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Asynchronous tau-leaping

机译:异步tau-leaping

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摘要

Stochastic simulation of cell signaling pathways and genetic regulatory networks has contributed to the understanding of cell function; however, investigation of larger, more complicated systems requires computationally efficient algorithms. tau-leaping methods, which improve efficiency when some molecules have high copy numbers, either use a fixed leap size, which does not adapt to changing state, or recalculate leap size at a heavy computational cost. We present a hybrid simulation method for reaction-diffusion systems which combines exact stochastic simulation and tau-leaping in a dynamic way. Putative times of events are stored in a priority queue, which reduces the cost of each step of the simulation. For every reaction and diffusion channel at each step of the simulation the more efficient of an exact stochastic event or a tau-leap is chosen. This new approach removes the inherent trade-off between speed and accuracy in stiff systems which was present in all tau-leaping methods by allowing each reaction channel to proceed at its own pace. Both directions of reversible reactions and diffusion are combined in a single event, allowing bigger leaps to be taken. This improves efficiency for systems near equilibrium where forward and backward events are approximately equally frequent. Comparison with existing algorithms and behaviour for five test cases of varying complexity shows that the new method is almost as accurate as exact stochastic simulation, scales well for large systems, and for various problems can be significantly faster than tau-leaping. (C) 2016 AIP Publishing LLC.
机译:细胞信号通路和遗传调控网络的随机模拟有助于理解细胞功能。但是,对更大,更复杂的系统的研究需要高效计算的算法。 tau-leaping方法可以提高某些分子具有高拷贝数时的效率,要么使用固定的跃迁大小(不适应变化的状态),要么以沉重的计算成本重新计算跃迁大小。我们提出了一种反应扩散系统的混合仿真方法,该方法以动态方式结合了精确的随机仿真和tau浸出。事件的假定时间存储在优先级队列中,这降低了模拟每个步骤的成本。对于模拟的每个步骤中的每个反应和扩散通道,选择更为准确的随机事件或tau跨越。这种新方法消除了刚性系统中速度和精度之间固有的权衡关系,这种僵化是所有tau浸出方法中都存在的,它允许每个反应通道按自己的步调前进。可逆反应和扩散的两个方向在一个事件中结合在一起,可以采取更大的飞跃。这提高了接近平衡的系统的效率,在该系统中,前向和后向事件的发生频率大致相同。与用于五个复杂度不同的测试案例的现有算法和行为的比较表明,该新方法几乎与精确的随机模拟一样准确,可以很好地适用于大型系统,并且解决各种问题的速度都比tau-leaping快。 (C)2016 AIP出版有限责任公司。

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