2

SCHEMA

I have the following set-up in MySQL database:

CREATE TABLE items (
  id SERIAL,
  name VARCHAR(100),
  group_id INT,
  price DECIMAL(10,2),
  KEY items_group_id_idx (group_id),
  PRIMARY KEY (id)
);

INSERT INTO items VALUES 
(1, 'Item A', NULL, 10),
(2, 'Item B', NULL, 20),
(3, 'Item C', NULL, 30),
(4, 'Item D', 1,    40),
(5, 'Item E', 2,    50),
(6, 'Item F', 2,    60),
(7, 'Item G', 2,    70);

PROBLEM

I need to select:

  • All items with group_id that has NULL value, and
  • One item from each group identified by group_id having the lowest price.

EXPECTED RESULTS

+----+--------+----------+-------+
| id | name   | group_id | price |
+----+--------+----------+-------+
|  1 | Item A |     NULL | 10.00 | 
|  2 | Item B |     NULL | 20.00 | 
|  3 | Item C |     NULL | 30.00 | 
|  4 | Item D |        1 | 40.00 | 
|  5 | Item E |        2 | 50.00 | 
+----+--------+----------+-------+

POSSIBLE SOLUTION 1: Two queries with UNION ALL

SELECT id, name, group_id, price FROM items
WHERE group_id IS NULL
UNION ALL
SELECT id, name, MIN(price) FROM items
WHERE group_id IS NOT NULL
GROUP BY group_id;

/* EXPLAIN */
+----+--------------+------------+------+--------------------+--------------------+---------+-------+------+----------------------------------------------+
| id | select_type  | table      | type | possible_keys      | key                | key_len | ref   | rows | Extra                                        |
+----+--------------+------------+------+--------------------+--------------------+---------+-------+------+----------------------------------------------+
|  1 | PRIMARY      | items      | ref  | items_group_id_idx | items_group_id_idx | 5       | const |    3 | Using where                                  | 
|  2 | UNION        | items      | ALL  | items_group_id_idx | NULL               | NULL    | NULL  |    7 | Using where; Using temporary; Using filesort | 
| NULL | UNION RESULT | <union1,2> | ALL  | NULL               | NULL               | NULL    | NULL  | NULL |                                              | 
+----+--------------+------------+------+--------------------+--------------------+---------+-------+------+----------------------------------------------+

However it is undesirable to have two queries since there will be more complex condition in WHERE clause and I would need to sort the final results.

POSSIBLE SOLUTION 2: GROUP BY on expression (reference)

SELECT id, name, group_id, MIN(price) FROM items
GROUP BY CASE WHEN group_id IS NOT NULL THEN group_id ELSE RAND() END;

/* EXPLAIN */
+----+-------------+-------+------+---------------+------+---------+------+------+---------------------------------+
| id | select_type | table | type | possible_keys | key  | key_len | ref  | rows | Extra                           |
+----+-------------+-------+------+---------------+------+---------+------+------+---------------------------------+
|  1 | SIMPLE      | items | ALL  | NULL          | NULL | NULL    | NULL |    7 | Using temporary; Using filesort | 
+----+-------------+-------+------+---------------+------+---------+------+------+---------------------------------+

Solution 2 seems to be faster and simple to use but I'm wondering whether there is a better approach in terms of performance.

UPDATE:

According to documentation referenced by @axiac, this query is illegal in SQL92 and earlier and may work in MySQL only.

  • "One item from each group ..." -- this is not a job for GROUP BY. – axiac Mar 15 '16 at 12:18
  • @axiac, can you please explain? – Gyrocode.com Mar 15 '16 at 12:29
  • 1
    GROUP BY generates one row in the result set from each group. It does not select a row from the group. You can use MIN(price) to get the lowest price but there is no link between it and the row that contains the lowest price. There can be even two or more rows having that price. Using GROUP BY there is no way to get the entire row that has the lowest price. Read more about how MySQL handles GROUP BY. Check this answer for a solution to your problem. – axiac Mar 15 '16 at 12:34
  • Possible duplicate of Get records with max value for each group of grouped SQL results – axiac Mar 15 '16 at 12:35
  • Same method as your 2nd query but wiht lower chance of collisions SELECT id, SUBSTRING_INDEX(GROUP_CONCAT(name ORDER BY price),',',1), MIN(price) FROM items GROUP BY IFNULL(group_id,UUID()) ORDER BY id – Mihai Mar 15 '16 at 12:52
1

According to this answer by @axiac, better solution in terms of compatibility and performance is shown below.

It is also explained in SQL Antipatterns book, Chapter 15: Ambiguous Groups.

To improve performance, combined index is also added for (group_id, price, id).

SOLUTION

SELECT a.id, a.name, a.group_id, a.price
FROM items a
LEFT JOIN items b 
ON a.group_id = b.group_id 
AND (a.price > b.price OR (a.price = b.price and a.id > b.id))
WHERE b.price is NULL;

See explanation on how it works for more details.

By accident as a side-effect this query works in my case where I needed to include ALL records with group_id equals to NULL AND one item from each group with the lowest price.

