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Model modifications in covariance structure analysis: the problem of capitalization on chance.

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TLDR
Results demonstrate that over repeated samples, model modifications may be very inconsistent and cross-validation results may behave erratically, leading to skepticism about generalizability of models resulting from data-driven modifications of an initial model.
Abstract
In applications of covariance structure modeling in which an initial model does not fit sample data well, it has become common practice to modify that model to improve its fit. Because this process is data driven, it is inherently susceptible to capitalization on chance characteristics of the data, thus raising the question of whether model modifications generalize to other samples or to the population. This issue is discussed in detail and is explored empirically through sampling studies using 2 large sets of data. Results demonstrate that over repeated samples, model modifications may be very inconsistent and cross-validation results may behave erratically. These findings lead to skepticism about generalizability of models resulting from data-driven modifications of an initial model. The use of alternative a priori models is recommended as a preferred strategy.

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Assessing dimensions of perceived visual aesthetics of web sites

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HARKing: Hypothesizing After the Results are Known:

TL;DR: It is conceded that the question of whether HARKing's costs exceed its benefits is a complex one that ought to be addressed through research, open discussion, and debate.
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On the use, usefulness, and ease of use of structural equation modeling in MIS research: a note of caution

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The toronto mindfulness scale: Development and validation

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Multidimensional Constructs in Organizational Behavior Research: An Integrative Analytical Framework

TL;DR: In this article, the authors present an integrative analytical framework that incorporates multidimensional constructs and their dimensions, using structural equation modeling with latent variables, which permits the study of broad questions regarding multiddimensional constructs along with specific questions concerning the dimensions of these constructs.
References
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Book

Structural Equations with Latent Variables

TL;DR: The General Model, Part I: Latent Variable and Measurement Models Combined, Part II: Extensions, Part III: Extensions and Part IV: Confirmatory Factor Analysis as discussed by the authors.
Journal ArticleDOI

Significance tests and goodness of fit in the analysis of covariance structures

TL;DR: In this article, a general null model based on modified independence among variables is proposed to provide an additional reference point for the statistical and scientific evaluation of covariance structure models, and the importance of supplementing statistical evaluation with incremental fit indices associated with the comparison of hierarchical models.
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Handbook of industrial and organizational psychology

TL;DR: An up-to-date handbook on conceptual and methodological issues relevant to the study of industrial and organizational behavior is presented in this paper, which covers substantive issues at both the individual and organizational level in both theoretical and practical terms.
Journal ArticleDOI

Structural Model Evaluation and Modification: An Interval Estimation Approach.

TL;DR: Dans les differentes procedures existantes pour l'evaluation and the modifications sequentielles des modeles structuraux, l'auteur s'attache a discuter celle connue sous le terme PMM.
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