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My table contains pk_id,reviewer_id,rating. There are 4 type of rating.

1-very good.
2-good.
3-bad.
4-very bad.

I want to calculate how much rating given by each reviewer. Means: If Akee having id 200 has given 2 very good,4 good,3 bad and zero very bad rating to different code.

I want result

  count--- rate

   2---------1

   4---------2

   3---------3

   0---------4

My query is

SELECT COUNT(RATE),RATE
  FROM CODE_REVIEW WHERE CODE_REVIEWER_ID= 200
 GROUP BY RATE;

It is showing result

  count--- rate

   2---------1

   4---------2

   3---------3

I want to show the fourth row that is 4 rating zero. How can it be done??

share|improve this question
    
The Rate must be primary key of another table? –  manurajhada Jul 4 '12 at 7:36
    
Do you have a table where the rates are defined? –  Jodrell Jul 4 '12 at 7:38
    
Hint: If there is no RATE=4 in CODE_REVIEW table, how is mysql to know that it should return row (0, 4)? –  Tomek Szpakowicz Jul 4 '12 at 7:41
    
no there is no mapping table for rate.Can it be done anyway in code behind logic. –  akeeseth Jul 4 '12 at 7:50

6 Answers 6

up vote 1 down vote accepted

If Rate is not the primary key in another table then you need define your own list of rates so MySQL knows what the permutations of rate are:

SELECT  Rates.Rate,
        COUNT(Code_Review.Rate) AS CountOfRate
FROM    (   SELECT 1 AS Rate UNION ALL
            SELECT 2 AS Rate UNION ALL
            SELECT 3 AS Rate UNION ALL
            SELECT 4
        ) AS Rates
        LEFT JOIN Code_Review
            ON Code_Review.Rate = Rates.Rate
            AND CODE_REVIEWER_ID = 200
GROUP BY Rates.Rate
share|improve this answer
1  
This will not work. COUNT(*) simply counts the existence of a row. Since 4 exists as a row in the first subselect, the count will always be >= 1 even if the user never voted 4. What you must do is have it count on one of the columns in the LEFT JOIN'ed table since NULLs aren't factored into the COUNT() total. –  Zane Bien Jul 4 '12 at 8:46
    
@ZaneBien Good point. Edited my answer. –  GarethD Jul 4 '12 at 8:58

Try this query:

SELECT coalesce(c.cnt, 0), r.rate
  FROM (SELECT 1 AS rate UNION ALL SELECT 2
        UNION ALL SELECT 3 UNION ALL SELECT 4) AS r
  LEFT JOIN (SELECT COUNT(RATE),RATE
          FROM CODE_REVIEW WHERE CODE_REVIEWER_ID= 200
         GROUP BY RATE) AS c
    ON r.rate = c.rate;
  1. The first subquery creates a list of possible rates. You can avoid it if you have a table which defines all rates;
  2. Second subquery is yours;
  3. LEFT JOIN guarantees that all rates will be shown;
  4. coalesce() is needed to convert NULL into 0.
share|improve this answer
    
It works.Thanks a lot. –  akeeseth Jul 4 '12 at 9:14

Assuming that you do not have a separate table where the rates are defined.

SElECT * from (
  SELECT distinct(m.rate), countrate from code_review m 
  LEFT JOIN
  (SELECT COUNT(rate) as countrate,rate FROM code_review 
     WHERE code_reviewer_id=200 GROUP BY rate) t 
  ON m.rate=t.rate) a
share|improve this answer
2  
Just FYI: DISTINCT is not a function, it's applied to the entire row. Enclosing the column next to DISTINCT in brackets doesn't change that fact. –  Andriy M Jul 4 '12 at 7:52

You could do it somthing like this

SELECT
            rates.RATE
            , SUM(COUNT) COUNT
   FROM
           (
           SELECT 1 RATE, 0 COUNT UNION ALL
           SELECT 2 RATE, 0 COUNT UNION ALL
           SELECT 3 RATE, 0 COUNT UNION ALL
           SELECT 4 RATE, 0 COUNT
           ) Rates
       LEFT JOIN
           (
               SELECT
                         RATE
                       , COUNT(RATE) COUNT 
                   FROM
                       CODE_REVIEW 
                   WHERE
                       CODE_REVIEWER_ID= 200
                   GROUP BY RATE
           ) Ratings200
           ON Ratings200.RATE = Rates.RATE
share|improve this answer

If you can, you should push to try to get it in column format as it is simple as:

SELECT
    SUM(rate = 1) AS 1,
    SUM(rate = 2) AS 2,
    SUM(rate = 3) AS 3,
    SUM(rate = 4) AS 4
FROM
    code_review
WHERE
    code_reviewer_id = 200

But if you really need a row format, you could do:

SELECT
    a.rate,
    COUNT(b.rate) AS cnt
FROM
    (
        SELECT 1 AS rate UNION ALL
        SELECT 2 AS rate UNION ALL
        SELECT 3 AS rate UNION ALL
        SELECT 4 AS rate
    ) a
LEFT JOIN
    code_review b ON a.rate = b.rate AND code_reviewer_id = 200
GROUP BY
    a.rate
share|improve this answer
SELECT 
    Rate,
    totCount
FROM 
(
    Select
        Rate,
        count(Rate) as totCount
    from
        Code_Review 
    where 
        CODE_REVIEWER_ID  = 200  
    group by 
        Rate
    union
    select  4, 0  
    union
    select  3, 0  
    union
    select  2, 0  
    union
    select  1, 0 
) AS T 
group by  
    T.Rate
share|improve this answer

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