1

I have two tables:

Owners

+----+------+------------+
| id | name | birth_year |
+----+------+------------+
|  1 | John |       1970 |
|  2 | Jane |       1980 |
|  3 | Jack |       1990 |
|  4 | Josh |       2000 |
+----+------+------------+

Buylog

+----+----------+------------+
| id | owner_id |    date    |
+----+----------+------------+
|  1 |        1 | 01/01/2016 |
|  2 |        2 | 01/02/2016 |
|  3 |        2 | 01/03/2016 |
|  4 |        1 | 01/04/2016 |
+----+----------+------------+

I need to get all the info from Owners table plus the count of buys per owner:

+-----------+-------------+-------------------+--------------+
| owners.id | owners.name | owners.birth_year | buylog.Count |
+-----------+-------------+-------------------+--------------+
|         1 | John        |              1970 |            2 |
|         2 | Jane        |              1980 |            2 |
|         3 | Jack        |              1990 |            0 |
|         4 | Josh        |              2000 |            0 |
+-----------+-------------+-------------------+--------------+

I tried the below query, but that returns with error:

Select
  o.id,
  o.name,
  o.birth_year,
  Count(b.id) as Count
From
  owners o
Left Outer Join
  buylog b
On
  b.owner_id = o.id
1
  • 3
    good work on explaining your data and query well. Bad work on not posting your error
    – Nick.Mc
    Commented Jan 13, 2016 at 13:26

3 Answers 3

5

The error message should be pretty clear, you are missing a group by clause:

  Select
  o.id,
  o.name,
  o.birth_year,
  Count(b.id) as Count
From
  owners o
Left Outer Join
  buylog b
On
  b.owner_id = o.id
Group By o.id,
  o.name,
  o.birth_year
4
  • So I should include all fields in the GROUP BY clause except the count?
    – w8lessly
    Commented Jan 13, 2016 at 13:26
  • Yes, when you are using aggregate functions all attributes selected which are not in an aggregate function should be in the group by Commented Jan 13, 2016 at 13:27
  • The general GROUP BY rule says: If a GROUP BY clause is specified, each column reference in the SELECT list must either identify a grouping column or be the argument of a set function.
    – jarlh
    Commented Jan 13, 2016 at 13:35
  • If this answer provided you with a solution (which I suspect it does) you can accept it as answer Commented Jan 13, 2016 at 13:39
1

Query by HoneyBadger will do just fine, however this might perform better:

SELECT o.id
    , o.name
    , o.birth_year
    , COALESCE(b.Count, 0) AS Count
FROM owners o
LEFT JOIN (
    SELECT owner_id, COUNT(*) AS Count
    FROM buylog
    GROUP BY owner_id
    ) AS b
    ON b.owner_id = o.id;

It should bring exactly the same result.

0
SELECT o.*, 
CASE 
    WHEN temp.Buylog_count IS NULL THEN 0
    ELSE temp.Buylog_count
END
FROM Owners o 
LEFT JOIN
(
    SELECT b.owner_id AS oid, COUNT(*) AS Buylog_count
    FROM Buylog b   
    GROUP BY b.owner_id 
)temp ON temp.oid = o.id 
4
  • If there are no items in buylog table for that owner_id , Buylog_count will be a NULL, not 0. It doesn't meet A/C. Commented Jan 13, 2016 at 13:39
  • 1
    That, and for the rest it's more or less a copy of @EvaldasBuinauskas's answer Commented Jan 13, 2016 at 13:40
  • And as far as copying goes, it's suspicious how much your answer resembles mine here: stackoverflow.com/questions/34762276/… Commented Jan 13, 2016 at 13:44
  • As I am new user of stackoveflow and not much friendly with the use of it. I am not getting recent actions before posting my answer. Need to refresh page before posting. Extremely sorry for the mistakes. Will take care of it in future.
    – D Mayuri
    Commented Jan 13, 2016 at 13:49

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