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Early detection of Myocardial Infarction using WBAN

机译:使用WBAN早期发现心肌梗塞

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摘要

Cardiovascular diseases are the leading cause of death in the world, and Myocardial Infarction (MI) is the most serious one among those diseases. Patient monitoring for an early detection of MI is important to alert medical assistance and increase the vital prognostic of patients. With the development of wearable sensor devices having wireless transmission capabilities, there is a need to develop real-time applications that are able to accurately detect MI non-invasively. In this paper, we propose a new approach for early detection of MI using wireless body area networks. The proposed approach analyzes the patient electrocardiogram (ECG) in real time and extracts from each ECG cycle the ST elevation which is a significant indicator of an upcoming MI. We use the sequential change point detection algorithm CUmulative SUM (CUSUM) to early detect any deviation in ST elevation time series, and to raise an alarm for healthcare professionals. The experimental results on the ECG of real patients show that our proposed approach can detect MI with low delay and high accuracy.
机译:心血管疾病是世界上主要的死亡原因,而心肌梗塞(MI)是其中最严重的疾病之一。早期监测MI的患者监测对于提醒医疗救助和增加患者的生命预后至关重要。随着具有无线传输能力的可穿戴传感器设备的发展,需要开发能够无创地准确检测MI的实时应用。在本文中,我们提出了一种使用无线人体局域网对MI进行早期检测的新方法。所提出的方法实时分析患者的心电图(ECG),并从每个ECG周期中提取ST升高,ST升高是即将发生MI的重要指标。我们使用顺序变化点检测算法CUUM(累积和)(CUSUM)来及早发现ST高程时间序列中的任何偏差,并向医疗保健专业人员发出警报。真实患者心电图的实验结果表明,我们提出的方法可以低延迟,高精度地检测出心梗。

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