DocumentCode
87678
Title
A Robust Method for Pulse Peak Determination in a Digital Volume Pulse Waveform With a Wandering Baseline
Author
Dae-Geun Jang ; Farooq, Umar ; Seung-Hun Park ; Minsoo Hahn
Author_Institution
Dept. of Electr. Eng., Korea Adv. Inst. of Sci. & Technol., Daejeon, South Korea
Volume
8
Issue
5
fYear
2014
fDate
Oct. 2014
Firstpage
729
Lastpage
737
Abstract
This paper presents a robust method for pulse peak determination in a digital volume pulse (DVP) waveform with a wandering baseline. A proposed new method uses a modified morphological filter (MMF) to eliminate a wandering baseline signal of the DVP signal with minimum distortion and a slope sum function (SSF) with an adaptive thresholding scheme to detect pulse peaks from the baseline-removed DVP signal. Further in order to cope with over-detected and missed pulse peaks, knowledge based rules are applied as a postprocessor. The algorithm automatically adjusts detection parameters periodically to adapt to varying beat morphologies and fluctuations. Compared with conventional methods (highpass filtering, linear interpolation, cubic spline interpolation, and wavelet adaptive filtering), our method performs better in terms of the signal-to-error ratio, the computational burden (0.125 seconds for one minute of DVP signal analysis with the Intel Core 2 Quad processor @ 2.40 GHz PC), the true detection rate (97.32% with an acceptance level of 4 ms ) as well as the normalized error rate (0.18%). In addition, the proposed method can detect true positions of pulse peaks more accurately and becomes very useful for pulse transit time (PTT) and pulse rate variability (PRV) analyses.
Keywords
bioelectric potentials; distortion; medical signal detection; medical signal processing; adaptive thresholding scheme; beat fluctuation variation; beat morphology variation; cubic spline interpolation methods; digital volume pulse waveform; distortion; highpass filtering methods; linear interpolation methods; modified morphological filter; pulse peak determination; pulse rate variability analysis; pulse transit time analysis; signal-to-error ratio; slope sum function; time 0.125 s; time 1 min; time 4 ms; wandering baseline signal; wavelet adaptive filtering methods; Heart rate; Interpolation; Morphology; Noise; Robustness; Splines (mathematics); Wavelet transforms; Baseline wander; digital volume pulse; morphological filter; peak determination; slope sum function;
fLanguage
English
Journal_Title
Biomedical Circuits and Systems, IEEE Transactions on
Publisher
ieee
ISSN
1932-4545
Type
jour
DOI
10.1109/TBCAS.2013.2295102
Filename
6730966
Link To Document