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Parameter Estimation of Hemodynamic Cardiovascular Model for Synthesis of Photoplethysmogram Signal

机译:光体积描记图信号合成的血流动力学心血管模型的参数估计

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Synthesis of accurate, personalize photoplethysmogram (PPG) signal is important to interpret, analyze and predict cardiovascular disease progression. Generative models like Generative Adversarial Networks (GANs) can be used for signal synthesis, however, they are difficult to map to the underlying pathophysiological conditions. Hence, we propose a PPG synthesis strategy that has been designed using a cardiovascular system, modeled through the hemodynamic principle. The modeled architecture is composed of a two-chambered heart along with the systemic-pulmonic blood circulation and a baroreflex auto-regulation mechanism to control the arterial blood pressure. The comprehensive PPG signal is synthesized from the cardiac pressure-flow dynamics. In order to tune the modeled cardiac parameters with respect to a measured PPG data, a novel feature extraction strategy has been employed along with the particle swarm optimization heuristics. Our results demonstrate that the synthesized PPG is accurately followed the morphological changes of the ground truth (GT) signal with an RMSE of 0.003 occurring due to the Coronary Artery Disease (CAD) which is caused by an obstruction in the artery.
机译:准确,个性化的光电容积描记(PPG)信号的合成对于解释,分析和预测心血管疾病的进展非常重要。生成模型(如生成对抗网络(GAN))可用于信号合成,但是,它们很难映射到潜在的病理生理状况。因此,我们提出了一种PPG合成策略,该策略已使用心血管系统设计,并通过血液动力学原理进行了建模。建模的体系结构由两腔心脏以及系统性肺动脉血液循环和压力反射自动调节机制组成,以控制动脉血压。全面的PPG信号是根据心脏压力流动动力学合成的。为了相对于测得的PPG数据调整建模的心脏参数,已采用了一种新颖的特征提取策略以及粒子群优化启发法。我们的结果表明,合成的PPG准确地遵循了地面真相(GT)信号的形态变化,由于冠状动脉疾病(CAD)是由动脉阻塞引起的,RMSE为0.003。

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