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Automatic hepatitis diagnosis system based on Linear Discriminant Analysis and Adaptive Network based on Fuzzy Inference System

机译:基于线性判别分析和基于模糊推理的自适应网络的肝炎自动诊断系统

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摘要

In this paper, an automatic diagnosis system based on Linear Discriminant Analysis (LDA) and Adaptive Network based on Fuzzy Inference System (ANFIS) for hepatitis diseases is introduced. This automatic diagnosis system deals with the combination of feature extraction and classification. This automatic hepatitis diagnosis system has two stages, which feature extraction - reduction and classification stages. In the feature extraction - reduction stage, the hepatitis features were obtained from UCI Repository of Machine Learning Databases. Then, the number of these features was reduced to 8 from 19 by using Linear Discriminant Analysis (LDA). In the classification stage, these reduced features are given to inputs ANFIS classifier. The correct diagnosis performance of the LDA-ANFIS automatic diagnosis system for hepatitis disease is estimated by using classification accuracy, sensitivity and specificity analysis, respectively. The classification accuracy of this LDA-ANFIS automatic diagnosis system for the diagnosis of hepatitis disease was obtained in about 94.16%.
机译:介绍了一种基于线性判别分析(LDA)的自动诊断系统和一种基于模糊推理系统(ANFIS)的肝炎疾病自适应网络。该自动诊断系统处理特征提取和分类的组合。该自动肝炎诊断系统分为两个阶段,其特征在于提取-减少和分类阶段。在特征提取-减少阶段,肝炎特征是从UCI机器学习数据库存储库中获得的。然后,使用线性判别分析(LDA)将这些特征的数量从19个减少到8个。在分类阶段,将这些简化后的功能提供给输入ANFIS分类器。分别通过分类准确性,敏感性和特异性分析来评估LDA-ANFIS自动诊断系统对肝炎疾病的正确诊断性能。该LDA-ANFIS自动诊断系统用于肝炎疾病诊断的分类准确率约为94.16%。

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