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December 10, 2025Sensors0 citationsOpen Access

Accuracy-Enhanced Calibration Method for Robot-Assisted Laser Scanning of Key Features on Large-Sized Components

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ZZZhilong ZhouXZXu ZhangXSXuemei Sun

Key Points

  • To improve accuracy in 3D geometric measurement of large components with local features.
  • Developed a hybrid robot-assisted laser scanning strategy using a laser tracker and fringe-projection 3D scanner.
  • Proposed extrinsic parameter calibration and global calibration methods for error control.
  • Conducted calibration and validation experiments to evaluate the scanning system's performance.
  • Achieved maximum error of 0.117 mm and mean error of 0.112 mm in measurements.
  • Demonstrated strong applicability for large-scale scanning of geometric features.

Abstract

In advanced manufacturing, accurate and reliable 3D geometry measurement is vital for the quality control of large-sized components with multiple small key local features. To obtain both the geometric form and spatial position of these local features, a hybrid robot-assisted laser scanning strategy is introduced, combining a laser tracker, a fringe-projection 3D scanner, and a mobile robotic unit that integrates an industrial robot with an Automated Guided Vehicle. As for improving the overall measurement accuracy, we propose an accuracy-enhanced calibration method that incorporates both error control and compensation strategies. Firstly, an accurate extrinsic parameter calibration method is proposed, which integrates robust target sphere center estimation with distance-constrained-based optimization of local common point coordinates. Subsequently, to construct a high-accuracy, large-scale spatial measurement field, an improved global calibration method is proposed, incorporating coordinate optimization and a hierarchical strategy for error control. Finally, a robot-assisted laser scanning hybrid measurement system is developed, followed by calibration and validation experiments to verify its performance. Experiments verify its high precision over 14 m (maximum error: 0.117 mm; mean: 0.112 mm) and its strong applicability in large-scale scanning of key geometric features, providing reliable data for quality manufacturing of large-scale components.

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Cite This Study

Zhou et al. (2025) studied this question.

synapsesocial.com/papers/69401d412d562116f28f83bchttps://doi.org/10.3390/s25247518
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