论文标题

机器学习协助光子设备的全球优化

Machine learning assisted global optimization of photonic devices

论文作者

Kudyshev, Zhaxylyk A., Kildishev, Alexander V., Shalaev, Vladimir M., Boltasseva, Alexandra

论文摘要

在过去的十年中,人工设计的光学材料和纳米结构的薄膜通过采用新颖的超材料和元面纱的概念来彻底改变了光子学的区域,在空间上,在空间变化的结构中可以通过设计“有效的电磁特性来量身定制”。设计和优化此类结构的当前最新方法在很大程度上取决于其单位单元或元原子的简单,直观的形状。这种方法无法为复杂的优化问题提供全球解决方案,在这种问题上,必须正确选择元元原子形状,面板几何形状,平面外架构和组成材料以产生最大的性能。在这项工作中,我们为光子元设备设计提供了一种新型的机器学习辅助全球优化框架。我们证明,使用对抗性自动编码器与元启发式优化框架相结合,可以显着提高具有复杂拓扑结构的元设备配置的优化搜索效率。我们展示了物理驱动的压缩设计空间工程的概念,该概念将基于设备的光学响应将高级正则化到对抗自动编码器的压缩空间中。除了全球优化方案的重大进步之外,我们的方法还可以通过揭示具有复杂拓扑和材料组成的元设备的光学性能的基础物理学来帮助获得全面的设计“直觉”。

Over the past decade, artificially engineered optical materials and nanostructured thin films have revolutionized the area of photonics by employing novel concepts of metamaterials and metasurfaces where spatially varying structures yield tailorable, "by design" effective electromagnetic properties. The current state-of-the-art approach to designing and optimizing such structures relies heavily on simplistic, intuitive shapes for their unit cells or meta-atoms. Such approach can not provide the global solution to a complex optimization problem where both meta-atoms shape, in-plane geometry, out-of-plane architecture, and constituent materials have to be properly chosen to yield the maximum performance. In this work, we present a novel machine-learning-assisted global optimization framework for photonic meta-devices design. We demonstrate that using an adversarial autoencoder coupled with a metaheuristic optimization framework significantly enhances the optimization search efficiency of the meta-devices configurations with complex topologies. We showcase the concept of physics-driven compressed design space engineering that introduces advanced regularization into the compressed space of adversarial autoencoder based on the optical responses of the devices. Beyond the significant advancement of the global optimization schemes, our approach can assist in gaining comprehensive design "intuition" by revealing the underlying physics of the optical performance of meta-devices with complex topologies and material compositions.

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