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Article Abstract

People can easily extract and encode statistical information from their environment. However, research has primarily focused on (i.e., the ability to learn joint and conditional relationships between stimuli) and has largely neglected (i.e., the ability to learn the frequency and variability of distributions). For example, learning that "E" is more common in the English alphabet than "Z." In this article, we investigate how distributional learning can be measured by exploring the relationship between, and psychometric properties of, four different measures of distributional learning-from the ability to discriminate frequencies to the ability to estimate frequencies. We identified moderate relationships between four distributional learning measures and these tasks accounted for a substantial portion of the variance in performance across tasks (44.3%). A measure of divergent validity (intrinsic motivation) did not significantly correlate with any statistical learning measure and accounted for a separate portion of the variance across tasks. Our results suggest that distributional statistical learning encompasses the ability to discriminate between relative frequencies and estimating them.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC12335624PMC
http://dx.doi.org/10.1177/17470218241293235DOI Listing

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