首页> 外国专利> Wavelet based feature extraction and dimension reduction for the classification of human cardiac electrogram depolarization waveforms

Wavelet based feature extraction and dimension reduction for the classification of human cardiac electrogram depolarization waveforms

机译:基于小波的特征提取和降维用于人心电图去极化波形的分类

摘要

A depolarization waveform classifier based on the Modified lifting line wavelet Transform is described. Overcomes problems in existing rate-based event classifiers. A task for pacemaker/defibrillators is the accurate identification of rhythm categories so correct electrotherapy can be administered. Because some rhythms cause rapid dangerous drop in cardiac output, it's desirable to categorize depolarization waveforms on a beat-to-beat basis to accomplish rhythm classification as rapidly as possible. Although rate based methods of event categorization have served well in implanted devices, these methods suffer in sensitivity and specificity when atrial/ventricular rates are similar. Human experts differentiate rhythms by morphological features of strip chart electrocardiograms. The wavelet transform approximates human expert analysis function because it correlates distinct morphological features at multiple scales. The accuracy of implanted rhythm determination can then be improved by using human-appreciable time domain features enhanced by time scale decomposition of depolarization waveforms.
机译:描述了基于修正提升线小波变换的去极化波形分类器。克服现有基于速率的事件分类器中的问题。起搏器/除颤器的任务是准确识别心律类别,以便可以进行正确的电疗。由于某些节律会导致心输出量快速危险下降,因此最好逐个搏动对去极化波形进行分类,以尽可能快地完成节律的分类。尽管基于速率的事件分类方法在植入式设备中效果很好,但是当心房/心室速率相似时,这些方法在敏感性和特异性上会受到影响。人类专家通过条形图心电图的形态特征来区分节律。小波变换近似于人类专家分析功能,因为它在多个尺度上关联了不同的形态特征。然后可以通过使用人为感知的时域特征(通过去极化波形的时标分解增强)来提高植入节奏的确定精度。

著录项

  • 公开/公告号US7751873B2

    专利类型

  • 公开/公告日2010-07-06

    原文格式PDF

  • 申请/专利权人 CHRISTOPHER S. DE VOIR;

    申请/专利号US20070933924

  • 发明设计人 CHRISTOPHER S. DE VOIR;

    申请日2007-11-01

  • 分类号A61N1/365;

  • 国家 US

  • 入库时间 2022-08-21 18:48:07

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