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I currently have a hash that can add value to itself using +=1

@hash = Hash.new { |hash, key| hash[key] = Hash.new(0) }
@hash[string1][string2] += 1

This returns a hash that looks like:

@hash = {string1 => {string2 => 1 }}

And that integer value increments by one every time that the same string values are iterated over.

Now I need to add another value to the hash so it looks like this...

@hash = {string1 => {string2 => {string3 => 1}}}

And have that number increment the same way.

Unfortunately this code:

@hash = Hash.new { |hash, key| hash[key] = Hash.new(0)}
@hash[string1][string2][string3] += 1

Returns an error saying "Can't convert string to integer." I have a feeling it's because there's an added element, and I have Hash.new(0), so it's expecting an integer in the spot where I have a string. Is that correct?

How would I set up this hash so that it can handle an extra dimension and still do the += 1 at the end so the value increments?

Thanks.

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3 Answers 3

up vote 0 down vote accepted
irb(main):001:0> h=Hash.new {|h,k| h[k]=Hash.new {|h,k| h[k]=Hash.new(0)}}
=> {}
irb(main):002:0> h[:a][:b][:c]+=1
=> 1
irb(main):003:0> h
=> {:a=>{:b=>{:c=>1}}}
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This most directly answers my problem, needing three keys and +=1 for the value. –  user2510191 Jun 21 '13 at 20:26

Essentially, you can't. You can either have en empty key default to a new hash, or have the it default to 0, so you'll have to pick what's more important and handle the other case with your own class behavior.

In your first example, are you starting with string2 => 1 and replacing that with string2 => { string3 => 1 }, or are those two seperate examples?

This hash will let you look up and set values at an arbitrary depth without requiring them to exist first:

h = Hash.new {|hash, key| hash[key] = Hash.new(&hash.default_proc) }
h[1][2][3] = 4  #=> {1=>{2=>{3=>4}}}

Update

Here's an example of how a class wrapper might work (quick and dirty, and untested):

require 'forwardable'
class AutoHash
  extend Forwardable
  attr_reader :data

  def_delegators :@data, :[], :[]=

  def initialize
    @data = Hash.new {|hash, key| hash[key] = Hash.new(&hash.default_proc) }
  end

  def increment(*keys, value)
    current_hash = data
    keys[0..-2].each do |key|
      current_hash = current_hash[key]
    end
    current_hash[keys[-1]] = 0 unless current_hash.has_key?(keys[-1])
    current_hash[keys[-1]] += value
  end
end

a = AutoHash.new
a.increment(:string1, :string2, :string3, 2)
a.increment(:string1, :string2, :string3, 5)
a.increment(:string1, :string4, 10)

a.data # => {:string1=>{:string2=>{:string3=>7}, :string4=>10}} 
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A great idea! I appreciate the help. Is it totally necessary? Answer 2 works as well, and even simpler than that was the answer that got deleted... @hash = Hash.new {|h, k| h[k] = Hash.new { |h, k| h[k] = Hash.new(0) }} –  user2510191 Jun 21 '13 at 20:16
    
No it's probably not necessary, but I was operating with the assumption that you needed hashes nested to arbitrary depths. If it only ever needs to be exactly three keys deep, use the simpler version. –  Zach Kemp Jun 21 '13 at 20:18
    
I deleted my answer because I realized that you want to add arbitrarily many keys, not just exactly three. I put the answer back. –  akonsu Jun 21 '13 at 20:19
    
Ok great, thanks guys. If I need to go further than three, I'll take a look at answer 1 again. –  user2510191 Jun 21 '13 at 20:25
1  
Yep, I appreciate the feedback, OMG. –  user2510191 Jun 21 '13 at 20:29

I don't think you can overload that. But you could derive another:

@hash2=Hash.new { |hash,key| hash[key] = @hash }

that should let you use @hash for 2 dimensions and @hash2 for 3 dimensions

If you need variable length, and a method call is acceptable, you could use something like

def deephash (*keys)
  return 0 if keys.length == 0
  key = keys.shift
  { key => deephash(*keys) }
end

n=deephash("a","b","c","d")
=> {"a"=>{"b"=>{"c"=>{"d"=>0}}}}

n["a"]["b"]["c"]["d"] += 1
=> 1

n
=> {"a"=>{"b"=>{"c"=>{"d"=>1}}}}
share|improve this answer
    
This definitely would work. Thanks for the answer. –  user2510191 Jun 21 '13 at 20:27

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