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Consider this code:

h=Hash.new(0) #new hash pairs will by default have 0 as values
h[1]+=1 # {1=>1}
h[2]+=2 # {2=>2}

that's all fine, but:

h=Hash.new([]) #empty array as default value
h[1]<<=1 #{1=>[1]} - OK
h[2]<<=2 #{1=>[1,2], 2=>[1,2]} # why ?? 

At this point I expect the hash to be:

{1=>[1], 2=>[2]}

But something goes wrong.

Does anybody know what happens?

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2 Answers 2

up vote 21 down vote accepted

When you call Hash.new([]), the default value for any key is not just an empty array, it's the same empty array.

To create a new array for each default value, use the block form of the constructor:

Hash.new { [] }
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10  
But be careful to actually perform an assignment when using the hash created this way: h[1]<<1 won't work. More info here: stackoverflow.com/questions/2552579/… –  Mladen Jablanović Apr 23 '10 at 15:13
    
Mladen, you help me 3rd time in a row, thanks a great lot! –  Valentin Vasilyev Apr 23 '10 at 18:11
3  
Hash.new {|h,k| h[k]=[]} <-- make that a snippet in your editor ;) –  John Douthat Apr 24 '10 at 5:21
    
This answer won't work. this is what you need: Hash.new {|h,k| h[k]=[]} –  Yossi Shasho Jul 7 at 12:17
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You're specifying that the default value for the hash is a reference to that particular (initially empty) array.

I think you want:

h = Hash.new { |hash, key| hash[key] = []; }
h[1]<<=1 
h[2]<<=2 

That sets the default value for each key to a new array.

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How can I use separate array instances for each new hash? –  Valentin Vasilyev Apr 23 '10 at 12:40
2  
That block version gives you new Array instances on each invocation. To wit: h = Hash.new { |hash, key| hash[key] = []; puts hash[key].object_id }; h[1] # => 16348490; h[2] # => 16346570. Also: if you use the block version that sets the value ( {|hash,key| hash[key] = []}) rather than the one that simply generates the value ({ [] }), then you only need <<, not <<= when adding elements. –  James A. Rosen Apr 23 '10 at 13:15
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