68

Is there anyway I can order the results (ASC/DESC) by number of items returned from the child model (Jobs)?

@featured_companies = Company.joins(:jobs).group(Job.arel_table[:company_id]).order(Job.arel_table[:company_id].count).limit(10)

For example: I need to print the Companies with highest jobs on top

7 Answers 7

132

Rails 5+

Support for left outer joins was introduced in Rails 5 so you can use an outer join instead of using counter_cache to do this. This way you'll still keep the records that have 0 relationships:

Company
  .left_joins(:jobs)
  .group(:id)
  .order('COUNT(jobs.id) DESC')
  .limit(10)

The SQL equivalent of the query is this (got by calling .to_sql on it):

SELECT "companies".* FROM "companies" LEFT OUTER JOIN "jobs" ON "jobs"."company_id" = "companies"."id" GROUP BY "company"."id" ORDER BY COUNT(jobs.id) DESC
3
  • 2
    this should be the really works answer, if you remove .limit(10), you can get the companies have 0 jobs while other answers you will miss the 0 jobs companies.
    – Spark.Bao
    May 2, 2017 at 14:38
  • 1
    I'm still using Rails 4. Can you show me the raw SQL for this?
    – ironsand
    Jul 18, 2017 at 21:44
  • 1
    This does not seem to work for associations. For example if a SalesPerson has many Companies as customers through deals. Then sales_person.companies.left_joins(:jobs)... would result in the database error "SELECT DISTINCT, ORDER BY expressions must appear in select list". Sep 20, 2021 at 21:20
53

If you expect to use this query frequently, I suggest you to use built-in counter_cache

# Job Model
class Job < ActiveRecord::Base
  belongs_to :company, counter_cache: true
  # ...
end

# add a migration
add_column :company, :jobs_count, :integer, default: 0

# Company model
class Company < ActiveRecord::Base
  scope :featured, order('jobs_count DESC')
  # ...
end

and then use it like

@featured_company = Company.featured
5
  • 6
    Well I really don't want to add extra column for this.
    – randika
    Jun 8, 2013 at 9:38
  • 2
    It depends. There is no perfect solution. If performance and clean code have priority, adding a column doesn't hurt at.
    – Billy Chan
    Jun 8, 2013 at 10:08
  • 5
    But then you have to update companies.jobs_count table for each insertion on the jobs table. That's 2 writes on 2 different tables. Where's the gain?
    – Yaw Boakye
    Jul 20, 2013 at 19:44
  • 4
    Very helpful, +1. AFAICS, there is only thing missing: if the DB has data, you'll start with a count=0 unless you do this: Company.find_each { |company| Company.reset_counters(company.id, :jobs) }.
    – tokland
    Nov 20, 2014 at 21:30
  • 1
    This is by far the best answer, also see ryan.mcgeary.org/2016/02/05/… for information on writing a migration that allow for extremely quick updating of the counter_cache via SQL. May 5, 2020 at 22:45
28

Something like:

Company.joins(:jobs).group("jobs.company_id").order("count(jobs.company_id) desc")
2
28

@user24359 the correct one should be:

Company.joins(:jobs).group("companies.id").order("count(companies.id) DESC")
1
  • Not returning Companies with 0 jobs
    – fguillen
    May 13 at 19:42
6

Added to Tan's answer. To include 0 association

Company.joins("left join jobs on jobs.company_id = companies.id").group("companies.id").order("count(companies.id) DESC")

by default, joins uses inner join. I tried to use left join to include 0 association

0

Adding to the answers, the direct raw SQL was removed from rails 6, so you need to wrap up the SQL inside Arel (if the raw SQL is secure meaning by secure avoiding the use of user entry and in this way avoid the SQL injection).

Arel.sql("count(companies.id) DESC")

-5
Company.where("condition here...")
       .left_joins(:jobs)
       .group(:id)
       .order('COUNT(jobs.id) DESC')
       .limit(10)
1
  • 7
    This is a clear duplicate of my answer, you just added an extra where statement.
    – Sheharyar
    Dec 13, 2018 at 23:16

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