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Selective Knowledge Sharing for Privacy-Preserving Federated Distillation without A Good Teacher

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arxiv 2304.01731 v4 pith:TRFPY4G5 submitted 2023-04-04 cs.LG

classification cs.LG
keywords knowledgemodelfederatedlocalsharingteacherdatadistillation
verification ladder T0 review T1 audit T2 compute T3 formal
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While federated learning is promising for privacy-preserving collaborative learning without revealing local data, it remains vulnerable to white-box attacks and struggles to adapt to heterogeneous clients. Federated distillation (FD), built upon knowledge distillation--an effective technique for transferring knowledge from a teacher model to student models--emerges as an alternative paradigm, which provides enhanced privacy guarantees and addresses model heterogeneity. Nevertheless, challenges arise due to variations in local data distributions and the absence of a well-trained teacher model, which leads to misleading and ambiguous knowledge sharing that significantly degrades model performance. To address these issues, this paper proposes a selective knowledge sharing mechanism for FD, termed Selective-FD. It includes client-side selectors and a server-side selector to accurately and precisely identify knowledge from local and ensemble predictions, respectively. Empirical studies, backed by theoretical insights, demonstrate that our approach enhances the generalization capabilities of the FD framework and consistently outperforms baseline methods.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Optimal Transceiver Design in Over-the-Air Federated Distillation

    eess.SP 2025-07 reject novelty 6.0 of 10

    An over-the-air federated distillation scheme with closed-form power control and SDR-based beamforming is derived from a convergence-rate bound, with a claimed proof that the beamforming relaxation is tight.

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