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An efficient parallel numerical method for large-scale computational models of cardiac electrophysiology

机译:心脏电生理学大规模计算模型的高效并行数值方法

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Electrophysiological models have been widely used in the researches of electrical activities of cardiac tissue. It is always recognized as a computational challenge to solve these large-scale computational models with reliable accuracy and less time consumption. In this paper, a modified explicit finite difference method with a high accuracy for large-scale parallel computation was studied, which is absolute stable to make larger time steps can be achieved. Then a new global method for treatment of no-flux boundary conditions is proposed, which can automatic handle without tracking, especially convenient for parallel computing. By computing and comparing, the methods proposed has a higher accuracy than traditional difference methods (e.g. conventional seven-point centered difference (CD)) and conventional boundary treatment, moreover, in the reasonable error range, a maximum time step of 0.1ms could be used, and the time cost for stimulating 400ms is cut to 6.08 hours contrasting to 33.89 hours of CD method, implying it is a reliable, efficient and feasible parallel method, which is practical and promising for simulation research of the cardiac electrical activities.
机译:电生理模型已广泛用于心脏组织电活动的研究。解决这些大规模计算模型具有可靠的准确性和更少的时间消耗一直被认为是计算难题。本文研究了一种大规模并行计算的高精度修正显式有限差分方法,该方法绝对稳定,可以实现较大的时间步长。然后提出了一种新的全局方法来处理无磁通边界条件,该方法可以自动处理而无需跟踪,特别方便并行计算。通过计算和比较,所提出的方法比传统的差分方法(例如常规的七点中心差分(CD))和常规的边界处理方法具有更高的精度,此外,在合理的误差范围内,最大时间步长为0.1ms相比于CD法的33.89小时,使用400ms刺激的时间成本降低到6.08小时,这意味着它是一种可靠,高效且可行的并行方法,对于心脏电活动的仿真研究是实用且有希望的。

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