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arXiv · 2503.12802

Thermodynamic optimization of finite-time feedback protocols for Markov jump systems

Abstract

In recent advances in finite-time thermodynamics, optimization of entropy production required for finite-time information processing is an important issue. In this work, we consider finite-time feedback processes in classical discrete systems described by Markov jump processes, and derive achievable bounds on entropy production for feedback processes controlled by Maxwell's demons. The key ingredients of our approach is optimal transport theory and an achievable Fano's inequality, by which we optimize the Wasserstein distance over final distributions under fixed consumed information. Our study reveals the minimum entropy production for consuming a certain amount of information, and moreover, the optimal feedback protocol to achieve it. These results are expected to lead to design principles for information processing in various stochastic systems with discrete states.

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BibTeXRIS

Rihito Nagase, Takahiro Sagawa. 2025-03-17. Thermodynamic optimization of finite-time feedback protocols for Markov jump systems. https://arxiv.org/abs/2503.12802

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