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Influence Functions for Dimension Reduction Methods: An Example Influence Study of Principal Hessian Direction Analysis

机译:降维方法的影响函数:主Hessian方向分析的影响示例研究

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The first goal of this article is to consider influence analysis of principal Hessian directions (pHd) and highlight how such an analysis can provide valuable insight into its behaviour. Such insight includes reasons as to why pHd can sometimes return informative results when it is not expected to do so, and why many prefer a residuals-based pHd method over its response-based counterpart. The secondary goal of this article is to introduce a new influence measure applicable to many dimension reduction methods based on average squared canonical correlations. A general form of this measure is also given, allowing for application to dimension reduction methods other than pHd. A sample version of the measure is considered, with respect to pHd, with two example data sets.
机译:本文的首要目标是考虑对主要黑森州方向(pHd)的影响分析,并强调这种分析如何提供对其行为的宝贵见解。这样的见解包括为什么在不期望pHd有时会返回有用结果的情况下为何为什么pHd有时会返回有用的结果,以及为什么许多人更喜欢基于残基的pHd方法而不是基于响应的对应方法。本文的第二个目的是介绍一种适用于基于均方正则相关性的许多降维方法的新影响度量。还给出了该措施的一般形式,允许将其应用于除pHd以外的尺寸缩减方法。考虑到pHd的措施的样本版本,并带有两个示例数据集。

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