Optimal inference of sameness

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Abstract

Deciding whether a set of objects are the same or different is a cornerstone of perception and cognition. Surprisingly, no principled quantitative model of sameness judgment exists. We tested whether human sameness judgment under sensory noise can be modeled as a form of probabilistically optimal inference. An optimal observer would compare the reliability-weighted variance of the sensory measurements with a set size-dependent criterion. We conducted two experiments, in which we varied set size and individual stimulus reliabilities. We found that the optimal-observer model accurately describes human behavior, outperforms plausible alternatives in a rigorous model comparison, and accounts for three key findings in the animal cognition literature. Our results provide a normative footing for the study of sameness judgment and indicate that the notion of perception as nearoptimal inference extends to abstract relations.

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Van Den Berg, R., Vogel, M., Josić, K., & Ma, W. J. (2012). Optimal inference of sameness. Proceedings of the National Academy of Sciences of the United States of America, 109(8), 3178–3183. https://doi.org/10.1073/pnas.1108790109

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