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Ruby noob here....

I've been starring at hashes an arrays for too long.

I need to convert an Array like so...

myArray = ["X", "X", "O", "O", "O", "+", "+", "O", "X"]

into…a hash like so…

myHash = {"X"=>0, "X"=>1, "O"=>2, "O"=>3, "O"=>4, "+"=>5, "+"=>6, "O"=>7, "X"=>8}

How can I do this?

Thanks for your time.

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Where did you get the 8 from? –  Linuxios Feb 28 '13 at 14:36
7  
You can't have a hash with multiple, identical keys. What would myHash["X"] return? –  harbichidian Feb 28 '13 at 14:39
1  
This is pointless (and incidentally impossible, due to duplicated keys). You're setting the value of each key to its index in the array; you already have this. It's the address by which you find the value. All you're trying to do is invert it, for what reason? –  meagar Feb 28 '13 at 14:43
    
If the desired output was {"X"=>[0, 1, 8], "O"=>[2, 3, 4, 7], "+"=>[5, 6]} it would be make sense. –  tokland Feb 28 '13 at 14:49
    
It is not impossible, just not very practical. –  steenslag Feb 28 '13 at 15:56

5 Answers 5

up vote 3 down vote accepted

Actually this can be done:

myArray = ["X", "X", "O", "O", "O", "+", "+", "O", "X"]
h = {}.compare_by_identity
myArray.each_with_index{|k,v| h[k] = v}
p h

#=>{"X"=>0, "X"=>1, "O"=>2, "O"=>3, "O"=>4, "+"=>5, "+"=>6, "O"=>7, "X"=>8}
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+1. Let's hear it for both respecting the OP's question and being knowledgable. :-) –  Peter Alfvin Jul 18 '13 at 16:14

I believe you did not quite get the grasp of Hashes or you simply want to destroy any Values that are duplicated.

Hashes cannot have duplicate keys, so 'X' cannot occure two times meaning: your hash will miss all duplicated keys in a conversion:

['X','X','Y'] -> {"X"=> 0, "Y"=>1} or {"X"=> 0, "Y"=>2} 

This leads to another question: Do you want to work with the index or with incrementing integers starting at zero?

With index destroying any duplicates:

h = Hash.new
arr.each_with_index {|x,i| if not h.has_key?(x) then h[x] = i;h}

With increment also destroying any duplicates:

h = Hash.new
count = 0
arr.each{|x| 
  if not h.has_key?(x) then 
    h[x] = count
    count+=1
}

This all can make sense but it really depends on the problem you would like to solve. As others suggested you could also reverse the order making the Integer your key.

A solution for Indices:

h = Hash.new
arr.each_with_index{|x,i| 
  h[i] = x
}

Hope any solution might work but for the future try to tell a bit more about the problem you would like to solve.

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looks like you want to deal somehow with the position of each element in the array

could be achieved with:

myHash = Hash.new
myArray.each_with_index do |x,i|
  myHash[i] = x
end

myHash: => {0=>"X", 1=>"X", 2=>"O", 3=>"O", 4=>"O", 5=>"+", 6=>"+", 7=>"O", 8=>"X"}
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This is also true. –  Jessi Mar 2 '13 at 2:29

harbichidian made a good point regarding the identical keys. To make a hash from an array in the format you specified:

myArray = ["X", "X", "O", "O", "O", "+", "+", "O", "X"]
myHash = {}

(0...myArray.length).each do |i|
    myHash[myArray[i]] = i
end

However, since you have duplicate keys, this will result in:

{"X"=>8, "O"=>7, "+"=>6}
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I assumed that you want an array, not a hash

["X", "X", "O", "O", "O", "+", "+", "O", "X"].each_with_index.map do |obj, i|
  [obj,i]
end

=> [["X", 0], ["X", 1], ["O", 2], ["O", 3], ["O", 4], ["+", 5], ["+", 6], ["O", 7], ["X", 8]]
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