Nikoleta Pantelidou (UAB) ‘Evaluating the cross-linguistic accuracy of Large Language Models in a novel Wug Test’

Seminari del CLT

Divendres, 9 de gener de 2026
Horari: 15:30h
Aula 202

Enllaç Teams

Abstract: 
The linguistic abilities of Large Language Models are a matter of ongoing debate. This study contributes to this discussion by investigating model performance in a morphological generalization task that involves novel words. Using a multilingual adaptation of the Wug Test, six models were tested across four partially unrelated languages (Catalan, English, Greek, and Spanish) and compared with human speakers. The aim is to determine whether model accuracy approximates human competence and whether it is shaped primarily by linguistic complexity or by the quantity of available training data. Consistent with previous research, the results show that the models are able to generalize morphological processes to unseen words with human-like accuracy. However, accuracy patterns align more closely with community size and data availability than with structural complexity, refining earlier claims in the literature. In particular, languages with larger speaker communities and stronger digital representation, such as Spanish and English, revealed higher accuracy than less-resourced ones like Catalan and Greek. Overall, our findings suggest that model behavior is mainly driven by the richness of linguistic resources rather than by sensitivity to grammatical complexity, reflecting a form of performance that resembles human linguistic competence only superficially.

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Data

09 gen., 2026

Hora

15:30 - 17:00

Localització

Aula 202, Fac. de Filosofia i Lletres
Campus UAB, Bellaterra (Barcelona)

Organitzador

Centre de Lingüística Teòrica
Centre de Lingüística Teòrica
Telèfon
(+34) 93 581 23 72
Correu electrònic
cr.clt@uab.cat
Web
https://clt.uab.cat/
gener 2026
abril 2026
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