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Privacy-Preserving Electrocardiogram Monitoring for Intelligent Arrhythmia Detection

机译:隐私保护性心电图监测用于智能心律失常检测

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摘要

Long-term electrocardiogram (ECG) monitoring, as a representative application of cyber-physical systems, facilitates the early detection of arrhythmia. A considerable number of previous studies has explored monitoring techniques and the automated analysis of sensing data. However, ensuring patient privacy or confidentiality has not been a primary concern in ECG monitoring. First, we propose an intelligent heart monitoring system, which involves a patient-worn ECG sensor (e.g., a smartphone) and a remote monitoring station, as well as a decision support server that interconnects these components. The decision support server analyzes the heart activity, using the Pan–Tompkins algorithm to detect heartbeats and a decision tree to classify them. Our system protects sensing data and user privacy, which is an essential attribute of dependability, by adopting signal scrambling and anonymous identity schemes. We also employ a public key cryptosystem to enable secure communication between the entities. Simulations using data from the MIT-BIH arrhythmia database demonstrate that our system achieves a 95.74% success rate in heartbeat detection and almost a 96.63% accuracy in heartbeat classification, while successfully preserving privacy and securing communications among the involved entities.
机译:长期心电图(ECG)监测作为网络物理系统的代表性应用,有助于心律失常的早期检测。先前的大量研究已经探索了监视技术和传感数据的自动分析。但是,确保患者的隐私或机密性并不是ECG监测中的主要问题。首先,我们提出了一种智能心脏监测系统,该系统包括一个患者佩戴的ECG传感器(例如智能手机)和一个远程监测站,以及一个将这些组件互连的决策支持服务器。决策支持服务器使用Pan-Tompkins算法检测心跳,并使用决策树对其进行分类,从而分析心脏活动。我们的系统通过采用信号加扰和匿名身份方案来保护传感数据和用户隐私,这是可靠性的重要属性。我们还采用了公共密钥密码系统来实现实体之间的安全通信。使用MIT-BIH心律失常数据库中的数据进行的仿真表明,我们的系统在心跳检测中的成功率达到了95.74%,在心跳分类中的准确性达到了96.63%,同时成功地保护了隐私并保护了相关实体之间的通信。

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