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Functional Feature Selection by Weighted Projections in Pathological Voice Detection

机译:病态语音检测中加权投影的功能特征选择

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In this paper, we introduce an adaptation of a multivariate feature selection method to deal with functional features. In our case, observations are described by a set of functions defined over a common domain (e.g. a time interval). The feature selection method consists on combining variable weighting with a feature extraction projection. Although the employed method was primarily intended for observations described by vectors in R~n, we propose a simple extension that allows us to select a set of functional features, which is well suited for classification. This study is complemented by the incorporation of Functional Principal Component Analysis (FPCA) that project functions into a finite dimensional space were we can perform classification easily. Another remarkable property of FPCA is that it can provide insight about the nature of the functional features. The proposed algorithms are tested on a pathological voice detection task. Two databases are considered: Massachusetts Eye and Ear Infirmary Voice Laboratory voice disorders database and Universidad Politecnica de Madrid voice database. As a result, we obtain a canonical function whose time average is enough to reach similar performances to the ones reported in the literature.
机译:在本文中,我们介绍了一种用于处理功能特征的多元特征选择方法。在我们的情况下,观察是通过在公共域(例如时间间隔)上定义的一组函数来描述的。特征选择方法包括将可变权重与特征提取投影相结合。尽管所采用的方法主要用于R_n中向量描述的观测,但是我们提出了一个简单的扩展,它允许我们选择一组功能特征,非常适合分类。这项研究得到功能主成分分析(FPCA)的补充,该功能将功能投影到有限维空间中,这样我们就可以轻松进行分类。 FPCA的另一个显着特性是它可以提供有关功能特征性质的见解。在病理性语音检测任务上对提出的算法进行了测试。考虑了两个数据库:马萨诸塞州眼耳病房语音实验室语音障碍数据库和马德里理工大学语音数据库。结果,我们获得了一个标准函数,该函数的平均时间足以达到与文献报道相似的性能。

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