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On Block Ordering of Variables in Graphical Modelling

机译:图形建模中变量的块顺序

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In graphical modelling, the existence of substantive background knowledge on block ordering of variables is used to perform structural learning within the family of chain graphs (CGs) in which every block corresponds to an undirected graph and edges joining vertices in different blocks are directed in accordance with the ordering. We show that this practice may lead to an inappropriate restriction of the search space and introduce the concept of labelled block ordering B corresponding to a family of B-consistent CGs in which every block may be either an undirected graph or a directed acyclic graph or, more generally, a CG. In this way we provide a flexible tool for specifying subsets of chain graphs, and we observe that the most relevant subsets of CGs considered in the literature are families of B-consistent CGs for the appropriate choice of B. Structural learning within a family of B-consistent CGs requires to deal with Markov equivalence. We provide a graphical characterization of equivalence classes of B-consistent CGs, namely the B-essential graphs, as well as a procedure to construct the B-essential graph for any given equivalence class of B-consistent chain graphs. Both largest CGs and essential graphs turn out to be special cases of B-essential graphs.
机译:在图形建模中,关于变量的块排序的实质性背景知识的存在被用于在链图系列(CG)中执行结构学习,其中每个块对应于一个无向图,并且按照不同块的顶点连接边的方向与订购。我们证明了这种做法可能会导致对搜索空间的不当限制,并引入了标记的块排序B的概念,该标记块B对应于B一致性CG家族,其中每个块可能是无向图或有向无环图,或者更一般而言,是CG。通过这种方式,我们提供了一种灵活的工具来指定链图的子集,并且我们观察到文献中考虑的最相关的CG子集是B一致性CG的族,以便适当地选择B。B族中的结构学习-一致的CG需要处理马尔可夫等价物。我们提供了B一致性CG的等价类(即B必需图)的图形化表征,以及为B一致性链图的任何给定等价类构造B必需图的过程。最大的CG和基本图都被证明是B本质图的特例。

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