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    题名: Prediagnosis of Obstructive Sleep Apnea via Multiclass MTS
    作者: C.-T. Su;K.-H. Chen;L.-F. Chen;P.-C. Wang;Y.-H. Hsiao
    日期: 2012-01-09
    上传时间: 2016-08-15
    出版者: Hindawi Publishing Corporation
    摘要: Obstructive sleep apnea (OSA) has become an important public health concern. Polysomnography (PSG) is traditionally considered an established and effective diagnostic tool providing information on the severity of OSA and the degree of sleep fragmentation. However, the numerous steps in the PSG test to diagnose OSA are costly and time consuming. This study aimed to apply the multiclass Mahalanobis-Taguchi system (MMTS) based on anthropometric information and questionnaire data to predict OSA. Implementation results showed that MMTS had an accuracy of 84.38% on the OSA prediction and achieved better performance compared to other approaches such as logistic regression, neural networks, support vector machine, C4.5 decision tree, and rough set. Therefore, MMTS can assist doctors in prediagnosis of OSA before running the PSG test, thereby enabling the more effective use of medical resources.
    關聯: Computational and Mathematical Methods in Medicine 2012, 212498(8pages)
    DOI: 10.1155/2012/212498
    显示于类别:[企業管理學系暨研究所] 期刊論文

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