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The inverse design of structural color using machine learning

机译:结构的逆设计颜色使用机器学习

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摘要

Efficiently identifying optical structures with desired functionalities, referred to as inverse design, can dramatically accelerate the invention of new photonic devices, and this is especially useful in the design of large scale integrated photonic chips. Structural color with high-resolution, high-saturation, and low-loss holds great promise in image display, data storage and information security. However, the inverse design of structural color remains an open challenge, and this impedes practical application. Here, we propose an inverse design strategy for structural color using machine learning (ML) technologies. The supervised learning (SL) models are trained with the geometries and colors of dielectric arrays to capture accurate geometry-color relationships, and these are then applied to a reinforcement learning (RL) algorithm in order to find the optical structural geometries for the desired color. Our work succeeds in finding simple and accurate models to describe geometry-color relationships, which significantly improves the efficiency of the design. This strategy provides a systematic method to directly encode generic functionality into a set of structures and geometries, paving the way for the inverse design of functional photonic devices.
机译:有效地识别与光学结构想要的功能,称为逆设计,发明可以显著加快新的光子设备,这是特别用于大规模集成的设计光子芯片。高分辨率、高饱和和低损耗拥有更大的潜力在图像显示、数据存储和信息安全。逆设计结构仍然是一个颜色开放的挑战,这阻碍了实用应用程序。战略结构颜色使用机器学习(ML)技术。学习(SL)模型的训练介质的几何图形和颜色数组捕捉准确geometry-color关系,然后这些应用于强化学习(RL)算法来找到光学结构所需的几何图形颜色。精确的模型来描述geometry-color关系,大大提高了设计的效率。一个系统性的方法来直接编码通用为一组的结构和功能几何图形,为逆设计铺平了道路功能光子设备。

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