The influence of hyperchaoticity, synchronization, and Shannon entropy on the performance of a physical reservoir computer

Author:

Rosa Lucas A. S.1ORCID,Brugnago Eduardo L.2ORCID,Delben Guilherme J.3ORCID,Rost Jan-Michael4ORCID,Beims Marcus W.14ORCID

Affiliation:

1. Departamento de Física, Universidade Federal do Paraná 1 , 81531-980 Curitiba, Paraná, Brazil

2. Instituto de Fí sica, Universidade de São Paulo 2 , 05508-090 São Paulo, SP, Brazil

3. Departamento de Ciências Naturais e Sociais, Universidade Federal de Santa Catarina 3 , 89520-000 Curitibanos, SC, Brazil

4. Max-Planck Institute for the Physics of Complex Systems 4 , Nöthnitzerstr.38, 01187 Dresden, Germany

Abstract

In this paper, we analyze the dynamic effect of a reservoir computer (RC) on its performance. Modified Kuramoto’s coupled oscillators are used to model the RC, and synchronization, Lyapunov spectrum (and dimension), Shannon entropy, and the upper bound of the Kolmogorov–Sinai entropy are employed to characterize the dynamics of the RC. The performance of the RC is analyzed by reproducing the distribution of random, Gaussian, and quantum jumps series (shelved states) since a replica of the time evolution of a completely random series is not possible to generate. We demonstrate that hyperchaotic motion, moderate Shannon entropy, and a higher degree of synchronization of Kuramoto’s oscillators lead to the best performance of the RC. Therefore, an appropriate balance of irregularity and order in the oscillator’s dynamics leads to better performances.

Funder

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Sao Paulo Research Foundation

Publisher

AIP Publishing

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