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A Method of the Rules Extraction for Fault Diagnosis Based on Rough Set Theory and Decision Network

机译:基于粗糙集理论与决策网络的故障诊断规则提取方法

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摘要

Directing to the inconsistency of the fault diagnosis information, a method of the rules extraction for fault diagnosis based on rough set theory and decision network is proposed. The fault diagnosis decision system attributes are reduced through discernibility matrix and discernibility function firstly, and then a decision network with different reduced levels is constructed. Initialize the network's node with the attribute reduction sets and extract the decision rule sets according to the node of the decision network. In addition, the coverage degree based on confidence degree was applied to filter noise and evaluate the extraction rules. The availability of this method is proved by a fault diagnosis example of rotating machines.
机译:提出了一种基于粗糙集理论和决策网络的故障诊断信息的不一致,对故障诊断的规则提取方法。故障诊断决策系统属性首先通过可辨别矩阵和可辨别功能来降低,然后构建具有不同减少级别的决策网络。使用属性缩减集合初始化网络节点,并根据决策网络的节点提取决定规则集。此外,基于置信度的覆盖度应用于过滤噪声并评估提取规则。通过旋转机器的故障诊断示例证明了这种方法的可用性。

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