Rule-based diagnostic system fusion

A. Zemirline, L. Lecornu, B. Solaiman
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引用次数: 1

Abstract

In this work, we present a new fusion method that uses fuzzy set theory. This method is applied to the diagnostic system rule bases. It aims at combining all the rule bases into only one rule base and then taking into consideration the characteristics of this base. The fusion method is characterized by a hybrid fusion which combines rule fusion approach with knowledge fusion approach. Knowledge fusion relies on the distortion measure of various bases. This distortion measure is integrated into the rule fusion process in order to generate one rule base for improving the diagnostic system performance. It is defined as the confidence degrees associated to each rule base parameter. The confidence degrees are then integrated into prediction procedure of the new diagnostic system.
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基于规则的诊断系统融合
本文提出了一种新的基于模糊集理论的融合方法。将该方法应用于诊断系统知识库中。它旨在将所有规则库合并为一个规则库,然后考虑该规则库的特点。该融合方法的特点是规则融合和知识融合相结合的混合融合。知识融合依赖于各种基础的扭曲度量。将该失真度量集成到规则融合过程中,生成一个规则库,提高诊断系统的性能。它被定义为与每个规则库参数相关联的置信度。然后将置信度集成到新诊断系统的预测过程中。
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