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Emergence of local irreversibility in complex interacting systems

Author(s): Lynn, Christopher W; Holmes, Caroline M; Bialek, William; Schwab, David J

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Abstract: Living systems are fundamentally irreversible, breaking detailed balance and establishing an ar- row of time. But how does the evident arrow of time for a whole system arise from the interactions among its multiple elements? We show that the local evidence for the arrow of time, which is the entropy production for thermodynamic systems, can be decomposed. First, it can be split into two components: an independent term reflecting the dynamics of individual elements and an interaction term driven by the dependencies among elements. Adapting tools from non–equilibrium physics, we further decompose the interaction term into contributions from pairs of elements, triplets, and higher–order terms. We illustrate our methods on models of cellular sensing and logical computa- tions, as well as on patterns of neural activity in the retina as it responds to visual inputs. We find that neural activity can define the arrow of time even when the visual inputs do not, and that the dominant contribution to this breaking of detailed balance comes from interactions among pairs of neurons.
Publication Date: 6-Sep-2022
Electronic Publication Date: 6-Sep-2022
Citation: Lynn, Christopher W, Holmes, Caroline M, Bialek, William, Schwab, David J. (Emergence of local irreversibility in complex interacting systems. Physical Review E, 106 (3), 10.1103/physreve.106.034102
DOI: doi:10.1103/physreve.106.034102
ISSN: 2470-0045
EISSN: 2470-0053
Language: en
Type of Material: Journal Article
Journal/Proceeding Title: Physical Review E
Version: Author's manuscript



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