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I have a hash like this:

a = { a: 1, b: 2, c: [9, 8, 7]}

I need to write a method that given a pair key and value, removes the occurrences of such couple from the hash.

for example, if I pass the couple (:a, 1) I obtain the hash:

a = { b: 2, c: [9, 8, 7]}

if I pass the couple (:c, 8) I obtain the hash:

a = { a: 1, b: 2, c: [9, 7]}

if I pass the couple (:a, 3) I obtain the (unchanged) hash:

a = { a: 1, b: 2, c: [9, 8, 7]}

I'm not sure how to do this, here's what I got so far:

  def remove_criterion (key, value)
    all_params = params.slice(key)
    if all_params[key].class == Array

    else
      params.except(key)
    end
  end

which obviously is incomplete.

thanks for any help,

share|improve this question
1  
What happens if you have hash {a: [[1], 2]}, and give key :a and value [1]? Is [1] supposed to be deleted from [[1], 2] because it is an element of it, or is it supposed to retain because [1] is not [[1], 2]? Your question is not clear. –  sawa Oct 28 '13 at 15:40
    
{a: [[1], 2]} makes no sense in my context, so any behaviour is fine for this case. It just won't reasonably happen. –  don giulio Oct 28 '13 at 15:42
    
So what can appear in your hash and what cannot? You haven't mentioned any restriction. You should state that in the question. –  sawa Oct 28 '13 at 15:43
    
the values of the Hash can be either scalars or arrays –  don giulio Oct 28 '13 at 15:44
1  
mh, sorry, I meant scalars or arrays of scalars –  don giulio Oct 28 '13 at 15:46

3 Answers 3

up vote 2 down vote accepted

Here's one solution:

def remove_criterion key, value
  params.each_with_object({}) do |pair, h|
    k, v = *pair
    if k == key
      case v
      when Array
        nv = v.reject { |each| each == value }
        h[k] = nv unless nv.empty?
      else
        h[k] = v unless v == value
      end
    else
      h[k] = v
    end
  end
end

Testing it out in irb:

irb(main):007:0> remove_criterion :a, 1
=> {:b=>2, :c=>[9, 8, 7]}
irb(main):008:0> remove_criterion :c, 8
=> {:a=>1, :b=>2, :c=>[9, 7]}
irb(main):009:0> remove_criterion :a, 3
=> {:a=>1, :b=>2, :c=>[9, 8, 7]}
share|improve this answer
def remove_criterion(key, value)
  params.each do |k,v| 
    if k == key and v == value
      params.delete(key)
    elsif v.class == Array and v.include?(value)
      v.delete(value)
    end
  end
  params
end
share|improve this answer

I'd do it like this:

def doit(h,k,v)
  return h unless h.include?(k)
  if h[k] == v
    h.delete(k)
  elsif h[k].is_a? Array      
    h[k].delete(v)
  end
  h
end 

h = {a: 1, b: 2, c: [9, 8, 7]}

doit(h,:b,2) #  => {:a=>1,        :c=>[9, 8, 7]}
doit(h,:b,3) #  => {:a=>1, :b=>2, :c=>[9, 8, 7]} 
doit(h,:c,8) #  => {:a=>1, :b=>2, :c=>[9,    7]}
doit(h,:c,6) #  => {:a=>1, :b=>2, :c=>[9, 8, 7]} 
doit(h,:d,1) #  => {:a=>1, :b=>2, :c=>[9, 8, 7]}
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