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Inside the Rails code, people tend to use the Enumerable#inject method to create hashes, like this:

somme_enum.inject({}) do |hash, element|
  hash[element.foo] = element.bar
  hash
 end

While this appears to have become a common idiom, does anyone see an advantage over the "naive" version, which would go like:

hash = {}
some_enum.each { |element| hash[element.foo] = element.bar }

The only advantage I see for the first version is that you do it in a closed block and you don't (explicitly) initialize the hash. Otherwise it abuses a method in an unexpected way, is harder to understand and harder to read. So why is it so popular?

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2  
Why do you think it "abuses a method in an unexpected way"? –  Mladen Jablanović Jul 12 '10 at 18:43
7  
Just pointing out another way: Hash[ some_enum.map{|e| [e.foo, e.bar]} ] –  Marc-André Lafortune Jul 12 '10 at 20:46
    
Well, "abuse in an unexpected way" is obviously in the eye of the beholder. My point being: #inject (or any fold operation) will compute a result value from an n-element list. In this case the result is again an n-element collection. This is fine from a theoretical point of view. But frankly, it doesn't smell good in my book - I admit that is a matter of taste. I see this operation more as a "transform each element of collection A into an element of collection B". –  averell Jul 13 '10 at 8:39

6 Answers 6

up vote 17 down vote accepted

Beauty is in the eye of the beholder. Those with some functional programming background will probably prefer the inject-based method (as I do), because it has the same semantics as the fold higher-order function, which is a common way of calculating a single result from multiple inputs. If you understand inject, then you should understand that the function is being used as intended.

As one reason why this approach seems better (to my eyes), consider the lexical scope of the hash variable. In the inject-based method, hash only exists within the body of the block. In the each-based method, the hash variable inside the block needs to agree with some execution context defined outside the block. Want to define another hash in the same function? Using the inject method, it's possible to cut-and-paste the inject-based code and use it directly, and it almost certainly won't introduce bugs (ignoring whether one should use C&P during editing - people do). Using the each method, you need to C&P the code, and rename the hash variable to whatever name you wanted to use - the extra step means this is more prone to error.

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1  
The only aesthetic problem with inject approach IMO is the need to explicitly return the hash from the block, as Hash#[]= method returns the value assigned, and not the hash itself. I don't know why they omitted to make another method which would do just that. –  Mladen Jablanović Jul 12 '10 at 18:57
    
@Mladen Jablanović: You can use the K combinator (available in Ruby 1.8.7+ under the name Object#tap). If you don't have 1.8.7 or 1.9, you can use Marc-André Lafortune's backports library. Also, in older versions of ActiveSupport, the K combinator used to be available as returning. Basically, replace the two lines with this single line hash.tap {|hash| hash[element.foo] = element.bar }. (You may want to rename the inner hash to something else to get rid of the outer variable shadowed by inner variable warning.) –  Jörg W Mittag Jul 12 '10 at 19:54
    
Thanks, Object#tap sure can be handy, but here it would arguably only harm readability (and probably performance). I assume it's inevitable in some, purer functional languages? –  Mladen Jablanović Jul 12 '10 at 20:07
    
i didn't see anything in the wikipedia article that looked like converting an array to a hash. Maybe I missed something? (most of it was in Haskell, which I am really not familiar with) It seems like folds are for when you can apply a single operation to any two values in the list to reduce it down to a single value. What we are doing here is mutating the accumulator. Maybe it is just that this is an impure function that is getting under my skin, but it just doesn't feel right –  Matt Briggs Jul 12 '10 at 21:26
1  
@averell: The each method will look clearer to all developers, granted. Clarity is important to code quality, but it isn't everything. To take a perhaps extreme example, for i in 1..10 { accum += i } is less clear than accum = 1+2+3+4+5+6+7+8+9+10 (someone with no exposure to programming can understand the second form), but any developer who'd prefer the second form probably isn't programming professionally. Structural symmetry is also important, as is resistance to bugs. inject still appears better to me on both of these measures than each, for reasons stated but left unchallenged. –  Aidan Cully Jul 13 '10 at 17:16

As Aleksey points out, Hash#update() is slower than Hash#store(), but that got me thinking about the overall efficiency of #inject() vs a straight #each loop. So I benchmarked a few things:

(NOTE: Updated on 19 Sept 2012 to include #each_with_object)

