Broadband Diffractive Neural Networks Enabling Classification of Visible Wavelengths

Author:

Cheong Ying Zhi12ORCID,Thekkekara Litty12,Bhaskaran Madhu12ORCID,del Rosal Blanca3ORCID,Sriram Sharath12ORCID

Affiliation:

1. Functional Materials and Microsystems Research Group and the Micro Nano Research Facility RMIT University Melbourne VIC 3000 Australia

2. ARC Centre of Excellence for Transformative Meta‐Optical Systems RMIT University Melbourne VIC 3000 Australia

3. School of Science RMIT University Melbourne VIC 3000 Australia

Abstract

Diffractive neural networks (DNNs) are emerging as a new machine learning hardware based on optical diffraction with parallel and high‐throughput information processing. The optical inputs to DNNs are spatially modulated by propagating through passive diffractive layers that work in succession to achieve an inference. Herein, visible wavelength classification using single‐ and two‐layer DNNs fabricated using direct laser writing is demonstrated. The proposed DNN approach accepts the point spread function of two different wavelengths modeled after a microscope objective as the input and modulates the input field toward the target detector for classification. Of the three models trained to classify different wavelength pairs, the highest performance observed is for the classification of 561 and 785 nm, achieving over 90% accuracy. This work demonstrates the potential of all‐optical artificial neural networks for applications requiring visible wavelengths, from visible light beam shaping to spectral analysis and optical imaging.

Funder

Australian Research Council

Publisher

Wiley

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