Word Definitions from Large Language Models
November 10, 2023 ยท Declared Dead ยท ๐ International Computer Science Conference
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Authors
Bach Pham, JuiHsuan Wong, Samuel Kim, Yunting Yin, Steven Skiena
arXiv ID
2311.06362
Category
cs.CL: Computation & Language
Citations
0
Venue
International Computer Science Conference
Last Checked
6 months ago
Abstract
Dictionary definitions are historically the arbitrator of what words mean, but this primacy has come under threat by recent progress in NLP, including word embeddings and generative models like ChatGPT. We present an exploratory study of the degree of alignment between word definitions from classical dictionaries and these newer computational artifacts. Specifically, we compare definitions from three published dictionaries to those generated from variants of ChatGPT. We show that (i) definitions from different traditional dictionaries exhibit more surface form similarity than do model-generated definitions, (ii) that the ChatGPT definitions are highly accurate, comparable to traditional dictionaries, and (iii) ChatGPT-based embedding definitions retain their accuracy even on low frequency words, much better than GloVE and FastText word embeddings.
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