Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to compare two arrays to ensure that the corresponding values of one is always greater than the other.

a = [2, 3, 4]
b = [1, 2, 3]

# a[0] > b[0] ... a[x] > b[x]

At this point I am thinking of using inject with an index and return if the comparison fails, like:

b.each_with_index.inject(true) do |cmp, (element,index)|
  if element > a[index] do
    cmp = false
    return
  end
end

Is there a better way of doing this? Kinda feeling like Ruby or Rails might already have something like this built-in and I missed it.

share|improve this question

2 Answers 2

up vote 7 down vote accepted

This is what I would do:

 a.zip(b).all? { |a, b| a > b }

Note though that zip will truncate in case the two arrays are not of the same size.

share|improve this answer

If it's safe to assume both arrays are of the same size, here's a method that'll keep memory usage and running time to a minimum:

(0...a.length).all?{ |i| a[i] > b[i] }
 #=> true

while also being extendable to an arbitrary number of arrays:

(0...a.length).all?{ |i| a[i] > [b[i], c[i], d[i]].max }

To illustrate the relative resource-intensity of the zip versus the range approach, take arrays a and b, each with length n = 5_000.

Here's the best case, where a[0] < b[0] is false:

             user     system      total        real
zip:     0.350000   0.000000   0.350000 (  0.351115)
range:   0.000000   0.000000   0.000000 (  0.000509)

and the worst, where only a[n-1] > b[n-1] is false:

             user     system      total        real
zip:     0.760000   0.000000   0.760000 (  0.752424)
range:   0.420000   0.000000   0.420000 (  0.421132)

[Here's the benchmark script]

zip creates a new array out of the two (or more) you pass into it, which gets expensive for large n.

That said, the zip approach is easier to read and more idiomatic Ruby, so if scaling isn't a concern I would use that one.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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