These two statements give me the same results:

[1,2,3,4].find_all { |x| x.even? }

[1,2,3,4].select{ |x| x.even? }

Is find_all just an alias? Is there a reason to use one over another?

  • 1
    This question has accepted the wrong answer. – henrebotha Feb 19 '16 at 9:11

#find_all and #select are very similar; the difference is very subtle. In most of the cases, they are equivalent. It depends on the class implementing it.

Enumerable#find_all and Enumerable#select run on the same code.

The same happens for Array and Range, as they use Enumerable implementation.

In the case of Hash, #select is redefined to return a Hash instead of an Array, but #find_all is inherited from Enumerable

a = [1, 2, 3, 4, 5, 6]
h = {a: 1, b: 2, c: 3, d: 4, e: 5, f: 6}

a.select{|x| x.even?}       # => [2, 4, 6]
a.find_all{|x| x.even?}     # => [2, 4, 6]

h.select{|k,v| v.even?}     # => {:b=>2, :d=>4, :f=>6}
h.find_all{|k,v| v.even?}   # => [[:b, 2], [:d, 4], [:f, 6]]

Enumerable#find_all Returns an array containing all elements of enum for which the given block returns a true value, which is not the case for select. Enumerable#select returns the Array, if the receiver on which you are calling #select method, don't have it's own #select method. Otherwise on which receiver you are calling #select method, it will return similar type of receiver, after processing the block condition.

Like Hash#select Returns a new hash consisting of entries for which the block returns true and Array#select Returns a new array containing all elements of ary for which the given block returns a true value. Now Range#select will give you return back an Array, as Range class don't have its own instance method called #select. Rather being an Enumerable,it will call Enumerable#select.

rng = (1..4)
ary = [1,2]
hsh = {:a => 1}

rng.method(:select) # => #<Method: Range(Enumerable)#select>
hsh.method(:select) # => #<Method: Hash#select>
ary.method(:select) # => #<Method: Array#select>

Here is a full demonstration with example in-favor of my explanation above :

hsh = {:a => 2, :b => 3 }
ary = [1,2,3]
rng = (1..3)

# Look find_all always gives Array.
hsh.find_all{ true } # => [[:a, 2], [:b, 3]]
ary.find_all{ true } # => [1, 2, 3]
rng.find_all{ true } # => [1, 2, 3]

# Look select not giving Array always, explanation of why so is written
# above in my answer.
hsh.select{ true } # => {:a=>2, :b=>3}
ary.select{ true } # => [1, 2, 3]
rng.select{ true } # => [1, 2, 3]
  • 1
    Check the documentation you linked to -- both have identical descriptions, and both return arrays for the given block. – Dylan Markow Jan 8 '14 at 15:08
  • @DylanMarkow I don't agree, You recheck it. – Arup Rakshit Jan 8 '14 at 15:16
  • 2
    I thinks you should provide an example showing that, in general, select and find_all don't behave the same. – toro2k Jan 8 '14 at 15:36
  • 1
    @toro2k I am done!! – Arup Rakshit Jan 8 '14 at 15:41

Yes, for Arrays, they return identical results. For other things (e.g. Hashes), they may return different things.

According to the Enumerable documentation for select and find_all, both methods point to the same source code, and both return either an Array (if a block is given) or an Enumerator (if no block is given).

While the Array class implements its own version of select (but lets Enumerable handle find_all), they still do the same thing.

  • -1 for saying Yes, they return identical results It is not like that. – Arup Rakshit Jan 8 '14 at 15:16
  • For his example, an array, they do return identical results. The code used to get there may be slightly different, but there is no case where, given the same array, the two methods won't return the same thing. – Dylan Markow Jan 8 '14 at 15:21
  • OP asked Is find_all and select the same thing in ruby?.. OP probably took Array as an example. But OP asked it overall.. – Arup Rakshit Jan 8 '14 at 15:23
  • 2
    Enumerable (if no block is given) is also wrong.. It is an Enumerator, not Enumerable. – Arup Rakshit Jan 8 '14 at 15:43
  • @ArupRakshit Enumerators are enumerable. – sepp2k Jan 8 '14 at 15:56

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.