Laser Stripe Centerline Extraction Method for Deep-Hole Inner Surfaces Based on Line-Structured Light Vision Sensing

Метод извлечения центральной линии лазерной полосы для внутренних поверхностей глубоких отверстий на основе визуального зондирования с линейно-структурированным светом
Huifu Du, Daguo Yu, Xiaowei Zhao, Ziyang Zhou
2025-02-12

Steger algorithmdepth-first search (DFS)dice similarity coefficient (DSC)laser stripe centerline extractionminimum spanning tree (MST)
This paper proposes a point cloud post-processing method based on the minimum spanning tree (MST) and depth-first search (DFS) to extract laser stripe centerlines from the complex inner surfaces of deep holes. Addressing the limitations of traditional image processing methods, which are affected by burrs and low-frequency random noise, this method utilizes 360° structured light to illuminate the inner wall of the deep hole. A sensor captures laser stripe images, and the Steger algorithm is employed to extract sub-pixel point clouds. Subsequently, an MST is used to construct the point cloud connectivity structure, while DFS is applied for path search and noise removal to enhance extraction accuracy. Experimental results demonstrate that this method significantly improves extraction accuracy, with a dice similarity coefficient (DSC) approaching 1 and a maximum Hausdorff distance (HD) of 3.3821 pixels, outperforming previous methods. This study provides an efficient and reliable solution for the precise extraction of complex laser stripes and lays a solid data foundation for subsequent feature parameter calculations and 3D reconstruction.
1
360° line-structured light illumination and Steger algorithm sub-pixel extraction are used to generate point clouds robust to burrs and low-frequency random noise.
2
A point cloud post-processing method combining minimum spanning tree (MST) and depth-first search (DFS) is proposed to extract laser stripe centerlines from complex deep-hole inner surfaces.
3
MST constructs point cloud connectivity and DFS performs path search and noise removal, improving centerline extraction accuracy.
4
The approach provides an efficient, reliable foundation for subsequent feature parameter calculations and 3D reconstruction of deep-hole inner surfaces.
5
The method achieves a dice similarity coefficient (DSC) approaching 1 and a maximum Hausdorff distance (HD) of 3.3821 pixels, outperforming previous methods.

Laser stripe centerlines on deep-hole inner surfaces (point-cloud representation extracted from line-structured light images)

Accuracy and reliability of extracting laser stripe centerlines from complex deep-hole inner surfaces using MST+DFS point-cloud post-processing (including noise removal, path search, and evaluation by DSC and Hausdorff distance)

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Publication Date
2025-02-12
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Authors
Huifu Du
Daguo Yu
Xiaowei Zhao
Ziyang Zhou
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