Establishing Vocabulary Tests as a Benchmark for Evaluating Large Language Models

October 23, 2023 ยท Declared Dead ยท ๐Ÿ› PLoS ONE

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Authors Gonzalo Martรญnez, Javier Conde, Elena Merino-Gรณmez, Beatriz Bermรบdez-Margaretto, Josรฉ Alberto Hernรกndez, Pedro Reviriego, Marc Brysbaert arXiv ID 2310.14703 Category cs.CL: Computation & Language Citations 4 Venue PLoS ONE Last Checked 5 months ago
Abstract
Vocabulary tests, once a cornerstone of language modeling evaluation, have been largely overlooked in the current landscape of Large Language Models (LLMs) like Llama, Mistral, and GPT. While most LLM evaluation benchmarks focus on specific tasks or domain-specific knowledge, they often neglect the fundamental linguistic aspects of language understanding and production. In this paper, we advocate for the revival of vocabulary tests as a valuable tool for assessing LLM performance. We evaluate seven LLMs using two vocabulary test formats across two languages and uncover surprising gaps in their lexical knowledge. These findings shed light on the intricacies of LLM word representations, their learning mechanisms, and performance variations across models and languages. Moreover, the ability to automatically generate and perform vocabulary tests offers new opportunities to expand the approach and provide a more complete picture of LLMs' language skills.
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