A Two-Step Robust Estimation Approach for Inferring Within-Person Relations in Longitudinal Design: Tutorial and Simulations

混淆 结构方程建模 结果(博弈论) 估计 计量经济学 互惠的 计算机科学 对比度(视觉) 潜变量 纵向数据 因果结构 数学 统计 因果模型 曲线坐标 航程(航空) 估计理论 统计模型 潜变量模型 估计方程 边际结构模型 嵌套集模型 数据挖掘
作者
Satoshi Usami
出处
期刊:Multivariate Behavioral Research [Taylor & Francis]
卷期号:61 (2): 335-356
标识
DOI:10.1080/00273171.2025.2601271
摘要

Psychological researchers have shown an interest in disaggregating within-person variability from between-person differences. This paper provides a tutorial, simulation, and illustrative example of a new approach proposed by Usami (Citation2023). This approach consists of a two-step procedure: within-person variability scores (WPVS) for each person, which are disaggregated from the stable traits of that person, are predicted using structural equation modeling, and causal parameters are then estimated via a potential outcome approach, such as by using structural nested mean models (SNMMs). This method has several advantages: (i) the flexible inclusion of curvilinear and interaction effects for WPVS as latent variables in treatment and outcome models, (ii) more accurate estimates of causal parameters for reciprocal relations can be obtained under certain conditions owing to them being doubly robust, even if unobserved time-varying confounders and model misspecifications exist, (iii) no models for (the distributions of) observed time-varying confounders are needed for estimation, and (iv) the risk of obtaining improper solutions is reduced. Estimation performances are investigated through large-scale simulations and it shows that the proposed approach works well in many conditions if longitudinal data with T≥4 are available. An analytic example using data from the Tokyo Teen Cohort (TTC) study is also provided.
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