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Exploring the Landscape of Nonequilibrium Memories with Neural Cellular Automata
Ehsan Pajouheshgar1, Aditya Bhardwaj2,3, Nathaniel Selub4
1École Polytechnique Fédérale de Lausanne (EPFL), IC and SB Schools, Lausanne, Switzerland.
Abstract:
We investigate the landscape of many-body memories: families of local nonequilibrium dynamics that retain information about their initial conditions for thermodynamically long timescales, even in the presence of arbitrary perturbations. In two dimensions, the only well-studied memory is Toom's rule. Using a combination of rigorous proofs and machine learning methods, we show that the landscape of 2D memories is in fact quite vast. We discover memories that correct errors in ways qualitatively distinct from Toom's rule, have ordered phases stabilized by fluctuations, and preserve information only in the presence of noise. Taken together, our results show that physical systems can perform robust information storage in many distinct ways, and demonstrate that the physics of many-body memories is richer than previously realized.
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