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Predicting Cardiovascular Disease from Real-Time Electrocardiographic Monitoring: An Adaptive Machine Learning Approach on a Cell Phone

机译:从实时心电图监测预测心血管疾病:手机上的自适应机器学习方法

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To date, cardiovascular disease (CVD) is the leading cause of global death. The Electrocardiogram (ECG) is the most widely adopted clinical tool that measures the electrical activities of the heart from the body surface. However, heart rhythm irregularities cannot always be detected on a standard resting ECG machine, since they may not occur during an individual's recording session. Common Holter-based portable solutions that record ECG for up to 24 to 48 hours lack the capability to provide real-time feedback. In this research, we seek to establish a cell phone-based real-time monitoring technology for CVD, capable of performing continuous on-line ECG processing, generating a personalized cardiac health summary report in layman's language, automatically detecting and classifying abnormal CVD conditions, all in real time. Specifically, we developed an adaptive artificial neural network (ANN)-based machine learning technique, combining both an individual's cardiac characteristics and information from clinical ECG databases, to train the cell phone to learn to adapt to its user's physiological conditions to achieve better ECG feature extraction and more accurate CVD classification on cell phones.
机译:迄今为止,心血管疾病(CVD)是全球死亡的主要原因。心电图(ECG)是最广泛采用的临床工具,可测量心脏从体表中的电气活动。但是,在标准休息ECG机器上不能总是检测心律的违规行为,因为它们在个人的录制会话中可能不会发生。基于普通的HOLTER的便携式解决方案,可记录ECG最多24至48小时,缺乏提供实时反馈的能力。在本研究中,我们寻求为CVD建立一个基于手机的实时监控技术,能够在线表演连续的在线ECG处理,以外行语言生成个性化心脏健康摘要报告,自动检测和分类异常CVD条件,一切都实时。具体而言,我们开发了一种自适应人工神经网络(ANN)基础的机器学习技术,将个体的心脏特征和来自临床ECG数据库的信息组合,培训手机学会适应其用户的生理条件,以实现更好的ECG功能以实现更好的ECG特征细胞手机提取和更准确的CVD分类。

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