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Machine Learning for Predictive and Prescriptive Analytics of Operational Data in Smart Manufacturing

机译:机器学习,用于智能制造中的运营数据预测和规范分析

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Perceiving information and extracting insights from data is one of the major challenges in smart manufacturing. Real-time data analytics face several challenges in real-life scenarios, while there is a huge treasure of legacy, enterprise and operational data remaining untouched. The current paper exploits the recent advancements of (deep) machine learning for performing predictive and prescriptive analytics on the basis of enterprise and operational data aiming at supporting the operator on the shopfloor. To do this, it implements algorithms, such as Recurrent Neural Networks for predictive analytics, and Multi-Objective Reinforcement Learning for prescriptive analytics. The proposed approach is demonstrated in a predictive maintenance scenario in steel industry.
机译:感知信息并从数据中提取见解是智能制造的主要挑战之一。实时数据分析在现实场景中面临着数个挑战,而遗留的大量遗留,企业和运营数据则保持不变。本文利用(深度)机器学习的最新进展,基于企业和运营数据来执行预测性和规范性分析,旨在为车间的操作员提供支持。为此,它实现了算法,例如用于预测分析的递归神经网络和用于指令分析的多目标强化学习。在钢铁行业的预测性维护方案中证明了该方法的可行性。

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