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March 19, 2026Communications Engineering0 citationsOpen Access

Electromagnetic Sculptor: a differentiable geometric optimization framework to manipulate electromagnetic fields

KYKaiqiao YangCLChe LiuWYWenming Yu

Key Points

  • To develop a differentiable geometric optimization framework for manipulating electromagnetic fields in complex geometries.
  • Introduced Electromagnetic Sculptor for controlling electromagnetic fields on meshed structures.
  • Integrated a numerical model based on shooting and bouncing rays with gradient-based optimization.
  • Incorporated a shape-preserving regularization strategy to reduce shape distortion during optimization.
  • Demonstrated effective radar cross-section reduction with significant field suppression at single and broadband frequencies.
  • Maintained geometric smoothness and manufacturability during optimization.
  • Achieved fast optimization for models with thousands of vertices, with results consistent with experimental data.

Abstract

Electromagnetic fields are commonly controlled through geometric design, but existing approaches often lack efficient and differentiable modeling tools for complex shapes. Here we introduce Electromagnetic Sculptor, a differentiable geometric optimization framework for manipulating electromagnetic fields on arbitrarily meshed structures. The framework combines a numerical electromagnetic model based on shooting and bouncing rays with a gradient-based geometric optimizer that stabilizes mesh deformation through spatial filtering. To avoid excessive shape distortion during optimization, a shape-preserving regularization strategy is incorporated. The method is demonstrated using radar cross section reduction as a representative application. Numerical and experimental results show pronounced field suppression at both single frequencies and across a broadband range, while maintaining geometric smoothness and manufacturability. The framework enables fast optimization for models containing thousands of vertices, with simulated results consistent with experimental measurements. These results illustrate how differentiable computation can be integrated with physically grounded electromagnetic modeling and practical design constraints.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/69bb91c7496e729e6297f347https://doi.org/10.1038/s44172-026-00642-3
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