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Consider i have a 15 categories and 6 sub-categories and i have table items where i have set of records where i have to fetch in the following manner

category 1 ---> level 1 ---> 3 items with maximum price
category 1 ---> level 2 ---> 3 items with maximum price
  ...
  ...
  ...
category 15 ---> level 6 ---> 3 items with maximum price

and

@categories.each do |value|
   @sub-categories.each do |value1|
      array = Item.find(:all, :conditions => ["customer_id IN (?) AND category_id = ? AND sub-category_id = ?", @customer, value.id, value1.id], :order => 'price DESC', :limit => 3)
            array.each do |value2|
                   @max_price_item_of_each_customer << value2
            end
          end
        end

but this would take much time as this iterates. So how can i change this in such a way the time can be reduced? Any help is appreciated.

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1  
Can you give a concrete example of what a Category, Level and item could be? I'm having a hard time understanding your data structure. –  Matthew May 22 '13 at 21:17

4 Answers 4

up vote 2 down vote accepted
+50

This all depends on the scale of records you're working with, but if you're working with a reasonable set, this should be faster and will reduce your queries to 1.

@customer_id = 1
@categories  = [1, 2, 3]
@subs        = [4, 5, 6]

@max_price_item_of_each_customer = []
items = Item.where(customer_id: @customer, category_id: @categories, subcategory_id: @subcategories)
items.group_by{|item| item.category_id}.each_pair do |category_id, category_items|
  category_items.group_by{|item| item.subcategory_id}.each_pair do |subcategory_id, subcategory_items|
    @max_price_item_of_each_customer += subcategory_items.sort{|x, y| y.price <=> x.price }.first(3)
  end
end
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Thankyou and this worked for me with a small edit. You have missed the equals sign after "@max_price_item_of_each_customer +" which i tried editing but i could not as it is the only change. –  Logesh May 30 '13 at 4:46

Try:

@max_price_item_of_each_customer = []
@categories.each do |value|   
      @max_price_item_of_each_customer +=  Item.find(:all, :conditions => ["customer_id IN (?) AND category_id = ? AND sub-category_id in (?)", @customer, value.id, @sub-categories.map(&:id)], :order => 'price DESC', :limit => 3)            
end
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I will try this. But before that could you please tell me how will this fetch 3 items from each sub-categories. I think this would fetch 3 items for each categories. –  Logesh May 20 '13 at 10:39
    
I have tried and it picks 3 items for each category and not for each sub-category. –  Logesh May 20 '13 at 11:04

The solution below might work if you use Postgresql.

  1. Select a group of 3 item ids from items table, sorted by price descending and grouped by category_id and subcategory_id. You can use Postgres array_agg to collect the item ids after grouping.
  2. Select items row, where the item ids are in those grouped item ids. After that, order the result by category_id ascending, subcategory_id ascending, and price descending

The result is ActiveRecord::Relation, so you can iterate the items as usual. Since the result is flattened (but already ordered by categories, subcategories, and price), you need to separate the different categories and subcategories yourself.

grouped_item_ids = Item.where(customer_id: customer_id).
  select("items.category_id, items.subcategory_id, (array_agg(items.id order by items.price desc))[1:3] AS item_ids").
  group("items.category_id, items.subcategory_id").map {|item| item["item_ids"]}
@items = Item.where(id: grouped_item_ids.flatten).
  order("items.category_id ASC, items.subcategory_id ASC, items.price desc")
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Following query works for me

   @max_price_item_of_each_customer =Item.find_by_sql(["SELECT i1.* FROM item i1
      LEFT OUTER JOIN item i2 ON (i1.category_id = i2.category_id AND i1.sub-category_id = i2.sub-category_id AND i1.id < i2.id)
      WHERE i1.customer_id IN (?) AND i1.category_id IN (?)
      GROUP BY i1.id HAVING COUNT(*) < 3
      ORDER BY price DESC", @customer, @categories.map(&:id)])
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