Nonlinear Sciences – Cellular Automata and Lattice Gases
Scientific paper
2010-09-23
Nonlinear Sciences
Cellular Automata and Lattice Gases
10 pages, 8 figures
Scientific paper
We propose a method for deriving networks from one-dimensional binary cellular automata. The derived networks are usually directed and have structural properties corresponding to the dynamical behaviors of their cellular automata. Network parameters, particularly the efficiency and the degree distribution, show that the dependence of efficiency on the grid size is characteristic and can be used to classify cellular automata and that derived networks exhibit various degree distributions. In particular, a class IV rule of Wolfram's classification produces a network having a scale-free distribution.
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