Adaptive data compression of ambulatory ECG using multi templates

K. Akazawa, T. Uchiyama, S. Tanaka, A. Sasamori, E. Harasawa
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引用次数: 5

Abstract

Proposes a new adaptive method of data compression for digital ambulatory electrocardiograms (ECGs), considering the diagnostic significance of each segment of the ECG. The R-wave is detected, followed by multi-template matching of the detected beat and judgment of the noise level; the templates are successively created during processing. The residual signal (the difference between the original ECG and the best-fit template) is approximated with the FAN data compression method SAPA2 (Scan-Along Polygonal Approximation) and then encoded. The error threshold of FAN is decreased during the P-wave segments and increased during the noise segments; the maximum error of the reconstructed signal at each time is known. This method is applied to ECGs of the AHA (American Heart Association) database and its usefulness is indicated; e.g. the bit rate is approximately 400 bps at 8% PRD (percent RMS difference) and 200 bps at 15% PRD.<>
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基于多模板的动态心电数据自适应压缩
考虑到心电图各段的诊断意义,提出了一种新的数字动态心电图数据自适应压缩方法。检测r波,对检测到的拍频进行多模板匹配,判断噪声级;在处理过程中依次创建模板。利用FAN数据压缩方法SAPA2 (Scan-Along Polygonal Approximation)对残差信号(原始心电信号与最佳拟合模板之间的差值)进行近似,然后进行编码。在p波段误差阈值减小,在噪声段误差阈值增大;每次重构信号的最大误差是已知的。将该方法应用于AHA(美国心脏协会)数据库的心电图,表明其有效性;例如,比特率在8% PRD时约为400bps,在15% PRD时约为200bps。
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