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Input:

 a = [[:a, "apple"], [:b, "bear"]]

Output:

 {:a=>"apple", :b=>"bear"}

I think of this way to do it:

h = a.inject({}){|dic,i| dic.merge({i[0]=>i[1]})}

But I still think it's not the best way. Does anyone have better solutions?

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1  
What you're doing here is creating an entirely new hash for each key-value pair, then create another using merge for each pair in your list. This is extremely inefficient because of the number of intermediate hashes created will be twice the length of your list. The efficient inject version of this should be: h = a.inject({ }) { |h, (k, v)| h[k] = v; h } –  tadman Dec 13 '12 at 5:12
1  
Enumerable to hash strikes back: stackoverflow.com/questions/9434162/…. –  tokland Dec 13 '12 at 8:58

1 Answer 1

up vote 10 down vote accepted
>> Hash[*a.flatten]
=> {:a=>"apple", :b=>"bear"}

Or a prettier one:

>> Hash[a] 
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1  
Hash[] is a really awkward name for something that's really handy. –  tadman Dec 13 '12 at 5:10
    
Hash[a] also works in Ruby 1.8.7. So we can pretty much wipe out the ugly hack *+flatten –  tokland Dec 13 '12 at 8:51
    
@tadman: not that people are not trying to convince the devs to add a method to convert enumerables to hashes. No luck: bugs.ruby-lang.org/issues/show/666 –  tokland Dec 13 '12 at 8:53
    
@tokland Thanks. I thought it worked only in 1.9. But it seems a little difference between them though. The order of the elements in the hash is not the same in 1.8 and 1.9. For example, Hash[[["a", 100], ["b", 200]]].each will process "b"=>200 first in 1.8. –  halfelf Dec 13 '12 at 9:08
    
@halfelf: that's an orthogonal issue. Hashes in 1.9 are orderered, in 1.8.7 they are not. How you build the hash makes no difference. I would reverse the text in the answer (begin with the more important!). "Hash[a], and only if you work with ancient Ruby <= 1.8.6, use this ugly hack" and so on. –  tokland Dec 13 '12 at 9:26

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