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Modeling intraindividual variability in affect (MIVA): Formalized theoretical approach, computational model, and
Maria Wirth1, Andreas Voss2, Stefan T Radev3
1Department of Psychology, Friedrich Schiller University Jena, Am Steiger 3/1, 07743, Jena, Germany. maria.wirth@uni-jena.de.
Understanding daily emotional changes is key to psychological well-being. We introduce a new model (MIVA) for analyzing affect dynamics, using AI to efficiently study emotional variability.
Area of Science:
- Psychology
- Computational Neuroscience
- Affective Science
Background:
- Affective experience is dynamic, fluctuating throughout daily life.
- Studying these changes offers insights into psychological functioning and well-being.
- Existing models may not fully capture the complexity of intraindividual affect variability.
Purpose of the Study:
- To introduce a formalized model of intraindividual variability in affect (MIVA).
- To outline the theoretical background, scope, and mathematical formulation of MIVA.
- To demonstrate the utility of MIVA for studying affect dynamics.
Main Methods:
- Developed a parsimonious formalized model of intraindividual variability in affect (MIVA).
- Used simulation-based inference with probabilistic neural networks to train a custom neural network.
- Employed the trained network for rapid parameter estimation on synthetic experiments.
Main Results:
- The synthesis of MIVA with probabilistic neural networks provides an efficient tool for affect dynamics inference.
- Simulation studies revealed data requirements for precise parameter recovery.
- The approach offers flexibility for analyzing various configurations of synthetic experiments.
Conclusions:
- MIVA is a valuable tool for understanding the ebb and flow of affective experience.
- The computational approach enhances the study of psychological functioning and well-being.
- Findings provide recommendations for future data collection in affect dynamics research.
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