Post-apocalyptic computing from cellular automata

Fuente: arXiv
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Main Authors: Martinez, Genaro J., Adamatzky, Andrew, Chen, Guanrong
Format: Preprint
Published: 2025
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author Martinez, Genaro J.
Adamatzky, Andrew
Chen, Guanrong
author_facet Martinez, Genaro J.
Adamatzky, Andrew
Chen, Guanrong
contents Cellular automata are arrays of finite state machines that can exist in a finite number of states. These machines update their states simultaneously based on specific local rules that govern their interactions. This framework provides a simple yet powerful model for studying complex systems and emergent behaviors. We revisit and reconsider the traditional notion of an algorithm, proposing a novel perspective in which algorithms are represented through the dynamic state-space configurations of cellular automata. By doing so, we establish a conceptual framework that connects computation to physical processes in a unique and innovative way. This approach not only enhances our understanding of computation but also paves the way for the future development of unconventional computing devices. Such devices could be engineered to leverage the inherent computational capabilities of physical, chemical, and biological substrates. This opens up new possibilities for designing systems that are more efficient, adaptive, and capable of solving problems in ways that traditional silicon-based computers cannot. The integration of cellular automata into these domains highlights their potential as a transformative tool in the ongoing evolution of computational theory and practice.
format Preprint
id arxiv_https___arxiv_org_abs_2508_06035
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Post-apocalyptic computing from cellular automata
Martinez, Genaro J.
Adamatzky, Andrew
Chen, Guanrong
Cellular Automata and Lattice Gases
Neural and Evolutionary Computing
Cellular automata are arrays of finite state machines that can exist in a finite number of states. These machines update their states simultaneously based on specific local rules that govern their interactions. This framework provides a simple yet powerful model for studying complex systems and emergent behaviors. We revisit and reconsider the traditional notion of an algorithm, proposing a novel perspective in which algorithms are represented through the dynamic state-space configurations of cellular automata. By doing so, we establish a conceptual framework that connects computation to physical processes in a unique and innovative way. This approach not only enhances our understanding of computation but also paves the way for the future development of unconventional computing devices. Such devices could be engineered to leverage the inherent computational capabilities of physical, chemical, and biological substrates. This opens up new possibilities for designing systems that are more efficient, adaptive, and capable of solving problems in ways that traditional silicon-based computers cannot. The integration of cellular automata into these domains highlights their potential as a transformative tool in the ongoing evolution of computational theory and practice.
title Post-apocalyptic computing from cellular automata
topic Cellular Automata and Lattice Gases
Neural and Evolutionary Computing
url https://arxiv.org/abs/2508.06035