Inducement of population sparsity

IF 0.8 4区 数学 Q3 STATISTICS & PROBABILITY Canadian Journal of Statistics-Revue Canadienne De Statistique Pub Date : 2023-01-09 DOI:10.1002/cjs.11751
Heather S. Battey
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Abstract

The pioneering work on parameter orthogonalization by Cox and Reid is presented as an inducement of abstract population-level sparsity. This is taken as a unifying theme for this article, in which sparsity-inducing parameterizations or data transformations are sought. Three recent examples are framed in this light: sparse parameterizations of covariance models, the construction of factorizable transformations for the elimination of nuisance parameters, and inference in high-dimensional regression. Strategies for the problem of exact or approximate sparsity inducement appear to be context-specific and may entail, for instance, solving one or more partial differential equations or specifying a parameterized path through transformation or parameterization space. Open problems are emphasized.

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人口稀疏的诱因
Cox和Reid在参数正交化方面的开创性工作是作为抽象种群级稀疏性的一个诱导。这是本文的一个统一主题,其中寻求稀疏性诱导参数化或数据转换。从这个角度来看,最近有三个例子:协方差模型的稀疏参数化,用于消除讨厌参数的可分解变换的构造,以及高维回归中的推理。精确或近似稀疏性诱导问题的策略似乎是特定于上下文的,例如,可能需要解决一个或多个偏微分方程,或通过变换或参数化空间指定参数化路径。强调开放性问题。
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来源期刊
CiteScore
1.40
自引率
0.00%
发文量
62
审稿时长
>12 weeks
期刊介绍: The Canadian Journal of Statistics is the official journal of the Statistical Society of Canada. It has a reputation internationally as an excellent journal. The editorial board is comprised of statistical scientists with applied, computational, methodological, theoretical and probabilistic interests. Their role is to ensure that the journal continues to provide an international forum for the discipline of Statistics. The journal seeks papers making broad points of interest to many readers, whereas papers making important points of more specific interest are better placed in more specialized journals. The levels of innovation and impact are key in the evaluation of submitted manuscripts.
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