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Computer Science > Computer Science and Game Theory

arXiv:2305.08691 (cs)
[Submitted on 15 May 2023]

Title:SEAL: A Strategy-Proof and Privacy-Preserving UAV Computation Offloading Framework

Authors:Yuntao Wang, Zhou Su, Tom H. Luan, Jiliang Li, Qichao Xu, Ruidong Li
View a PDF of the paper titled SEAL: A Strategy-Proof and Privacy-Preserving UAV Computation Offloading Framework, by Yuntao Wang and 5 other authors
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Abstract:Due to the limited battery and computing resource, offloading unmanned aerial vehicles (UAVs)' computation tasks to ground infrastructure, e.g., vehicles, is a fundamental framework. Under such an open and untrusted environment, vehicles are reluctant to share their computing resource unless provisioning strong incentives, privacy protection, and fairness guarantee. Precisely, without strategy-proofness guarantee, the strategic vehicles can overclaim participation costs so as to conduct market manipulation. Without the fairness provision, vehicles can deliberately abort the assigned tasks without any punishments, and UAVs can refuse to pay by the end, causing an exchange dilemma. Lastly, the strategy-proofness and fairness provision typically require transparent payment/task results exchange under public audit, which may disclose sensitive information of vehicles and make the privacy preservation a foremost issue. To achieve the three design goals, we propose SEAL, an integrated framework to address strategy-proof, fair, and privacy-preserving UAV computation offloading. SEAL deploys a strategy-proof reverse combinatorial auction mechanism to optimize UAVs' task offloading under practical constraints while ensuring economic-robustness and polynomial-time efficiency. Based on smart contracts and hashchain micropayment, SEAL implements a fair on-chain exchange protocol to realize the atomic completion of batch payments and computing results in multi-round auctions. In addition, a privacy-preserving off-chain auction protocol is devised with the assistance of the trusted processor to efficiently protect vehicles' bid privacy. Using rigorous theoretical analysis and extensive simulations, we validate that SEAL can effectively prevent vehicles from manipulating, ensure privacy protection and fairness, improve the offloading efficiency.
Comments: Accepted by IEEE Transactions on Information Forensics and Security (IEEE TIFS)
Subjects: Computer Science and Game Theory (cs.GT)
Cite as: arXiv:2305.08691 [cs.GT]
  (or arXiv:2305.08691v1 [cs.GT] for this version)
  https://doi.org/10.48550/arXiv.2305.08691
arXiv-issued DOI via DataCite

Submission history

From: Yuntao Wang [view email]
[v1] Mon, 15 May 2023 14:53:36 UTC (3,247 KB)
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