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Towards Corpus-Grounded Agentic LLMs for Multilingual Grammatical Analysis

Proceedings of the Workshop on Structured Linguistic Data and Evaluation (SLiDE)

DOI:10.63317/2vk3j6ba6zkd

Abstract

Empirical grammar research has become increasingly data-driven, but the systematic analysis of annotated corpora still requires substantial methodological and technical effort. We explore how agentic large language models (LLMs) can streamline this process by reasoning over annotated corpora and producing interpretable, data-grounded answers to linguistic questions. We introduce an agentic framework for corpus-grounded grammatical analysis that integrates concepts such as natural-language task interpretation, code generation, and data-driven reasoning. As a proof of concept, we apply it to Universal Dependencies (UD) corpora, testing it on multilingual grammatical tasks inspired by the World Atlas of Language Structures (WALS). The evaluation spans 13 word-order features and over 170 languages, assessing system performance across three complementary dimensions – dominant-order accuracy, order-coverage completeness, and distributional fidelity – which reflect how well the system generalizes, identifies, and quantifies word-order variations. The results demonstrate the feasibility of combining LLM reasoning with structured linguistic data, offering a first step toward interpretable, scalable automation of corpus-based grammatical inquiry.

Details

Paper ID
lrec2026-ws-slide-12
Pages
pp. 136-147
BibKey
klemen-etal-2026-corpus
Editors
Germany) Erhard Hinrichs (Tübingen University, Sweden) Joakim Nivre (Uppsala University, Bulgaria) Petya Osenova (Sofia University, USA) James Pustejovsky (Brandeis University, Germany) Claus Zinn (Tübingen University
Publisher
European Language Resources Association (ELRA)
ISSN
N/A
ISBN
N/A
Workshop
Proceedings of the Workshop on Structured Linguistic Data and Evaluation (SLiDE)
Location
Palma, Mallorca, Spain
Date
11 - 16 May 2026

Authors

  • MK

    Matej Klemen

  • TA

    Tjaša Arčon

  • LT

    Luka Terčon

  • MR

    Marko Robnik-Sikonja

  • KD

    Kaja Dobrovoljc

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