2022
DOI: 10.48550/arxiv.2206.09777
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Actively learning to learn causal relationships

Abstract: How do people actively learn to learn? That is, how and when do people choose actions that facilitate long-term learning and choosing future actions that are more informative? We explore these questions in the domain of active causal learning. We propose a hierarchical Bayesian model that goes beyond past models by predicting that people pursue information not only about the causal relationship at hand but also about causal overhypotheses-abstract beliefs about causal relationships that span multiple situation… Show more

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