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Testing the link when the index is semiparametric—a comparative study

机译:在索引为半参数时测试链接—一项比较研究

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摘要

Generalized structured models are popular in applied statistics. They can circumvent the curse of dimensionality and provide results that are easy to interpret. However, there are two major concerns that need to be addressed before they are applied. Firstly, the credibility of the specified structure, such as additivity, and secondly, the specification of the link function need to be assessed. The focus is on the latter issue. In many cases it is feasible to estimate a nonparametric link, but the effort is often not justified. In contrast parametric links enable the use of likelihood-based estimates, which are asymptotically efficient, and which perform excellently in practice, particularly for small samples. Several statistics for testing the credibility of parametric link specifications are introduced. Estimation and implementation are discussed, and the performance of the statistics is compared in an intensive simulation study. Applications to real data are also described.
机译:广义结构化模型在应用统计中很流行。它们可以规避维度的诅咒,并提供易于解释的结果。但是,在应用它们之前,有两个主要问题需要解决。首先,指定结构的可信性,例如可加性,其次,需要评估链接功能的规范。重点是后一个问题。在许多情况下,估计非参数链接是可行的,但是这种努力通常是不合理的。相反,参数链接可以使用基于似然的估计,这种估计渐近有效,并且在实践中表现出色,尤其是对于小样本。介绍了一些用于测试参数链接规范可信度的统计数据。讨论了估计和实现,并在深入的模拟研究中比较了统计数据的性能。还描述了对真实数据的应用。

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