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Suppose I have a table surveys like this:

customer | last_survey_result | date (int)

CREATE TABLE `surveys` (
`id`  int(11) NOT NULL AUTO_INCREMENT ,
`customer`  int(11) NULL DEFAULT NULL ,
`survey_result`  tinyint(4) NOT NULL DEFAULT '-1' ,
`date`  smallint(2) NOT NULL ,
PRIMARY KEY (`id`),
INDEX `optimize` USING BTREE (`customer`, `survey_result`, `date`)
)
ENGINE=InnoDB
ROW_FORMAT=COMPACT
;

Every customer can make several reviews. If he does not complete it, last_survey_result=-1.

I want to know what is the last rating of every customer, as well as it is not -1. If he has never answered any, the result is the default -1.

For example if we have this

customer | survey_result | date (int)  
    a    |    -1         |     1
    a    |     7         |     2
    b    |    -1         |     1
    b    |    -1         |     2
    c    |    10         |     1
    c    |     8         |     2
    d    |    -1         |     1
    d    |     7         |     2

The result has to be:

customer | last_survey_result
    a    |       7
    b    |      -1
    c    |       8
    d    |       7

Here is what I tried. In fact it works for this data:

SELECT a.customer, a.survey_result last_survey_result
  FROM surveys a
  LEFT OUTER JOIN surveys b
  ON a.customer=b.customer AND (a.date < b.date AND b.survey_result>=0)
  WHERE b.customer IS NULL 
GROUP BY customer;

SQL Fiddle

The problem is in the example I am getting the results well, but in my database, this will happen:

customer | survey_result | date (int)  
    a    |    -1         |     1
    a    |     5         |     2
    a    |    -1         |     3
    b    |    -1         |     1
    b    |     8         |     2
    b    |    -1         |     3

customer | last_survey_result
    a    |       -1
    b    |        8

I think it is weird and do not have a clue what can be happening. Can it be something related to indexes? I am completely lost.

share|improve this question
    
This is due to MySQL's sloppy implementation of the GROUP BY operator. Your statement is illegal in all other DBMS. See here for details: rpbouman.blogspot.de/2007/05/debunking-group-by-myths.html –  a_horse_with_no_name Feb 22 '13 at 23:23
    
Ufff, I thought GROUP BY would do a good job here. So what would be the best way to solve it, @a_horse_with_no_name? –  fedorqui Feb 22 '13 at 23:29
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4 Answers

up vote 2 down vote accepted

Modifying your code to separate the two case (at least one non-negative result - all negative results):

SELECT a.customer, a.survey_result AS last_survey_result
  FROM surveys a
  LEFT OUTER JOIN surveys b
  ON a.customer = b.customer AND (a.date < b.date AND b.survey_result >= 0)
  WHERE a.survey_result >= 0 
    AND b.customer IS NULL 

UNION ALL

SELECT customer, -1
  FROM surveys
  GROUP BY customer
  HAVING MAX(survey_result) < 0 ;

Tested at SQL-Fiddle


And here are two more ways to do it, without UNION. A triple JOIN:

-- solution 2 --
SELECT s.customer, 
       COALESCE(a.survey_result, -1) AS last_survey_result
  FROM 
      ( SELECT DISTINCT customer
        FROM surveys
      ) AS s
    LEFT JOIN
        surveys AS a
      JOIN 
        ( SELECT customer, MAX(date) AS date
          FROM surveys 
          WHERE survey_result >= 0 
          GROUP BY customer
        ) AS b
      ON  a.customer = b.customer 
      AND a.date = b.date 
    ON  s.customer = a.customer ;

and a JOIN with a correlated subquery at the ON clause:

-- solution 3 --
SELECT s.customer, 
       COALESCE(a.survey_result, -1) AS last_survey_result
  FROM 
      ( SELECT DISTINCT customer
        FROM surveys
      ) AS s
    LEFT JOIN
      surveys AS a
    ON  a.customer = s.customer 
    AND a.date =
        ( SELECT MAX(m.date)
          FROM surveys AS m
          WHERE m.customer = s.customer 
            AND m.survey_result >= 0 
        ) ;
share|improve this answer
    
I like it! In fact, it is funny because I was doing the same when I got your answer. It confirmed me I was on the good way : ) –  fedorqui Feb 23 '13 at 0:49
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The GROUP BY only makes sense when an aggregate function is present in the SELECT or HAVING clause.

