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◆ Applied Optics2026-02-18· Optics

Defect 3D reconstruction with integrated bright-field and dark-field structured illumination microscopy based on Att-PU-Net

Zedong Wang, Fengwei Zhang, Shiling Wang, Xiyuan Li, Shaowen Wang, Yubo Liu, Jipeng Guo, Shuke Huang, Kuo Hai, Zhongming Zang, Lulu Li, Dong Liu

原始摘要(英文原文)· Original abstract
Addressing the challenges in quantitative 3D inspection of micro-to-nanoscale surface defects in optical components for high-energy laser systems, this paper proposes a novel, to our knowledge, inspection framework integrating bright-field and dark-field structured illumination microscopy (BDSIM) with deep learning-based 3D reconstruction. To mitigate the limitations of sparse point clouds and inherent noise caused by the low luminous flux in BDSIM imaging, we developed the Att-PU-Net model, building upon the point cloud upsampling network (PU-Net) architecture. This model incorporates a self-attention mechanism to enhance the contextual perception of local geometric abruptness and employs a multi-scale feature fusion strategy to preserve fine topological details. To ensure robust generalization from simulation to reality, a hybrid training strategy combining procedurally generated and real-world defect samples is adopted. Furthermore, a composite loss function integrating chamfer distance, repulsion loss, and curvature consistency constraints was designed to significantly improve point distribution uniformity and edge sharpness. Simulations and comparisons between Att-PU-Net and the marching cubes, contour filter algorithms demonstrate that Att-PU-Net achieves an optimal balance between geometric accuracy and uniformity (P2S: 0.5720 µm, NUC: 0.3230). Experimental validation on actual optical damage reveals a reconstruction accuracy of 0.6343 µm and a maximum error of only 0.79 µm in defect depth compared with white light interferometry (WLI), confirming the method's effectiveness and reliability for high-precision 3D reconstruction of complex optical surface defects.
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