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EMNLP 2025mainmain

Interpretable Text Embeddings and Text Similarity Explanation: A Survey

Juri Opitz, Lucas Moeller, Andrianos Michail, Sebastian Padó, Simon Clematide

University of Zurich · University of Stuttgart · University of Stuttgart, Universität Stuttgart

PDF 由论文原始站点提供,PaperCompass 不保存论文文件。DOI 10.18653/v1/2025.emnlp-main.1135 ↗

摘要

Text embeddings are a fundamental component in many NLP tasks, including classification, regression, clustering, and semantic search. However, despite their ubiquitous application, challenges persist in interpreting embeddings and explaining similarities between them.In this work, we provide a structured overview of methods specializing in inherently interpretable text embeddings and text similarity explanation, an underexplored research area. We characterize the main ideas, approaches, and trade-offs. We compare means of evaluation, discuss overarching lessons learned and finally identify opportunities and open challenges for future research.