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Automated classification of coronary atherosclerosis using single lead ECG

机译:使用单导联心电图自动分类冠状动脉粥样硬化

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Atherosclerosis in the coronary arteries represents a major medical burden throughout the world. While the disease may not manifest with symptoms at early stages, the high risk of heart attack and stroke at first presentation make early detection of this disease process critical. While the electrocardiogram (ECG) exercise stress test is commonly used to diagnose coronary artery atherosclerosis, it is an expensive test that requires cumbersome electrode placement with standardized exercise environment testing. We present an automated method for using a single lead of ECG sensors to classify subjects afflicted by atherosclerosis. This method is not only optimized for streamlined sensor implementation, but also automates classification to address data overload. Using the MIT-BIH database, the framework achieves high accuracy and diagnostic performance, supporting the clinical value of this novel classification method.
机译:冠状动脉的动脉粥样硬化代表了全世界的主要医疗负担。尽管该疾病可能不会在早期阶段表现出症状,但是在首次出现时心脏病发作和中风的高风险使得尽早发现该疾病过程至关重要。尽管心电图(ECG)运动压力测试通常用于诊断冠状动脉粥样硬化,但它是一项昂贵的测试,需要通过标准化的运动环境测试来麻烦地放置电极。我们提出了一种使用心电图传感器单线对动脉粥样硬化患者进行分类的自动化方法。此方法不仅针对简化的传感器实现进行了优化,而且还实现了自动分类以解决数据过载的问题。使用MIT-BIH数据库,该框架可实现较高的准确性和诊断性能,从而支持此新颖分类方法的临床价值。

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