Description-Based Text Similarity
May 21, 2023 ยท Declared Dead ยท ๐ COLM 2024
"No code URL or promise found in abstract"
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Authors
Shauli Ravfogel, Valentina Pyatkin, Amir DN Cohen, Avshalom Manevich, Yoav Goldberg
arXiv ID
2305.12517
Category
cs.CL: Computation & Language
Cross-listed
cs.IR,
cs.LG
Citations
7
Venue
COLM 2024
Last Checked
5 months ago
Abstract
Identifying texts with a given semantics is central for many information seeking scenarios. Similarity search over vector embeddings appear to be central to this ability, yet the similarity reflected in current text embeddings is corpus-driven, and is inconsistent and sub-optimal for many use cases. What, then, is a good notion of similarity for effective retrieval of text? We identify the need to search for texts based on abstract descriptions of their content, and the corresponding notion of \emph{description based similarity}. We demonstrate the inadequacy of current text embeddings and propose an alternative model that significantly improves when used in standard nearest neighbor search. The model is trained using positive and negative pairs sourced through prompting a LLM, demonstrating how data from LLMs can be used for creating new capabilities not immediately possible using the original model.
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