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Large-Scale Evidence for Logarithmic Effects of Word Predictability on Reading Time

Authors :
Cory Shain
Clara Meister
Tiago Pimentel
Ryan Cotterell
Roger Philip Levy
Publication Year :
2022
Publisher :
Center for Open Science, 2022.

Abstract

During real-time language comprehension, our minds rapidly decode complex meanings from sequences of words. The difficulty of doing so is known to be related to words' contextual predictability, but what cognitive processes do these predictability effects reflect? In one view, predictability effects reflect facilitation due to anticipatory processing of words that are predictable from context. This view predicts a linear effect of predictability on processing demand. In another view, predictability effects reflect the costs of probabilistic inference over sentence interpretations. This view predicts either a logarithmic or a superlogarithmic effect of predictability on processing demand, depending on whether it assumes pressures toward a uniform distribution of information over time. The empirical record is currently mixed. Here we revisit this question at scale: we analyze six reading datasets, estimate next-word probabilities with diverse statistical language models, and model reading times using recent advances in nonlinear regression. Results support a logarithmic effect of word predictability on processing difficulty, which favors probabilistic inference as a key component of human language processing.

Details

Database :
OpenAIRE
Accession number :
edsair.doi...........353aed09a8b8df546503bf292ff1758e
Full Text :
https://doi.org/10.31234/osf.io/4hyna