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Paper Information

lrec2024-ws-dmr-05

Unveiling Semantic Information in Sentence Embeddings

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Title

Unveiling Semantic Information in Sentence Embeddings

Abstract

This study evaluates the extent to which semantic information is preserved within sentence embeddings generated from state-of-art sentence embedding models: SBERT and LaBSE. Specifically, we analyzed 13 semantic attributes in sentence embeddings. Our findings indicate that some semantic features (such as tense-related classes) can be decoded from the representation of sentence embeddings. Additionally, we discover the limitation of the current sentence embedding models: inferring meaning beyond the lexical level has proven to be difficult.


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