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I have 2 arrays of objects, I want to merge them such that the resulting array will contain all elements in the first array replacing any elements for which the second array has an object of the same id.

  finalArr=[]
  arr1.each do |e1|
    set2Contains=false
    arr2.each do |e2|
      if(e2.id==e1.id)
        set2Contains=true
      end
    end
    if(set2Contains)
      finalArr.push(e2)
    else
      finalArr.push(e1)
    end
  end

I'm new to ruby, but as it is the king of the one liners the above seems a little verbose. I was wondering if my code could be shortened / optimized in any way?

Thanks for any suggestions

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4 Answers 4

up vote 5 down vote accepted

You'll want to make your second array a hash on IDs, so you don't have to scan through it every time:

hash = Hash.new
arr2.collect{|x| hash[x.id] = x}

then you can go ahead and do:

finalArr = arr1.map{|x| hash.has_key?(x.id) ? hash[x.id] : x }

Note that there might be caveats to be wary of if your arrays can contain nil, which in this case I am assuming is not the case.

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Nice, I'm guessing this would be faster for large arrays, will .map preserve the order of the original array? –  Chris Nov 23 '11 at 16:06
    
Ruby 1.9 has ordered hashes that can preserve order. 1.8.7 generally randomizes the order. –  tadman Nov 23 '11 at 16:10
1  
Map preserves the order, basically given an array of elements, it'll apply a block on all of these and return an array of the results. So for any i, if we call the block f, result[i] = f(input[i]) is what map does. –  Romain Nov 23 '11 at 16:10
1  
Right you are. As a note, you can simplify the first two lines to: hash = Hash[arr2.collect { |x| [ x.id, x ] }] –  tadman Nov 23 '11 at 16:13
1  
@tadman I know, but I find the writing I used easier to grasp for ruby newcomers. –  Romain Nov 23 '11 at 16:16

In ruby 1.9 it's as simple as:

(a|b).uniq{|x| x[:id]}

put the array with the values you don't want replaced first.

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Since you mentioned one-liners, here's a functional one:

merged = Hash[ a1.map{|o| [o.id,o]} ].merge(Hash[ a2.map{|o| [o.id,o]} ]).values

This converts both arrays into hashes keyed by the id, merges them (values from a2 overwriting those in a1, and then extracts just the values.

If you're going to do a lot of set-like work with these objects, I suggest that you define eql? and hash methods on them to compare their id values, and then just use the built-in Ruby Set class:

require 'set'

Foo = Struct.new(:id,:name) do
  def eql?(o2)
    id==o2.id
  end
  def hash
    id.hash
  end
end

a1 = Set[ Foo.new(1,"Phrogz"), Foo.new(17,"Cat")   ]
a2 = Set[ Foo.new(42,"Arthur"), Foo.new(1,"Gavin") ]

all = a1 + a2
all.each{ |foo| puts foo }
#=> #<struct Foo id=1, name="Phrogz">
#=> #<struct Foo id=17, name="Cat">
#=> #<struct Foo id=42, name="Arthur">
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Same logic, but refined code:

final_arr=[]
arr1.each do |e1|
  if arr2.any? { |e2| e1.id == e2.id }
    final_arr << e2
  else
    final_arr << e1
  end
end

More succint

final_arr=[]
arr1.each do |e1|
  final_arr << arr2.any? { |e2| e1.id == e2.id } ? e2 : e1
end
share|improve this answer
    
That's awesome, no if blocks at all! Cheers –  Chris Nov 23 '11 at 16:04
    
Actually in the most succinct version doesn't look like valid ruby, e2 is out of scope –  Chris Nov 23 '11 at 16:29
    
A ternary ? : is a type of if, though. –  tadman Nov 23 '11 at 20:20

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