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Unwrapping photonic reservoirs: Enhanced expressivity via random Fourier encoding over stretched domains

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posted on 2025-09-16, 11:09 authored by Gerard McCaulGerard McCaul, Girish Tripathy TripathyGirish Tripathy Tripathy, Giulia Marcucci, Juan Totero GongoraJuan Totero Gongora
Photonic Reservoir Computing (RC) systems leverage the complex propagation and nonlinear interaction of optical waves to perform information processing tasks. These systems employ a combination of optical data encoding (in the field amplitude and/or phase), random scattering, and nonlinear detection to generate nonlinear features that can be processed via a linear readout layer. In this work, we propose a novel scattering-assisted photonic reservoir encoding scheme where the input phase is deliberately wrapped multiple times beyond the natural period of the optical waves [0,2π). We demonstrate that, rather than hindering nonlinear separability through loss of bijectivity, wrapping significantly improves the reservoir’s prediction performance across regression and classification tasks that are unattainable within the canonical 2π period. We demonstrate that this counterintuitive effect stems from the nonlinear interference between sets of random synthetic frequencies introduced by the encoding, which generates a rich feature space spanning both the feature and sample dimensions of the data. Our results highlight the potential of engineered phase wrapping as a computational resource in RC systems based on phase encoding, paving the way for novel approaches to designing and optimizing physical computing platforms based on topological and geometric stretching.<p></p>

Funding

AI-powered micro-comb lasers: a new approach to transfer portable atomic clock accuracy in integrated photonics : EP/W028344/1

Quantum reservoir computing for efficient signal processing

UK Research and Innovation

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AI-powered micro-comb lasers: a new approach to transfer portable atomic clock accuracy in integrated photonics

Engineering and Physical Sciences Research Council

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Quantum reservoir computing for efficient signal processing

European Commission

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History

School

  • Science

Department

  • Physics

Published in

Chaos: An Interdisciplinary Journal of Nonlinear Science

Volume

35

Issue

9

Article number

093129

Publisher

AIP Publishing

Version

  • VoR (Version of Record)

Rights holder

© Author(s)

Publisher statement

All article content, except where otherwise noted, is licensed under a Creative Commons Attribution-NonCommercial 4.0 International (CC BY-NC) license (https://creativecommons.org/licenses/by-nc/4.0/).

Acceptance date

2025-08-23

Publication date

2025-09-10

Copyright date

2025

ISSN

1054-1500

eISSN

1089-7682

Language

  • en

Depositor

Dr Juan Totero Gongora. Deposit date: 15 September 2025