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A new real-time algorithm for obtaining the ECG-derived respiration (EDR) signal from the electrocardiogram (ECG).

机译:一种新的实时算法,可从心电图(ECG)获得ECG派生的呼吸(EDR)信号。

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摘要

The purpose of the work reported in this thesis was to develop and implement a realtime algorithm for estimating the baseline wander noise and subsequently estimate the ECG-Derived Respiration signal (EDR) from a single lead electrocardiogram (ECG). The objective was achieved using digital signal processing techniques (DSP). In this work, DSP techniques were used to analyze the ECG waveform and filter out various different noise components that ride on the ECG signal. Related computation was performed using numerical analysis techniques such as interpolation to estimate the baseline noise and the EDR signal.; In this work, the author developed a real-time algorithm (EDR_T_P_knot.m) using pseudo serial-shift registers (finite length arrays) that estimates and removes the baseline wander noise, and estimates the EDR signal. The author implemented the algorithm in MATLAB for its user-friendly graphical user-interface (GUI). This algorithm could also be implemented in other high level programming languages such a C, C++, etc.; The new T-P knot algorithm has three major sections. The first section uses the Pan & Tompkins algorithm [3] to obtain the QRS proximity. The second section, estimates the baseline wander noise based on 3rd-order interpolation of the baseline at midpoints in each R-R interval. The final section estimates the EDR signal using 3rd-order interpolation of the ECG R-Wave respiration modulation calculated using the final estimate of the R-Wave peaks. The implemented algorithm was tested on real ECG data from the PhysioBank FANTASIA database for its efficacy. The test results confirm that the implemented algorithm successfully detected the QRS complexes, provided an accurate estimate of the baseline wander noise and consequently an accurate estimate of the respiration rate from the derived respiration signal.; The results confirm that the author successfully achieved the desired objective of developing and implementing a real-time algorithm for estimating the baseline noise and hence the ECG-Derived Respiration (EDR) signal.
机译:本文报道的工作目的是开发和实现一种实时算法,用于估计基线漂移噪声,然后从单导联心电图(ECG)估计ECG派生呼吸信号(EDR)。使用数字信号处理技术(DSP)实现了该目标。在这项工作中,使用了DSP技术来分析ECG波形并滤除依赖于ECG信号的各种不同噪声成分。使用数值分析技术(例如插值法)进行相关计算,以估计基线噪声和EDR信号。在这项工作中,作者使用伪串行移位寄存器(有限长度阵列)开发了一种实时算法(EDR_T_P_knot.m),该寄存器可估计和消除基线漂移噪声,并估计EDR信号。作者在MATLAB中为其用户友好的图形用户界面(GUI)实现了该算法。该算法还可以在其他高级编程语言(例如C,C ++等)中实现;新的T-P结算法具有三个主要部分。第一部分使用Pan&Tompkins算法[3]获得QRS接近度。第二部分基于每个R-R间隔中点的基线的三阶插值估计基线漂移噪声。最后部分使用ECG R-Wave呼吸调制的三阶插值来估算EDR信号,该调制是使用R-Wave峰的最终估算来计算的。在PhysioBank FANTASIA数据库的真实ECG数据上测试了实现的算法的功效。测试结果证实了所实施的算法成功地检测到QRS络合物,提供了基线漂移噪声的准确估计,并因此从导出的呼吸信号中准确地估计了呼吸速率。结果证实,作者成功实现了开发和实施实时算法以估计基线噪声并因此估算出ECG派生呼吸(EDR)信号的预期目标。

著录项

  • 作者

    Arunachalam, Shivaram P.;

  • 作者单位

    South Dakota State University.;

  • 授予单位 South Dakota State University.;
  • 学科 Engineering Biomedical.; Engineering Electronics and Electrical.
  • 学位 M.S.
  • 年度 2007
  • 页码 329 p.
  • 总页数 329
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:39:10

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