Re: Extend inner join to fetch not yet connected rows also

[Adrian Klaver]

On 9/22/19 6:30 AM, Arup Rakshit wrote:

On 22-Sep-2019, at 6:55 PM, Jan Kohnert <nospam001-li...@jan-kohnert.de> wrote:

Hi Arup,

Am Sonntag, 22. September 2019, 14:48:20 CEST schrieb Arup Rakshit:
Hi Jan,

On 22-Sep-2019, at 5:38 PM, Jan Kohnert <nospam001-li...@jan-kohnert.de>
wrote:
maybe something like

select

   c.id,
   c.name,
   case when cs.user_id = 8 then true else false end as has

from craftsmanships c
left join contractor_skills cs

   on cs.craftsmanship_id = c.craftmanship_id;

But this query fetched duplicate data:

yeah, that's possible, since I don't exactly know your data model. If only the
values above are required, you could simply use distinct:

When someone adds a craftsmanship to their skill set, the contractor_skills 
table holds that relationship. I don’t think distinct is the correct tool, as 
it will eliminate the correct data. users and craftsmanship has m:n 
relationship via the join table contractor_skills.

SELECT
        craftsmanships.id,
        craftsmanships.name,
        CASE WHEN contractor_skills.user_id IS NULL THEN
                FALSE
        ELSE
                TRUE
        END AS has
FROM
        "craftsmanships"
        LEFT JOIN "contractor_skills" ON "contractor_skills"."craftsmanship_id" = 
"craftsmanships"."id"
        LEFT JOIN "users" ON "users"."id" = "contractor_skills"."user_id"
WHERE (contractor_skills.user_id = 8
        OR contractor_skills.user_id IS NULL)
ORDER BY
        "craftsmanships"."id”;

Gives correct result. Not sure if still this query has bug in it.

What I see is that the rows below with 'has' = 'f' will not have a 
user_id(implied). So I am not sure how you plan to associate that data 
with a user?


id |                 name                  | has
----+---------------------------------------+-----
   1 | paint                                 | t
   2 | drywall                               | t
   3 | bathrooms                             | f
   4 | kitchens                              | f
   5 | flooring                              | f
   6 | basements                             | f
   7 | carpentry                             | f
   8 | decks (displayed as decks and patios) | f
   9 | windows (windows and doors)           | f
  10 | countertops                           | f
  11 | landscaping                           | f
  12 | electrical                            | f
  13 | plumbing                              | f
  14 | handyman                              | f
(14 rows)





select distinct
    c.id,
    c.name,
    case when cs.user_id = 8 then true else false end as has
from craftsmanships c
left join contractor_skills cs
    on cs.craftsmanship_id = c.id
order by
   c.id;

--
MfG Jan










--
Adrian Klaver
adrian.kla...@aklaver.com