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I have a simple array:

arr = ["apples", "bananas", "coconuts", "watermelons"]

I also have a function f that will perform an operation on a single string input and return a value. This operation is very expensive, so I would like to memoize the results in the hash.

I know I can make the desired hash with something like this:

h = {}
arr.each { |a| h[a] = f(a) }

What I'd like to do is not have to initialize h, so that I can just write something like this:

h = arr.(???) { |a| a => f(a) }

Can that be done?

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6 Answers 6

up vote 59 down vote accepted

Say you have a function with a funtastic name: "f"

def f(fruit)
   fruit + "!"
end

arr = ["apples", "bananas", "coconuts", "watermelons"]
h = Hash[ *arr.collect { |v| [ v, f(v) ] }.flatten ]

will give you:

{"watermelons"=>"watermelons!", "bananas"=>"bananas!", "apples"=>"apples!", "coconuts"=>"coconuts!"}

Updated:

As mentioned in the comments, Ruby 1.8.7 introduces a nicer syntax for this:

h = Hash[arr.collect { |v| [v, f(v)] }]
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I think you meant ... { |v| [v, f(v)] }, but this did the trick! –  Wizzlewott May 31 '10 at 12:32
2  
Just one thing - why's there a * next to *arr.collect? –  Jeriko May 31 '10 at 14:14
1  
@Jeriko - the splat operator * collects a list into an array or unwinds an array into a list, depending on context. Here it unwinds the array into a list (to be used as the items for the new hash). –  Telemachus May 31 '10 at 14:57
1  
After looking at Jörg's answer and thinking this over some more, note that you can remove both * and flatten for a simpler version: h = Hash[ arr.collect { |v| [ v, f(v) ] } ]. I'm not sure if there's a gotcha I'm not seeing, however. –  Telemachus May 31 '10 at 16:35
2  
In Ruby 1.8.7, the ugly Hash[*key_pairs.flatten] is simply Hash[key_pairs]. Much nicer, and require 'backports' if you haven't updated from 1.8.6 yet. –  Marc-André Lafortune May 31 '10 at 17:42
h = arr.each_with_object({}) { |v,h| h[v] = f(v) }
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this worked perfectly –  D_K Nov 3 '13 at 14:45
    
This reads a lot more concisely than using Hash[arr.collect{...}] –  kaichanvong Jan 26 '14 at 15:29
    
This is incredibly slow, check out my post below: stackoverflow.com/a/27962063/1761067 –  dmastylo Jan 15 at 11:15

Did some quick, dirty benchmarks on some of the given answers. (These findings may not be exactly identical with yours based on Ruby version, weird caching, etc. but the general results will be similar.)

arr is a collection of ActiveRecord objects.

Benchmark.measure {
    100000.times {
        Hash[arr.map{ |a| [a.id, a] }]
    }
}

Benchmark @real=0.860651, @cstime=0.0, @cutime=0.0, @stime=0.0, @utime=0.8500000000000005, @total=0.8500000000000005

Benchmark.measure { 
    100000.times {
        h = Hash[arr.collect { |v| [v.id, v] }]
    }
}

Benchmark @real=0.74612, @cstime=0.0, @cutime=0.0, @stime=0.010000000000000009, @utime=0.740000000000002, @total=0.750000000000002

Benchmark.measure {
    100000.times {
        hash = {}
        arr.each { |a| hash[a.id] = a }
    }
}

Benchmark @real=0.627355, @cstime=0.0, @cutime=0.0, @stime=0.010000000000000009, @utime=0.6199999999999974, @total=0.6299999999999975

Benchmark.measure {
    100000.times {
        arr.each_with_object({}) { |v, h| h[v.id] = v }
    }
}

Benchmark @real=1.650568, @cstime=0.0, @cutime=0.0, @stime=0.12999999999999998, @utime=1.51, @total=1.64

In conclusion

Just because Ruby is expressive and dynamic, doesn't mean you should always go for the prettiest solution. The basic each loop was the fastest in creating a hash.

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2  
You, my friend, are awesome for doing your homework and posting it :) –  Alexander Bird Jan 23 at 23:06
    
Thanks, gotta give back to the community! –  dmastylo Jan 24 at 0:07

This is what I would probably write:

h = Hash[arr.zip(arr.map(&method(:f)))]

Simple, clear, obvious, declarative. What more could you want?

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I like zip as much as the next guy, but since we're already calling map, why not leave it at this? h = Hash[ arr.map { |v| [ v, f(v) ] } ] Is there an advantage to your version that I'm not seeing? –  Telemachus May 31 '10 at 16:38
    
@Telemachus: With all the Haskell code I've been reading, I just got used to point-free programming, that's all. –  Jörg W Mittag May 31 '10 at 16:49

I'm doing it like described in this great article http://robots.thoughtbot.com/iteration-as-an-anti-pattern#build-a-hash-from-an-array

array = ["apples", "bananas", "coconuts", "watermelons"]
hash = array.inject({}) { |h,fruit| h.merge(fruit => f(fruit)) }

More info about inject method: http://ruby-doc.org/core-2.0.0/Enumerable.html#method-i-inject

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Another one, slightly clearer IMHO -

Hash[*array.reduce([]) { |memo, fruit| memo << fruit << f(fruit) }]

Using length as f() -

2.1.5 :026 > array = ["apples", "bananas", "coconuts", "watermelons"]
 => ["apples", "bananas", "coconuts", "watermelons"] 
2.1.5 :027 > Hash[*array.reduce([]) { |memo, fruit| memo << fruit << fruit.length }]
 => {"apples"=>6, "bananas"=>7, "coconuts"=>8, "watermelons"=>11} 
2.1.5 :028 >
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