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I have a problem counting a table joined several times.

The question table :

+----+----------+
| id | question |
+----+----------+
|  1 | Foo?     |
+----+----------+

The answer one :

+----+-------------+--------+
| id | question_id | choice |
+----+-------------+--------+
|  1 |           1 |      1 |
|  2 |           1 |      1 |
|  3 |           1 |      1 |
|  4 |           1 |      2 |
|  5 |           1 |      3 |
|  6 |           1 |      3 |
+----+-------------+--------+

The expected result :

+----------+-------+-------+-------+
| question | num_1 | num_2 | num_3 |
+----------+-------+-------+-------+
| Foo?     |     3 |     1 |     2 |
+----------+-------+-------+-------+

The (failing) query and its result :

SELECT
    q.question AS question,
    COUNT(a1.id) AS num_1,
    COUNT(a2.id) AS num_2,
    COUNT(a3.id) AS num_3
FROM
    question q
    LEFT JOIN answer a1 ON a1.question_id = q.id AND a1.choice = 1
    LEFT JOIN answer a2 ON a2.question_id = q.id AND a2.choice = 2
    LEFT JOIN answer a3 ON a3.question_id = q.id AND a3.choice = 3
GROUP BY
        q.id

+----------+-------+-------+-------+
| question | num_1 | num_2 | num_3 |
+----------+-------+-------+-------+
| Foo?     |     6 |     6 |     6 |
+----------+-------+-------+-------+

I don't understand why I get this result. Can you help me?

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2 Answers

up vote 3 down vote accepted

Because choice = 1 gives 3 rows, choice = 2 gives 1 row, choice = 3 gives 2 rows and 1 * 2 * 3 = 6. if you remove the group by and aggregates and look at the results it should be clear. You can use

SELECT
    q.question AS question,
    COUNT(CASE WHEN a.choice = 1 THEN 1 END) AS num_1,
    COUNT(CASE WHEN a.choice = 2 THEN 1 END) AS num_2,
    COUNT(CASE WHEN a.choice = 3 THEN 1 END) AS num_3
FROM
    question q
    LEFT JOIN answer a ON a.question_id = q.id AND a.choice IN (1,2,3)
GROUP BY
        q.id,
        q.question
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+1. Wouldn't you need to add ", q.question" to the end of your GROUP BY clause? Your SELECT has q.question which would give an "q.question is INVALID in SELECT list" error. –  Arun Sep 28 '11 at 21:40
    
@Arun - I assume the OP is on MySQL where this isn't a requirement from the fact the query in the question works but I agree it should be added in (even though it is clearly functionally dependant on q.id and won't affect the results) –  Martin Smith Sep 28 '11 at 21:44
    
thank you very much for throwing more light into this! The link is definitely helpful. –  Arun Sep 28 '11 at 21:54
    
Note that a.choice BETWEEN 1 AND 3 is ever so slightly faster, and that adding the extra group by clause slows things down very slightly on MySQL for no benefit. And maybe (you'll know this better than I) sum(a.choice = 2) as num_2 will be slightly faster than the count(case.... –  Johan Sep 28 '11 at 21:55
    
@Johan using sum(a.choice = 2) doesn't work, it returns the same results as the one returned in my initial query. –  Herzult Sep 29 '11 at 5:15
show 1 more comment

If you run your query without the counts and grouping, you'll see you get results like this:

+------+------+------+------+
| q    | num1 | num2 | num3 |
+------+------+------+------+
| foo  |    1 |    4 |    5 |
| foo  |    1 |    4 |    6 |
| foo  |    2 |    4 |    5 |
| foo  |    2 |    4 |    6 |
| foo  |    3 |    4 |    5 |
| foo  |    3 |    4 |    6 |
+------+------+------+------+

As expected, 6 rows, so each aliased field will give you a count of 6. Martin Smith's got the right answer above.

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