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I want to take the first "n" entries which pass the block

a = 1..100_000_000 # Basically a long array

# This iterates over the whole array -- no good
b = a.select{|x| x.expensive_operation?}.take(n)

I want to short circuit the iteration once i've got n entries where 'expensive' condition is true.

What do you suggest? take_while and keep count of n?

# This is the code i have; which i think can be written better, but how?
a = 1..100_000_000 # Basically a long array
n = 20
i = 0
b = a.take_while do |x|
  ((i < n) && (x.expensive_operation?)).tap do |r|
    i += 1
  end
end
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I seems to me that your solution selects some x value even if x.expensive_operation? is false... is that what you want ? –  Baldrick Oct 28 '12 at 12:46
    
hmm..you're right that my solution doesnt seem right but not in the way you're suggesting.it will stop at first value where expensive_operation is false returning me less than n values. –  Aditya Sanghi Oct 28 '12 at 13:37

2 Answers 2

up vote 4 down vote accepted

Ruby 2.0 implements lazy enumerables, for older versions use the gem enumerable-lazy:

require 'enumerable/lazy'
(1..Float::INFINITY).lazy.select(&:even?).take(5).to_a
#=> [2, 4, 6, 8, 10]
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Looks promising. The future. –  Aditya Sanghi Oct 28 '12 at 11:50

It should work with a simple for loop and a break :

a = 1..100_000_000 # Basically a long array
n = 20
selected = []
for x in a
  selected << x if x.expensive_operation?
  break if select.length == n
end
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