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I'm trying to implement univariate polynomials using ZDDs, as suggested in a comment in an other question.

I've read the paper of S. Minato(you may download it here), but I don't understand how to implement the operations on these ZDDs.

The idea in the paper is that polynomials can be represented using x^(2^i) as variables. For example x^5 + x^3 + x can be rewritten as x^4x^1 + x^2x^1 + x^1, if you create nodes for each x^(2^i) variable and connect with the "1-edge" variables that are multiplied together and with the "0-edge" variables that are added together you can easily obtain a graph representing that polynomial. The ZDDs are graphs of this kind that enforce some condition on the graph(for more information read the article of Minato and the wikipedia's page on BDDs)

The coefficients can be similarly represented using sums of powers of 2 (e.g. 5 = 2^2 + 2^0 etc. With every 2^i being a variable and the nodes are connected with 1- and 0-edges in the same fashion).

Now, my problem is the algorithm for addition of two ZDDs. The algorithm seems quite simple:

If F and G (ZDDs)have no common combinations, the addition (F + G) can be completed by just merging them. When they contain some common combinations, we compute the following formulas: (F + G) = S + (Cx2), where C = F ∩ G, S = (F U G) \ C . By repeating this process, common combinations are eventually exhausted and the procedure is completed.

The problem is: how can I find "C" and "S" efficiently?

The author provides code for the multiplication, but the code is actually trivial once you have the previous algorithms implemented. And since these algorithms are not provided also the multiplication one is "useless".

Also the notion of "merge" ZDDs is not well explained, even though, considering the fact that the order of the variables should be consistent, there is only one way to merge the graphs together, and the rules to maintain this order are probably simple enough(I did not formalize them yet, but I've got a rough idea of what these are).

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1 Answer 1

up vote 1 down vote accepted

With "merge" there Minato means union (algorithm). You can see this from the example, too:

4 * y     = { { 2^2, y } }
x         = { { x } }
4 * y + x = { { 2^2, y }, { x } }

The idea is that the inner sets represent products and the whole ZDD represents the sum of those products, so if you just OR (aka union or merge) in some more sets, they're effectively added.

The complete summation algorithm actually just does (A xor B) + 2 * (A and B) (recursively) which is equivalent to the familiar bitwise addition algorithm, but the xor was written as (A or B) without (A and B).

That also makes it obvious why simply taking the union is OK when there are no common combinations - if A and B is empty, A xor B is the same as A or B and the "carry" is zero.

The algorithms for OR, AND, XOR and BUTNOT are explained in detail in The Art of Computer Programming volume 4, section 7.1.4 (the answer to question 199 is relevant). The general idea for all of them is that they consider the two sub-graphs that represent all the sets with the variable v and all the sets without the variable v separately (which are both trivially found if v is the topmost variable in one or both arguments as either the low and high children or the input itself), and then combining the result.

Union(F, G) =
  if (F = ∅) return G
  if (G = ∅) return F
  if (F = G) return F
  if (cache contains "F ∪ G" or "G ∪ F")
    return cached value

  if (F.v = G.v) result = MakeNode(F.v, F.lo ∪ G.lo, F.hi ∪ G.hi)
  if (F.v > G.v) result = MakeNode(G.v, F ∪ G.lo, G.hi)
  if (F.v < G.v) result = MakeNode(F.v, F.lo ∪ G, F.hi)

  cache result as "F ∪ G"
  return result

Intersect(F, G) =
  if (F = ∅ or G = ∅) return ∅
  if (F = G) return F
  if (cache contains "F ∩ G" or "G ∩ F")
    return cached value

  if (F.v = G.v) result = MakeNode(F.v, F.lo ∩ G.lo, F.hi ∩ G.hi)
  if (F.v > G.v) result = F ∩ G.lo
  if (F.v < G.v) result = F.lo ∩ G

  cache result as "F ∩ G"
  return result
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I had already read the TAOCP section, but I didn't get exactly how to handle these things. Anyway, I re-read it now and I understand better how to do that. I wrote an implementation and it seems to work well(I'll test it in the next days). I'm thinking of accepting your answer, because it points to the core problem, even though I think that it could be useful to add some more detail about polynomial representation, especially if someone ends up here without much knowledge and would like to give this thing a try without having to understand deeply the matter. –  Bakuriu Oct 3 '12 at 15:57
    
@Bakuriu ok sure, anything specific? –  harold Oct 3 '12 at 16:00
    
You could write a really small implementation of a ZDD in pseudo-code, without showing all the operations, just to give an idea of how the algorithms work(without having to read TAOCP). And maybe explaining a bit better how the polynomial is represented as a ZDD, so that who reads can understand what's the main idea and then reading the article of Minato will remove the last doubts. –  Bakuriu Oct 3 '12 at 16:16

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