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Nonequilibrium thermodynamics and information theory: basic concepts and relaxing dynamics

机译:非纤细热力学和信息理论:基本概念和放松动态

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摘要

Thermodynamics is based on the notions of energy and entropy. While energy is the elementary quantity governing physical dynamics, entropy is the fundamental concept in information theory. In this work, starting from first principles, we give a detailed didactic account on the relations between energy and entropy and thus physics and information theory. We show that thermodynamic process inequalities, like the second law, are equivalent to the requirement that an effective description for physical dynamics is strongly relaxing. From the perspective of information theory, strongly relaxing dynamics govern the irreversible convergence of a statistical ensemble towards the maximally non-commital probability distribution that is compatible with thermodynamic equilibrium parameters. In particular, Markov processes that converge to a thermodynamic equilibrium state are strongly relaxing. Our framework generalizes previous results to arbitrary open and driven systems, yielding novel thermodynamic bounds for idealized and real processes.
机译:热力学基于能量和熵的概念。虽然能量是管理物理动态的基本数量,但熵是信息理论中的基本概念。在这项工作中,从第一原则开始,我们向能源和熵之间的关系提供详细的教学账户,从而提供了物理和信息理论。我们表明热力学过程不等式,如第二法,相当于要求物理动态的有效描述强烈放松。从信息理论的角度来看,强烈放松的动态地控制统计集合的不可逆收敛,朝着与热力学平衡参数兼容的最大非营利性概率分布。特别地,马尔可夫过程将收敛到热力学平衡状态强烈放松。我们的框架将以前的结果推广到任意开放和驱动的系统,产生了用于理想化和实际过程的新型热力学界限。

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