RESULT

+----+--------+----------+-------+
| id | name   | group_id | price |
+----+--------+----------+-------+
|  1 | Item A |     NULL | 10.00 | 
|  2 | Item B |     NULL | 20.00 | 
|  3 | Item C |     NULL | 30.00 | 
|  4 | Item D |        1 | 40.00 | 
|  5 | Item E |        2 | 50.00 | 
+----+--------+----------+-------+

EXPLAIN

+----+-------------+-------+------+-------------------------------+--------------------+---------+----------------------------+------+--------------------------+
| id | select_type | table | type | possible_keys                 | key                | key_len | ref                        | rows | Extra                    |
+----+-------------+-------+------+-------------------------------+--------------------+---------+----------------------------+------+--------------------------+
|  1 | SIMPLE      | a     | ALL  | NULL                          | NULL               | NULL    | NULL                       |    7 |                          | 
|  1 | SIMPLE      | b     | ref  | PRIMARY,id,items_group_id_idx | items_group_id_idx | 5       | agi_development.a.group_id |    1 | Using where; Using index | 
+----+-------------+-------+------+-------------------------------+--------------------+---------+----------------------------+------+--------------------------+
  • And now add those "more complex conditions in WHERE" you were talking about :-) – dnoeth Mar 15 '16 at 15:07
  • @dnoeth, that should be irrelevant as those conditions would need to be applied to every solution proposed here. I wanted to avoid UNION ALL to avoid applying the same complex condition twice. – Gyrocode.com Mar 15 '16 at 15:51
  • Not in my solution :) You still must apply the same conditions on both items a and items b, e.g. try to filter for a minimum price > 50 – dnoeth Mar 15 '16 at 16:19
  • @dnoeth, your solution is smart, I like -id part. But I could use WHERE b.price is NULL AND a.price > 30 once and it works fine. – Gyrocode.com Mar 15 '16 at 18:57
  • Try WHERE b.price is NULL AND a.price > 50 – dnoeth Mar 15 '16 at 18:59
0

If group_id is always a positive value you can simplify it without GUID/RAND:

SELECT id, name, min(price) FROM items
GROUP BY COALESCE(group_id, -id); -- id is already unique

But both queries will not return a correct result if you change the order of Inserts, I'll add a Fiddle when it's working again...

Gordon's query should work as expected or you use an old trick to get another column for MIN: piggybacking.

You concat multiple columns as fixed length string, MIN column as #1 and apply the MIN on this string. In the next step you extract the columns again using matching SUBSTRING:

SELECT
   CASE WHEN grp > 0 THEN grp ELSE NULL END AS group_id
   ,CAST(SUBSTRING(x FROM 1 FOR 13) AS DECIMAL(10,2)) AS price
   ,SUBSTRING(x FROM 24) AS NAME
FROM
 (
   SELECT COALESCE(group_id, -id) AS grp
      -- results in a string like this
      -- '        50.00         5Item E'
      ,MIN(LPAD(CAST(price AS VARCHAR(13)),13) 
           || LPAD(CAST(id AS VARCHAR(10)),10)
           || NAME) AS x
   FROM items
   GROUP BY grp
 ) AS dt;
  • See MySQL Handling of GROUP BY and this comment. Although your first query works and somewhat simpler than my attempt #2, it's not 100% correct and could only work in MySQL. Your second query is too complex for such task. – Gyrocode.com Mar 15 '16 at 14:28
  • @Gyrocode.com: I wrote "But both queries will not return a correct result" :) Regarding "complexity", it's just a single table access vs. a self-join based on non-equality. Btw, in almost every other DBMS this would be a simple task for ROW_NUMBER. – dnoeth Mar 15 '16 at 14:39
0

You can do this using where conditions:

SQLFiddle Demo

select t.*
from t
where t.group_id is null or
      t.price = (select min(t2.price)
                 from t t2
                 where t2.group_id = t.group_id
                );

Note that this returns all rows with the minimum price, if there is more than one for a given group.

EDIT:

I believe the following fixes the problem of multiple rows:

select t.*
from t
where t.group_id is null or
      t.id = (select t2.id
              from t t2
              where t2.group_id = t.group_id
              order by t2.price asc
              limit 1
             );

Unfortunately, SQL Fiddle is not working for me right now, so I cannot test it.

  • Thanks for your suggestion but your query returns two rows when group_id and price are the same, see sqlfiddle.com/#!9/2c179/1 – Gyrocode.com Mar 15 '16 at 12:25
  • @Gyrocode.com . . . That is exactly what the "Note" says. – Gordon Linoff Mar 15 '16 at 14:11
  • @dnoeth . . . Thank you. – Gordon Linoff Mar 15 '16 at 14:22
  • Thank you very much for your answer, your second query works fine now with duplicate prices within the same group. However when outputs from EXPLAIN are compared, seems that the query in this answer is better in terms of performance. – Gyrocode.com Mar 15 '16 at 14:43
  • @GordonLinoff, I don't have the real data yet but strangely the timings on your query is slightly better and SHOW STATUS LIKE 'last_query_cost' returns 0 where my query returns 21. Not sure why. – Gyrocode.com Mar 15 '16 at 19:14

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