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Support Vector Machine-Based ECG Compression

机译:基于支持向量机的ECG压缩

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This paper presents an adaptive, support vector machine-based ECG signal processing and compression method. After a conventional pre-filtering step, the characteristic waves (QRS, P, T) from the ECG signal are localized. The following step contains a regressive model for waveform description in terms of model parameters. The gained information allows an iterative filtering in permanent concordance with the aimed processing manner. The structure of the algorithm allows real-time adaptation to the heart's state. Using these methods for one channel of the MIT-BIH database, the detection rate of QRS complexes is above 99.9%. The negative influence of various noise types, like 50/60 Hz power line, abrupt baseline shift or drift, and low sampling rate was almost completely eliminated. The vector support machine system allow a good balance between compressing and diagnostic performance and the obtained results can form a solid base for better data storage in clinical environment.
机译:本文提出了一种基于支持向量机的自适应心电信号处理和压缩方法。在常规的预滤波步骤之后,来自ECG信号的特征波(QRS,P,T)被定位。后续步骤包含用于根据模型参数描述波形的回归模型。所获得的信息允许与目标处理方式保持永久一致的迭代过滤。该算法的结构允许实时适应心脏的状态。将这些方法用于MIT-BIH数据库的一个通道,QRS络合物的检出率高于99.9%。几乎完全消除了各种噪声类型(例如50/60 Hz电源线,突然的基线偏移或漂移以及低采样率)的负面影响。载体支持机系统在压缩和诊断性能之间实现了良好的平衡,并且获得的结果可以为在临床环境中更好地存储数据奠定坚实的基础。

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