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I have two arrays

default = ['0', '0', '0', '0'] # this is fixed
new = ['2', '3', ''] # it can be of many variants like ['', '1'] or 
                   # ['1', '', '', ''], but will never have 
                   # more than 4 elements

I want to get a resultant array from above two arrays as

['2', '3', '0', '0']

How to achieve it one line of simple ruby code? I can do it in multiple line or with the help of inject/reduce.

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1  
default.zip(new).map { |e| e.map(&:to_i).inject(&:+) }.map(&:to_s) –  oldergod Oct 22 '12 at 5:03
1  
this is just a shortened version of oldergod's solution: default.zip(new).map { |d, v| (d.to_i + v.to_i).to_s } –  zoli Oct 22 '12 at 5:07
    
@megas solution is almost same. Thanks guys. –  JVK Oct 22 '12 at 5:35

3 Answers 3

up vote 1 down vote accepted
default.zip(new).map { |d,n| (n.nil? or n.empty?) ? d : n }
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Thanks. Almost same as @zoli –  JVK Oct 22 '12 at 5:33

If you're using rails --

n = 4 # number of elements you need
n.times.map{|x| new[x].presence || default[x] }

If not

n = 4 # number of elements you need
n.times.map{|x| (new[x].nil? || new[x] == "") ? default[x] : new[x] }
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If I understand correctly, what you want to do is replace blanks/nils in "new" array with corresponding values from "default" array

try this

 default.each_index.collect {|i| (new[i].nil? || new[i] == '') ? default[i] : new[i]}

This should work for any length of "default" array. The returned array will be of the same length as "default"

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