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Classification of biomedical signals for differential diagnosis of Raynaud's phenomenon

机译:用于鉴别雷诺现象的生物医学信号分类

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摘要

This paper discusses a supervised classification approach for the differential diagnosis of Raynaud's phenomenon (RP). The classification of data from healthy subjects and from patients suffering for primary and secondary RP is obtained by means of a set of classifiers derived within the framework of linear discriminant analysis. A set of functional variables and shape measures extracted from rewarming/reperfusion curves are proposed as discriminant features. Since the prediction of group membership is based on a large number of these features, the high dimension/small sample size problem is considered to overcome the singularity problem of the within-group covariance matrix. Results on a data set of 72 subjects demonstrate that a satisfactory classification of the subjects can be achieved through the proposed methodology.
机译:本文讨论了一种用于Raynaud现象(RP)鉴别诊断的监督分类方法。来自健康受试者以及患有原发性和继发性RP的患者的数据分类是通过在线性判别分析框架内得出的一组分类器获得的。提出了从变暖/再灌注曲线中提取的一组功能变量和形状度量作为判别特征。由于组成员资格的预测是基于大量这些特征的,因此考虑使用高维/小样本大小问题来克服组内协方差矩阵的奇异性问题。 72个受试者的数据集上的结果表明,通过提出的方法可以对受试者进行满意的分类。

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