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A284483
Binary representation of the x-axis, from the left edge to the origin, of the n-th stage of growth of the two-dimensional cellular automaton defined by "Rule 961", based on the 5-celled von Neumann neighborhood.
3
1, 0, 111, 1101, 11110, 111101, 1111110, 11111101, 111111110, 1111111101, 11111111110, 111111111101, 1111111111110, 11111111111101, 111111111111110, 1111111111111101, 11111111111111110, 111111111111111101, 1111111111111111110, 11111111111111111101
OFFSET
0,3
COMMENTS
Initialized with a single black (ON) cell at stage zero.
REFERENCES
S. Wolfram, A New Kind of Science, Wolfram Media, 2002; p. 170.
FORMULA
Conjectures from Colin Barker, Mar 28 2017: (Start)
G.f.: (1 - 10*x + 110*x^2 + x^3 - 11*x^4 + 10*x^5) / ((1 - x)*(1 + x)*(1 - 10*x)).
a(n) = (10^(n+1) - 10)/9 for n>2 and even.
a(n) = (10^(n+1) - 91)/9 for n>2 and odd.
a(n) = 10*a(n-1) + a(n-2) - 10*a(n-3) for n>5.
(End)
MATHEMATICA
CAStep[rule_, a_] := Map[rule[[10 - #]] &, ListConvolve[{{0, 2, 0}, {2, 1, 2}, {0, 2, 0}}, a, 2], {2}];
code = 961; stages = 128;
rule = IntegerDigits[code, 2, 10];
g = 2 * stages + 1; (* Maximum size of grid *)
a = PadLeft[{{1}}, {g, g}, 0, Floor[{g, g}/2]]; (* Initial ON cell on grid *)
ca = a;
ca = Table[ca = CAStep[rule, ca], {n, 1, stages + 1}];
PrependTo[ca, a];
(* Trim full grid to reflect growth by one cell at each stage *)
k = (Length[ca[[1]]] + 1)/2;
ca = Table[Table[Part[ca[[n]] [[j]], Range[k + 1 - n, k - 1 + n]], {j, k + 1 - n, k - 1 + n}], {n, 1, k}];
Table[FromDigits[Part[ca[[i]] [[i]], Range[1, i]], 10], {i, 1, stages - 1}]
CROSSREFS
KEYWORD
nonn,easy
AUTHOR
Robert Price, Mar 27 2017
STATUS
approved