Automatic classification of excitation location of snoring sounds

阻塞性睡眠呼吸暂停 医学 呼吸不足 接收机工作特性 气道 会厌 灵敏度(控制系统) 特征(语言学) 主成分分析 呼吸暂停 曲线下面积 模式识别(心理学) 人工智能 多导睡眠图 语音识别 听力学 外科 麻醉 计算机科学 内科学 工程类 喉 哲学 药代动力学 语言学 电子工程
作者
Jingpeng Sun,Xiyuan Hu,Silong Peng,Chung‐Kang Peng,Yan Ma
出处
期刊:Journal of Clinical Sleep Medicine [American Academy of Sleep Medicine]
卷期号:17 (5): 1031-1038 被引量:12
标识
DOI:10.5664/jcsm.9094
摘要

For surgical treatment of patients with obstructive sleep apnea-hypopnea syndrome, it is crucial to locate accurately the obstructive sites in the upper airway; however, noninvasive methods for locating the obstructive sites have not been well explored. Snoring, as the cardinal symptom of obstructive sleep apnea-hypopnea syndrome, should contain information that reflects the state of the upper airway. Through the classification of snores produced at four different locations, this study aimed to test the hypothesis that snores generated by various obstructive sites differ.We trained and tested our model on a public data set that comprised 219 participants. For each snore episode, an acoustic and a physiological feature were extracted and concatenated, forming a 59-dimensional fusion feature. A principal component analysis and a support machine vector were used for dimensional reduction and snore classification. The performance of the proposed model was evaluated using several metrics: sensitivity, precision, specificity, area under the receiver operating characteristic curve, and F1 score.The unweighted average values of sensitivity, precision, specificity, area under the curve, and F1 were 86.36%, 89.09%, 96.4%, 87.9%, and 87.63%, respectively. The model achieved 98.04%, 80.56%, 72.73%, and 94.12% sensitivity for types V (velum), O (oropharyngeal), T (tongue), and E (epiglottis) snores.The characteristics of snores are related to the state of the upper airway. The machine-learning-based model can be used to locate the vibration sites in the upper airway.
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