Lightweight Metasurface Absorber Customization with a Conditional Generative Adversarial Network

2023 IEEE International Workshop on Electromagnetics: Applications and Student Innovation Competition (iWEM)(2023)

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摘要
Deep learning algorithm known as conditional generative adversarial network (cGAN), which enables the generation of novel graphical patterns. Here we propose a deep learning method based on cGAN for rapid customization of lightweight metasurface absorbers. As a result, the proposed method offers design flexibility and diversity, facilitating the rapid creation of compliant metasurface designs. Moreover, this approach can be readily applied to the design of other on-demand designs.
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关键词
deep learning,conditional generative adversarial networks,metasurface,reverse design
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