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Maab Elrashid

1 accepted papers

2026

Toward Faithful Explanations in Acoustic Anomaly Detection

ICASSP 2026poster

Interpretability is essential for user trust in real-world anomaly detection applications. However, deep learning models, despite their strong performance, often lack transparency. In this work, we study the interpretability of autoencoder-based models for audio anomaly detection, by comparing a sta…

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