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[ARTICLE · art-93033] src=arxiv.org ↗ pub= topic=machine-learning verified=true sentiment=· neutral

SeFoRA: Sketch-Aggregated Federated Low-Rank Adaptation with Heterogeneous Client Ranks

Researchers propose SeFoRA, a sketch-aggregated federated low-rank adaptation algorithm that enables direct aggregation of client updates with heterogeneous LoRA ranks, alleviating bilinear mismatch and reducing communication to a small subspace. The rank-homogeneous variant SeFoRA-Ho converges to a first-order stationary point at rate O(1/T), and experiments fine-tuning RoBERTa-Large on GLUE datasets show it outperforms state-of-the-art methods.

read1 min views1 publishedAug 12, 2026

arXiv:2608.10144v1 Announce Type: new Abstract: We consider federated parameter efficient fine-tuning of large neural networks with low-rank adaptation (LoRA,~Hu et al.\ 2022). Combining LoRA with federated PEFT introduces challenges absent from either setting alone: clients may use different LoRA ranks, making their factor matrices dimension-incompatible, and factor-wise averaging suffers from a bilinear mismatch. We propose SeFoRA, a sketch-aggregated federated LoRA algorithm in which each client transmits a linear sketch of its local updates, enabling direct aggregation at the federator. As a result, SeFoRA alleviates the bilinear mismatch, and allows for aggregation in a small subspace of the full model. We introduce a rank-homogeneous version called SeFoRA-Ho which allows for direct adapter aggregation in this setting. We prove convergence to a neighborhood of the first-order stationary point at rate $\cO(1/T)$ for the rank-homogeneous setting. Numerical experiments on fine-tuning RoBERTa-Large on GLUE datasets show how our algorithms outperform the state-of-the-art.

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