2024
DOI: 10.1609/aaai.v38i15.29651
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Knowledge-Aware Parameter Coaching for Personalized Federated Learning

Mingjian Zhi,
Yuanguo Bi,
Wenchao Xu
et al.

Abstract: Personalized Federated Learning (pFL) can effectively exploit the non-IID data from distributed clients by customizing personalized models. Existing pFL methods either simply take the local model as a whole for aggregation or require significant training overhead to induce the inter-client personalized weights, and thus clients cannot efficiently exploit the mutually relevant knowledge from each other. In this paper, we propose a knowledge-aware parameter coaching scheme where each client can swiftly and granu… Show more

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