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Signatures to Help Interpretability of Anomalies
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Number of Authors: 112026 (English)In: Machine Learning for Astrophysics 2024. ML4Astro 2024 / [ed] Filomena Bufano; Eva Sciacca; Simone Riggi, Cham: Springer Science+Business Media B.V., 2026, p. 97-104Conference paper, Published paper (Refereed)
Abstract [en]

Machine learning is often viewed as a black box when it comes to understanding its output, be it a decision or a score. Automatic anomaly detection is no exception to this rule, and quite often the astronomer is left to independently analyze the data in order to understand why a given event is tagged as an anomaly. We introduce here idea of anomaly signature, whose aim is to help the interpretability of anomalies by highlighting which features contributed to the decision.

Place, publisher, year, edition, pages
Cham: Springer Science+Business Media B.V., 2026. p. 97-104
Series
Astrophysics and Space Science Proceedings, ISSN 1570-6591, E-ISSN 1570-6605 ; 62 ASSSP
National Category
Computer Sciences
Identifiers
URN: urn:nbn:se:su:diva-256848DOI: 10.1007/978-3-032-02232-5_15Scopus ID: 2-s2.0-105038092689ISBN: 978-3-032-02231-8 (print)ISBN: 978-3-032-02232-5 (electronic)OAI: oai:DiVA.org:su-256848DiVA, id: diva2:2078419
Conference
ML4Astro International Conference
Available from: 2026-06-24 Created: 2026-06-24 Last updated: 2026-06-24Bibliographically approved

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Russeil, Etienne
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Department of AstronomyThe Oskar Klein Centre for Cosmo Particle Physics (OKC)
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