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首页> 外文期刊>Wireless personal communications: An Internaional Journal >Wearable Wireless Sensors Network for ECG Telemonitoring Using Neural Network for Features Extraction
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Wearable Wireless Sensors Network for ECG Telemonitoring Using Neural Network for Features Extraction

机译:可穿戴无线传感器网络为ECG远程使用神经网络进行提取

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摘要

The technological progress of wireless communication, embedded systems and health offers innovative alternatives to medical care, in particular, telemonitoring and telediagnosis. ECG signal monitoring is a vital indicator in the control of heart disease. Nevertheless, one of the main challenges of remote monitoring of heart rate is the requirement of control in accordance with the service provided by hospital equipment. In this article, an approach to ECG telemonitoring based on wireless sensor networks combined with the Internet of Things (IoT) is proposed. The ECG signal is measured using a wearable sensor node allowing high-frequency noise suppression. The collected data is transmitted to the Gateway node, which performs complex processing including baseline and linear variations suppression using polynomial interpolation, extraction of R peaks using the Multilayer Perceptron Neural Network. It can determine the variation in heart rate by the using the extracted R signal. Thanks to IoT technology, the Gateway node is able to aggregate data into an IoT platform ?through an IoT cloud for visual telemonitoring of heart rate in real-time. The experimental results show that the system is effective and reliable for the collection, transmission, and display of ECG data in real time for the purpose of telemonitoring of patients with heart disease.
机译:无线通信,嵌入式系统和健康的技术进步为医疗保健提供了创新的替代品,特别是遥测和遥测。 ECG信号监测是控制心脏病的重要指标。尽管如此,远程监测心率的主要挑战之一是根据医院设备提供的服务的控制要求。在本文中,提出了一种基于无线传感器网络与东西(物联网)组合的ECG远程信息的方法。使用可穿戴传感器节点测量ECG信号,允许高频噪声抑制。收集的数据被发送到网关节点,该网关节点执行复杂的处理,包括使用多项式插值的基线和线性变化抑制,使用多层的Perceptron神经网络提取R峰值。它可以通过使用提取的R信号来确定心率的变化。由于IOT技术,网关节点能够将数据聚合到IOT平台中?通过IOT云实时进行心率的视觉遥测。实验结果表明,该系统实时采用ECG数据的收集,传输和显示ECG数据的可效可靠,以便对心脏病患者的遥不可及的目的。

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