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A Meta-heuristic Approach to Identification of Renal Blood Flow

机译:元启发式方法识别肾脏血流

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Hypertension (high blood pressure) is the most prominent cardiovascular disease affecting the majority of the population. One of the primary mediators of controlling blood pressure is the kidney, which is innervated by sympathetic nerves, through control of blood volume. It is therefore important to develop a dynamic model which explains the interaction between the sympathetic nerve activity (SNA) and renal blood flow (RBF). The present study proposes a simple approach based on binary particle swarms (BPSO) to model the complex interaction between sympathetic nerve activity (SNA) and renal blood flow (RBF) using polynomial nonlinear autoregressive with exogenous input (NARX) model. The effectiveness of BPSO is demonstrated by fitting models to different sets of RBF data which are collected from several rabbits under two conditions (vasoconstriction and vasodilation). Frequency domain analysis of the fitted model is carried out to investigate if there exist any similarities in the renal dynamics under the infusion of vasoconstrictors or vasodilators.
机译:高血压(高血压)是影响大多数人口的最突出的心血管疾病。控制血压的主要介质之一是肾脏,它通过控制血容量被交感神经支配。因此,重要的是建立一个动态模型来解释交感神经活动(SNA)和肾血流量(RBF)之间的相互作用。本研究提出了一种基于二进制粒子群(BPSO)的简单方法,使用多项式非线性自回归与外源输入(NARX)模型来模拟交感神经活动(SNA)与肾血流(RBF)之间的复杂相互作用。通过将模型拟合到不同的RBF数据集来证明BPSO的有效性,这些数据是在两种条件下(血管收缩和血管扩张)从几只兔子收集的。进行拟合模型的频域分析,以研究在输注血管收缩剂或血管扩张剂的情况下肾脏动力学是否存在任何相似之处。

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