Key result
The tube-load model provides an attractive platform for improved monitoring of arterial hemodynamics by accurately fitting arterial pressure and flow waveforms using only a few parameters.
The tube-load model offers a mathematically tractable approach to monitor arterial hemodynamics, such as wave reflection and large artery compliance, from limited waveform data.
May support research use of tube-load models for waveform analysis; leaves open clinical adoption pending validation.
A useful model of the arterial system is the uniform, lossless tube with parametric load. This tube-load model is able to account for wave propagation and reflection (unlike lumped-parameter models such as the Windkessel) while being defined by only a few parameters (unlike comprehensive distributed-parameter models). As a result, the parameters may be readily estimated by accurate fitting of the model to available arterial pressure and flow waveforms so as to permit improved monitoring of arterial hemodynamics. In this paper, we review tube-load model parameter estimation techniques that have appeared in the literature for monitoring wave reflection, large artery compliance, pulse transit time, and central aortic pressure. We begin by motivating the use of the tube-load model for parameter estimation. We then describe the tube-load model, its assumptions and validity, and approaches for estimating its parameters. We next summarize the various techniques and their experimental results while highlighting their advantages over conventional techniques. We conclude the review by suggesting future research directions and describing potential applications.
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Zhang et al. (2011) conducted a review in Arterial hemodynamics. Tube-load model parameter estimation vs. Conventional waveform analysis techniques was evaluated. The tube-load model provides an attractive platform for improved monitoring of arterial hemodynamics by accurately fitting arterial pressure and flow waveforms using only a few parameters.
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