Using Dynamic Structural Equation Models for Analysing Intensive Longitudinal Data from Online Measures in Education

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Abstract

This chapter presents structural equation models (SEM) to analyse the dynamics of intensivelongitudinal data nested in individuals obtained in online measures in educational research.We introduce multi-level SEM under the Bayesian statistical framework, including testing forstationarity, model and prior specification, model evaluation, and presentation of the findings.We then illustrate the approach with an example and provide computer code in Mplus and R forthe individual analytical steps and demonstrate how observation and heart rate data obtainedvia electrocardiography (ECG, an indicator of cognitive stress) from a deep-reading study ofN=1 can be meaningfully matched and analysed. The methods we explore have implicationsfor future research seeking to appropriately model intensive longitudinal educational data, andin turn, improve substantive and practical conclusions that can be drawn from educationalresearch.

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