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Comprehensive and Reliable Feature Attribution for Diverse Modalities and Models via Frequency-Domain Insights

Zechen Liu, Feiyang Zhang, Wei Song, Xiang Li, Wei Wei
Jun 5, 2026 at 04:00
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arXiv:2411.18343v3 Announce Type: replace-cross Abstract: Personalized Federal learning(PFL) allows clients to cooperatively train a personalized model without disclosing their private dataset. However, PFL suffers from Non-IID, heterogeneous devices, lack of fairness, and unclear contribution which urgently need the interpretability of deep...

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