Resource Allocation and Secure Wireless Communication in the Large Model based Mobile Edge Computing System


연구 분야: Infrastructure



학회: MOBIHOC '24: Proceedings of the Twenty-fifth International Symposium on Theory, Algorithmic Foundations, and Protocol Design for Mobile Networks and Mobile Computing


초록

With the rapid advancement of large models and mobile edge computing, transfer learning, particularly through fine-tuning, has become crucial for adapting models to downstream tasks. Traditionally, this requires users to share their data with model owners for fine-tuning, which is not only costly but also raises significant privacy concerns. Furthermore, fine-tuning large-scale models is computationally intensive and often impractical for many users. To tackle these challenges, we introduce a system that combines offsite-tuning with physical-layer security, which provides local data owners with a lightweight adapter and a compressed emulator. Data owners then fine-tune the adapter locally and securely send it back to the model owners through a confidential channel for integration, ensuring privacy and resource conservation. Our paper focuses on optimizing computational resource allocation among data owners and the large model owner deployed on edge, and on the compression ratio of adapters. We incorporate a secrecy uplink channel to maximize the utility that we defined while minimizing system costs like energy consumption and delay. The optimization uses the Dinkelbach algorithm, fractional programming, successive convex approximation and alternating optimization. Experiments demonstrate our algorithm's superiority over baseline methods.


Author Profile
Zefan Wang

College of Computing and Data Science Nanyang Technological University Singapore Singapore

Andorra
Author Profile
Yitong Wang

College of Computing and Data Science Nanyang Technological University Singapore Singapore

Andorra
Author Profile
Jun Zhao

College of Computing and Data Science Nanyang Technological University Singapore Singapore

Andorra

📄 논문 정보

발행 연도 2024년
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출판 국가 Andorra
사이트 ACM
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