Évaluation des capacités de réponse de larges modèles de langage (LLM) pour des questions d'historiens
June 21, 2024 · Declared Dead · 🏛 European Grid Conference
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Authors
Mathieu Chartier, Nabil Dakkoune, Guillaume Bourgeois, Stéphane Jean
arXiv ID
2406.15173
Category
cs.IR: Information Retrieval
Cross-listed
cs.AI
Citations
1
Venue
European Grid Conference
Last Checked
4 months ago
Abstract
Large Language Models (LLMs) like ChatGPT or Bard have revolutionized information retrieval and captivated the audience with their ability to generate custom responses in record time, regardless of the topic. In this article, we assess the capabilities of various LLMs in producing reliable, comprehensive, and sufficiently relevant responses about historical facts in French. To achieve this, we constructed a testbed comprising numerous history-related questions of varying types, themes, and levels of difficulty. Our evaluation of responses from ten selected LLMs reveals numerous shortcomings in both substance and form. Beyond an overall insufficient accuracy rate, we highlight uneven treatment of the French language, as well as issues related to verbosity and inconsistency in the responses provided by LLMs.
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