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Neuro-Symbolic AI for Self-Learning Intelligent Systems in Real-Time Industrial Automation

K MadhuraManipal Institute of Technology, Manipal Academy of Higher Education,Department of Information Technology,Manipal,IndiaJawad Radhi Rustum Al-AssalAl Kitab University,Kirkuk,IraqOmar Mohsen HusseinAl-Farahidi University,Baghdad,IraqKamila IbragimovaTashkent University of Information Technologies,Department of Computer Engineering,UzbekistanSajiv GSaveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences [SIMATS], Saveetha University,Department of ECE,Chennai,IndiaB Kiran Bala
2025
ABI

Annotatsiya

The advances AI provides into the field of industrial automation, challenges still remain in terms of real-time decision making, adaptability, and explainability. In pattern recognition, the neural networks are very effective with less amount of explainability, whereas in symbolic AI there's full interpretability of results but limited adaptability. The proposed method is Neuro-Symbolic AI framework; a framework combining neural networks for perception and symbolic reasoning for decision making, thus promoting self-learning and real-time adaptability. This system will support fusion of sensors with edge computing in better control of response time, scalability, and energy efficiency when operating in dynamic environments. Experimental verification of applications such as predictive maintenance, quality control, and robotics automation demonstrated that the proposed system yielded a 95% accuracy in failure detection, 30% improvement in defect detection, and a reduction of cycle times by 15-20%, with edge computing achieving response times 40-50% faster. However, there are still challenges to deal with, like model complexity, computational cost, and interpretability. Future development in hybrid AI models, hardware acceleration for algorithm adoption, and synergizing with Industry 4.0 will enable wide adoption. The realization of Neuro-Symbolic AI has the potential to change the industrial automation landscape with intelligent, efficacious, and explainable solutions.

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