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MEANS: python package for Moment Expansion Approximation, iNference and Simulation

机译:mEaNs:用于moment Expansion approximation,iNference和simulation的python包

摘要

MOTIVATION: Many biochemical systems require stochastic descriptions. Unfortunately these can only be solved for the simplest cases and their direct simulation can become prohibitively expensive, precluding thorough analysis. As an alternative, moment closure approximation methods generate equations for the time-evolution of the system's moments and apply a closure ansatz to obtain a closed set of differential equations; that can become the basis for the deterministic analysis of the moments of the outputs of stochastic systems. RESULTS: We present a free, user-friendly tool implementing an efficient moment expansion approximation with parametric closures that integrates well with the IPython interactive environment. Our package enables the analysis of complex stochastic systems without any constraints on the number of species and moments studied and the type of rate laws in the system. In addition to the approximation method our package provides numerous tools to help non-expert users in stochastic analysis. AVAILABILITY AND IMPLEMENTATION: https://github.com/theosysbio/means CONTACTS: m.stumpf@imperial.ac.uk or e.lakatos13@imperial.ac.ukSupplementary information: Supplementary data are available at Bioinformatics online.
机译:动机:许多生化系统需要随机描述。不幸的是,只有在最简单的情况下才能解决这些问题,并且直接仿真可能会变得非常昂贵,而无法进行全面分析。另一种方法是,力矩闭合近似方法生成系统力矩随时间变化的方程,并应用闭合ansatz来获得一组封闭的微分方程。它可以成为确定性分析随机系统输出力矩的基础。结果:我们提供了一个免费的,用户友好的工具,该工具使用参数闭包实现了有效的矩扩展近似,并且与IPython交互式环境很好地集成在一起。我们的软件包可以对复杂的随机系统进行分析,而对所研究的种类和矩数以及系统中的速率定律的类型没有任何限制。除近似方法外,我们的软件包还提供了许多工具来帮助非专业用户进行随机分析。可用性和实现:https://github.com/theosysbio/means联系人:m.stumpf@imperial.ac.uk或e.lakatos13@imperial.ac.uk补充信息:补充数据可从Bioinformatics在线获得。

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