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从未解决的事件中揭示非平衡态。

Uncovering nonequilibrium from unresolved events.

作者信息

Harunari Pedro E

机构信息

Complex Systems and Statistical Mechanics, Department of Physics and Materials Science, <a href="https://ror.org/036x5ad56">University of Luxembourg</a>, L-1511 Luxembourg, Luxembourg.

出版信息

Phys Rev E. 2024 Aug;110(2-1):024122. doi: 10.1103/PhysRevE.110.024122.

Abstract

Closely related to the laws of thermodynamics, the detection and quantification of disequilibria are crucial in unraveling the complexities of nature, particularly those beneath observable layers. Theoretical developments in nonequilibrium thermodynamics employ coarse-graining methods to consider a diversity of partial information scenarios that mimic experimental limitations, allowing the inference of properties such as the entropy production rate. A ubiquitous but rather unexplored scenario involves observing events that can possibly arise from many transitions in the underlying Markov process-which we dub multifilar events-as in the cases of exchanges measured at particle reservoirs, hidden Markov models, mixed chemical and mechanical transformations in biological function, composite systems, and more. We relax one of the main assumptions in a previously developed framework, based on first-passage problems, to assess the non-Markovian statistics of multifilar events. By using the asymmetry of event distributions and their waiting times, we put forward model-free tools to detect nonequilibrium behavior and estimate entropy production, while discussing their suitability for different classes of systems and regimes where they provide no new information, evidence of nonequilibrium, a lower bound for entropy production, or even its exact value. The results are illustrated in reference models through analytics and numerics.

摘要

与热力学定律密切相关的是,不平衡的检测和量化对于揭示自然的复杂性至关重要,尤其是那些在可观测层面之下的复杂性。非平衡热力学的理论发展采用粗粒化方法来考虑各种模拟实验局限性的部分信息场景,从而能够推断诸如熵产生率等性质。一种普遍存在但尚未得到充分探索的场景涉及观察可能由潜在马尔可夫过程中的许多跃迁产生的事件——我们将其称为多线事件——例如在粒子库处测量的交换、隐马尔可夫模型、生物功能中的混合化学和机械转变、复合系统等等。我们放宽了先前基于首次通过问题开发的框架中的一个主要假设,以评估多线事件的非马尔可夫统计。通过利用事件分布及其等待时间的不对称性,我们提出了无模型工具来检测非平衡行为并估计熵产生,同时讨论它们对不同类别的系统和状态的适用性,在这些系统和状态中,它们不提供新信息、非平衡证据、熵产生的下限,甚至其精确值。通过分析和数值方法在参考模型中展示了结果。

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