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Subtypes of the missing not at random missing data mechanism.

缺少数据 概化理论 心理学 推论 心理信息 相关性(法律) 机制(生物学) 多样性(控制论) 统计推断 计量经济学 统计 发展心理学 计算机科学 人工智能 数学 认识论 梅德林 生物 政治学 法学 哲学 生物化学
作者
Brenna Gomer,Ke-Hai Yuan
出处
期刊:Psychological Methods [American Psychological Association]
卷期号:26 (5): 559-598 被引量:8
标识
DOI:10.1037/met0000377
摘要

issing values that are missing not at random (MNAR) can result from a variety of missingness processes. However, two fundamental subtypes of MNAR values can be obtained from the definition of the MNAR mechanism itself. The distinction between them deserves consideration because they have characteristic differences in how they distort relationships in the data. This has implications for the validity of statistical results and generalizability of methodological findings that are based on data (empirical or generated) with MNAR values. However, these MNAR subtypes have largely gone unnoticed by the literature. As few studies have considered both subtypes, their relevance to methodological and substantive research has been overlooked. This article systematically introduces the two MNAR subtypes and gives them descriptive names. A case study demonstrates they are mechanically distinct from each other and from other missing-data mechanisms. Applied examples are given to help researchers conceptually identify MNAR subtypes in real data. Methods are provided to generate missing values from both subtypes in simulation studies. Simulation studies for regression and growth curve modeling contexts show MNAR subtypes consistently differ in the severity of their impact on statistical inference. This behavior is examined in light of how relationships in the data become characteristically distorted. The contents of this article are intended to provide a foundation and tools for organized consideration of MNAR subtypes. (PsycInfo Database Record (c) 2021 APA, all rights reserved).

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