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I need to return exactly ten records for use in a view. I have a highly restrictive query I'd like to use, but I want a less restrictive query in place to fill in the results in case the first query doesn't yield ten results.

Just playing around for a few minutes, and this is what I came up with, but it doesn't work. I think it doesn't work because merge is meant for combining queries on different models, but I could be wrong.

class Article < ActiveRecord::Base
...
  def self.listed_articles
    Article.published.order('created_at DESC').limit(25).where('listed = ?', true)
  end

  def self.rescue_articles
    Article.published.order('created_at DESC').where('listed != ?', true).limit(10)
  end

  def self.current
    Article.rescue_articles.merge(Article.listed_articles).limit(10)
  end
...
end

Looking in console, this forces the restrictions in listed_articles on the query in rescue_articles, showing something like:

Article Load (0.2ms)  SELECT `articles`.* FROM `articles` WHERE (published = 1) AND (listed = 1) AND (listed != 1) ORDER BY created_at DESC LIMIT 4
Article Load (0.2ms)  SELECT `articles`.* FROM `articles` WHERE (published = 1) AND (listed = 1) AND (listed != 1) ORDER BY created_at DESC LIMIT 6 OFFSET 4

I'm sure there's some ridiculously easy method I'm missing in the documentation, but I haven't found it yet.

EDIT: What I want to do is return all the articles where listed is true out of the twenty-five most recent articles. If that doesn't get me ten articles, I'd like to add enough articles from the most recent articles where listed is not true to get my full ten articles.

EDIT #2: In other words, the merge method seems to string the queries together to make one long query instead of merging the results. I need the top ten results of the two queries (prioritizing listed articles), not one long query.

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3 Answers 3

up vote 4 down vote accepted

with your initial code:

You can join two arrays using + then get first 10 results:

  def self.current
    (Article.listed_articles  +  Article.rescue_articles)[0..9]
  end

I suppose a really dirty way of doing it would be:

  def self.current
      oldest_accepted = Article.published.order('created_at DESC').limit(25).last
      Artcile.published.where(['created_at > ?', oldest_accepted.created_at]).order('listed DESC').limit(10)
  end
share|improve this answer
    
I'm not sure what that would do. I'm going to edit my question to be more clear. –  Preacher Mar 23 '11 at 21:23
    
OK. This would essentially load all the published articles, with all the listed = true at top. Then ordered by created_at. Then limited to 10. So if only have 3 listed, it would return these 3 then 7 from non listed. If you had 12 listed, it would return first 10 listed –  Yule Mar 23 '11 at 21:27
    
The reason I'm not doing that is because I don't want any articles included that are not in the twenty-five most recent, whether they're listed or not. I'd rather have unlisted articles filling out the ten results than articles older than the latest twenty-five. –  Preacher Mar 23 '11 at 21:30
    
Ahh - I see. Hows this? –  Yule Mar 23 '11 at 21:41
    
That's still not what I need. Putting the limit(25) condition right there yields the first 25 in the table. –  Preacher Mar 23 '11 at 22:04

I had to face the same scenario. Its very simple.

result1 = Model.where(condition)

result2 = Model.where(another_condition)

Just do

result = result1 << result2

Your final object will be result (NB : I am using MongoDB)

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I think you can do all of this in one query:

 Article.published.order('listed ASC, created_at DESC').limit(10)

I may have the sort order wrong on the listed column, but in essence this should work. You'll get any listed items first, sorted by created_at DESC, then non-listed items.

share|improve this answer
    
That would prioritize listed articles older than the 25 most recent over newer unlisted articles, which isn't what I need. –  Preacher Mar 23 '11 at 23:44
    
I must be missing something. By putting the "listed ASC" first, it would sort the table with all of the null or 0 values in listed (unlisted) at the beginning of the result. If there are 2 of them, they would be at the top, then you'd have the most recent items with a 1 in the listed column (aka listed items). If this isn't the right understanding, perhaps you could edit the question with a couple of sample records to show what the result should look like. –  Brian Glick Mar 24 '11 at 0:16
    
The "listed ASC" puts a priority on the unlisted articles, which is the opposite of what I need. –  Preacher Mar 24 '11 at 1:00

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