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Smoothness of marginal log-linear parameterizations

机译:边际对数线性参数化的平滑度

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We provide results demonstrating the smoothness of some marginal log-linear parameterizations for distributions on multi-way contingency tables. First we give an analytical relationship between log-linear parameters defined within different margins, and use this to prove that some parameterizations are equivalent to ones already known to be smooth. Second we construct an iterative method for recovering joint probability distributions from marginal log-linear pieces, and prove its correctness in particular cases. Finally we use Markov chain theory to prove that certain cyclic conditional parameterizations are also smooth. These results are applied to show that certain conditional independence models are curved exponential families.
机译:我们提供的结果证明了在多向列联表中某些边际对数线性参数化的平滑度。首先,我们给出了在不同边距内定义的对数线性参数之间的解析关系,并以此来证明某些参数化等效于已知为平滑的参数化。其次,我们构造了一种从边际对数线性片段中恢复联合概率分布的迭代方法,并证明了其在特定情况下的正确性。最后,我们使用马尔可夫链理论证明某些循环条件参数化也是平滑的。这些结果被用于表明某些条件独立性模型是弯曲的指数族。

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