Jun 2026· arXiv.org· Vol abs/2606.27206· 0 citations· 90 references
Computer Science
Abstract
Garden path sentences present a processing difficulty for humans--- the sentence prefix leads the listener towards one interpretation, until the listener hears a critical word that shows that the initial interpretation was wrong. Lexical surprisal, a measure that usually predicts sentence processing difficulty quite well, fails to provide good predictions for garden path sentences. We propose an alternative that actively predicts a probability distribution over syntactic trees (its syntactic belief) and updates that distribution after each new word. If a processor is led down a garden path, syntactic beliefs will be wrong and will require a large update at the critical word. The magnitude of the update is measured with a generalized R\'enyi divergence. Crucially, this metric is dependent on lexical items, but is fully independent of the probability of lexical items. This Syntactic Belief Update provides a better fit to the human reading time data on garden path sentences. This suggests a new research direction examining purely non-lexical alternatives to surprisal for psycholinguistics.
Recent psycholinguistic research shows strong evidence that sometimes sentences are comprehended via good-enough processing (for example, based on semantic heuristics) rather than algorithmic syntactic analysis. However, little is known about individual differences in reliance on good-enough processing versus precise a...
Angelina Shapovalova, S. Malyutina· Quarterly Journal of Experim...· 0 citations
Syntactic bootstrapping (Gleitman, 1990) is the hypothesis that children use the syntactic environments in which a verb occurs to learn its meaning. Existing evidence for this hypothesis generally involves controlled experimental settings (e.g., Jin & Fisher, 2014; Naigles, 1990; Yuan et al., 2012). In this paper, we...
Xiao-Meng Zhu, R. Thomas McCoy, Robert Frank· Open Mind· 0 citations
Two experiments using the same stimuli were performed to examine whether verb transitivity processing proceeds even when phrase structure building based on syntactic categories (noun, verb, etc.) fails during Chinese sentence reading. The sentences contained (a) no violations, (b) transitivity violations, (c) syntactic...
Ya-Xu Zhang, Qiuhong Piao, Yan-Ping Yang et al.· Brain and Language· 0 citations
Theories of the mental lexicon must explain how people use context to interpret ambiguous words (e.g., "internal organ" vs. "musical organ") and why people vary on this core aspect of comprehension. Theoretical development has been hampered by the lack of reliable tests of disambiguation skill. We introduce a task in w...
L. M. Blott, A. Gowenlock, A. J. Parker et al.· Quarterly Journal of Experim...· 0 citations
This study is concerned with the impact of plausibility on predictive sentence processing and memory for sentence content. Previous research provides inconsistent findings on how implausible input affects processing difficulty and memory performance. In a self-paced reading task and a subsequent word recognition memory...
Miriam Brockmeyer-Koch, Sarah Schimke· Memory & Cognition· 0 citations
Understanding speech requires listeners to integrate incoming input with prior linguistic and thematic knowledge to access meaning, a task greatly aided by prediction. Surprisal and related phenomena (e.g., next word prediction) tend to be associated with broad activation of language regions during listening. A major c...
Ryan M. O'Leary, Hailey C. Smith, Emily B. Myers et al.· bioRxiv· 0 citations
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MIT News · Artificial Intelligence· news.mit.eduSep 24, 2026
A new method, called CW-Net, translates the reasoning process of an autonomous vehicle’s AI system into understandable concepts that explain its behavior.
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