用生成模型逆向设计可制造的超表面吸波器,兼顾精度与多样性。
Inverse Design of Realizable Metasurface based Absorbers using Improved Conditioning and Diversity Enhanced Progressively Growing GANs
- 基于改进的渐进式GAN,融合频谱与制造约束条件
- 生成结果在2-18GHz频段满足目标响应,误差仅0.0052
- 适合需要多样化、物理可实现超表面设计的研究者
超表面可精确调控电磁波,应用于波束偏转、传感和隐身等场景。然而,针对特定电磁响应的逆向设计仍面临计算成本高及现有生成方法条件控制能力弱、多样性不足的挑战。本文提出一种生成式逆向设计框架,可在连续频谱约束下可控、物理一致地合成超表面结构。采用带梯度惩罚的渐进式Wasserstein GAN,结合特征归一化调制进行稳定条件传播;通过代理模型辅助的频谱对齐损失,将电磁一致性嵌入生成学习过程。进一步引入行列式点过程多样性正则化策略,生成几何多样但频谱一致的设计。在2–18 GHz频段内,生成的超表面吸波器经电磁仿真验证,平均均方误差达0.0052,多样性得分0.8730,带宽对齐准确率0.8533,有效电磁设计生成率达89.57%,充分证明其生成高精度、多样、电磁一致且可制造的超表面配置的能力。
原文摘要 · Abstract (English)
Metasurfaces enable precise manipulation of electromagnetic waves for applications such as beam steering, sensing, and stealth technology. However, inverse design of metasurfaces with targeted EM responses remains challenging due to the computational expense of iterative full wave simulation driven optimization and the limited conditioning fidelity and diversity of existing generative approaches. To address these challenges, this paper presents a generative inverse design framework for controllable and physically consistent metasurface synthesis under continuous spectral constraints. The proposed approach employs a progressively growing Wasserstein generative adversarial network with gradient penalty integrated with feature wise linear modulation based conditioning for stable propagation of continuous spectral and fabrication constraints. EM consistency is embedded directly into the generative learning process through a surrogate assisted spectral alignment loss, enabling physics constrained generation during training. Further, a determinantal point process based diversity regularization strategy is incorporated to generate geometrically diverse yet spectrally consistent realizations for the same target response. The effectiveness of the proposed framework is demonstrated through the generation of practically realizable metasurface absorbers exhibiting diverse reflection characteristics in the frequency range of 2 to 18 GHz. EM simulations validate that the generated designs meet the target specifications with high accuracy. The final proposed framework achieved an average mean squared error of 0.0052, diversity score of 0.8730, band alignment accuracy of 0.8533, and a valid EM design generation percentage of 89.57, clearly demonstrating its capability to generate highly accurate, diverse, electromagnetically consistent and fabrication realizable metasurface configurations.
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