CLFeb 24, 2022

Neural reality of argument structure constructions

arXiv:2202.12246v1638 citations
Originality Incremental advance
AI Analysis

This provides the first evidence for ASCs in language models, offering insights into linguistic theory and model interpretability, though it is incremental in adapting psycholinguistic methods to AI.

The study investigated whether Transformer-based language models encode argument structure constructions (ASCs) distinct from verbs, finding that sentences with the same construction are closer in embedding space than those with the same verb, and models associate ASCs with meaning even in nonsensical sentences.

In lexicalist linguistic theories, argument structure is assumed to be predictable from the meaning of verbs. As a result, the verb is the primary determinant of the meaning of a clause. In contrast, construction grammarians propose that argument structure is encoded in constructions (or form-meaning pairs) that are distinct from verbs. Decades of psycholinguistic research have produced substantial empirical evidence in favor of the construction view. Here we adapt several psycholinguistic studies to probe for the existence of argument structure constructions (ASCs) in Transformer-based language models (LMs). First, using a sentence sorting experiment, we find that sentences sharing the same construction are closer in embedding space than sentences sharing the same verb. Furthermore, LMs increasingly prefer grouping by construction with more input data, mirroring the behaviour of non-native language learners. Second, in a "Jabberwocky" priming-based experiment, we find that LMs associate ASCs with meaning, even in semantically nonsensical sentences. Our work offers the first evidence for ASCs in LMs and highlights the potential to devise novel probing methods grounded in psycholinguistic research.

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