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Assume I have an enumerable object enum and now I want to get the third item.

I know one of a general approach is convert into an array and then access with index like:

enum.to_a[2]

But this way will create a temporary array and it might be inefficient.

Now I use:

enum.each_with_index {|v, i| break v if i == 2}

But this is quite ugly and redundant.

What's the most efficient way to do this?

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3 Answers 3

up vote 3 down vote accepted

You could use take to peel off the first three elements and then last to grab the third element from the array that take gives you:

third = enum.take(3).last

If you don't want to generate any arrays at all then perhaps:

# If enum isn't an Enumerator then 'enum = enum.to_enum' or 'enum = enum.each'
# to make it one.
(3 - 1).times { enum.next }
third = enum.next
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This looks better but, if I want a very large number as index, it will still generate a very big temporary array for it. –  Shou Ya Jun 11 '12 at 2:08
    
@ShouYa: I added another array-less option while you were commenting. You still have to tick through enum one-by-one but there's nothing you can do about that (in general). –  mu is too short Jun 11 '12 at 2:10
    
Using next is a smart suggestion. I would be curious to see what the performances implications are compared to converting a collection to an array. –  Oscar Del Ben Jun 11 '12 at 2:15
    
@OscarDelBen: That depends greatly on the enumerator. If you start with an enumerator that is backed by a 2G file then converting to an array will be horrendous but calling next a couple times will be almost free. Technically, an Enumerator doesn't even have to be finite so there's no guarantee that to_a will even work. –  mu is too short Jun 11 '12 at 2:17
1  
a more declarative way to convert something to enumerator: xs.to_enum –  tokland Jun 11 '12 at 11:43

Alternative to mu's answer using enumerable-lazy or Ruby 2.1. As lazy as using next but much more declarative:

enum.lazy.drop(2).first
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Unfortunately, to access a member by index it has to be converted to an array (otherwise you wouldn't have an index in the first place), so your code looks perfectly fine to me.

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Um, no. If e is an Enumerator then 2.times { e.next } will tick off and throw away the first two values and a third e.next will give you the third one without generating any arrays. –  mu is too short Jun 11 '12 at 2:15
    
@muistooshort yep, I replied to your thread. And you're right in that respect. –  Oscar Del Ben Jun 11 '12 at 2:16

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