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Given I have a HUGE array, and a value from it. I want to get index of the value in array. Is there any other way, rather then call Array#index to get it? The problem comes from the need of keeping really huge array and calling Array#index enormous amount of times.

After a couple of tries I found that caching indexes inside elements by storing structs with (value, index) fields instead of the value itself gives a huge step in performance (20x times win).

Still I wonder if there's a more convenient way of finding index of en element without caching (or there's a good caching technique that will boost up the performance).

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4 Answers 4

up vote 59 down vote accepted

Convert the array into a hash. Then look for the key.

array = ['a', 'b', 'c']
hash = Hash[array.map.with_index.to_a]    # => {"a"=>0, "b"=>1, "c"=>2}
hash['b'] # => 1
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2  
fastest if the array is very long –  Kevin Nov 19 '12 at 19:13
5  
Depending on your use case this could be problematic if there are duplicate values. The method described above will return the equivalent or #rindex(last occurrence of value) To get #index equivalent results, meaning the hash returning the first index of the value you'd need to do something along the lines of reversing the array before creating the hash then subtracting the returned index value from the total length of the initial array - 1. # (array.length - 1 ) - hash['b'] –  user1174553 May 30 '13 at 2:49

Is there a good reason not to use a hash? Lookups are O(1) vs. O(n) for the array.

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The point is -- I'm calling #keys on hash, which returns an array I am using. Still, I might think over my architecture as well... –  gmile Jun 5 '11 at 12:29

If it's a sorted array you could use a Binary search algorithm (O(log n)). Use for example [1]

class Array
  def bsearch(e, l = 0, u = length - 1)
    return if l>u;m=(l+u)/2;e<self[m]?u=m-1:l=m+1;e==self[m]?m:bsearch(e,l,u)
  end
end

To extend the Array-class with this functionality.

[1] http://snippets.dzone.com/posts/show/11531

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U think this is simple to read? The logic behind an answer is to deliver the message in a easy-way and u can make your point clearly uhn? –  YoniGeek Jun 14 at 12:21
1  
It actually isn't that hard to read. First part, return if lower bound is bigger than upper bound (the recursion has filed). second part checks if we need the left side or right side by comparing the midpoint m with the value at that point to e. if we don't have the answer we want, we recurse. –  ioquatix Jul 20 at 8:17

Why not use index or rindex?

array = %w( a b c d e)
# get FIRST index of element searched
puts array.index('a')
# get LAST index of element searched
puts array.rindex('a')

index: http://www.ruby-doc.org/core-1.9.3/Array.html#method-i-index

rindex: http://www.ruby-doc.org/core-1.9.3/Array.html#method-i-rindex

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or just index... but this one is the answer –  Felipe Sabino Aug 29 '12 at 4:04
    
thanks, your right i updated the answer. –  Rogier Aug 29 '12 at 8:40
6  
This is exactly what the OP said they DIDN'T want, due to the large size of their array. Array#index is O(n) and doing that multiple times will kill on performance. Hash lookup is O(1). –  Tim May 1 '13 at 3:46
2  
@tim, well i can't remember at the time of my answer that THIS was the same question, maybe the OP revised the question later on, which would invalidate this answer. –  Rogier May 1 '13 at 7:41
2  
Would it not say that it had been edited at a specific time then? –  Tim May 1 '13 at 21:08

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