HASFL: Harnessing Heterogeneous Models Across Diverse Devices for Enhanced Federated Learning

Author:

Hao Jiangshan1ORCID,Dong Fang1ORCID,Cen Bingheng1ORCID,Fu Shucun1ORCID,Zhou Ruiting1ORCID,Ding Ding1ORCID

Affiliation:

1. Southeast University, China

Publisher

ACM

Reference22 articles.

1. Shucun Fu, Fang Dong, Dian Shen, and Qiang He. 2023. Joint Quality Evaluation, Model Splitting and Resource Provisioning for Split Edge Learning. 2023 20th Annual IEEE International Conference on Sensing, Communication, and Networking (SECON) (2023), 420–428.

2. Shucun Fu, Fang Dong, Dian Shen, Jinghui Zhang, Zhaowu Huang, and Qiang He. 2023. Joint Optimization of Device Selection and Resource Allocation for Multiple Federations in Federated Edge Learning. IEEE Transactions on Services Computing (2023).

3. Jack Goetz, Kshitiz Malik, Duc Bui, Seungwhan Moon, Honglei Liu, and Anuj Kumar. 2019. Active federated learning. arXiv preprint arXiv:1909.12641 (2019).

4. An efficiency-boosting client selection scheme for federated learning with fairness guarantee;Huang Tiansheng;IEEE Transactions on Parallel and Distributed Systems,2020

5. Honggu Kang Seohyeon Cha Jinwoo Shin Jongmyeong Lee and Joonhyuk Kang. 2023. NeFL: Nested Federated Learning for Heterogeneous Clients. arXiv preprint arXiv:2308.07761 (2023).

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