 'type' eqaul H ( Hence: 3 x H) and their 'Ranks' are as follows 1, N/A, and N/A. The Birds score should be be 100/3 = 33.3 for each Rank. And since only one rank is active (hence 1) the score will be 33.3 – stackoverflow Mar 2 '12 at 23:31
1  
@Gah_Jamn-it: O.K., I think I understand now. Maybe. I've updated my answer. – ruakh Mar 3 '12 at 0:05
1  
@Gah_Jamn-it: You're welcome! – ruakh Mar 3 '12 at 0:09

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