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A pervasive energy-efficient ECG monitoring approach for detecting abnormal cardiac situations

机译:一种检测异常心脏局势的普遍节能ECG监测方法

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Mobile and pervasive ECG monitoring systems require continuous connectivity with server-side ECG analyser for instantaneously detecting abnormal cardiac situations. Normally, these systems generate a large amount of data, resulting in a high energy expenditure with data transmission on pervasive ECG platform. In this context, data reduction mechanisms can be applied for saving transmission energy of pervasive ECG monitoring devices, maximizing the availability and confiability of ECG monitoring systems. This paper proposes an pervasive energy-efficient ECG monitoring approach for detecting abnormal cardiac situations for ubiquitous health systems. The data reduction approach based on error prediction maximize the life time of pervasive ECG monitoring device by gathering and reducing heart signal before sending it to server-side ECG analyzer application. Moreover, Pearson's Coefficient (correlation rate) is applied on the proposed data reduction approach, enhancing the quality of monitored heart signal.
机译:移动和普遍的ECG监控系统需要与服务器端ECG分析器连续连接,以瞬间检测异常的心脏病。通常,这些系统产生大量数据,导致具有普及ECG平台上的数据传输的高能耗。在这种情况下,可以应用数据减少机制来节省普及的ECG监控设备的传输能量,最大限度地提高ECG监测系统的可用性和可信性。本文提出了一种普遍存在的节能ECG监测方法,用于检测普遍存在卫生系统的异常心脏病。基于误差预测的数据减少方法通过收集和减少心脏信号来最大化普及ECG监测设备的寿命,然后在将心脏信号发送到服务器端ECG分析器应用程序之前。此外,Pearson的系数(相关率)应用于所提出的数据减少方法,增强了监测心脏信号的质量。

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