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The Application of Artificial Neural Network in Diagnosis of Sleep Apnea Syndrome

机译:人工神经网络在睡眠呼吸暂停综合征诊断中的应用

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In this paper authors propose a method of sleep analysis based on the algorithm of artificial neural networks. Unlike polysomnography methods, that are used commonly in clinical practice, the described method does not require specialist equipment or a qualified technician to analyze biomedical signals. The results presented in this work show that the properly implemented neural network algorithm can determine incidents during sleep and recognize its phases. Main idea was tested on the base of data collected from sleep laboratory of eight patients. From many signals collected during clinical assessment only two were taken under further consideration: heart rate and blood saturation. As it was shown, these two parameters measured during sleep allows to determine incidents occurring during sleeping and even to recognize actual stage of sleep. It means, that it is possible to use simple device that measures only heart rate and blood saturation to identify sleep apnea syndrome. The method is very effective and can replace the existing ways to recognizing sleep problems especially, when sleep examination of patient is conducted in home conditions.
机译:本文提出了一种基于人工神经网络算法的睡眠分析方法。与临床实践通常在临床实践中使用的多面组摄影方法不同,所描述的方法不需要专科设备或合格的技术人员来分析生物医学信号。在本工作中提出的结果表明,适当实施的神经网络算法可以在睡眠期间确定事件并识别其阶段。在八名患者的睡眠实验室收集的数据基础上测试了主要观点。从临床评估期间收集的许多信号只考虑两种信号:心率和血液饱和度。如图所示,在睡眠期间测量的这两个参数允许在睡眠期间确定发生的事件,甚至识别睡眠的实际阶段。这意味着,可以使用仅测量心率和血液饱和度的简单装置来识别睡眠呼吸暂停综合征。该方法非常有效,可以替代现有的方法来识别睡眠问题,特别是在家庭条件下进行患者的睡眠检查时。

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