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首页> 外文期刊>Expert Systems with Application >A new medical decision making system: Least square support vector machine (LSSVM) with Fuzzy Weighting Pre-processing
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A new medical decision making system: Least square support vector machine (LSSVM) with Fuzzy Weighting Pre-processing

机译:一种新的医疗决策系统:带有模糊加权预处理的最小二乘支持向量机(LSSVM)

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摘要

The use of machine learning tools in medical diagnosis is increasing gradually. This is mainly because the effectiveness of classification and recognition systems has improved in a great deal to help medical experts in diagnosing diseases. This study aims at diagnosing Liver Disorder with a new hybrid machine learning method. By hybridizing LSSVM with Fuzzy Weighting Pre-processing, a method was obtained to solve this diagnosis problem via classifying Liver Disorder. Fuzzy Weighting Pre-processing stage was developed firstly in our study. This Liver Disorder dataset is a very commonly used dataset in literature relating the use of classification systems for Liver Disorder Diagnosis and it was used in this study to compare the classification performance of our proposed method with regard other studies. We obtained a classification accuracy of 94.29%, which is the highest one reached so far. This result is for Liver Disorder but it states that this method can be used confidently for other medical diseases diagnosis problems, too.
机译:机器学习工具在医学诊断中的使用正在逐渐增加。这主要是因为分类和识别系统的有效性已大大提高,可以帮助医学专家诊断疾病。这项研究旨在利用一种新型的混合机器学习方法诊断肝病。通过将LSSVM与模糊加权预处理进行混合,获得了一种通过对肝病进行分类来解决该诊断问题的方法。本研究首先建立了模糊加权预处理阶段。该肝病数据集是文献中有关肝病诊断分类系统使用的文献中非常常用的数据集,并且在本研究中用于比较我们提出的方法与其他研究的分类性能。我们获得了94.29%的分类准确度,这是迄今为止达到的最高准确度。该结果适用于肝脏疾病,但它表明该方法也可以肯定地用于其他医学疾病的诊断问题。

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