Title :
Validation of the Inverse Pulse Wave Transit Time Series as Surrogate of Systolic Blood Pressure in MVAR Modeling
Author :
Giassi, Pedro ; Okida, Sergio ; Oliveira, Mauricio G. ; Moraes, Ricardo
Author_Institution :
Dept. of Electr. Eng., Fed. Univ. of Santa Catarina, Florianopolis, Brazil
Abstract :
Short-term cardiovascular regulation mediated by the sympathetic and parasympathetic branches of the autonomic nervous system has been investigated by multivariate autoregressive (MVAR) modeling, providing insightful analysis. MVAR models employ, as inputs, heart rate (HR), systolic blood pressure (SBP) and respiratory waveforms. ECG (from which HR series is obtained) and respiratory flow waveform (RFW) can be easily sampled from the patients. Nevertheless, the available methods for acquisition of beat-to-beat SBP measurements during exams hamper the wider use of MVAR models in clinical research. Recent studies show an inverse correlation between pulse wave transit time (PWTT) series and SBP fluctuations. PWTT is the time interval between the ECG R-wave peak and photoplethysmography waveform (PPG) base point within the same cardiac cycle. This study investigates the feasibility of using inverse PWTT (IPWTT) series as an alternative input to SBP for MVAR modeling of the cardiovascular regulation. For that, HR, RFW, and IPWTT series acquired from volunteers during postural changes and autonomic blockade were used as input of MVAR models. Obtained results show that IPWTT series can be used as input of MVAR models, replacing SBP measurements in order to overcome practical difficulties related to the continuous sampling of the SBP during clinical exams.
Keywords :
autoregressive processes; blood; blood pressure measurement; cardiovascular system; fluctuations; medical signal processing; neurophysiology; photoplethysmography; signal sampling; time series; waveform analysis; ECG R-wave peak; MVAR modeling; SBP fluctuations; autonomic blockade; autonomic nervous system; beat-to-beat SBP measurements; cardiac cycle; cardiovascular regulation; clinical exams; continuous sampling; heart rate; inverse pulse wave transit time series validation; multivariate autoregressive modeling; parasympathetic branches; photoplethysmography waveform base point; postural changes; respiratory flow waveform; respiratory waveforms; short-term cardiovascular regulation; sympathetic branches; systolic blood pressure measurements; Bandwidth; Biomedical measurement; Blood pressure; Electrocardiography; Heart rate; Autonomic blockade; cardiovascular control; closed-loop system identification; multivariate autoregressive model (MVAR); Adult; Blood Pressure; Electrocardiography; Female; Humans; Male; Models, Cardiovascular; Multivariate Analysis; Photoplethysmography; Posture; Pulse Wave Analysis; Regression Analysis; Reproducibility of Results; Respiratory Rate; Signal Processing, Computer-Assisted; Young Adult;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2013.2270467