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Detection of post apnea sounds and apnea periods from sleep sounds

机译:从睡眠声中检测出呼吸暂停后声音和呼吸暂停时间

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Obstructive Sleep Apnea Syndrome (OSAS) is defined as a sleep related breathing disorder that causes the body to stop breathing for about 10 seconds and mostly ends with a loud sound due to the opening of the airway. OSAS is traditionally diagnosed using polysomnography, which requires a whole night stay at the sleep laboratory of a hospital, with multiple electrodes attached to the patient's body. Snoring is a symptom which may indicate the presence of OSAS; thus investigation of snoring sounds, which can be recorded in the patient's own sleeping environment, has become popular in recent years to diagnose OSAS. In this study, we aim to develop a new method to detect post-apnea snoring episodes with the goal of diagnosing apnea or creating new criteria similar to apnea / hypopnea index. Emphasis is placed on detecting post apnea episodes, hence the apnea periods. In this method, first segmentation is done to eliminate the silence parts. Then, these episodes are represented by distinctive features; some of these features are available in literature but some of them are novel. Finally, episodes are classified using supervised methods. False alarm rates are reduced by adding additional constraints into the detection algorithm. These methods are applied to snoring sound signals of OSAS patients, recorded in Gulhane Military Medical Academy, to verify the success of our algorithms.
机译:阻塞性睡眠呼吸暂停综合症(OSAS)被定义为与睡眠有关的呼吸系统疾病,会导致身体停止呼吸约10秒钟,并且由于气道的打开而最终以响亮的声音结束。传统上,OSAS是使用多导睡眠监测仪诊断的,这需要在医院的睡眠实验室过夜,并且将多个电极连接到患者的身体上。打nor是一种症状,可能表明存在OSAS。因此,可以在患者自己的睡眠环境中记录的打声的研究近年来在诊断OSAS方面变得很流行。在这项研究中,我们旨在开发一种新方法来检测呼吸暂停后打发作,以诊断呼吸暂停或创建类似于呼吸暂停/呼吸不足指数的新标准。重点放在检测呼吸暂停后发作,从而检测呼吸暂停期。在这种方法中,首先进行分割以消除无声部分。然后,这些情节表现出鲜明的特征。这些特征中的一些在文献中可用,但其中一些是新颖的。最后,使用监督方法对情节进行分类。通过在检测算法中添加其他约束来减少虚警率。这些方法应用于打G的OSAS患者的声音信号(已在Gulhane军事医学院录制),以验证我们算法的成功性。

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