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Designing nanophotonic structures using conditional deep convolutional generative adversarial networks

So Sunae et al · Wiley · 2019

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Data-driven design approaches based on deep learning have been introduced in nanophotonics to reduce time-consuming iterative simulations, which have been a major challenge. Here, we report the first use of conditional deep convolutional generative adversarial networks to design nanophotonic antennae that are not constrained to predefined shapes. For given input reflection spectra, the network generates desirable designs in the form of images; this allows suggestions of new structures that cannot be represented by structural parameters. Simulation results obtained from the generated designs agree well with the input reflection spectrum. This method opens new avenues toward the development of nanophotonics by providing a fast and convenient approach to the design of complex nanophotonic structures that have desired optical properties.

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APA 7

al, S. S. E. (2019). Designing nanophotonic structures using conditional deep convolutional generative adversarial networks. https://doi.org/10.1515/nanoph-2019-0117

MLA

al, So Sunae et. "Designing nanophotonic structures using conditional deep convolutional generative adversarial networks." 2019. https://doi.org/10.1515/nanoph-2019-0117.

Chicago

al, So Sunae et. 2019. "Designing nanophotonic structures using conditional deep convolutional generative adversarial networks.". https://doi.org/10.1515/nanoph-2019-0117.

Harvard

al, S. S. E. 2019, Designing nanophotonic structures using conditional deep convolutional generative adversarial networks, Wiley, available at: https://doi.org/10.1515/nanoph-2019-0117 [Accessed 8 Aug. 2026].

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Title
Designing nanophotonic structures using conditional deep convolutional generative adversarial networks
Author / contributors
So Sunae et al
Publisher
Wiley
Publication year
2019
ISSN
2192-8606
ISSN
2192-8606
Language
English

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