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I have an array like so

[1,1,2,3,3,3,4,5,5]

and I want to count the number of occurrences of each number, which I'm trying to do like so

[1,1,2,3,3,3,4,5,5].reduce(Hash.new(0)) { |hash,number| hash[number] += 1 }

The problem is I get the following error when I try to run it

NoMethodError: undefined method `[]=' for 1:Fixnum
    from (irb):6:in `block in irb_binding'
    from (irb):6:in `each'
    from (irb):6:in `reduce'
    from (irb):6

Am I able to set the initial value like this, or am I getting this wrong?

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5 Answers 5

up vote 5 down vote accepted

You can use each_with_object for cleaner syntax

[1,1,2,3,3,3,4,5,5].each_with_object(Hash.new(0)) { |number, hash| hash[number] += 1 }

Note that order of arguments is reverse i.e. |number, hash|

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I always forget that there is each_with_object. I find it cleaner than returning the hash in every iteration. –  platzhirsch Oct 5 '13 at 18:26
    
cleaner was the word I was looking for thanks :) –  tihom Oct 5 '13 at 18:27
    
Nice use of ewo! –  Cary Swoveland Oct 5 '13 at 19:11

You can use reduce, but if you want so, you have to return the hash again:

[1,1,2,3,3,3,4,5,5].reduce(Hash.new(0)) do |hash,number|
  hash[number] += 1 
  hash
end

Without that the value of hash[number] would be returned. The value of a hash assignment is the value itself. The block builds on the value you have returned previously.

Which means, that after the first it would try something like this: 1[1] += 1, which of course does not work, because Fixnums do not implement the method []=.

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I like to use reduce with hash.update. It returns the array and I do not need the ; hash part:

[1,1,2,3,3,3,4,5,5].reduce(Hash.new(0)) { |h, n| h.update(n => h[n].next) }
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1  
Nice! I wasn't familiar with update. Have tucked it away. (Readers: note he could have used +1 instead of next, if that's not obvious). –  Cary Swoveland Oct 5 '13 at 19:09

Your question has been answered, but here's another way to skin the cat:

[Edited to adopt @David's suggestion.]

a = [1,1,2,3,3,3,4,5,5]
Hash[a.group_by(&:to_i).map {|g| [g.first, g.last.size]}]

This also works:

a.group_by{|e| e}.inject({}) {|h, (k,v)| h[k] = v.size; h}

and can be improved by adopting @spickermann's use of update (or it's synonym, merge!), to get rid of that irritating ; h at the end:

a.group_by{|e| e}.inject({}) {|h, (k,v)| h.merge!(k => v.size)}

Formerly, I had:

Hash[*a.group_by(&:to_i).to_a.map {|g| [g.first, g.last.size]}.flatten]

I don't like to_i here. I wanted to use to_proc instead of ...group_by {|x| x|} (as used in one of the solutions above) and was looking for a method m that returns the receiver or its value. to_i was the best I could do (e.g., 2.to_i => 2), but only for Integers. Can anyone suggest a method that returns the receiver for a wide range of objects whose use with to_proc makes it's purpose obvious?

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Overcomplicated ;) You may simplify your code to just Hash[a.group_by(&:to_i).map {|g| [g.first, g.last.size]}] at least. Hash inherits map from Enumerable so unnecessary to convert it to an Array. Also you may avoid flattening the resulting array and so the splat operator. Not to mention you can split object passed by map at block arguments. I'd agree Ruby lacks .id method returning itself (spoiled with Haskell ;)) –  David Unric Oct 5 '13 at 20:36
    
Many thanks, David, for both the suggestion and explanation. –  Cary Swoveland Oct 5 '13 at 20:56

That's simple:

[1,1,2,3,3,3,4,5,5].group_by {|e| e}.collect {|k,v| [k,v.count]}
#=> [[1, 2], [2, 1], [3, 3], [4, 1], [5, 2]]

if result required in a Hash object

Hash[[1,1,2,3,3,3,4,5,5].group_by {|e| e}.collect {|k,v| [k,v.count]}]
#=> {1=>2, 2=>1, 3=>3, 4=>1, 5=>2}
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