Literature DB >> 27626806

Optimizing Estimates of Instantaneous Heart Rate from Pulse Wave Signals with the Synchrosqueezing Transform.

Hau-Tieng Wu1, Gregory F Lewis, Maria I Davila, Ingrid Daubechies, Stephen W Porges.   

Abstract

BACKGROUND: With recent advances in sensor and computer technologies, the ability to monitor peripheral pulse activity is no longer limited to the laboratory and clinic. Now inexpensive sensors, which interface with smartphones or other computer-based devices, are expanding into the consumer market. When appropriate algorithms are applied, these new technologies enable ambulatory monitoring of dynamic physiological responses outside the clinic in a variety of applications including monitoring fatigue, health, workload, fitness, and rehabilitation. Several of these applications rely upon measures derived from peripheral pulse waves measured via contact or non-contact photoplethysmography (PPG). As technologies move from contact to non-contact PPG, there are new challenges. The technology necessary to estimate average heart rate over a few seconds from a noncontact PPG is available. However, a technology to precisely measure instantaneous heat rate (IHR) from non-contact sensors, on a beat-to-beat basis, is more challenging.
OBJECTIVES: The objective of this paper is to develop an algorithm with the ability to accurately monitor IHR from peripheral pulse waves, which provides an opportunity to measure the neural regulation of the heart from the beat-to-beat heart rate pattern (i.e., heart rate variability).
METHODS: The adaptive harmonic model is applied to model the contact or non-contact PPG signals, and a new methodology, the Synchrosqueezing Transform (SST), is applied to extract IHR. The body sway rhythm inherited in the non-contact PPG signal is modeled and handled by the notion of wave-shape function.
RESULTS: The SST optimizes the extraction of IHR from the PPG signals and the technique functions well even during periods of poor signal to noise. We contrast the contact and non-contact indices of PPG derived heart rate with a criterion electrocardiogram (ECG). ECG and PPG signals were monitored in 21 healthy subjects performing tasks with different physical demands. The root mean square error of IHR estimated by SST is significantly better than commonly applied methods such as autoregressive (AR) method. In the walking situation, while AR method fails, SST still provides a reasonably good result.
CONCLUSIONS: The SST processed PPG data provided an accurate estimate of the ECG derived IHR and consistently performed better than commonly applied methods such as autoregressive method.

Entities:  

Keywords:  Instantaneous heart rate; PhysioCam; heart rate variability; photoplethysmography; synchrosqueezing transform

Mesh:

Year:  2016        PMID: 27626806     DOI: 10.3414/ME16-01-0026

Source DB:  PubMed          Journal:  Methods Inf Med        ISSN: 0026-1270            Impact factor:   2.176


  4 in total

1.  Analysis of time-varying signals using continuous wavelet and synchrosqueezed transforms.

Authors:  Jean Baptiste Tary; Roberto Henry Herrera; Mirko van der Baan
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2018-08-13       Impact factor: 4.226

2.  Modeling the Pulse Signal by Wave-Shape Function and Analyzing by Synchrosqueezing Transform.

Authors:  Hau-Tieng Wu; Han-Kuei Wu; Chun-Li Wang; Yueh-Lung Yang; Wen-Hsiang Wu; Tung-Hu Tsai; Hen-Hong Chang
Journal:  PLoS One       Date:  2016-06-15       Impact factor: 3.240

3.  A new approach for analysis of heart rate variability and QT variability in long-term ECG recording.

Authors:  Hau-Tieng Wu; Elsayed Z Soliman
Journal:  Biomed Eng Online       Date:  2018-05-03       Impact factor: 2.819

4.  How Nonlinear-Type Time-Frequency Analysis Can Help in Sensing Instantaneous Heart Rate and Instantaneous Respiratory Rate from Photoplethysmography in a Reliable Way.

Authors:  Antonio Cicone; Hau-Tieng Wu
Journal:  Front Physiol       Date:  2017-09-22       Impact factor: 4.566

  4 in total

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