This is a front-end for the Online Encyclopedia of Integer Sequences, made by Christian Perfect. The idea is to provide OEIS entries in non-ancient HTML, and then to think about how they're presented visually. The source code is on GitHub.
%I A273337 #12 Feb 16 2025 08:33:35 %S A273337 3,13,31,32,40,48,56,64,72,80,88,96,104,112,120,128,136,144,152,160, %T A273337 168,176,184,192,200,208,216,224,232,240,248,256,264,272,280,288,296, %U A273337 304,312,320,328,336,344,352,360,368,376,384,392,400,408,416,424,432 %N A273337 First differences of number of active (ON, black) cells in n-th stage of growth of two-dimensional cellular automaton defined by "Rule 657", based on the 5-celled von Neumann neighborhood. %C A273337 Initialized with a single black (ON) cell at stage zero. %D A273337 S. Wolfram, A New Kind of Science, Wolfram Media, 2002; p. 170. %H A273337 Robert Price, <a href="/A273337/b273337.txt">Table of n, a(n) for n = 0..127</a> %H A273337 N. J. A. Sloane, <a href="http://arxiv.org/abs/1503.01168">On the Number of ON Cells in Cellular Automata</a>, arXiv:1503.01168 [math.CO], 2015 %H A273337 Eric Weisstein's World of Mathematics, <a href="https://mathworld.wolfram.com/ElementaryCellularAutomaton.html">Elementary Cellular Automaton</a> %H A273337 S. Wolfram, <a href="http://wolframscience.com/">A New Kind of Science</a> %H A273337 <a href="/index/Ce#cell">Index entries for sequences related to cellular automata</a> %H A273337 <a href="https://oeis.org/wiki/Index_to_2D_5-Neighbor_Cellular_Automata">Index to 2D 5-Neighbor Cellular Automata</a> %H A273337 <a href="https://oeis.org/wiki/Index_to_Elementary_Cellular_Automata">Index to Elementary Cellular Automata</a> %F A273337 Conjectures from _Colin Barker_, May 20 2016: (Start) %F A273337 a(n) = 8*(1+n) for n>2. %F A273337 a(n) = 2*a(n-1)-a(n-2) for n>4. %F A273337 G.f.: (3+7*x+8*x^2-17*x^3+7*x^4) / (1-x)^2. %F A273337 (End) %t A273337 CAStep[rule_,a_]:=Map[rule[[10-#]]&,ListConvolve[{{0,2,0},{2,1,2},{0,2,0}},a,2],{2}]; %t A273337 code=657; stages=128; %t A273337 rule=IntegerDigits[code,2,10]; %t A273337 g=2*stages+1; (* Maximum size of grid *) %t A273337 a=PadLeft[{{1}},{g,g},0,Floor[{g,g}/2]]; (* Initial ON cell on grid *) %t A273337 ca=a; %t A273337 ca=Table[ca=CAStep[rule,ca],{n,1,stages+1}]; %t A273337 PrependTo[ca,a]; %t A273337 (* Trim full grid to reflect growth by one cell at each stage *) %t A273337 k=(Length[ca[[1]]]+1)/2; %t A273337 ca=Table[Table[Part[ca[[n]][[j]],Range[k+1-n,k-1+n]],{j,k+1-n,k-1+n}],{n,1,k}]; %t A273337 on=Map[Function[Apply[Plus,Flatten[#1]]],ca] (* Count ON cells at each stage *) %t A273337 Table[on[[i+1]]-on[[i]],{i,1,Length[on]-1}] (* Difference at each stage *) %Y A273337 Cf. A273334. %K A273337 nonn,easy %O A273337 0,1 %A A273337 _Robert Price_, May 20 2016