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In my rails app now i have such data:

[[{:car=>"", :article=>"", :group=>"", :price=>""},
  {:car=>"Volkswagen", :article=>"7H0127401A", :group=>"FILTER", :price=>"0,564"},
  {:car=>"Volkswagen", :article=>"7H0127401B", :group=>"FILTER", :price=>"0,546"}, 
  {:car=>"Volkswagen", :article=>"7H0127401D", :group=>"FILTER", :price=>"0,42"}], 
 [{:car=>"", :article=>"", :group=>"", :price=>""}, 
  {:car=>"Volkswagen", :article=>"7H0127401A", :group=>"FILTER", :price=>"0,564"}],   
 [{:car=>"", :article=>"", :group=>"", :price=>""}, 
  {:car=>"Volkswagen", :article=>"7H0127401B", :group=>"FILTER", :price=>"0,546"}]]

And view:

=@oem_art.each do |oem|
      -oem.each do |oo|
        %tr{:class => cycle("zebra-stripe zebra-grey zebra1", "zebra-stripe zebra-grey zebra2")}   
          %td
            = oo[:car]
          %td
            %h4
              = oo[:article]            
          %td
            = oo[:group]
          %td
            = oo[:price]

But how can i do it in more beatiful way? Also how to skip hash with empty keys? How can i do it via standart one loop, for example:

=@oem_art.each do |oem|
          = oem.car
          %td
            =oem.price  

How about flatten? But it is unusefull here...

UPD

  def original_art
    @article = Article.find_by_ART_ID(params[:id])
    @constr_num = ArtLookup.get_construction_number(@article.ART_ID)
    oem_art = []
    @constr_num.each do |o|
      as_oem = get_from_as_oem(o.ARL_SEARCH_NUMBER)
      if as_oem.present?
        oem_art << as_oem
      end
    end    
    @oem_art = oem_art.to_a.uniq
    @article = Article.first
    @oem_art
  end
share|improve this question
    
A flatten should help here? Why do you say it is not useful? –  mikej Dec 11 '12 at 20:55
    
Looking at the updated code you've posted, you shouldn't need the to_a because oem_art is already an array and the uniq is probably not doing what you intend because it won't be removing duplicate hashes only duplicate arrays of hashes. –  mikej Dec 11 '12 at 21:11
    
@mikej didn't understand you on 100% write it in code.. –  PavelBY Dec 11 '12 at 21:16

2 Answers 2

up vote 0 down vote accepted

Beauty is matter of personal taste, and flatten is of some use to avoid nested loops.

- @oem_art.flatten.reject { |h| h[:car].empty? }.each do |oem|
  = oem[:car]
  # And so on ...
share|improve this answer
    
This is pretty much what I would suggest, but it is also worth looking at the rest of the code to see if you can avoid getting the empty entries in there in the first place. –  mikej Dec 11 '12 at 20:58
    
i added piece of code... there it call another method... sorry will give it only in pm –  PavelBY Dec 11 '12 at 21:00

This is the point I was making in the comment on the question. If you have oem_art:

[[{:car=>"", :article=>"", :group=>"", :price=>""},
  {:car=>"Volkswagen", :article=>"7H0127401A", :group=>"FILTER", :price=>"0,564"},
  {:car=>"Volkswagen", :article=>"7H0127401B", :group=>"FILTER", :price=>"0,546"}, 
  {:car=>"Volkswagen", :article=>"7H0127401D", :group=>"FILTER", :price=>"0,42"}], 
 [{:car=>"", :article=>"", :group=>"", :price=>""}, 
  {:car=>"Volkswagen", :article=>"7H0127401A", :group=>"FILTER", :price=>"0,564"}],   
 [{:car=>"", :article=>"", :group=>"", :price=>""}, 
  {:car=>"Volkswagen", :article=>"7H0127401B", :group=>"FILTER", :price=>"0,546"}]]

i.e. the elements are:

1. [{:car=>"", :article=>"", :group=>"", :price=>""},
      {:car=>"Volkswagen", :article=>"7H0127401A", :group=>"FILTER", :price=>"0,564"},
      {:car=>"Volkswagen", :article=>"7H0127401B", :group=>"FILTER", :price=>"0,546"}, 
      {:car=>"Volkswagen", :article=>"7H0127401D", :group=>"FILTER", :price=>"0,42"}]

2. [{:car=>"", :article=>"", :group=>"", :price=>""}, 
      {:car=>"Volkswagen", :article=>"7H0127401A", :group=>"FILTER", :price=>"0,564"}]

3. [{:car=>"", :article=>"", :group=>"", :price=>""}, 
      {:car=>"Volkswagen", :article=>"7H0127401B", :group=>"FILTER", :price=>"0,546"}]

If you call oem_art.uniq this would remove duplicate elements but the 3 elements are all different so nothing would be removed. It wouldn't actually remove the duplicates for 7H0127401A and 7H0127401B from within the elements.

share|improve this answer
    
so... your's solving? –  PavelBY Dec 12 '12 at 17:31
    
This isn't meant to be a full answer to your question. I was just writing a longer version of the point where you said you didn't understand 100%. Cheers. –  mikej Dec 12 '12 at 17:35

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