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I have three tables with people, the attributes and potential value for the attributes. I can't figure out a query to display all the people, each persons attributes and their missing/null attributes.

Here's an example table...

attributes
+---------------------+
| attribute_name (col)|
+---------------------+
| name                |
+---------------------+
| age                 |
+---------------------+
| gender              |
+---------------------+
| email               |
+---------------------+

people
+-----------+----------+
| person_id | value_id |
+-----------+----------+
| 2         | 7        |
+-----------+----------+
| 2         | 9        |
+-----------+----------+
| 3         | 8        |
+-----------+----------+

values
+---------------+----------------+-------+
| value_id (pk) | attribute_name | value |
+---------------+----------------+-------+
| 7             | age            | 35    |
+---------------+----------------+-------+
| 8             | age            | 28    |
+---------------+----------------+-------+
| 9             | gender         | male  |
+---------------+----------------+-------+


How do I join the three tables to display something like this?

+-----------+----------+-----------------+--------+
| person_id | value_id | attribute_name  | value  |
+-----------+----------+-----------------+--------+
| 2         | 7        | age             | 35     |
+-----------+----------+-----------------+--------+
| 2         | 9        | gender          | male   |
+-----------+----------+-----------------+--------+
| 2         | NULL     | name            | NULL   |
+-----------+----------+-----------------+--------+
| 2         | NULL     | email           | NULL   |
+-----------+----------+-----------------+--------+
| 3         | 8        | age             | 28     |
+-----------+----------+-----------------+--------+
| 3         | NULL     | gender          | NULL   |
+-----------+----------+-----------------+--------+
| 3         | NULL     | name            | NULL   |
+-----------+----------+-----------------+--------+
| 3         | NULL     | email           | NULL   |
+-----------+----------+-----------------+--------+
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4 Answers 4

up vote 3 down vote accepted
SELECT  a.person_ID, 
        MAX(c.value_ID) value_ID, 
        b.attribute_name ,  
        MAX(c.value) Value
FROM    people a
        CROSS JOIN attributes b       
        LEFT JOIN `values` c
            ON  a.value_ID = c.value_ID AND
                b.attribute_name = c.attribute_name
GROUP BY a.person_ID, b.attribute_name
share|improve this answer
    
thank you for taking the time to set everything up JW. This was exactly what I was going for. –  dai Feb 3 '13 at 21:47

I would do a join of the three tables with a WHERE Statement (SQL Basics).

Did you do a search before posting?

For null there is this post MySQL Show Null Results in Query - With INNER JOIN or this Mysql join four table and show NULL value

;-)

share|improve this answer
select
    person_id,
    attributes.attribute_name as attribute_name,
    values.value as value
from people
cross join attributes
left join values on people.value_id=values.value_id
                and attributes.attribute_name=values.attribute_name
share|improve this answer
    
The problem is displaying the missing attributes each person may have. –  dai Feb 3 '13 at 17:28
    
This was the most concise but I was getting a few duplicates. Thank you for taking the time to contribute Saddam –  dai Feb 3 '13 at 21:49

Using your expected output as a starting point, you essentially want the cross product of attributes and distinct people from people to be left joined to the result of a(n inner) join of people to values. And this is how you could script that in SQL (particularly in MySQL):

SELECT
  p.person_id,
  v.value_id,
  a.attribute_name,
  v.value
FROM 
  (SELECT DISTINCT person_id FROM people) p
  CROSS JOIN attributes a
  LEFT JOIN
    people d
    INNER JOIN `values` v ON d.value_id = v.value_id
  ON p.person_id = d.person_id
  AND a.attribute_name = v.attribute_name
;
share|improve this answer
    
Thanks Andriy for your approach. –  dai Feb 3 '13 at 21:48

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