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The following modify method somehow modifies the whole @x array instead of just simply generating another element to be pushed later. How come?

def modify i, s
  t = @x[-1]
  t[i] = t[i] + s
  t
end

@x = [ [10, 12] ]
@x << modify(0, 1)

puts @x

Edited The following code have done the trick. Still I wonder if its possible to get rid of the p-argument

def modify p, i, s
  a = p.to_a
  a[i] += s*@delta[i]
  Vector.elements( a )
end
share|improve this question
3  
Can you clarify what you're trying to accomplish here. What do you want the method to do? Also, why are you referring to a specific instance variable (@x) in the method, rather than, say, self? – Telemachus Oct 20 '09 at 22:18
    
it is clear exactly why this method modifies the whole @x. unclear is what you are trying to accomplish. what is the application of this? can you elaborate on the context? – avguchenko Oct 21 '09 at 1:46
    
I'm trying to modify a shared vector (@x[-1]) and then push modified version to the @x array. – gmile Oct 21 '09 at 15:12
    
The problem consists of two parts: 1. I need to modify only a single component of a vector 2. Vector can hold float components (.clone won't do the trick) – gmile Oct 21 '09 at 15:15

You should probably redo from start, but in the spirit of small changes ... try changing your method to reduce side effects.

If you want to return a single Fixnum element:

def modify i, s
  t = @x[-1]
  r = t[i] + s
  r
end

or, if you want to return an array to inject into the greater array of tuples

def modify i, s
  t = @x[-1].dup
  t[i] = t[i] + s
  t
end

In the spirit of understanding, you should read up on Ruby objects and how they are references and how Ruby methods have has side-effects.

Study this:

a=[1,2]
b=a
b[0]=4
puts a
> [4,2]

You might want to do a dupe

a=[1,2]
b=a.dup
b[0]=4
puts a
> [1,2]
share|improve this answer
    
too many sub-variables... is there a chance to pass the value, not the link ? – gmile Oct 20 '09 at 22:08
    
@Bob Aman: here we do not need the dupe because i changed t[i]=... to r=... – avguchenko Oct 20 '09 at 22:27
    
This not only removes the side-effect, it also changes the return type of the method. Previously, it returned an array. This version returns an integer. Since it appears to be an array of arrays, this is probably incorrect. – Chuck Oct 20 '09 at 22:59
    
I think we can all agree that there are numerous problems with gmile's example. – jrhicks Oct 21 '09 at 1:14
    
@Chuck: the question specified that he wanted to generate "another element to be pushed later." I think this is a side effect of the vagueness of the question. I do not feel the downvote is fair. – avguchenko Oct 21 '09 at 1:35

@x[-1] is the inner array [10, 12]. You set t to reference this array. You then modify this array with the t[i] = part.

share|improve this answer
    
how do I set t-variable not to reference, but to only pick the value? – gmile Oct 20 '09 at 21:58
2  
Clone it. t = @x[-1].clone – Chuck Oct 20 '09 at 22:28
    
lose the t[i]= and replace it with any new variable – avguchenko Oct 20 '09 at 22:32
    
@avguchenko: As I said in the comments to your answer, that wouldn't have the desired effect. He appears to want a modified version of the array. Replacing the mutation of t with a variable holding a single element of t doesn't work. – Chuck Oct 20 '09 at 23:04

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