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The complement is the mathematical term for what I'm looking for, but for context and possibly more targeted solution: I have hash A, which can have nested hashes (i.e. they're N-dimensional), and I apply to it a process (over which I have no control) which returns hash B, which is hash A with some elements removed. From there on, I am trying to find the elements in A which have been removed in B.

For example: (note that I use symbols for simplicity. Keys will always be symbols, but values won't.)

a = {:a => :b,
     :c => {:d => :e, :f => :g},
     :h => :i,
     :j => {:k => :l, :m => :n},
     :o => {:p => :q, :r => :s},
     :t => :u}

b = {:h => :i,
     :j => {:k => :l, :m => :n},
     :o => {:r => :s},
     :t => :u}

complement(a,b)
#=> {:a => :b,
#    :c => {:d => :e, :f => :g},
#    :o => {:p => :q}}

What is the best (ruby-esque) way of doing this?

share|improve this question
    
Is the depth arbitrary? Are there potentially duplicate elements among the arrays? Do you care where the elements are or just that they were removed? –  Andrew Marshall Mar 10 '12 at 2:26
    
The depth is arbitrary (it's user input) although it shouldn't reasonably go beyond two or three levels. As for duplicates, this is hashes we're talking about, so keys can't have duplicates; values can, of course. Finally, last I checked, hashes aren't sorted. –  Félix Saparelli Mar 10 '12 at 2:30
    
Hashes are sorted by insertion order in 1.9, but the order isn't specified in 1.8. –  Andrew Marshall Mar 10 '12 at 2:34
    
Oh, right. Then, no, I don't care about order. –  Félix Saparelli Mar 10 '12 at 2:35
2  
Could you get us examples of input output? –  Ismael Abreu Mar 10 '12 at 2:37

1 Answer 1

up vote 1 down vote accepted

Came up with this

a = {a: "thing", b: [1,2,3], c:2}
b = {a: "thing", b: [1,2,3]}
c= {}
a.each do |k, v|
  c[k] = v unless b[k]
end
p c

EDIT: Now checking nested hashes. But yes, there should be some better ruby way to do this.

def check_deleted(a, b)
    c = Hash.new
    a.each do |k, v|
        if ! b.has_key? k
            c[k] = v
        elsif b[k].is_a? Hash
            c[k] = check_deleted(v, b[k])
        end
    end
    c
end
a = {a: "thing", b: [1,2,3], c:2, d: {e: 1, r:2}}
b = {a: "thing", b: [1,2,3], d: {r:2}}

p check_deleted(a,b) #=> {:c=>2, :d=>{:e=>1}}
share|improve this answer
    
Yup, that works... for 1-dimensional hashes only. –  Félix Saparelli Mar 10 '12 at 2:32
    
Oh, i forgot about that. –  Ismael Abreu Mar 10 '12 at 2:36
    
That works... I'll accept it if no one comes and gives a ruby-esque-er solution :) –  Félix Saparelli Mar 10 '12 at 3:04
    
Fair enough :) I'm pretty sure someone will answer with some mind blowing solution. –  Ismael Abreu Mar 10 '12 at 3:08
    
b.has_key? k is better than b[k]. For readability but also if you had {:somekey => nil}. –  Andrew Marshall Mar 10 '12 at 3:59

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