Neural echo state network using oscillations of gas bubbles in water

Ivan S. Maksymov, Andrey Pototsky, and Sergey A. Suslov
Phys. Rev. E 105, 044206 – Published 13 April 2022
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Abstract

In the framework of physical reservoir computing (RC), machine learning algorithms designed for digital computers are executed using analog computerlike nonlinear physical systems that can provide energy-efficient computational power for predicting time-dependent quantities that can be found using nonlinear differential equations. We suggest a bubble-based RC (BRC) system that combines the nonlinearity of an acoustic response of a cluster of oscillating gas bubbles in water with a standard echo state network (ESN) algorithm that is well suited to forecast chaotic time series. We confirm the plausibility of the BRC system by numerically demonstrating its ability to forecast certain chaotic time series similarly to or even more accurately than ESN.

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  • Received 23 December 2021
  • Accepted 21 March 2022

DOI:https://doi.org/10.1103/PhysRevE.105.044206

©2022 American Physical Society

Physics Subject Headings (PhySH)

Nonlinear DynamicsFluid DynamicsInterdisciplinary PhysicsStatistical Physics & ThermodynamicsNetworksGeneral Physics

Authors & Affiliations

Ivan S. Maksymov*

  • Optical Sciences Centre, Swinburne University of Technology, Hawthorn, Victoria 3122, Australia

Andrey Pototsky and Sergey A. Suslov

  • Department of Mathematics, Swinburne University of Technology, Hawthorn, Victoria 3122, Australia

  • *imaksymov@swin.edu.au

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Issue

Vol. 105, Iss. 4 — April 2022

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