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Forewarned is Forearmed: When Non-Sequential Embedding Turns Into an Anomaly Detector
June 29, 2026 ยท Grace Period ยท + Add venue
Authors
Elys Allesiardo, Antoine Caubriรจre, Valentin Vielzeuf
arXiv ID
2606.30196
Category
cs.CL: Computation & Language
Cross-listed
cs.AI,
cs.LG,
eess.AS
Citations
0
Abstract
This paper offers an in-depth analysis of non-sequential multimodal sentence-level embeddings, with a particular focus on the SONAR model. We demonstrate that certain embedding dimensions are sensitive to perturbations and can serve as indicators of decoding anomalies. By leveraging the consistency between successive encoding and decoding, we successfully build an accurate detector. Additionally, we explore modifying specific dimensions of interest to attempt to correct them. This work underscores the importance of understanding and analyzing the embeddings themselves to enhance the reliability of multimodal representations.
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