多无人机MEC网络中基于区块链的计算卸载和资源分配:一种Stackelberg博弈学习方法

IF 8 1区 计算机科学 Q1 COMPUTER SCIENCE, THEORY & METHODS
Jiayi Chen;Zhufang Kuang;Yuhao Zhang;Siyu Lin;Anfeng Liu
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引用次数: 0

摘要

无人机(UAV)是一项很有前途的技术,它可以作为空中基站来辅助物联网(IoT)网络,解决各种问题,如扩大网络覆盖范围、提高网络性能、向物联网设备传输能量、执行物联网计算密集型任务。然而,由于无人机之间的通信和计算任务的迁移,计算卸载过程中的隐私和安全问题具有挑战性。为此,我们设计了一种基于多联盟博弈的空空多无人机MEC网络系统,并引入区块链技术确保无人机间的隐私和安全,有效保证了无人机间计算卸载的安全性和保密性。本文研究了无人机信道选择、无人机位置部署、块处理器决策、块处理器传输功率和块处理器生成频率的联合优化问题。目标是最小化MEC任务计算和区块链任务处理的能量消耗和延迟的加权平均总和。为了解决这一棘手问题,将原问题分解为两个子问题,并相互交替求解。此外,提出了联合凸优化和Stackelberg博弈分层(Joint Convex Optimization and Stackelberg Game Hierarchical, JCSH)算法,解决了基于区块链的计算卸载和资源分配问题。仿真结果表明,在不同的参数设置下,JCSH算法比其他算法具有更好的性能和更强的鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Blockchain-Enabled Computing Offloading and Resource Allocation in Multi-UAVs MEC Network: A Stackelberg Game Learning Approach
Unmanned Aerial Vehicle (UAV) is a promising technology that can serve as aerial base stations to assist the Internet of Things (IoT) network and solve various problems, such as expanding network coverage, improving network performance, transmitting energy to IoT devices, and performing IoT compute-intensive tasks. However, due to the communication between UAVs and the migration of computing tasks, privacy and security during the computing offloading process are challenging issues. To this end, we design an air-to-air multi-UAVs MEC network system based on multi-coalition game, and introduce blockchain technology to ensure privacy and security between UAVs, effectively ensuring the security and confidentiality of computing offloading between UAVs. In this paper, the joint optimization problem of UAV channel selection, UAV location deployment, block processor decision, block processor transmission power, and block processor generation frequency is studied. The goal is to minimize the weighted average sum of energy consumption and delay for MEC task computing and blockchain task processing. To handle this intractable issue, the original problem is decomposed into two subproblems and solved alternately with each other. In addition, the Joint Convex Optimization and Stackelberg Game Hierarchical (JCSH) algorithm is proposed, which solves the problem of blockchain-enabled computing offloading and resource allocation. The simulation results show that the JCSH algorithm has better performance and stronger robustness compared to other algorithms under different parameter settings.
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来源期刊
IEEE Transactions on Information Forensics and Security
IEEE Transactions on Information Forensics and Security 工程技术-工程:电子与电气
CiteScore
14.40
自引率
7.40%
发文量
234
审稿时长
6.5 months
期刊介绍: The IEEE Transactions on Information Forensics and Security covers the sciences, technologies, and applications relating to information forensics, information security, biometrics, surveillance and systems applications that incorporate these features
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