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Structural identification of biochemical reaction networks from population snapshot data

机译:人口快照数据的生物化学反应网络的结构鉴定

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In this paper we investigate how randomness in biochemical network dynamics improves identification of the network structure. Focusing on the case of so-called population snapshot data, we set out the problem as that of reconstructing the unknown stoichiometry matrix and rate parameters of the network in the case of state-affine reaction rates. We discuss what additional information is conveyed by the observation of second-order moments of the system species relative to the sole knowledge of their mean profiles. We then illustrate the impact of this additional piece of information in the reconstruction of an unknown network structure by means of a simple numerical example.
机译:在本文中,我们调查生化网络动态中的随机性如何提高网络结构的识别。专注于所谓的人口快照数据的情况,我们阐述了在状态 - 仿射反应速率的情况下重建未知化学计量矩阵和网络速率参数的问题。我们讨论了通过相对于其平均轮廓的唯一知识来观察系统物种的二阶矩传达的附加信息。然后,我们通过简单的数值示例说明在未知网络结构的重建中的这种额外信息的影响。

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