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A comparison of deterministic and stochastic approaches for sensitivity analysis in computational systems biology

机译:计算系统生物学中敏感性分析确定性和随机方法的比较

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摘要

With the recent rising application of mathematical models in the field of computational systems biology, the interest in sensitivity analysis methods had increased. The stochastic approach, based on chemical master equations, and the deterministic approach, based on ordinary differential equations (ODEs), are the two main approaches for analyzing mathematical models of biochemical systems. In this work, the performance of these approaches to compute sensitivity coefficients is explored in situations where stochastic and deterministic simulation can potentially provide different results (systems with unstable steady states, oscillators with population extinction and bistable systems).We consider two methods in the deterministic approach, namely the direct differential method and the finite difference method, and five methods in the stochastic approach, namely the Girsanov transformation, the independent random number method, the common random number method, the coupled finite difference method and the rejection-based finite difference method. The reviewed methods are compared in terms of sensitivity values and computational time to identify differences in outcome that can highlight conditions in which one approach performs better than the other.
机译:随着近期数学模型在计算系统生物学领域的应用,对敏感性分析方法的兴趣增加。基于普通微分方程(ODES)的基于化学主方程和确定性方法的随机方法是分析生物化学系统数学模型的两种主要方法。在这项工作中,在随机和确定性模拟可能提供不同的结果(具有不稳定稳态的系统,具有人口灭绝和双稳态系统的振荡器)的情况下,探讨了这些计算灵敏度系数的性能。我们在确定性中考虑两种方法方法,即直接差分方法和有限差分方法,以及五种方法在随机方法中,即Girsanov变换,独立随机数法,常见随机数法,耦合有限差分法和基于抑制的有限差异方法。在敏感性值和计算时间方面比较审查的方法,以识别可以突出显示一种方法比另一个方法更好的条件的结果的差异。

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