(NOTE: Updated on 31 March 2014 to include #by_initialization, thanks to suggestion by http://stackoverflow.com/users/244969/pablo)

the tests

require 'benchmark'
module HashInject
  extend self

  PAIRS = 1000.times.map {|i| [sprintf("s%05d",i).to_sym, i]}

  def inject_store
    PAIRS.inject({}) {|hash, sym, val| hash[sym] = val ; hash }
  end

  def inject_update
    PAIRS.inject({}) {|hash, sym, val| hash.update(val => hash) }
  end

  def each_store
    hash = {}
    PAIRS.each {|sym, val| hash[sym] = val }
    hash
  end

  def each_update
    hash = {}
    PAIRS.each {|sym, val| hash.update(val => hash) }
    hash
  end

  def each_with_object_store
    PAIRS.each_with_object({}) {|pair, hash| hash[pair[0]] = pair[1]}
  end

  def each_with_object_update
    PAIRS.each_with_object({}) {|pair, hash| hash.update(pair[0] => pair[1])}
  end

  def by_initialization
    Hash[PAIRS]
  end

  def tap_store
    {}.tap {|hash| PAIRS.each {|sym, val| hash[sym] = val}}
  end

  def tap_update
    {}.tap {|hash| PAIRS.each {|sym, val| hash.update(sym => val)}}
  end

  N = 10000

  Benchmark.bmbm do |x|
    x.report("inject_store") { N.times { inject_store }}
    x.report("inject_update") { N.times { inject_update }}
    x.report("each_store") { N.times {each_store }}
    x.report("each_update") { N.times {each_update }}
    x.report("each_with_object_store") { N.times {each_with_object_store }}
    x.report("each_with_object_update") { N.times {each_with_object_update }}
    x.report("by_initialization") { N.times {by_initialization}}
    x.report("tap_store") { N.times {tap_store }}
    x.report("tap_update") { N.times {tap_update }}
  end

end

the results

Rehearsal -----------------------------------------------------------
inject_store             10.510000   0.120000  10.630000 ( 10.659169)
inject_update             8.490000   0.190000   8.680000 (  8.696176)
each_store                4.290000   0.110000   4.400000 (  4.414936)
each_update              12.800000   0.340000  13.140000 ( 13.188187)
each_with_object_store    5.250000   0.110000   5.360000 (  5.369417)
each_with_object_update  13.770000   0.340000  14.110000 ( 14.166009)
by_initialization         3.040000   0.110000   3.150000 (  3.166201)
tap_store                 4.470000   0.110000   4.580000 (  4.594880)
tap_update               12.750000   0.340000  13.090000 ( 13.114379)
------------------------------------------------- total: 77.140000sec

                              user     system      total        real
inject_store             10.540000   0.110000  10.650000 ( 10.674739)
inject_update             8.620000   0.190000   8.810000 (  8.826045)
each_store                4.610000   0.110000   4.720000 (  4.732155)
each_update              12.630000   0.330000  12.960000 ( 13.016104)
each_with_object_store    5.220000   0.110000   5.330000 (  5.338678)
each_with_object_update  13.730000   0.340000  14.070000 ( 14.102297)
by_initialization         3.010000   0.100000   3.110000 (  3.123804)
tap_store                 4.430000   0.110000   4.540000 (  4.552919)
tap_update               12.850000   0.330000  13.180000 ( 13.217637)
=> true

conclusion

Enumerable#each is faster than Enumerable#inject, and Hash#store is faster than Hash#update. But the fastest of all is to pass an array in at initialization time:

Hash[PAIRS]

If you're adding elements after the hash has been created, the winning version is exactly what the OP was suggesting:

hash = {}
PAIRS.each {|sym, val| hash[sym] = val }
hash

But in that case, if you're a purist who wants a single lexical form, you can use #tap and #each and get the same speed:

{}.tap {|hash| PAIRS.each {|sym, val| hash[sym] = val}}

For those not familiar with tap, it creates a binding of the receiver (the new hash) inside the body, and finally returns the receiver (the same hash). If you know Lisp, think of it as Ruby's version of LET binding.

