TY - JOUR
T1 - Lerch distribution based on maximum nonsymmetric entropy principle
T2 - Application to Conway's game of life cellular automaton
AU - Contreras-Reyes, Javier E.
N1 - Publisher Copyright:
© 2021 Elsevier Ltd
PY - 2021/10
Y1 - 2021/10
N2 - Conway's Game of Life (GoL) is a biologically inspired computational model which can approach the behavior of complex natural phenomena such as the evolution of ecological communities and populations. The GoL frequency distribution of events on log-log scale has been proved to satisfy the power-law scaling. In this work, GoL is connected to the entropy concept through the maximum nonsymmetric entropy (MaxNSEnt) principle. In particular, the nonsymmetric entropy is maximized to lead to a general Zipf's law under the special auxiliary information parameters based on Hurwitz–Lerch Zeta function. The Lerch distribution is then generated, where the Zipf, Zipf–Mandelbrot, Good and Zeta distributions are analyzed as particular cases. In addition, the Zeta distribution is linked to the famous golden number. For GoL simulations, the Good distribution presented the best performance in log-log linear regression models for individual cell population, whose exponents were far from the golden number. This result suggests that individual cell population decays slower than a hypothetical slope equal to a (fast decaying) negative golden number.
AB - Conway's Game of Life (GoL) is a biologically inspired computational model which can approach the behavior of complex natural phenomena such as the evolution of ecological communities and populations. The GoL frequency distribution of events on log-log scale has been proved to satisfy the power-law scaling. In this work, GoL is connected to the entropy concept through the maximum nonsymmetric entropy (MaxNSEnt) principle. In particular, the nonsymmetric entropy is maximized to lead to a general Zipf's law under the special auxiliary information parameters based on Hurwitz–Lerch Zeta function. The Lerch distribution is then generated, where the Zipf, Zipf–Mandelbrot, Good and Zeta distributions are analyzed as particular cases. In addition, the Zeta distribution is linked to the famous golden number. For GoL simulations, the Good distribution presented the best performance in log-log linear regression models for individual cell population, whose exponents were far from the golden number. This result suggests that individual cell population decays slower than a hypothetical slope equal to a (fast decaying) negative golden number.
KW - Cellular automata
KW - Conway's game of life
KW - Golden number
KW - Hurwitz–Lerch Zeta function
KW - Lerch distribution
KW - Maximum nonsymmetric entropy
UR - http://www.scopus.com/inward/record.url?scp=85111507385&partnerID=8YFLogxK
U2 - 10.1016/j.chaos.2021.111272
DO - 10.1016/j.chaos.2021.111272
M3 - Article
AN - SCOPUS:85111507385
SN - 0960-0779
VL - 151
JO - Chaos, Solitons and Fractals
JF - Chaos, Solitons and Fractals
M1 - 111272
ER -