Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a blog. On my index page, I pull in all blog posts. For each blog post, I count the number of comments on that post. This leads to an N+1 problem. My queries look as follows:

SELECT "blog_posts".* FROM "blog_posts" WHERE ("blog_posts"."published" = 't') ORDER BY published_at DESC
SELECT "users".* FROM "users" WHERE ("users"."id" IN (1, 2, 3)) 
SELECT COUNT(*) FROM "blog_comments" WHERE ("blog_comments".blog_post_id = 10)
SELECT COUNT(*) FROM "blog_comments" WHERE ("blog_comments".blog_post_id = 9)
SELECT COUNT(*) FROM "blog_comments" WHERE ("blog_comments".blog_post_id = 8)
SELECT COUNT(*) FROM "blog_comments" WHERE ("blog_comments".blog_post_id = 2)
SELECT COUNT(*) FROM "blog_comments" WHERE ("blog_comments".blog_post_id = 7) 

Is there a way in Rails to include the COUNT in the same way I include the users (SQL line 2)?

share|improve this question
add comment

4 Answers

up vote 18 down vote accepted

You can use counter cache: http://guides.rubyonrails.org/association_basics.html#counter_cache

"With this declaration, Rails will keep the cache value up to date, and then return that value in response to the size method."

class BlogPost < ActiveRecord::Base
  has_many :blog_comments
end

class BlogComment < ActiveRecord::Base
  belongs_to :blog_post, :counter_cache => true
end

Blog post would have a column named blog_comments_count.

share|improve this answer
    
+1 That's neat! –  Nikita Rybak Jan 16 '11 at 20:05
    
This is exactly what I was looking for! Thanks! –  Mike Jan 16 '11 at 20:15
add comment

In general, you want a SQL query like:

  SELECT COUNT(*), blog_post_id
    FROM blog_comments
GROUP BY blog_post_id;

You can use this to create a hash from blog_post_id to the count of comments.

share|improve this answer
add comment

You can also see something like this:

BlogComment.group('blog_post_id').count

In purely Rails Way. :)

share|improve this answer
add comment

This is an ActiveRecord query that searches my "site_access_log" table, consisting of web accesses to a site.

It selects the 'remote_addr' field from the first 15 records, along with the count for that IP, sorted in descending order by the count followed by ascending order for IP numbers that have the same count_number.

I'm using Postgres, which understands IPv4 numbers, so I cast the field to an inet type to allow correct sorting by value, rather than by ASCII value. If your database doesn't support inet values, you can always convert from IP to inet using Ruby's Socket or IPSocket library, then sort the retrieved results.

@remote_addr_results = SiteAccessLog.all(
  :select     => 'remote_addr, count(remote_addr) as remote_addr_count',
  :group      => :remote_addr,
  :order      => 'remote_addr_count desc, cast(remote_addr as inet)',
  :limit      => 15
)
puts @remote_addr_results.map{ |r| r.remote_addr_count << ' : ' << r.remote_addr }

>> 985 : 68.228.61.183
>> 572 : 205.203.134.197
>> 500 : 68.32.220.153
>> 460 : 72.200.64.128
>> 281 : 24.121.196.194
>> 262 : 99.91.9.155
>> 241 : 68.99.237.178
>> 213 : 68.99.119.137
>> 208 : 70.167.157.162
>> 204 : 201.165.6.2
>> 164 : 72.201.233.147
>> 155 : 75.245.177.106
>> 150 : 97.123.246.154
>> 149 : 201.165.190.98
>> 145 : 74.37.165.220

The generated SQL looks like:

SELECT remote_addr, count(remote_addr) as remote_addr_count                                                                       
FROM "site_access_logs"                                                                                                           
GROUP BY remote_addr                                                                                                              
ORDER BY remote_addr_count desc, cast(remote_addr as inet)                                                                        
LIMIT 15 
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.