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November 1, 2005BioMedical Engineering OnLine82 citationsOpen Access

Assessment of pulse rate variability by the method of pulse frequency demodulation

JHJunichiro HayanoABAllan Kardec BarrosAKAtsunori Kamiya

Key Result

Pulse frequency demodulation of pulse wave signals provided reliable assessment of pulse rate variability, demonstrating excellent agreement with ECG-derived low and high frequency components (ICC 0.997 and 0.981).

Study Design

Type

Observational (n=33)

Structured PICO

Does pulse frequency demodulation of pulse wave signals accurately assess pulse rate variability compared to ECG-derived heart rate variability in resting subjects?

P
Population
33 healthy subjects (23 males, 10 females), mean age 34 years (range 22-47), recruited from staff in the authors' workplaces. 30 subjects were included in the final analysis (1 excluded due to technical problems, 2 due to atrial fibrillation).
I
Intervention
Pulse frequency demodulation (PFDM) of pulse wave signals obtained with a wireless trans-dermal photoelectric pulse wave sensor system
C
Comparator
Heart rate variability (HRV) assessed from simultaneously recorded electrocardiogram (ECG)
O
Outcome
Agreement between pulse rate variability (PRV) assessed by PFDM and heart rate variability (HRV) assessed by ECGsurrogate

Pulse frequency demodulation of pulse wave signals provides a reliable assessment of pulse rate variability that closely agrees with ECG-derived heart rate variability during rest.

Main Result

Effect estimate: ICC 0.997

Absolute Event Rate: 27.4% vs 27.6%

Limitations

  • The pulse wave device allowed stable measurement only during rest, with no ambulatory devices available for activities.
  • Inability to assess the specific type of arrhythmias directly from the pulse wave.
  • Physiological differences between pulse interval and R-R interval, such as respiratory fluctuations of pulse wave velocity.
  • The pulse wave device allowed stable measure of pulse wave signal only during rest at present
  • No noninvasive ambulatory devices are currently available for measuring stable pulse wave signal during activities

Abstract

BACKGROUND: Due to its easy applicability, pulse wave has been proposed as a surrogate of electrocardiogram (ECG) for the analysis of heart rate variability (HRV). However, its smoother waveform precludes accurate measurement of pulse-to-pulse interval by fiducial-point algorithms. Here we report a pulse frequency demodulation (PFDM) technique as a method for extracting instantaneous pulse rate function directly from pulse wave signal and its usefulness for assessing pulse rate variability (PRV). METHODS: Simulated pulse wave signals with known pulse interval functions and actual pulse wave signals obtained from 30 subjects with a trans-dermal pulse wave device were analyzed by PFDM. The results were compared with heart rate and HRV assessed from simultaneously recorded ECG. RESULTS: Analysis of simulated data revealed that the PFDM faithfully demodulates source interval function with preserving the frequency characteristics of the function, even when the intervals fluctuate rapidly over a wide range and when the signals include fluctuations in pulse height and baseline. Analysis of actual data revealed that individual means of low and high frequency components of PRV showed good agreement with those of HRV (intraclass correlation coefficient, 0.997 and 0.981, respectively). CONCLUSION: The PFDM of pulse wave signal provides a reliable assessment of PRV. Given the popularity of pulse wave equipments, PFDM may open new ways to the studies of long-term assessment of cardiovascular variability and dynamics.

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Cite This Study

Hayano et al. (2005) conducted an observational in Healthy volunteers (n=33). Pulse frequency demodulation (PFDM) of pulse wave vs. Electrocardiogram (ECG) was evaluated on Mean low frequency (LF) amplitude agreement between PRV and HRV (ICC 0.997). Pulse frequency demodulation of pulse wave signals provided reliable assessment of pulse rate variability, demonstrating excellent agreement with ECG-derived low and high frequency components (ICC 0.997 and 0.981).

synapsesocial.com/papers/6a16d83cb082e78ad77ba05ehttps://doi.org/10.1186/1475-925x-4-62
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Also Consider

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