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a = [3, 4, 7, 8, 3]
b = [5, 3, 6, 8, 3]

Assuming arrays of same length, is there a way to use each or some other idiomatic way to get a result from each element of both arrays? Without using a counter?

For example, to get the product of each element: [15, 12, 42, 64, 9]

(0..a.count - 1).each do |i| is so ugly...

Ruby 1.9.3

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2 Answers 2

up vote 3 down vote accepted

For performance reasons, zip may be better, but transpose keeps the symmetry and is easier to understand.

[a, b].transpose.map{|a, b| a * b}
# => [15, 12, 42, 64, 9]

A difference between zip and transpose is that in case the arrays do not have the same length, the former inserts nil as a default whereas the latter raises an error. Depending on the situation, you might favor one over the other.

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What about using Array.zip:

>> a = [3,4,7,8,3]
=> [3, 4, 7, 8, 3]
>> b = [5,3,6,8,3]
=> [5, 3, 6, 8, 3]
>> c = []
=> []
>> a.zip(b) do |i, j| c << i * j end
=> [[3, 5], [4, 3], [7, 6], [8, 8], [3, 3]]
>> c
=> [15, 12, 42, 64, 9]

Note: I am very much not a Ruby programmer so I apologize for any idioms that I have trampled all over.

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was about to write it. that's the way I would do it :) –  Castilho Oct 19 '12 at 2:19
    
@Castilho: my first thought was, damn... Ruby has to have a zip method somewhere. I come from Python land so it took a few seconds to find it. –  D.Shawley Oct 19 '12 at 2:20
4  
Braces are generally used with one-liners (a.zip(b).each { |i, j| c << i * j }) but that's not exactly trampling. And map would be more appropriate in this specific case: c = a.zip(b).map { ... } –  mu is too short Oct 19 '12 at 2:23
1  
You can just do a.zip(b) do ... end to avoid creating the intermediate array, which might be useful for large arrays. –  matt Oct 19 '12 at 2:23
    
@matt: I was wondering whether each was required or not. I didn't realize that each introduced another Array. I'll change that. –  D.Shawley Oct 19 '12 at 10:56

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