PACE: Pacing Operator Learning to Accurate Optical Field Simulation for Complicated Photonic Devices
Hanqing Zhu, Wenyan Cong, Guojin Chen, Shupeng Ning, Ray T. Chen,, Jiaqi Gu, David Z. Pan

TL;DR
This paper introduces PACE, a novel neural operator that significantly improves the accuracy and efficiency of electromagnetic field simulations in complex photonic devices, surpassing existing methods and enabling faster design processes.
Contribution
The paper presents a new cross-axis factorized operator and a two-stage learning approach that together achieve unprecedented fidelity and speed in simulating complex photonic devices.
Findings
73% lower error compared to recent ML PDE solvers
50% fewer parameters needed for high-fidelity simulation
154-577x faster than traditional numerical solvers
Abstract
Electromagnetic field simulation is central to designing, optimizing, and validating photonic devices and circuits. However, costly computation associated with numerical simulation poses a significant bottleneck, hindering scalability and turnaround time in the photonic circuit design process. Neural operators offer a promising alternative, but existing SOTA approaches, NeurOLight, struggle with predicting high-fidelity fields for real-world complicated photonic devices, with the best reported 0.38 normalized mean absolute error in NeurOLight. The inter-plays of highly complex light-matter interaction, e.g., scattering and resonance, sensitivity to local structure details, non-uniform learning complexity for full-domain simulation, and rich frequency information, contribute to the failure of existing neural PDE solvers. In this work, we boost the prediction fidelity to an unprecedented…
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Taxonomy
TopicsPhotonic and Optical Devices · Neural Networks and Reservoir Computing · Optical Network Technologies
