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May 6, 2026Sensors0 citationsOpen Access

Real-Time Lightweight Weld Seam Keypoint Detection and Tracking via an Improved SimCC with a Unified Three-Keypoint Formulation

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SWShenkuo WangXHXiangjie HuangAGAng Gao

Key Points

  • This research aims to enhance weld seam perception through keypoint detection and tracking techniques.
  • Developed a lightweight framework for weld seam keypoint detection and tracking.
  • Introduced an improved SimCC with a unified three-keypoint formulation.
  • Implemented a log-domain quadratic peak-refinement decoder to minimize quantization error.
  • Achieved detection accuracy with a mean absolute error of 1.89 px.
  • Demonstrated a trajectory tracking error as low as 0.159 mm during experiments.
  • Reduced quantization error in SimCC classification distributions.

Abstract

Reliable weld seam perception remains challenging in industrial environments, where arc light, spatter, smoke, and varying seam geometries can seriously degrade visual sensing. These disturbances make it difficult to achieve a unified representation, accurate localization, and real-time inference at the same time. To address this problem, this paper presents an end-to-end lightweight framework for weld seam keypoint detection and tracking based on an improved SimCC. A unified three-keypoint formulation is introduced to represent different weld geometries by using one seam center point and two orientation reference points, thereby supporting a perception-to-control mapping in which position control and orientation control are decoupled. In addition, a lightweight C3k2-based backbone is designed, and a non-parametric log-domain quadratic peak-refinement decoder is proposed to alleviate the discretization-induced quantization error of SimCC classification distributions without adding model parameters. Experiments show that the proposed model contains only 1.4 M parameters, achieves 17.01 ms CPU inference latency, and obtains a detection accuracy of 1.89 px MAE. In curved weld seam tracking experiments with the integrated robotic system, it further achieves an average trajectory tracking error as low as 0.159 mm and an average orientation error of 3.738°, demonstrating its real-time accuracy and robustness for industrial welding applications.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69fa979b04f884e66b53197chttps://doi.org/10.3390/s26092861
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