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Somebody tell me what's going on here:

a = [0,1,2]
a.each {|x| a[x] = a}

The result is [[...], [...], [...]]. And if I evaluate a[0] I get [[...], [...], [...]]. And if I evaluate a[0][0] I get [[...], [...], [...]] ad infinitum.

Have I created an array of infinite dimensionality? How/Why should this possibly work?

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Why not? at position a[x] you find a, on which you can call a[x] again, etc., etc. Dimensionality always has also to do with orthogonality. This premise isn't given here. –  flq Jan 17 '11 at 19:38
1  
Note that this has nothing to do with blocks. a = []; a[0] = a; a[1] = a; a[2] = a will have exactly the same result. –  sepp2k Jan 17 '11 at 19:49
    
Using blocks you can actually (not quite) create an infinite dimensional array blk = proc { |i| Array.new(10, &blk) }; a = Array.new(10, &blk). This causes a SystemStackError though as Ruby can't handle infinite recursion. –  Nemo157 Jan 17 '11 at 19:57

2 Answers 2

up vote 3 down vote accepted

Basically you've modified every element in a to reference the list itself. The list is recursively referencing itself:

a[0] # => a
a[0][0] # => a[0], which is a
a[0][0][0] # => a[0][0], which is a[0], which is a
...

(# => is a Rubyism for "this line evaluates to")

Depending on how you look at it it is not infinite. It's more or less just like a piece of paper with the words "please turn over" written on both sides.

The reason that Ruby prints [...] is that it is clever enough to discover that the list is recursive, and avoids going into an infinite loop.

By the way, your usage of each is a bit non-idiomatic. each returns the list, and you usually don't assign this return value to a variable (since you already have a variable referencing it, a in this case). In other words, your code assigns [0,1,2] to a, then loops over a (setting each element to a), then assigns a to a.

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Ah... I see. I don't think I've ever played with a language where you could do this. –  JnBrymn Jan 17 '11 at 19:43
2  
@John: You can do this in almost any language. Including C, C++ (using explicit pointers or references), java, C#, python and many others. –  sepp2k Jan 17 '11 at 19:51
    
Ah... I see. And I'm starting to feel kinda dumb. In retrospect, this all probably should have been obvious. –  JnBrymn Jan 18 '11 at 21:32

I think it's a self-referential data structure. The a[x]=a puts a's pointer in a[x].

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