Reservoir Computing with All‐Optical Non‐Fading Memory in a Self‐Pulsing Microresonator Network

衰退 油藏计算 材料科学 光电子学 光学 计算机科学 电信 物理 人工神经网络 机器学习 解码方法 循环神经网络
作者
Alessio Lugnan,Stefano Biasi,Alessandro Foradori,Peter Bienstman,Lorenzo Pavesi
出处
期刊:Advanced Optical Materials [Wiley]
卷期号:13 (11) 被引量:2
标识
DOI:10.1002/adom.202403133
摘要

Abstract Photonic neuromorphic computing may offer promising applications for a broad range of photonic sensors, including optical fiber sensors, to enhance their functionality while avoiding loss of information, energy consumption, and latency due to optical‐electrical conversion. However, time‐dependent sensor signals usually exhibit much slower timescales than photonic processors, which also generally lack energy‐efficient long‐term memory. To address this, a first implementation of physical reservoir computing with non‐fading memory for multi‐timescale signal processing is experimentally demonstrated. This is based on a fully passive network of 64 coupled silicon microring resonators. This compact photonic reservoir is capable of hosting energy‐efficient nonlinear dynamics and multistability. It can process and retain input signal information for an extended duration, at least tens of microseconds. This reservoir computing system can learn to infer the timing of a single input pulse and the spike rate of an input spike train, even after a relatively long period following the end of the input excitation. This operation is demonstrated at two different timescales, with approximately a factor of 5 difference. This work presents a novel approach to extending the memory of photonic reservoir computing and its timescale of application.

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