Identification of Smith-Magenis syndrome cases through an experimental evaluation of machine learning methods

被引:0
|
作者
Fernandez-Ruiz, Raul [1 ]
Nunez-Vidal, Esther [1 ]
Hidalgo-delaguia, Irene [2 ]
Garayzabal-Heinze, Elena [3 ]
alvarez-Marquina, Agustin [4 ]
Martinez-Olalla, Rafael [4 ]
Palacios-Alonso, Daniel [1 ,4 ]
机构
[1] Univ Rey Juan Carlos, Escuela Tecn Super Ingn Informat, Madrid, Spain
[2] Univ Complutense Madrid, Dept Spanish Language & Theory Literature, Madrid, Spain
[3] Univ Autonoma Madrid, Dept Linguist, Madrid, Spain
[4] Univ Politecn Madrid, Ctr Biomed Technol, Madrid, Spain
关键词
Smith-Magenis syndrome; machine learning; cepstral peak prominence; acoustics; children; VOICE; PHENOTYPE; ELASTIN; HEALTH;
D O I
10.3389/fncom.2024.1357607
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
This research work introduces a novel, nonintrusive method for the automatic identification of Smith-Magenis syndrome, traditionally studied through genetic markers. The method utilizes cepstral peak prominence and various machine learning techniques, relying on a single metric computed by the research group. The performance of these techniques is evaluated across two case studies, each employing a unique data preprocessing approach. A proprietary data "windowing" technique is also developed to derive a more representative dataset. To address class imbalance in the dataset, the synthetic minority oversampling technique (SMOTE) is applied for data augmentation. The application of these preprocessing techniques has yielded promising results from a limited initial dataset. The study concludes that the k-nearest neighbors and linear discriminant analysis perform best, and that cepstral peak prominence is a promising measure for identifying Smith-Magenis syndrome.
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页数:17
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