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◆ Nature Communications2026-01-10· Nonlinear system

Nonlinear thermodynamic computing out of equilibrium

Stephen Whitelam, Corneel Casert

原始摘要(英文原文)· Original abstract
We present the design for a thermodynamic computer that can perform arbitrary nonlinear calculations in or out of equilibrium. Simple thermodynamic circuits, fluctuating degrees of freedom in contact with a thermal bath and confined by a quartic potential, display an activity that is a nonlinear function of their input. Such circuits can therefore be regarded as thermodynamic neurons, and can serve as the building blocks of networked structures that act as thermodynamic neural networks, universal function approximators whose operation is powered by thermal fluctuations. We simulate a digital model of a thermodynamic neural network, and show that its parameters can be adjusted by genetic algorithm to perform nonlinear calculations at specified observation times, regardless of whether the system has attained thermal equilibrium. This work expands the field of thermodynamic computing beyond the regime of thermal equilibrium, enabling fully nonlinear computations, analogous to those performed by classical neural networks, at specified observation times. To date, thermodynamic computers have been designed to work in thermal equilibrium. Here, the authors show that thermodynamic circuits can perform nonlinear computations, similar to those performed by neural networks, and do so at a specified observation time, whether in or out of equilibrium.
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