54

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

44

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
| improve this answer | |
  • 5
    Well I really don't want to add extra column for this. – randika Jun 8 '13 at 9:38
  • 1
    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 '13 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 '13 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 '14 at 21:30
  • 2
    looks messy to me :( – Muhammad Umer Oct 29 '15 at 3:52
98

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
| improve this answer | |
  • 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 '17 at 14:38
  • 1
    I'm still using Rails 4. Can you show me the raw SQL for this? – ironsand Jul 18 '17 at 21:44
26

Something like:

Company.joins(:jobs).group("jobs.company_id").order("count(jobs.company_id) desc")
| improve this answer | |
22

@user24359 the correct one should be:

Company.joins(:jobs).group("companies.id").order("count(companies.id) DESC")
| improve this answer | |
2

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

| improve this answer | |
-3
Company.where("condition here...")
       .left_joins(:jobs)
       .group(:id)
       .order('COUNT(jobs.id) DESC')
       .limit(10)
| improve this answer | |
  • 7
    This is a clear duplicate of my answer, you just added an extra where statement. – Sheharyar Dec 13 '18 at 23:16

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