Combination of neural networks and fuzzy sets as a basis for medical expert systems

M. Gorzałczany, M. McLeish
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引用次数: 8

Abstract

Presents a technique for building expert systems which combines the fuzzy-set approach with artificial neural network structures. This technique can effectively deal with two types of medical knowledge, a nonfuzzy one and a fuzzy one, which usually contribute to the process of medical diagnosis. Nonfuzzy numerical data are obtained from medical tests. Fuzzy linguistic rules describing the diagnosis process are provided by a human expert. The proposed method has been successfully applied in veterinary medicine as a support system in the diagnosis of canine liver diseases.<>
神经网络与模糊集的结合作为医学专家系统的基础
提出了一种将模糊集方法与人工神经网络结构相结合的专家系统构建技术。该技术可以有效地处理非模糊和模糊两类医学知识,这两类知识通常有助于医学诊断过程。从医学试验中获得非模糊数值数据。描述诊断过程的模糊语言规则由人类专家提供。该方法作为犬肝脏疾病诊断的支持系统,已成功应用于兽医学。
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