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利用单导联心向量图样条表示进行心肌梗死的自动分类。

Automatic Classification of Myocardial Infarction Using Spline Representation of Single-Lead Derived Vectorcardiography.

机构信息

Institute of Electrical and Computer Engineering, National Chiao-Tung University, Hsinchu 30010, Taiwan.

出版信息

Sensors (Basel). 2020 Dec 17;20(24):7246. doi: 10.3390/s20247246.

Abstract

Myocardial infarction (MI) is one of the most prevalent cardiovascular diseases worldwide and most patients suffer from MI without awareness. Therefore, early diagnosis and timely treatment are crucial to guarantee the life safety of MI patients. Most wearable monitoring devices only provide single-lead electrocardiography (ECG), which represents a major limitation for their applicability in diagnosis of MI. Incorporating the derived vectorcardiography (VCG) techniques can help monitor the three-dimensional electrical activities of human hearts. This study presents a patient-specific reconstruction method based on long short-term memory (LSTM) network to exploit both intra- and inter-lead correlations of ECG signals. MI-induced changes in the morphological and temporal wave features are extracted from the derived VCG using spline approximation. After the feature extraction, a classifier based on multilayer perceptron network is used for MI classification. Experiments on PTB diagnostic database demonstrate that the proposed system achieved satisfactory performance to differentiating MI patients from healthy subjects and to localizing the infarcted area.

摘要

心肌梗死(MI)是全球最常见的心血管疾病之一,大多数患者在没有意识的情况下患有 MI。因此,早期诊断和及时治疗对于保证 MI 患者的生命安全至关重要。大多数可穿戴监测设备仅提供单导联心电图(ECG),这是其在 MI 诊断中应用的主要限制。结合推导的心向量图(VCG)技术可以帮助监测人体心脏的三维电活动。本研究提出了一种基于长短期记忆(LSTM)网络的患者特异性重建方法,以利用 ECG 信号的导联内和导联间相关性。使用样条逼近从推导的 VCG 中提取 MI 诱导的形态和时间波特征变化。在特征提取之后,使用基于多层感知机网络的分类器进行 MI 分类。PTB 诊断数据库上的实验表明,所提出的系统在区分 MI 患者和健康受试者以及定位梗死区域方面取得了令人满意的性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a27/7767111/5f306a34f686/sensors-20-07246-g001.jpg

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