首页> 外文会议>The 3rd International Conference on Bioinformatics and Biomedical Engineering(iCBBE 2009)(第三届生物信息与生物医学工程国际会议)论文集 >A Comparison of Baseline Removal Algorithms for Electrocardiogram (ECG) based Automated Diagnosis of Coronory Heart Disease
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A Comparison of Baseline Removal Algorithms for Electrocardiogram (ECG) based Automated Diagnosis of Coronory Heart Disease

机译:基于心电图(ECG)的自动诊断冠心病基线去除算法的比较

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This paper presents a comparison of different approaches for performing baseline removal in the electrocardiogram (ECG) signal for use in an ECG based decision support system for diagnosis of coronary heart disease. Our implementations of seven different algorithms for removal of baseline from the ECG signal have been compared which include methods based on use of linear Digital filters, Adaptive filters, Multiresolution analysis and Curve fitting or polynomial based approaches. The comparison was carried out using manual ST Segment level annotations in different ST segment deviation episodes from the European Society of Cardiology (ESC) ST-T database. Results indicate that the use of Wavelet Adaptive Filter for baseline removal produces ST segment levels which are the closest to those annotated by the human expert.
机译:本文介绍了在基于心电图的决策支持系统中用于诊断冠心病的心电图(ECG)信号中执行基线去除的不同方法的比较。比较了我们从心电图信号中去除基线的七种不同算法的实现方式,其中包括基于使用线性数字滤波器,自适应滤波器,多分辨率分析以及基于曲线拟合或多项式的方法。使用来自欧洲心脏病学会(ESC)ST​​-T数据库的不同ST段偏离情节中的手动ST段水平注释进行比较。结果表明,使用小波自适应滤波器进行基线去除会产生最接近人类专家注释的ST段水平。

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