Most RDBMSs will error when you specify a GROUP BY without an aggregate function, but MySQL is different. In MySQL, the clause functions, but it is is non-deterministic when no aggregate function exists. Typically it returns the first value in the table that it finds, but since this is not documented behavior in either the SQL standard or the MySQL documentation this isn't guaranteed, making it highly dangerous to assume that is the case.

This will do what you want:

SELECT DISTINCT
  a.customer,
  COALESCE(b.survey_result, -1) "last_survey_result"
FROM surveys as a
LEFT OUTER JOIN (
    SELECT customer,
      survey_result,
      date
    FROM surveys
    WHERE survey_result <> -1
    GROUP BY customer
    HAVING date = max(date)) as b
  ON a.customer = b.customer

Note that your SQL Fiddle returned unexpected results because you transposed the date and survey_results fields for customer 'a'.

Note also that this will not function in most other RDBMSs because the subquery is selecting customer and survey_result but only includes one of those two fields in the GROUP BY clause. Were I not pressed for time I would rewrite it to be a more proper query likely by adding a third self-join.

share|improve this answer
    
Thanks! But I guess something must be incorrect, as I get c -> -1, while should be 8. –  fedorqui Feb 22 '13 at 23:50
    
Wow, the subquery totally isn't behaving like I'm expecting it to. It's completely deleting customer 'c', but I don't see why. I'll try to fix it when I get back if nobody else has. –  Bacon Bits Feb 22 '13 at 23:55
    
When I run this version I get -1 if there are 3 positive survey results for a customer –  Dan Metheus Feb 23 '13 at 0:51
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This turned out to be tougher than it looked, at least for me...

SELECT DISTINCT a.customer, COALESCE((
  SELECT     b.survey_result
  FROM surveys b
  WHERE a.customer=b.customer AND b.survey_result <> -1
  ORDER BY date DESC LIMIT 1), -1) as last_result
FROM surveys a

Here's an example via SQL Fiddle

CREATE TABLE surveys
    (`customer` varchar(1), `survey_result` int, `date` int)
;

INSERT INTO surveys
    (`customer`, `survey_result`, `date`)
VALUES
    ('a', -1, 1),
    ('a', 5, 2),
    ('a', -1, 3),
    ('b', -1, 1),
    ('b', 8, 2),
    ('b', -1, 3),
    ('c', -1, 1),
    ('c', -1, 2),
    ('c', -1, 3),
    ('d', 9, 1),
    ('d', 6, 2),
    ('d', 4, 3)
;

Result

CUSTOMER    LAST_RESULT
a           5
b           8
c           -1
d           4
share|improve this answer
    
Mmmm, @a_horse_with_no_name was commenting that GROUP BY is not used properly the way we are doing. –  fedorqui Feb 22 '13 at 23:35
    
You can make it correct by replacing b.survey_result with max(b.survey_result) –  Dan Metheus Feb 22 '13 at 23:37
    
Well, no, because I do not need the MAX but the last one that was not -1. –  fedorqui Feb 22 '13 at 23:38
    
Ok try that version without group by at all. Click on the SQL Fiddle link to see it in action. –  Dan Metheus Feb 22 '13 at 23:42
    
Hey, thanks @Dan Metheus, the pity is I get an error while trying to use it in SQL Fiddle. –  fedorqui Feb 23 '13 at 0:00
show 2 more comments

If you don't mind getting the result back as a character field, the following will fetch the most recent result:

SELECT s.customer,
       substring_index(group_concat(s.survey_result order by date desc), ',', 1) last_survey_result
  FROM surveys s
where s.survey_result >= 0
GROUP BY customer;

You can, of course, cast is back to a tinyint.

To get all customers, but only positive survey results, move the condition to a case:

SELECT s.customer,
       substring_index(group_concat((cast when s.survey_result >= 0 then s.survey_result end)
                                    order by date desc), ',', 1) last_survey_result
FROM surveys s
GROUP BY customer;

group_concat() ignores NULL values.

share|improve this answer
    
Thanks! It looks interesting, although I get ;[Err] 1582 - Incorrect parameter count in the call to native function 'substring_index' –  fedorqui Feb 22 '13 at 23:54
    
@fedorqui . . . Sorry, I left out the delimiter. –  Gordon Linoff Feb 22 '13 at 23:56
    
Good, now it works. However, customer b does not appear, as it is the one having always survey_result=-1. –  fedorqui Feb 22 '13 at 23:58
    
@fedorqui . . . If it works, you should upvote/accept the answer. It is pathetic that someone downvotes correct answers. –  Gordon Linoff Feb 23 '13 at 0:22
    
It is pathetic, sure, but it was not me. Thanks for editing with general view! –  fedorqui Feb 23 '13 at 0:25
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