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Discovery of Knowledge From Diagnostic Databases

机译:从诊断数据库发现知识

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The paper deals with acquisition of diagnostic knowledge that is relevant for detection and isolation of a special class of malfunctions of rotating machinery called "shaft misalignment". To detect a misalignment of the given shaft supported by multiple journal bearings, decision trees have been applied. These trees have been discovered in a database collected in a numerical experiment performed by the well-verified simulation system. A novel approach to definition of classes of misalignment has been introduced. Several new methods of selection of attributes and evaluation of classifier's performance have been suggested and verified. Finally a new method of diagnosing misalignment of rotating machinery has been formulated. This method may be efficiently implemented for real-existing rotating machinery.
机译:本文涉及收购诊断知识,该知识与检测和隔离旋转机械的特殊出现的检测和隔离称为“轴未对准”。为了检测由多轴颈轴承支撑的给定轴的未对准,已经应用了决策树。已经在由经过良好验证的仿真系统执行的数值实验中收集的数据库中发现了这些树。介绍了一种新的对未对准定义的方法。已经提出并验证了几种类型的属性选择和评估分类器的评估方法。最后,制定了一种诊断旋转机械未对准的新方法。可以有效地实现该方法以用于现实现有的旋转机械。

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