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Application of data mining techniques to build master plant relationships based on heterogeneous databases

机译:数据挖掘技术在基于异构数据库建立主工厂关系中的应用

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In general, the process relationship between different entities in the plant are not available explicitly to the user in a digitized format. This work attempted to automatically abstract industrial plant's physical process entities and their relationships based on various engineering information available in different systems. Several heuristics and machine learning methods such as association analysis were used to mine the relational connectivity among process entities, in order to form a master plant entity relationship network. This method was applied on a real plant. The precision of the method was above 80%. This method was also used to identify the strength of relationship between different entities and also segregate between different sections of the plant using community detection. This relationship table can be used for various applications such as fault prediction, root cause analysis and personnel training.
机译:通常,工厂中不同实体之间的过程关系无法以数字化格式明确显示给用户。这项工作试图根据不同系统中可用的各种工程信息自动抽象工厂的物理过程实体及其关系。为了建立主工厂实体关系网络,使用了多种启发式和机器学习方法(例如关联分析)来挖掘过程实体之间的关系连通性。此方法已应用于实际工厂。该方法的精密度在80%以上。该方法还用于确定不同实体之间关系的强度,并使用社区检测将其隔离在植物的不同部分之间。该关系表可用于各种应用程序,例如故障预测,根本原因分析和人员培训。

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