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is there any other simple,nicer way?

require 'pp'

a1 = ["02/28/10","Webinars","131","0","26 Feb 2010","0","3d, 8h, 49m, 18s"]
a2 = ["02/20/10","Webinars","131","9","26 Feb 2010","0","3d, 8h, 49m, 18s"]

def compare(array1,array2,ignore)

  tmp1 = Array.new
  tmp2 = Array.new
  0.upto(array1.length-1) {|index|
    if !ignore.include?(index)
      tmp1 << array1[index]
      tmp2 << array2[index]
    end
  }
  if tmp1 == tmp2 
    return true
  else
    return false    
  end
end

pp a1
pp a2
puts
puts compare(a1,a2,[0,3])

and the output is

["02/28/10", "Webinars", "131", "0", "26 Feb 2010", "0", "3d, 8h, 49m, 18s"]
["02/20/10", "Webinars", "131", "9", "26 Feb 2010", "0", "3d, 8h, 49m, 18s"]

true
share|improve this question
1  
FYI, the version in the question always returns true, because tmp1 and tmp2 point to the same array. Try compare([0], [1], []) –  Matthew Flaschen Mar 3 '10 at 4:13
    
thank you for pointing that out.Fixed. –  Radek Mar 3 '10 at 4:51

6 Answers 6

up vote 2 down vote accepted

There are probably plenty of more concise ways of doing this. Here's the first that came to my mind, which I'm sure could be improved upon.

def compare(array1, array2, ignore)
  return false if array1.size != array2.size
  0.upto(array1.size) do |i|
    return false if !ignore.include?(i) && array1[i] != array2[i]
  end
  return true
end

Essentially, a manual array comparison. Check for same size, then check the elements one by one (but ignoring indices we are told to ignore). Break as soon as we know it's pointless to proceed.

share|improve this answer
    
@Matchu: great! it works very nicely :-) just one more clarification for me to understand your code. Once the function compare hits any of the return it won't continue running the code but exits the function. Is that right? –  Radek Mar 3 '10 at 3:45
    
That is correct :) I don't want to run any more checks once we know what the function will return. –  Matchu Mar 3 '10 at 3:48
    
@Matchu: thank you. For both :-) –  Radek Mar 3 '10 at 3:56
    
@Matchu: why 'use do/end instead of brackets'? –  Radek Mar 3 '10 at 4:03
    
@Radek, I'll mind to answer. That is the common convention in Ruby: single-line blocks use { }, multiline - do end –  Dmytrii Nagirniak Mar 3 '10 at 4:06

Simplest code (requires Ruby 1.8.7 or above):

def compare(array_a, array_b, ignore_list)
  array_a.zip(array_b).each_with_index.all? do |a, b, idx|
    a == b or ignore_list.include? idx
  end
end

I suspect it will be faster, too (since it uses a single zip rather than individually asking the array for each item) — though this probably isn't a case where speed matters greatly.

As an aside, almost any time I'm directly indexing an array (like some_array[i]) in Ruby rather than using a higher-order method such as map or each, I take that as a sign that I'm probably missing something in the standard library and the algorithm will probably be less efficient than the highly optimized library function.

share|improve this answer
    
Good one. I overlooked zip in Ruby. But where does the block with 3 arguments comes from for all?. The code below writes nil for me, which means that a is an element, b is an index. idx is not defined: [1,2].zip(['a', 'b']).each_with_index.all? { |a,b,idx| puts idx; true } –  Dmytrii Nagirniak Mar 4 '10 at 4:33

This looks better to me :) :

def compare(array1, array2 = [], ignore = [])
  return false if array1.length != array2.length
  array1.each_with_index.all? do |e1, i1|
    array2[i1] == e1 || ignore.include?(i1)
  end
end

The beauty of this is that it "chains" each_with_index with all? making much cleaner code.
The bad is that it only works from Ruby 1.8.7. Anyway do not see a reason to use < 1.8.7

share|improve this answer
1  
I don't like that this mutates the original arrays. –  Matchu Mar 3 '10 at 3:34
    
It doesn't anymore. –  Dmytrii Nagirniak Mar 3 '10 at 3:35
    
@Dmitriy Nagirnyak: you code gives me an error `each_with_index': no block given (LocalJumpError) but most importantly I tried that already. delete_at(i) causes that the second element in ignore array will be incorrect as the indexes will change. And also it will modify the original array passed as argument. Of course I can use some tmp array. –  Radek Mar 3 '10 at 3:37
    
Accidentally revoked downvote; wish I could put it back. This returns a false positive on compare([1,2],[1,2,3],[]) –  Matchu Mar 3 '10 at 3:40
1  
A'ight. I'm satisfied xD –  Matchu Mar 3 '10 at 3:51

How about this?

require 'enumerator'
def compare (a1, a2, i)
  a1.size == a2.size and
    ( a1.enum_for(:each_with_index).select{ |v, j| !i.include?(j)} ==
      a2.enum_for(:each_with_index).select{ |v, j| !i.include?(j)} )

end

compare([1,2,3,4,5], [1,7,6,4,5], [1,2]) #true
compare([1,2,3,4,5], [1,7,6,4,5], [1,2]) #true

Note This will work in Ruby 1.8.6. You can use Dmitriy Nagirnyak's method to optimize this further:

def compare (a1, a2, i)
  a1.size == a2.size and
    a1.enum_for(:each_with_index).all?{|v, j| a2[j] == v or i.include?(j)}
end
share|improve this answer
    
wow. let me check ... –  Radek Mar 3 '10 at 3:57
    
@KandadaBoggu: it gives me false but should give true ... –  Radek Mar 3 '10 at 4:00
    
What is the value you need? If you want it to be false when it matches then negate the result. –  Harish Shetty Mar 3 '10 at 4:05
    
Doesn't work when the array has duplicate values. Let me fix it. –  Harish Shetty Mar 3 '10 at 4:13
1  
You need to require 'enumerator'. I have added it to the code. –  Harish Shetty Mar 3 '10 at 5:32

Here's a solution for 1.9 that compares the arrays for < and > as well as ==:

#!/usr/bin/ruby1.9

# Return -1 if array1 < array2
#         0 if array1 == array2
#        +1 if array1 > array2
# ignore contains indices of elements to ignore

def compare(array1, array2, ignore)
  filter = lambda do |a|
    a.collect.with_index do |e, i|
      if ignore.include?(i)
        ''
      else
        e
      end
    end
  end
  filter[array1] <=> filter[array2]
end

array1 = ["02/28/10","Webinars","131","0","26 Feb 2010","0","3d, 8h, 49m, 18s"]
array2 = ["02/20/10","Webinars","131","9","26 Feb 2010","0","3d, 8h, 49m, 18s"]

p compare(array1, array2, [0, 3])    # => 0
p compare(array1, array2, [0])       # => -1
p compare(array1, array2, [3])       # => 1
share|improve this answer

Here's another one, terse and highly inefficient:

def compare a1, a2, i
  [a1,a2].map { |a|
    a.values_at(*((0...a.length).to_a - i))
  }.inject(&:==)
end
share|improve this answer

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