Model error in covariance structure models: Some implications for power and Type I error.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Donna L Coffman
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引用次数: 4

Abstract

The present study investigated the degree to which violation of the parameter drift assumption affects the Type I error rate for the test of close fit and power analysis procedures proposed by MacCallum, Browne, and Sugawara (1996) for both the test of close fit and the test of exact fit. The parameter drift assumption states that as sample size increases both sampling error and model error (i.e. the degree to which the model is an approximation in the population) decrease. Model error was introduced using a procedure proposed by Cudeck and Browne (1992). The empirical power for both the test of close fit, in which the null hypothesis specifies that the Root Mean Square Error of Approximation (RMSEA) ≤ .05, and the test of exact fit, in which the null hypothesis specifies that RMSEA = 0, is compared with the theoretical power computed using the MacCallum et al. (1996) procedure. The empirical power and theoretical power for both the test of close fit and the test of exact fit are nearly identical under violations of the assumption. The results also indicated that the test of close fit maintains the nominal Type I error rate under violations of the assumption.

协方差结构模型中的模型误差:对功率和I型误差的一些启示。
本研究调查了参数漂移假设的违反程度对密切拟合测试和MacCallum, Browne和Sugawara(1996)提出的密切拟合测试和精确拟合测试的功率分析程序的I型错误率的影响程度。参数漂移假设表明,随着样本量的增加,抽样误差和模型误差(即模型在总体中近似的程度)都会减小。采用Cudeck和Browne(1992)提出的程序引入模型误差。近拟合检验(零假设规定近似均方根误差(RMSEA)≤0.05)和精确拟合检验(零假设规定RMSEA = 0)的经验功率与使用MacCallum等人(1996)程序计算的理论功率进行比较。在不符合假设的情况下,接近拟合检验和精确拟合检验的经验幂和理论幂几乎相同。结果还表明,在违反假设的情况下,密切拟合检验保持名义I型错误率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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