Interpretable and accurate curve‐fitting method for arterial pulse wave modeling and decomposition

Author:

Chen Zhendong1,Peng Bo23,Zhou Yuqi4,Hao Yinan2,Xie Xiaohua1

Affiliation:

1. School of Computer Science and Engineering Sun Yat‐sen University Guangzhou China

2. Department of Musical Instrument Engineering Xinghai Conservatory of Music Guangzhou China

3. Sniow Research and Development Laboratory Foshan China

4. Department of Pulmonary and Critical Care Medicine Third Affiliated Hospital of Sun Yat‐sen University Guangzhou China

Abstract

AbstractArterial pulse waveforms contain a wealth of information about the cardiovascular system. There is a lack of physical meaning in the mathematical model of arterial pulse waves, while the physical model fails to offer individuality as too many assumptions are involved. In this article, we focus on promoting the interpretability of the arterial pulse mathematical model. The proposed method is based on newly developed 3‐term fitting functions individualized by the physiological parameter assignment, which are the peak times of the reflected and dicrotic waves in a pulse. In this manner, the model allows decomposition of the pulse into sub‐signals with clear physiological significance. With nearly 10,000 pulse fitting experiments, it is demonstrated that the proposed method outperforms the standard methods in fitting accuracy while providing parameters linked to hemodynamic characteristics and common clinical indices such as the peripheral augmentation index (pAI). The proposed method innovatively maintains the individuality and accuracy of mathematical models while improving the interpretability of their parameters. The applications of this newly developed method, which explicitly incorporates hemodynamic characteristics, are expected to be particularly valuable in future pulse wave decomposition studies.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Applied Mathematics,Computational Theory and Mathematics,Molecular Biology,Modeling and Simulation,Biomedical Engineering,Software

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