Neural Generative Models and the Parallel Architecture of Language: A Critical Review and Outlook

Author:

Rambelli Giulia1ORCID,Chersoni Emmanuele2ORCID,Testa Davide3ORCID,Blache Philippe4,Lenci Alessandro5ORCID

Affiliation:

1. Department of Modern Languages, Literatures, and Cultures University of Bologna

2. Department of Chinese and Bilingual Studies The Hong Kong Polytechnic University

3. Fondazione Bruno Kessler, Trento

4. Laboratoire Parole et Langage CNRS

5. Department of Philology, Literature, and Linguistics University of Pisa

Abstract

AbstractAccording to the parallel architecture, syntactic and semantic information processing are two separate streams that interact selectively during language comprehension. While considerable effort is put into psycho‐ and neurolinguistics to understand the interchange of processing mechanisms in human comprehension, the nature of this interaction in recent neural Large Language Models remains elusive. In this article, we revisit influential linguistic and behavioral experiments and evaluate the ability of a large language model, GPT‐3, to perform these tasks. The model can solve semantic tasks autonomously from syntactic realization in a manner that resembles human behavior. However, the outcomes present a complex and variegated picture, leaving open the question of how Language Models could learn structured conceptual representations.

Funder

Research Grants Council, University Grants Committee

European Commission

Publisher

Wiley

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