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A Relevance-Based Data Exploration Approach to Assist Operators in Anomaly Detection

机译:基于相关的数据探索方法,帮助运营商在异常检测中

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摘要

Data is emerging as a new industrial asset in the factory of the future, to implement advanced functions like state detection, health assessment, as well as manufacturing servitization. In this paper, we foster Industry 4.0 data exploration by relying on a relevance evaluation approach that is: (i) flexible, to detect relevant data according to different analysis requirements; (ii) context-aware, since relevant data is discovered also considering specific working conditions of the monitored machines; (iii) operator-centered, thus enabling operators to visualise unexpected working states without being overwhelmed by the huge volume and velocity of collected data. We demonstrate the feasibility of our approach with the implementation of an anomaly detection service in the Smart Factory, where the attention of operators is focused on relevant data corresponding to unusual working conditions, and data of interest is properly visualised on operator's cockpit according to adaptive sampling techniques based on the relevance of collected data.
机译:数据正在成为未来工厂的一个新的工业资产,以实现像状态检测,健康评估,以及制造服务化的先进功能。在本文中,我们将依靠相关度评价办法,是促进工业4.0数据探索:(一)灵活,检测根据不同的分析要求的相关数据; (二)环境感知,因为相关数据发现也考虑的监控机械的特殊工作条件; (ⅲ)操作者为中心的,从而使运营商能够可视化意外工作状态,而无需由体积庞大和收集到的数据的速度被淹没。我们证明了我们在智能工厂,其中运营商的注意力都集中在对应于异常工作条件相关数据的异常检测服务的实现方法的可行性,以及所关注的数据是正确的可视化操作员的座舱根据自适应采样基于收集的数据的相关技术。

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