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Optical next generation reservoir computing
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Artificial neural networks with internal dynamics exhibit remarkable capability in processing information. Reservoir computing (RC) is a canonical example that features rich computing expressivity and compatibility with physical implementations for enhanced efficiency. Recently, a new RC paradigm known as next generation reservoir computing (NGRC) further improves expressivity but compromises its physical openness, posing challenges for realizations in physical systems. Here we demonstrate optical NGRC with computations performed by light scattering through disordered media. In contrast to conventional optical RC implementations, we drive our optical reservoir directly with time-delayed inputs. Much like digital NGRC that relies on polynomial features of delayed inputs, our optical reservoir also implicitly generates these polynomial features for desired functionalities. By leveraging the domain knowledge of the reservoir inputs, we show that the optical NGRC not only predicts the short-term dynamics of the low-dimensional Lorenz63 and large-scale Kuramoto-Sivashinsky chaotic time series, but also replicates their long-term ergodic properties. Optical NGRC shows superiority in shorter training length, increased interpretability and fewer hyperparameters compared to conventional optical RC based on scattering media, while achieving better forecasting performance. Our optical NGRC framework may inspire the realization of NGRC in other physical RC systems, new applications beyond time-series processing, and the development of deep and parallel architectures broadly.
Forward citations
Cited by 2 Pith papers
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Photonic frequency multiplexed next-generation reservoir computer
A frequency-multiplexed next-generation reservoir computer with an analog optical readout performed real-time channel equalization at 5 GS/s with a symbol error rate of about 2 x 10^-3.
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Unwrapping photonic reservoirs: enhanced expressivity via random Fourier encoding over stretched domains
Increasing the phase wrapping factor beyond the 2π period boosts photonic reservoir expressivity by creating a wider set of Fourier modes through nonlinear mixing.
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