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A computer aided diagnosis system for the early detection of neurodegenerative diseases using linear and non-linear analysis

机译:一种计算机辅助诊断系统,用于利用线性和非线性分析早期检测神经变性疾病的诊断系统

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One of the most serious problems that faces human nowadays is the gait disturbances as result of neurodegenerative diseases (NDD). Neurodegenerative diseases such as Parkinson's disease (PD), Amyotrophic Lateral Sclerosis (ALS), Huntington Disease (HD) identified as the dynamic loss of neurons in human brain. Therefore, gait analysis can yield a significant approach for the early diagnosis of gait disturbances and determine the treatment plan with the generation of new era of computerized medical systems for analyzing such diseases. The present study explores the improvement of the classification capability by using non-linear features with previously used linear features. Fisher score selection strategy is used to get the optimal feature subset and the optimal gait time series in classifying NDD. Support vector machine (SVM) with radial basis kernel function (RBF) is implemented for discriminating NDD patients against healthy ones optimized by leave-one-out-cross-validation (LOOCV). The applied classifier differentiated NDD subjects from healthy ones with an area under the receiver operating characteristic curve “0.861” and an overall accuracy “90.625%”.
机译:现在面临人类的最严重问题之一是神经退行性疾病(NDD)的步态干扰。神经变性疾病如帕金森病(Pd),肌营养的外侧硬化症(ALS),亨廷顿病(HD)被鉴定为人脑中神经元的动态丧失。因此,步态分析可以产生显着的方法,以便早期诊断步态紊乱,并确定具有用于分析这种疾病的计算机化医疗系统的新时代的治疗计划。本研究通过使用具有先前使用的线性特征的非线性特征探讨了分类能力的提高。 Fisher评分选择策略用于获得分类NDD中的最佳特征子集和最佳步态时间序列。支持径向基础内核功能(RBF)的支持向量机(SVM)用于判断NDD患者针对由休假 - 单交叉验证(LOOCV)优化的健康患者。应用的分类器将NDD受试者与接收器的接收器下方的区域分化为来自健康的受试者,操作特性曲线“0.861”和整体精度“90.625 %”。

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