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Intensional Gaps: Relating veridicality, factivity, doxasticity, bouleticity, and neg-raising
Author(s) -
Benjamin Kane,
Will Gantt,
Aaron Steven White
Publication year - 2022
Publication title -
proceedings from semantics and linguistic theory
Language(s) - English
Resource type - Journals
eISSN - 2163-5951
pISSN - 2163-5943
DOI - 10.3765/salt.v31i0.5137
Subject(s) - raising (metalworking) , lexicon , inference , computer science , natural language processing , artificial intelligence , focus (optics) , embedding , doxastic logic , linguistics , mathematics , philosophy , physics , geometry , optics
We investigate which patterns of lexically triggered doxastic, bouletic, neg(ation)-raising, and veridicality inferences are (un)attested across clause-embedding verbs in English. To carry out this investigation, we use a multiview mixed effects mixture model to discover the inference patterns captured in three lexicon-scale inference judgment datasets: two existing datasets, MegaVeridicality and MegaNegRaising, which capture veridicality and neg-raising inferences across a wide swath of the English clause-embedding lexicon, and a new dataset, MegaIntensionality, which similarly captures doxastic and bouletic inferences. We focus in particular on inference patterns that are correlated with morphosyntactic distribution, as determined by how well those patterns predict the acceptability judgments in the MegaAcceptability dataset. We find that there are 15 such patterns attested. Similarities among these patterns suggest the possibility of underlying lexical semantic components that give rise to them. We use principal component analysis to discover these components and suggest generalizations that can be derived from them.

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