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I like method shown here - http://stackoverflow.com/a/9648410/1646893 and I want to use it in my case. What if we have something like this:

{"a"=>{"b"=>"111", "c"=>"9", "d"=>{"ff"=>{"uu"=>[{"q"=>"77", "r"=>{"w"=>"66"}, "j"=>{"@l"=>"44"}}, {"q"=>"78", "r"=>{"w"=>"67"}, "j"=>{"@l"=>"45"}}]}, "@e"=>"56"}, "@b1"=>"01", "@b2"=>"02", "@b3"=>"03"}}

And When I tried to use our method:

{["a", "b"]=>"111", ["a", "c"]=>"9", ["a", "d", "ff", "uu"]=>[{"q"=>"77", "r"=>{"w"=>"66"}, "j"=>{"@l"=>"44"}}, {"q"=>"78", "r"=>{"w"=>"67"}, "j"=>{"@l"=>"45"}}], ["a", "d", "@e"]=>"56", ["a", "@b1"]=>"01", ["a", "@b2"]=>"02", ["a", "@b3"]=>"03"}

The result was an array with 2 values:

[{"q"=>"77", "r"=>{"w"=>"66"}, "j"=>{"@l"=>"44"}}, {"q"=>"78", "r"=>{"w"=>"66"}, "j"=>{"@l"=>"44"}}]

This is what i want to get:

["a", "d", "ff", "uu", "q0", "w0", "j0", "@l0"]=>"44"

etc.

Maybe I should change key names before using flat_hash method? What should i do to have the result without an array and key names contain?

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3  
do you know it's unreadable? –  apneadiving Sep 4 '12 at 19:44
    
there must be a relation in order to get the desired result –  Bijendra Sep 4 '12 at 20:05
    
Out of curiosity: why on earth do you want this? What is the benefit of combining the index of the owning object in an array with the key names of children? If anything I would have thought that you would want: ["a","d","ff","uu","q",0,"w","j","@l"]=>"44" –  Phrogz Sep 4 '12 at 20:42
    
Note that (as seen in my example's output and reformatting of your sample input) what you have does not properly correspond to what you want: w is never a child of q. –  Phrogz Sep 4 '12 at 21:17
    
I'm sorry, this is my first question here. In the future I will try ask a questions more precisely. –  KonstantinP Sep 5 '12 at 8:27

1 Answer 1

up vote 1 down vote accepted

Here's my answer that produces what I believe is a better output that what you are asking for. If you absolutely desperately need exactly the output you have asked for, say so and perhaps I'll provide a variation that produces it.

class Hash;  def each_with_key; each{ |k,v|            yield(v,k) }; end; end
class Array; def each_with_key; each.with_index{ |v,i| yield(v,i) }; end; end

def path_to_values(hash)
  {}.tap do |result|
    crawl = ->(o,chain=[]) do
      o.each_with_key do |v,k|
        path = chain + [k]
        (v.is_a?(Hash) || v.is_a?(Array)) ? crawl[v,path] : result[path] = v
      end
    end
    crawl[hash]
  end
end

Seen in action:

h = {
  "a" => {
    "b"=>"111", "c"=>"9",
    "d"=>{
      "ff"=>{
        "uu"=>[
          { "q"=>"77",
            "r"=>{"w"=>"66"},
            "j"=>{"@l"=>"44"}},
          { "q"=>"78",
            "r"=>{"w"=>"67"},
            "j"=>{"@l"=>"45"}}
        ]
      },
      "@e"=>"56"
    },
    "@b1"=>"01", "@b2"=>"02", "@b3"=>"03"
  }
}
require 'pp'
pp path_to_values(h)
#=> {["a", "b"]=>"111",
#=>  ["a", "c"]=>"9",
#=>  ["a", "d", "ff", "uu", 0, "q"]=>"77",
#=>  ["a", "d", "ff", "uu", 0, "r", "w"]=>"66",
#=>  ["a", "d", "ff", "uu", 0, "j", "@l"]=>"44",
#=>  ["a", "d", "ff", "uu", 1, "q"]=>"78",
#=>  ["a", "d", "ff", "uu", 1, "r", "w"]=>"67",
#=>  ["a", "d", "ff", "uu", 1, "j", "@l"]=>"45",
#=>  ["a", "d", "@e"]=>"56",
#=>  ["a", "@b1"]=>"01",
#=>  ["a", "@b2"]=>"02",
#=>  ["a", "@b3"]=>"03"}
share|improve this answer
    
Great! It is what I need, thanks for your magic. –  KonstantinP Sep 5 '12 at 8:27

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