16

I have a json field that stores a list of ids (not best practice here I know), I want to know if it's possible to use do operations on this JSON field and use them in the sql.

Below is a fictitious example of what I'm trying to achieve, is something like this doable?

CREATE TABLE user (
    user_id INT,
    user_name VARCHAR(50),
    user_groups JSON
);

CREATE TABLE user_group (
    user_group_id INT,
    group_name VARCHAR(50)
);

INSERT INTO user_group (user_group_id, group_name) VALUES (1, 'Group A');
INSERT INTO user_group (user_group_id, group_name) VALUES (2, 'Group B');
INSERT INTO user_group (user_group_id, group_name) VALUES (3, 'Group C');

INSERT INTO user (user_id, user_name, user_groups) VALUES (101, 'John', '[1,3]');

With the above data I would like to fashion a query that gives me the results like this:

user_id | user_name | user_group_id | group_name|
-------------------------------------------------
101     | John      | 1             | Group A
101     | John      | 3             | Group C

Some psuedo style SQL I'm thinking is below, though I still have no clue if this is possible, or what JSON functions mysql offers I would use to achieve this

 SELECT 
       u.user_id, 
       u.user_name, 
       g.user_group_id
       g.group_name
   FROM users u
   LEFT JOIN user_group g on g.user_group_id in some_json_function?(u.user_groups)

Let me know if the question isn't clear.

2
22

With the help of Feras's comment and some fiddling:

  SELECT 
       u.user_id, 
       u.user_name, 
       g.user_group_id,
       g.group_name
   FROM user u
   LEFT JOIN user_group g on JSON_CONTAINS(u.user_groups, CAST(g.user_group_id as JSON), '$')

This appears to work, let me know if there's a better way.

5
  • 3
    I needed to do the same thing but join on a specific value in a JSON field and the following worked for me LEFT JOIN table b on JSON_UNQUOTE(JSON_EXTRACT(a.json_field, "$.json_value")) = b.mysql_value – b3n Dec 1 '16 at 12:57
  • 3
    How optimized is this? – Murilo Apr 26 '17 at 13:57
  • Missed comma after g.user_group_id and original table name is user not userS – Alex G Mar 26 '18 at 2:03
  • This doesn't work when user_group_id is type VARCHAR – Alex G Mar 26 '18 at 2:39
  • 1
    @AlexG To get this working with a string key column user_group_id, you need to add in double quotes around the value. JSON_CONTAINS(u.user_groups, CAST(CONCAT('"',g.user_group_id,'"') as JSON), '$') – ShaunUK Apr 15 '19 at 14:31
3

Funny, I got to the opposite solution compared to Kyle's.

I wrote my query like this:

SELECT 
       u.user_id, 
       u.user_name, 
       g.user_group_id,
       g.group_name
   FROM user u
   LEFT JOIN user_group g on JSON_UNQUOTE(JSON_EXTRACT(u.user_groups, '$')) = g.user_group_id;

It also works, and this solution doesn't need any transforming on the right side of the expression, this could provide a benefit in query optimizing in certain cases.

0

For arrays like ["1", "2", "3"] that values are in string type, JSON_SEARCH function is the way for your question:

SELECT 
   u.user_id, 
   u.user_name, 
   g.user_group_id
   g.group_name
FROM users u
LEFT JOIN user_group g ON (JSON_SEARCH(u.user_groups, 'one', g.user_group_id))

JSON_CONTAINS function does not return true for integers as candidate parameter:

SELECT JSON_CONTAINS(CAST('["1", "2", "3"]' AS JSON), CAST(1 AS JSON), '$')

returns 0 (false). You need to change it to this:

SELECT JSON_CONTAINS(CAST('["1", "2", "3"]' AS JSON), CAST(CONCAT('"', 1, '"') AS JSON), '$')

But JSON_SEARCH can find the result:

SELECT JSON_SEARCH(CAST('["1", "2", "3"]' AS JSON), 'one', 1)

returns "$[0]" that means "true".

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