Title :
Estimation of the Aortic Pressure Waveform and Beat-to-Beat Relative Cardiac Output Changes From Multiple Peripheral Artery Pressure Waveforms
Author :
Swamy, Gokul ; Mukkamala, Ramakrishna
Author_Institution :
Michigan State Univ., East Lansing
fDate :
5/1/2008 12:00:00 AM
Abstract :
We introduce a patient- and time-specific technique to estimate the clinically more relevant aortic pressure (AP) waveform and beat-to-beat relative changes in cardiac output (CO) from multiple peripheral artery pressure (PAP) waveforms distorted by wave reflections. The basic idea of the technique is to first estimate the AP waveform by applying a new multichannel blind system identification method that we have developed (rather than the conventional generalized transfer function) to the PAP waveforms and then estimate the beat-to-beat proportional CO by fitting a Windkessel model to the estimated waveform in which wave distortion should be attenuated. We present an evaluation of the technique with respect to four swine datasets including simultaneous measurements of two peripheral AP waveforms, a reference AP waveform, and reference aortic flow probe CO during diverse hemodynamic interventions. Our results show an overall AP waveform error of 3.5 mmHg and an overall beat-to-beat CO error of 12.9% (after a single CO calibration in each animal). These estimation errors represent substantial improvements compared to those obtained with several alternative PAP waveform analysis techniques. With further successful testing, the new technique may ultimately be employed for automated and less invasive monitoring of central hemodynamics in various cardiovascular patients.
Keywords :
biomedical measurement; blood vessels; cardiovascular system; eigenvalues and eigenfunctions; haemodynamics; patient monitoring; Windkessel model; aortic flow; aortic pressure waveform; beat-to-beat relative cardiac output changes; cardiovascular patient monitoring; eigenvector method; hemodynamic interventions; multichannel blind system identification method; multiple peripheral artery pressure waveforms; wave reflections; Animals; Arteries; Calibration; Distortion measurement; Fluid flow measurement; Hemodynamics; Probes; Reflection; System identification; Transfer functions; Aortic pressure (AP); Windkessel model; aortic pressure; arterial tree; blood pressure; cardiac output; cardiac output (CO); generalized transfer function; hemodynamics; multi-channel blind system identification; multichannel blind system identification (MBSI); peripheral artery pressure; peripheral artery pressure (PAP); wave reflections; windkessel model; Animals; Aorta; Blood Pressure Determination; Cardiac Output; Computer Simulation; Diagnosis, Computer-Assisted; Models, Cardiovascular; Pulsatile Flow; Reproducibility of Results; Sensitivity and Specificity; Swine;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2007.913408