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A real-time cardiac arrhythmia classification system with wearable electrocardiogram

机译:带有可穿戴心电图的实时心律失常分类系统

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Long term continuous monitoring of electrocardiogram (ECG) in a free living environment provides valuable information for the prevention on the heart attack and other high risk diseases. Most of the existing devices provide ECG recording in a hospital setting or off-line ECG diagnosis. The design of a real-time wearable ECG monitoring device with cardiac arrhythmia classification system is discussed in this paper. In this system, the wearable sensor node monitors the patient's ECG and motion signal in an unobstructive way that the patient's daily life will not be affected. ECG analog front-end and on-node processing are designed to remove most of the noise and bias, which guarantees an clean and reliable ECG waveform. The ECG waveform is digitalized by an analog-to-digital convertor and transmitted to a smart phone via bluetooth. On the smartphone, the ECG waveform is visualized and a novel layered hidden Markov model is implemented to classify multiple cardiac arrhythmias in real time. This paper evaluates the performance of the hardware design and the classification algorithm.
机译:在自由的生活环境中对心电图(ECG)进行长期连续监测可为预防心脏病发作和其他高危疾病提供有价值的信息。现有的大多数设备都可以在医院环境或离线ECG诊断中提供ECG记录。本文讨论了一种带有心律不齐分类系统的实时可穿戴式心电监护仪的设计。在该系统中,可穿戴传感器节点以无障碍的方式监视患者的ECG和运动信号,从而不会影响患者的日常生活。 ECG模拟前端和节点上处理旨在消除大部分噪声和偏差,从而保证了干净,可靠的ECG波形。 ECG波形由模数转换器数字化,并通过蓝牙传输到智能手机。在智能手机上,可视化ECG波形,并实现了新颖的分层隐马尔可夫模型,以实时对多个心律不齐进行分类。本文评估了硬件设计和分类算法的性能。

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