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#artificial intelligence Preprint Sep 2026

FedLAFP: Low-Rank Aggregation Meets Full-Rank Personalization in Federated Fine-Tuning

Federated parameter-efficient fine-tuning enables clients to adapt pre-trained models without sharing raw data or communicating the full model, but statistical heterogeneity makes a single global adapter insufficient for personalized prediction. Existing personalized methods typically use the same low-rank structure fo...

Meng-Jun Yi, Huai-An Gu, Yi-Hao Ai et al. · 0 citations
#artificial intelligence Preprint Sep 2026

Trajectory Learnability for Offline On-Policy Distillation with Imperfect Teachers

Offline on-policy distillation gains efficiency by collecting student trajectories and teacher supervision once and reusing them throughout optimization. The same reuse makes imperfect supervision persistent. Since even strong teachers can fail, we ask \emph{what remains learnable from imperfect teacher supervision?} T...

Yi-Hao Ai, Wei-Long Yan · 0 citations

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