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Constrained Reduction Mapping for a Class of Network Models of Genomic Regulation

机译:基因组调控类别的约束减少映射

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Constructing network models of genomic regulation from data can help to better understand the manner in which genes interact in an integrative and holistic way within a given genome. One of the major impediments for the practical application of such models is their structural and computational complexity. Thus, it is sometimes necessary to construct computationally tractable sub-networks while still carrying sufficient structure for the application at hand. Hence, there is a need for size reducing mappings. This paper focuses on constrained reduction mappings for a particular class of network models that are inferred from non-temporal data. The constraints arise naturally from the structural and dynamical properties of the considered models.
机译:从数据构建基因组调节的网络模型可以有助于更好地理解基因在给定基因组内以总体和整体方式相互作用的方式。这种模型的实际应用的主要障碍之一是它们的结构和计算复杂性。因此,有时需要构建计算易易手的子网,同时仍然携带手头应用的足够结构。因此,需要大小减少映射。本文重点介绍了从非时间数据推断的特定类网络模型的约束映射。限制自然出现来自所考虑模型的结构和动态性质。

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