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The Relationship Between the Standardized Root Mean Square Residual and Model Misspecification in Factor Analysis Models

机译:因子分析模型中标准化根均方剩余和模型误操作的关系

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摘要

We argue that the definition of close fitting models should embody the notion of substantially ignorable misspecifications (SIM). A SIM model is a misspecified model that might be selected, based on parsimony, over the true model should knowledge of the true model be available. Because in applications the true model (i.e., the data generating mechanism) is unknown, we investigate the relationship between the population standardized root mean square residual (SRMR) values and various model misspecifications in factor analysis models to better understand the magnitudes of the SRMR. Summary effect sizes of misfit such as the SRMR are necessarily insensitive to some non-ignorable localized misspecifications (i.e., the presence of a few large residual correlations in large models). Localized misspecifications may be identified by examining the largest standardized residual covariance. Based on the findings, our population reference values for close fit are based on a two-index strategy: (1) largest absolute value of standardized residual covariance <= 0.10, and (2) SRMR <= 0.05x the average R-2 of the manifest variables; for acceptable fit our values are 0.15 and 0.10x, respectively.
机译:我们认为密切拟合模型的定义应该体现基本上无知的误操作(SIM)的概念。 SIM模型是一个错过的模型,可以基于定义选择,而不是真正的模型应该了解真正的模型。因为在应用中真实模型(即,数据生成机制)未知,我们调查人口标准化的根均方剩余(SRMR)值之间的关系以及因子分析模型中的各种模型误操作,以更好地理解SRMR的大小。摘要效果的效果尺寸如SRMR等不可忽略的局部误导必然不仁(即,在大型模型中存在一些大的残余相关性)。可以通过检查最大的标准化残余协方差来识别局部误操作。基于调查结果,我们的人口参考值紧密契合基于双指标策略:(1)标准化残余协方差的最大绝对值<= 0.10,(2)SRMR平均R-2 <= 0.05x清单变量;对于可接受的拟合,我们的价值分别为0.15和0.10倍。

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