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I have lots of math to do on lots of data but it's all based on a few base templates. So instead of say, when doing math between 2 arrays I do this:

results = [a[0]-b[1],a[1]-b[2],a[2]-b[3]]

I want to instead just put the base template: a[0]-b[1] and make it automatically fill say 50 places in the results array. So I don't always have to manually type it.

What would be the ways to do that? And would a good way be to create 1 method that does this automatically. And I just tell it the math and it fills out an array?

I have no clue, I'm really new to programming.

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2 Answers

up vote 1 down vote accepted

Custom

  a = [2,3,4..............,1000]
  b = [1,2,3,4,.............900]

  class Array
   def self.calculate_difference(arr1,arr2,limit)
    begin
     result ||= Array.new
     limit.send(:times) {|index| result << arr1[index]-arr2[index+=1]} 
     result
   rescue
    raise "Index/Limit Error"
   end
  end
 end

Call by:

Array.calculate_difference(a,b,50)
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Hmm I'm getting all kinds of errors using that. Obviously I fixed the arrays first. But I still get "undefined method `+' for nil:NilClass (NoMethodError)" –  user1594138 Sep 8 '12 at 12:30
    
@user1594138 updated the answer –  AnkitG Sep 8 '12 at 13:01
    
Thank you very much! Though I had to put .to_f to make it work. And that was probably part of the problem with your earlier code as well. I've had this problem before where I thought it would easily recognize the array as the correct data type but it doesn't seem to do it. I'm not sure if its normal or not, I'm on windows. –  user1594138 Sep 8 '12 at 13:23
    
It had the same problem being not able to calculate the arrays together. –  user1594138 Sep 8 '12 at 13:26
1  
Yes I did thanks! This is the best solution for me. With it I can also make the math itself entered when using the method/class. This way I can use that one code base to create everything I need. Thank you very much! - Basically your answer opened up the solution on how to do all of this. –  user1594138 Sep 8 '12 at 13:34
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a = [2,3,4]
b = [1,2,3,4]

results = a.zip(b.drop(1)).take(50).map { |v,w| v - w }
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Thanks for the answer. Can you explain it a little bit for me? How would I get the intended results from that? This calculates a0 with b0, which is another calculation I want to do. However what about a0 - b1? And then the last thing is I absolutely don't want it to calculate the whole arrays together, only 50 spots or so. Whatever I pick. –  user1594138 Sep 8 '12 at 11:24
    
@user1594138, see the update –  megas Sep 8 '12 at 11:41
    
Thank you very much! –  user1594138 Sep 8 '12 at 11:48
    
+1 for the functional approach –  tokland Sep 8 '12 at 11:52
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