Inverse design with flexible design targets via deep learning: Tailoring of electric and magnetic multipole scattering from nano-spheres
Ana Estrada-Real, Abdourahman Khaireh-Walieh, Bernhard Urbaszek, Peter, R. Wiecha

TL;DR
This paper introduces a flexible deep learning method for inverse nano-optics design that can handle a wide range of targets without re-training, significantly reducing computational costs.
Contribution
The authors propose a novel ROI-based data enrichment technique enabling a single neural network to address diverse design targets without additional training.
Findings
Network can tailor specific multipole scattering in nano-spheres.
Method works across broad spectral ranges.
No re-training needed for different design modifications.
Abstract
Deep learning is a promising, ultra-fast approach for inverse design in nano-optics, but despite fast advancement of the field, the computational cost of dataset generation, as well as of the training procedure itself remains a major bottleneck. This is particularly inconvenient because new data need to be generated and a new network needs to be trained for any modification of the problem. We propose a technique that allows to train a single neural network on a broad range of design targets without any re-training. The key idea of our method is to enrich existing data with random "regions of interest" (ROI) labels. A model trained on such ROI-decorated data becomes capable to operate on a broad range of physical targets, while it learns to focus its design effort on a user-defined ROI, ignoring the rest of the physical domain. We demonstrate the method by training a tandem-network on…
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Taxonomy
TopicsMetamaterials and Metasurfaces Applications · Microwave Engineering and Waveguides · Microwave and Dielectric Measurement Techniques
