English

Rate-My-LoRA: Efficient and Adaptive Federated Model Tuning for Cardiac MRI Segmentation

Computer Vision and Pattern Recognition 2025-01-07 v1 Distributed, Parallel, and Cluster Computing Machine Learning

Abstract

Cardiovascular disease (CVD) and cardiac dyssynchrony are major public health problems in the United States. Precise cardiac image segmentation is crucial for extracting quantitative measures that help categorize cardiac dyssynchrony. However, achieving high accuracy often depends on centralizing large datasets from different hospitals, which can be challenging due to privacy concerns. To solve this problem, Federated Learning (FL) is proposed to enable decentralized model training on such data without exchanging sensitive information. However, bandwidth limitations and data heterogeneity remain as significant challenges in conventional FL algorithms. In this paper, we propose a novel efficient and adaptive federate learning method for cardiac segmentation that improves model performance while reducing the bandwidth requirement. Our method leverages the low-rank adaptation (LoRA) to regularize model weight update and reduce communication overhead. We also propose a \mymethod{} aggregation technique to address data heterogeneity among clients. This technique adaptively penalizes the aggregated weights from different clients by comparing the validation accuracy in each client, allowing better generalization performance and fast local adaptation. In-client and cross-client evaluations on public cardiac MR datasets demonstrate the superiority of our method over other LoRA-based federate learning approaches.

Keywords

Cite

@article{arxiv.2501.03223,
  title  = {Rate-My-LoRA: Efficient and Adaptive Federated Model Tuning for Cardiac MRI Segmentation},
  author = {Xiaoxiao He and Haizhou Shi and Ligong Han and Chaowei Tan and Bo Liu and Zihao Xu and Meng Ye and Leon Axel and Kang Li and Dimitris Metaxas},
  journal= {arXiv preprint arXiv:2501.03223},
  year   = {2025}
}

Comments

Accepted in ISBI 2025