On the Relationship between Sentence Analogy Identification and Sentence Structure Encoding in Large Language Models
October 11, 2023 ยท Declared Dead ยท ๐ Findings
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Authors
Thilini Wijesiriwardene, Ruwan Wickramarachchi, Aishwarya Naresh Reganti, Vinija Jain, Aman Chadha, Amit Sheth, Amitava Das
arXiv ID
2310.07818
Category
cs.CL: Computation & Language
Cross-listed
cs.AI
Citations
2
Venue
Findings
Last Checked
5 months ago
Abstract
The ability of Large Language Models (LLMs) to encode syntactic and semantic structures of language is well examined in NLP. Additionally, analogy identification, in the form of word analogies are extensively studied in the last decade of language modeling literature. In this work we specifically look at how LLMs' abilities to capture sentence analogies (sentences that convey analogous meaning to each other) vary with LLMs' abilities to encode syntactic and semantic structures of sentences. Through our analysis, we find that LLMs' ability to identify sentence analogies is positively correlated with their ability to encode syntactic and semantic structures of sentences. Specifically, we find that the LLMs which capture syntactic structures better, also have higher abilities in identifying sentence analogies.
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