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An Efficient Approach to Reduce Rules for Fault Diagnosis Based on Rough Set

机译:基于粗糙集的有效的减少故障诊断规则的方法

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摘要

Analysis of wear data of vehicle's transmission system is often concerned with treatment of incomplete knowledge. Existing techniques of data analysis are mainly based on quite strong assumptions, are unable to deduce conclusions from incomplete knowledge or inconsistent data of information. The rough set with the lower and upper approximation of the concept is a useful notion for the classification of objects when the available information is not adequate to represent classes using precise sets. In this paper, the Rough set theory is deeply investigated, and an approach reduction of attributes and inducing rules based on rough set theory in a fault diagnosis system is proposed. Rules induced from the lower approximation of the class certainly describe the class (certain rules), in the other hand, rules induced from the upper approximation of the class describe only possibly case (possible rules). This approach is applied for analysis of emission spectrum data of lubricating oil of vehicle's transmission system. There are 14 conditional attributes and 1 decisional attribute in the information system table. The rule-base are constituted with certain and possible rules of analysis.
机译:车辆传动系统的磨损数据分析通常涉及知识不完整的处理。现有的数据分析技术主要基于相当强的假设,无法从知识不完整或信息数据不一致得出结论。当可用信息不足以使用精确集来表示类时,具有该概念的上下近似的粗糙集对于对象分类很有用。本文对粗糙集理论进行了深入的研究,提出了一种基于粗糙集理论的故障诊断系统中属性和归纳规则的约简方法。从类别的较低近似中得出的规则肯定描述了该类别(某些规则),另一方面,从类别的较高近似中得出的规则仅描述了可能的情况(可能的规则)。该方法用于分析汽车传动系统润滑油的发射光谱数据。信息系统表中有14个条件属性和1个决策属性。规则库由某些可能的分析规则构成。

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