-whew-. Thanks for listening.

postscript

Since people have asked, here's the testing environment:

# Ruby version    ruby 2.0.0p247 (2013-06-27) [x86_64-darwin12.4.0]
# OS              Mac OS X 10.9.2
# Processor/RAM   2.6GHz Intel Core i7 / 8GB 1067 MHz DDR3
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Thanks for the benchmark. Strange that inject_update is noticeably faster than each_update, i wonder why... –  Alexey Jul 13 '12 at 11:56
    
Am I reading this wrong, or are these differences tiny, in the region of 1%? –  superluminary Oct 14 '13 at 13:08
    
You are reading wrong: these differences are like 2 or 4 times. –  pablo Mar 28 at 21:24
    
Anyway, do you know the syntax Hash[...] (ruby-doc.org/core-2.1.1/Hash.html#method-c-5B-5D)? I've got with that syntax better results than Enumerable#each. Something like 20% less consumed time. –  pablo Mar 28 at 21:27
    
@pablo: right you are! I've extended the example accordingly -- thanks! –  fearless_fool Apr 1 at 5:38

inject (aka reduce) has a long and respected place in functional programming languages. If you're ready to take the plunge, and want to understand a lot of Matz's inspiration for Ruby, you should read the seminal Structure and Interpretation of Computer Programs, available online at http://mitpress.mit.edu/sicp/.

Some programmers find it stylistically cleaner to have everything in one lexical package. In your hash example, using inject means you don't have to create an empty hash in a separate statement. What's more, the inject statement returns the result directly -- you don't have to remember that it's in the hash variable. To make that really clear, consider:

[1, 2, 3, 5, 8].inject(:+)

vs

total = 0
[1, 2, 3, 5, 8].each {|x| total += x}

The first version returns the sum. The second version stores the sum in total, and as a programmer, you have to remember to use total rather than the value returned by the .each statement.

One tiny addendum (and purely idomatic -- not about inject): your example might be better written:

some_enum.inject({}) {|hash, element| hash.update(element.foo => element.bar) }

...since hash.update() returns the hash itself, you don't need the extra hash statement at the end.

update

@Aleksey has shamed me into benchmarking the various combinations. See my benchmarking reply elsewhere here. Short form:

hash = {}
some_enum.each {|x| hash[x.foo] = x.bar}
hash 

is the fastest, but can be recast slightly more elegantly -- and it's just as fast -- as:

{}.tap {|hash| some_enum.each {|x| hash[x.foo] = x.bar}}
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1  
Wouldn't update be somewhat less efficient than store here, because update will try to iterate over the given hash (before realizing that there is only one key-value pair)? –  Alexey Jul 8 '12 at 15:38
    
Alexey: Not only are you extremely correct (if there is such a thing, but you've forced me add an entire new response! See updates... –  fearless_fool Jul 12 '12 at 16:23

I think it has to do with people not fully understanding when to use reduce. I agree with you, each is the way it should be

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Why? When should one use or not use reduce/inject/fold ? –  Aidan Cully Jul 12 '10 at 18:23
    
you should reduce if you have an expression you can apply that will bring it down to a single value. in this case, we are transforming from one data structure to another, which doesn't really fit, so the example code makes it fit, essentially turning an inject into an each. you could do this with a map as well if you chain a uniq at the end, but that is the same kind of trying to jam a round peg through a square hole, just because you can doesn't make it right. –  Matt Briggs Jul 12 '10 at 20:35
    
Thank you for explaining your reasoning. The way I see it, reduce is defined to take an accumulator and a value, and returns a new accumulator with that value folded in. It doesn't matter whether the accumulator is a container type or not, or whether information is lost during the "reduction". In Haskell, list reversal (given [1, 2, 3] obtain [3, 2, 1]) is implemented according to the standard using a fold operation. –  Aidan Cully Jul 12 '10 at 22:09
    
You're right in that it doesn't matter to the function of the accumulator is a container type. However, I personally find it a bit cheeky to say that a function that takes an n-element container as an input and produces an n-element container as an output is "multiple inputs, single output". I don't have any problem believing that the inject approach looks the most natural to a functional programmer. I just usually try to make the code readable even for the "humbler" developers. Those that are into Haskell should also be more proficient in figuring out stuff that looks unfamiliar to them ;) –  averell Jul 14 '10 at 8:16

I have just found in Ruby inject with intial being a hash a suggestion to use each_with_object instead of inject:

hash = some_enum.each_with_object({}) do |element, h|
  h[element.foo] = element.bar
end

Seems natural to me.

Another way, using tap:

hash = {}.tap do |h|
  some_enum.each do |element|
    h[element.foo] = element.bar
  end
end
share|improve this answer

If you are returning a hash, using merge can keep it cleaner so you don't have to return the hash afterward.

some_enum.inject({}){|h,e| h.merge(e.foo => e.bar) }

If your enum is a hash, you can get key and value nicely with the (k,v).

some_hash.inject({}){|h,(k,v)| h.merge(k => do_something(v)) }
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