arXiv Open Access 2024

Open Conversational LLMs do not know most Spanish words

Javier Conde Miguel González Nina Melero Raquel Ferrando Gonzalo Martínez +3 lainnya
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Abstrak

The growing interest in Large Language Models (LLMs) and in particular in conversational models with which users can interact has led to the development of a large number of open-source chat LLMs. These models are evaluated on a wide range of benchmarks to assess their capabilities in answering questions or solving problems on almost any possible topic or to test their ability to reason or interpret texts. Instead, the evaluation of the knowledge that these models have of the languages has received much less attention. For example, the words that they can recognize and use in different languages. In this paper, we evaluate the knowledge that open-source chat LLMs have of Spanish words by testing a sample of words in a reference dictionary. The results show that open-source chat LLMs produce incorrect meanings for an important fraction of the words and are not able to use most of the words correctly to write sentences with context. These results show how Spanish is left behind in the open-source LLM race and highlight the need to push for linguistic fairness in conversational LLMs ensuring that they provide similar performance across languages.

Topik & Kata Kunci

Penulis (8)

J

Javier Conde

M

Miguel González

N

Nina Melero

R

Raquel Ferrando

G

Gonzalo Martínez

E

Elena Merino-Gómez

J

José Alberto Hernández

P

Pedro Reviriego

Format Sitasi

Conde, J., González, M., Melero, N., Ferrando, R., Martínez, G., Merino-Gómez, E. et al. (2024). Open Conversational LLMs do not know most Spanish words. https://arxiv.org/abs/2403.15491

Akses Cepat

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Informasi Jurnal
Tahun Terbit
2024
Bahasa
en
Sumber Database
arXiv
Akses
Open Access ✓