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Selection of Latent Variables for Multiple Mixed-outcome Models

机译:多个混合结果模型的潜在变量选择

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Latent variable models have been widely used for modelling the dependence structure of multiple outcomes data. However, the formulation of a latent variable model is often unknown a priori, the misspecification will distort the dependence structure and lead to unreliable model inference. Moreover, multiple outcomes with varying types present enormous analytical challenges. In this paper, we present a class of general latent variable models that can accommodate mixed types of outcomes. We propose a novel selection approach that simultaneously selects latent variables and estimates parameters. We show that the proposed estimator is consistent, asymptotically normal and has the oracle property. The practical utility of the methods is confirmed via simulations as well as an application to the analysis of the World Values Survey, a global research project that explores peoples' values and beliefs and the social and personal characteristics that might influence them.
机译:潜在变量模型已被广泛用于建模多个结果数据的依存结构。但是,潜在变量模型的建立通常是先验未知的,其错误指定会扭曲依赖结构并导致模型推断不可靠。此外,具有不同类型的多种结果提出了巨大的分析挑战。在本文中,我们提出了一类可以适应混合结果类型的一般潜在变量模型。我们提出了一种新颖的选择方法,可以同时选择潜在变量并估计参数。我们表明,所提出的估计量是一致的,渐近正态的,并且具有oracle属性。该方法的实用性已通过模拟得到了证实,并已应用于世界价值调查的分析中。世界价值调查是一项全球研究项目,旨在探讨人们的价值观和信仰以及可能影响人们的价值观和社会特征。

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