An experimental demonstration of neuromorphic sensing of chemical species using electro-optical reservoir computing

Fuente: arXiv
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Auteurs principaux: Anufriev, Gleb, Furniss, David, Farries, Mark C., Seddon, Angela B., Phang, Sendy
Format: Preprint
Publié: 2024
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author Anufriev, Gleb
Furniss, David
Farries, Mark C.
Seddon, Angela B.
Phang, Sendy
author_facet Anufriev, Gleb
Furniss, David
Farries, Mark C.
Seddon, Angela B.
Phang, Sendy
contents A chemical discrimination system based on photonic reservoir computing is demonstrated experimentally for the first time. The system is inspired by the way humans perceive and process visual sensory information. The electro-optical reservoir computing system is a photonic analogue of the human nervous system with the read-out layer acting as the 'brain', and the sensor that of the human eye. A task-specific optimisation of the system is implemented, and the performance of the system for the discrimination between three chemicals is presented. The results are compared to the previously published numerical simulation. This publication provides a feasibility assessment and a demonstration of a practical realisation of photonic reservoir computing for a new neuromorphic sensing system - the next generation sensor with a built-in 'intelligence' which can be trained to 'understand' and to make a real time sensing decision based on the training data.
format Preprint
id arxiv_https___arxiv_org_abs_2410_11755
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle An experimental demonstration of neuromorphic sensing of chemical species using electro-optical reservoir computing
Anufriev, Gleb
Furniss, David
Farries, Mark C.
Seddon, Angela B.
Phang, Sendy
Optics
Applied Physics
Classical Physics
Instrumentation and Detectors
A chemical discrimination system based on photonic reservoir computing is demonstrated experimentally for the first time. The system is inspired by the way humans perceive and process visual sensory information. The electro-optical reservoir computing system is a photonic analogue of the human nervous system with the read-out layer acting as the 'brain', and the sensor that of the human eye. A task-specific optimisation of the system is implemented, and the performance of the system for the discrimination between three chemicals is presented. The results are compared to the previously published numerical simulation. This publication provides a feasibility assessment and a demonstration of a practical realisation of photonic reservoir computing for a new neuromorphic sensing system - the next generation sensor with a built-in 'intelligence' which can be trained to 'understand' and to make a real time sensing decision based on the training data.
title An experimental demonstration of neuromorphic sensing of chemical species using electro-optical reservoir computing
topic Optics
Applied Physics
Classical Physics
Instrumentation and Detectors
url https://arxiv.org/abs/2410.11755