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Ant Colony Optimization and Local Weighted Structural Equation Modeling. A Tutorial on Novel Item and Person Sampling Procedures for Personality Research
Authors:Gabriel Olaru  Ulrich Schroeders  Johanna Hartung  Oliver Wilhelm
Affiliation:1.

https://orcid.org/0000-0002-7430-7350;2. University of Kassel, Kassel, Germany;3. Correspondence to: Gabriel Olaru, University of Kassel, Hollaendische Strasse 36‐38, 34127 Kassel, Germany.;4. E‐mail:;5. Ulm University, Ulm, Germany

Abstract:Measurement in personality development faces many psychometric problems. First, theory‐based measurement models do not fit the empirical data in terms of traditional confirmatory factor analysis. Second, measurement invariance across age, which is necessary for a meaningful interpretation of age‐associated personality differences, is rarely accomplished. Finally, continuous moderator variables, such as age, are often artificially categorized. This categorization leads to bias when interpreting differences in personality across age. In this tutorial, we introduce methods to remedy these problems. We illustrate how Ant Colony Optimization can be used to sample indicators that meet prespecified demands such as model fit. Further, we use Local Structural Equation Modeling to resample and weight subjects to study differences in the measurement model across age as a continuous moderator variable. We also provide a detailed illustration for both tools with the Neuroticism scale of the openly available International Personality Item Pool – NEO inventory using data from the UK sample (N = 15 827). Combined, both tools can remedy persistent problems in research on personality and its development. In addition to a step‐by‐step illustration, we provide commented syntax for both tools. © 2019 European Association of Personality Psychology
Keywords:Ant Colony Optimization  Local Structural Equation Modeling  item sampling  person sampling  personality development
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