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I have an array and I want to convert it to a hash. I want the array elements to be keys, and all values to be the same.

Here is my code:

h = Hash.new
myarr.each do |elem|
  h[elem] = 1
end

One alternative would be the following. I don't think it's very different from the solution above.

h = Hash[ *myarr.collect { |elem| [elem, 1] }.flatten ]

Is there a better way I can do this?

share|improve this question
up vote 3 down vote accepted

First of all, Hash[] is quite happy to get an array-of-arrays so you can toss out the splat and flatten and just say this:

h = Hash[myarr.map { |e| [ e, 1 ] }]

I suppose you could use each_with_object instead:

h = myarr.each_with_object({}) { |e, h| h[e] = 1 }

Another option would be to zip your myarr with an appropriate array of 1s and then feed that to Hash[]:

h = Hash[myarr.zip([1] * myarr.length)]

I'd probably use the first one though.

share|improve this answer
    
another way [2, 3, 4].product([1]).to_h ..... :-) – Arup Rakshit Jul 7 '14 at 14:12

The code OP wrote, can also be written as :-

a = %w(a b c d)
Hash[a.each_with_object(1).to_a]
# => {"a"=>1, "b"=>1, "c"=>1, "d"=>1}

And if you have Ruby version >= 2.1, then

a.each_with_object(1).to_h
# => {"a"=>1, "b"=>1, "c"=>1, "d"=>1}
share|improve this answer
1  
+1. This looks neat. – Santhosh Jul 7 '14 at 5:58

If you are using Ruby 2.1:

myarr.map{|e| [e,1]}.to_h

Another clever way (from comment by @ArupRakshit):

myarr.product([1]).to_h
share|improve this answer
    
The OP clearly said they are using Ruby 1.9.3 (Although I moved that to ruby-1.9 tag). – sawa Jul 7 '14 at 2:26
    
Ah, OK. Perhaps I'll delete. – Mark Thomas Jul 7 '14 at 2:28
2  
I'd leave it here, people will presumably come across this question when they're just looking for general Ruby solutions so this is a worthwhile answer. – mu is too short Jul 7 '14 at 3:14
    
#to_h I think from 2.1 ... – Arup Rakshit Jul 7 '14 at 3:59
    
You're right, @Arup. I knew that :) Fixed. – Mark Thomas Jul 7 '14 at 16:27

Here is another option, using cycle:

Hash[a.zip([1].cycle)]
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I also really like this answer for its simplicity. – Paul Jul 15 '14 at 17:57
a.each_with_object({}){|e, h| h[e] = 1}
share|improve this answer
    
Note: This was earlier than another answer that posts exactly the same solution without hesitation. – sawa Jul 7 '14 at 2:28
3  
7s earlier because I took the time to correct their misunderstanding about the Hash[] arguments and I took the time to include other solutions. – mu is too short Jul 7 '14 at 3:12
3  
Timeliness in itself shouldn't translate to votes. Once this post is 2 years old, nobody will care when the answers arrived. However, if it indicated someone was taking credit for someone else's answer, it would be a problem. This is clearly not the case here. – Mark Thomas Jul 7 '14 at 16:42

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