热力学可逆逻辑的一种新的操作范式:混沌非线性动态电路的绝热变换

M. Frank, E. Debenedictis
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引用次数: 4

摘要

继续提高计算能源效率将很快需要开发和部署新的计算操作范式,以绕过适用于传统实现的布尔逻辑电路的基本热力学限制。特别是,兰道尔原理告诉我们,不可逆的信息擦除要求每擦除比特的最小能量耗散为kT ln 2,其中k是玻尔兹曼常数,T是可用散热器的温度。然而,正确应用这一原则需要仔细描述在给定的物理计算机制中“信息擦除”的实际构成。在本文中,我们证明了抽象组合逻辑网络可以被有效地认为不包含超出其输入中指定的信息,并且,正因为如此,适当设计的多层网络的物理实现实际上可以在单个步骤中更新,同时不会产生比更新其输入所需的理论最小能量耗散更大的能量耗散。此外,如果网络状态通过可逆转变过程绝热更新,则该能量可以接近于零。我们用于更新逻辑网络的新颖操作范式提出了一种全新的硬件设备和电路,可用于可逆地实现布尔逻辑,其能量耗损远低于兰道尔极限。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel operational paradigm for thermodynamically reversible logic: Adibatic transformation of chaotic nonlinear dynamical circuits
Continuing to improve computational energy efficiency will soon require developing and deploying new operational paradigms for computation that circumvent the fundamental thermodynamic limits that apply to conventionally-implemented Boolean logic circuits. In particular, Landauer's principle tells us that irreversible information erasure requires a minimum energy dissipation of kT ln 2 per bit erased, where k is Boltzmann's constant and T is the temperature of the available heat sink. However, correctly applying this principle requires carefully characterizing what actually constitutes “information erasure” within a given physical computing mechanism. In this paper, we show that abstract combinational logic networks can validly be considered to contain no information beyond that specified in their input, and that, because of this, appropriately-designed physical implementations of even multi-layer networks can in fact be updated in a single step while incurring no greater theoretical minimum energy dissipation than is required to update their inputs. Furthermore, this energy can approach zero if the network state is updated adiabatically via a reversible transition process. Our novel operational paradigm for updating logic networks suggests an entirely new class of hardware devices and circuits that can be used to reversibly implement Boolean logic with energy dissipation far below the Landauer limit.
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