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Design and development of robotic technology through microcontroller system with machine learning techniques

Narender Chinthamu, Adapa Gopi, A. Radhika, E. Chandrasekhar, Kamred Udham Singh, Dinesh Mavaluru

发表年份
2024
引用次数
5

摘要

Through the integration of AI and IoT, the digital twin transforms industrial sectors by virtually portraying physical systems. Simulation and the application of lifecycle management improve decision-making. In this paper, a virtual prototype system a digital twin framework that integrates robotic devices is proposed. Created using debugging platforms, they track every robotic activity, supported by real-time microcontroller structural design systems. Machine learning methods are the fundamental engine of the digital twin system. Because of this connection, robotic actions may be seamlessly controlled and monitored, guaranteeing effectiveness and adaptability in changing contexts. Robotics has advanced significantly with the combination of digital twin technology, machine learning, and microcontroller systems, offering improved performance and versatility in a range of applications.

关键词

MicrocontrollerDebuggingAdaptabilityComputer scienceEmbedded systemRoboticsRobotArtificial intelligenceOperating system

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