Structural Cellular Hash Chemistry
Hiroki Sayama

TL;DR
This paper introduces Structural Cellular Hash Chemistry (SCHC), a minimalistic model that combines ecological interactions, adaptive evolution, and complexity growth in a computationally efficient framework, advancing artificial chemistry simulations.
Contribution
SCHC integrates spatial ecological interactions and evolutionary dynamics in a minimalistic, efficient model, enabling simultaneous complexity growth and adaptation.
Findings
SCHC exhibits spontaneous movement and self-replication.
Unbounded growth of complexity observed in spatial patterns.
Spatial ecological interactions and diversity are enhanced in SCHC.
Abstract
Hash Chemistry, a minimalistic artificial chemistry model of open-ended evolution, has recently been extended to non-spatial and cellular versions. The non-spatial version successfully demonstrated continuous adaptation and unbounded growth of complexity of self-replicating entities, but it did not simulate multiscale ecological interactions among the entities. On the contrary, the cellular version explicitly represented multiscale spatial ecological interactions among evolving patterns, yet it failed to show meaningful adaptive evolution or complexity growth. It remains an open question whether it is possible to create a similar minimalistic evolutionary system that can exhibit all of those desired properties at once within a computationally efficient framework. Here we propose an improved version called Structural Cellular Hash Chemistry (SCHC). In SCHC, individual identities of…
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Taxonomy
TopicsMolecular Communication and Nanonetworks · Cellular Automata and Applications · Chemical synthesis and alkaloids
