Autonomous Robotic Calibration Techniques for High-Precision Manufacturing
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DOI:
https://doi.org/10.67228/30715725/IJIARE-2021PI7H5WPublished 01-03-2021
Autonomous Robotics, Robotic Calibration, High-Precision Manufacturing, Intelligent Manufacturing, Artificial Intelligence, Machine Vision, Sensor Fusion, Industrial Internet of Things, Smart Manufacturing, Predictive Maintenance Issue
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ArticlesHow to Cite
[1]S. N, “Autonomous Robotic Calibration Techniques for High-Precision Manufacturing”, IJIARE, vol. 4, no. 1, pp. 01–16, Jan. 2021, doi: 10.67228/30715725/IJIARE-2021PI7H5W.Abstract
Industry 4.0 technologies, including AI, IIoT, robotics, and cyber-physical systems, require industrial robots to maintain high positioning accuracy despite thermal, mechanical, and operational changes. Conventional offline calibration is time-consuming, costly, and unsuitable for dynamic manufacturing environments. The proposed autonomous calibration framework integrates multi-sensor fusion, machine vision, laser measurement, inertial sensing, machine learning, and adaptive optimization to continuously estimate and compensate for calibration errors in real time. By updating robot kinematic models during operation, the system improves positioning accuracy, repeatability, manufacturing quality, equipment utilization, and predictive maintenance while minimizing downtime and human intervention. Overall, the framework enables self-learning, real-time robotic calibration that supports intelligent, efficient, and sustainable smart manufacturing.
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How to Cite
[1]S. N, “Autonomous Robotic Calibration Techniques for High-Precision Manufacturing”, IJIARE, vol. 4, no. 1, pp. 01–16, Jan. 2021, doi: 10.67228/30715725/IJIARE-2021PI7H5W.
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