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Autonomous Temporal Probability Concentration: Clockworks and the Second Law of Thermodynamics

机译:自主时间概率集中:发条和热力学的第二律

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According to thermodynamics, the inevitable increase of entropy allows the past to be distinguished from the future. From this perspective, any clock must incorporate an irreversible process that allows this flow of entropy to be tracked. In addition, an integral part of a clock is a clockwork, that is, a system whose purpose is to temporally concentrate the irreversible events that drive this entropic flow, thereby increasing the accuracy of the resulting clock ticks compared to counting purely random equilibration events. In this article, we formalize the task of autonomous temporal probability concentration as the inherent goal of any clockwork based on thermal gradients. Within this framework, we show that a perfect clockwork can be approximated arbitrarily well by increasing its complexity. Furthermore, we combine such an idealized clockwork model, comprised of many qubits, with an irreversible decay mechanism to showcase the ultimate thermodynamic limits to the measurement of time.
机译:根据热力学,熵的不可避免的增加允许过去与未来区分开来。从这个角度来看,任何时钟都必须包含一个不可逆的过程,允许跟踪这种熵流。另外,时钟的积分部分是发条,即,其目的是在时间上集中驱动这种熵流的不可逆事件的系统,从而与计数纯无随机平衡事件相比增加所得时钟蜱的精度。在本文中,我们将自治时间概率集中的任务形式正式,作为基于热梯度的任何发条的固有目标。在此框架内,我们表明,通过提高其复杂性,我们可以近似地近似地近似地近似。此外,我们将这种理想化的发条模型组合在一起,其中包括许多Qubits,具有不可逆转的衰减机制来展示最终的热力学限制来测量时间。

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