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Possible Duplicate:
Strange ruby behavior when using Hash.new([])

This is a simple one, as I'm lost for words.

Why is this happening:

1.9.3-p194 :001 > h = Hash.new([])
 => {} 
1.9.3-p194 :002 > h[:key1] << "Ruby"
 => ["Ruby"] 
1.9.3-p194 :003 > h
 => {} 
1.9.3-p194 :004 > h.keys
 => [] 
1.9.3-p194 :005 > h[:key1]
 => ["Ruby"] 
share|improve this question

marked as duplicate by Mladen Jablanović, Jörg W Mittag, Jim Garrison, Uwe Keim, j0k Oct 13 '12 at 7:22

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

up vote 7 down vote accepted

When you create a hash like this:

h = Hash.new([])       

it means, whenever the hash is accessed with a key that has not been defined yet, its going to return:

[]

Now when you do :

h[:key1] << "Ruby"

h[:key1] has returned [] , to which "Ruby" got pushed, resulting in ["Ruby"], as output, as that is the last object returned. That has also got set as the default value to return when 'h' is accessed with an undefined key. Hence, when you do :

h[:key1] or h[:key2] or h[:whatever]

You will get

"Ruby"

as output. Hope this helps.

share|improve this answer
    
Really good answer! Thanks :-) – changelog Oct 11 '12 at 11:49
    
No problem man! You helped me learn too... I had to read the docs to figure out what happened. – mkz Oct 11 '12 at 12:00

This construction Hash.new([]) returns default value but this value is not initialized value of hash. You're trying to work with hash assuming that the default value is a part of hash.

What you need is construction which will initialize the hash at some key:

hash = Hash.new { |h,k| h[k] = [] } 

hash[:key1] << "Ruby"

hash #=> {:key1=>["Ruby"]}
share|improve this answer
    
This is one of those things about Ruby where I felt that it should work. Thanks for the answer. I'll accept it in 5 minutes when I'm allowed to! – changelog Oct 11 '12 at 11:39

You actually did not set the value with h[:keys] << "Ruby". You just add a value for the returned default array of a not found key. So no key is created.

If you write this, it will be okay:

h = Hash.new([])
h[:keys1] = []
h[:keys1] << "Ruby"
share|improve this answer
    
See, that's weird, because when I eval h[:key1] it returns what I expect to be there. – changelog Oct 11 '12 at 11:42
    
It is the default value, it will return the same array on ANY missing key. – Matzi Oct 11 '12 at 11:42
    
Dammit! Got it now. – changelog Oct 11 '12 at 11:44

Look at the documentation of Hash.new

new → new_hash
new(obj) → new_hash
new {|hash, key| block } → new_hash

If this hash is subsequently accessed by a key that doesn’t correspond to a hash entry, the value returned depends on the style of new used to create the hash.

  1. In the first form, the access returns nil.
  2. If obj is specified, this single object will be used for all default values.
  3. If a block is specified, it will be called with the hash object and the key, and should return the default value. It is the block’s responsibility to store the value in the hash if required.

irb(main):015:0> h[:abc] # ["Ruby"]

So ["Ruby"] is returned as default value instead of nil if key is not found.

share|improve this answer
    
I just had a lightbulb moment in my head. That actually explains what I thought was wrong with this. Thank you! – changelog Oct 11 '12 at 11:43

I have to admit this tripped me out too when I read your question. I had a look at the docs and it became clear though.

If obj is specified, this single object will be used for all default values.

So what you actually doing is modifying this one single array object that is used for the default values, without ever assigning to the key!

Check it out:

h = Hash.new([])

h[:x] << 'x'
# => ['x']

h
# => {}

h[:y]
# => ['x']  # CRAZY TIMES

So you need to do assignment somehow - h[:x] += ['x'] might be the way to go.

share|improve this answer
    
Your answer made me laugh! Am I right into thinking that this wasn't the clear behaviour tho? – changelog Oct 11 '12 at 11:47
    
Haha glad to hear it. I'd say it's clear (in that, once you read the docs, it's fairly obvious), but maybe not intuitive (because you need to read the docs to work it out!). – Andrew Haines Oct 11 '12 at 16:09

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