论文标题

区块链作为多访问边缘计算的服务:一种深入的增强学习方法

Blockchain as a Service for Multi-Access Edge Computing: A Deep Reinforcement Learning Approach

论文作者

Nguyen, Dinh C, Pathirana, Pubudu N, Ding, Ming, Seneviratne, Aruna

论文摘要

最近,由于其权力下放,不变性,透明度和安全性,区块链在学术界取得了动力。作为新兴范式,多访问边缘计算(MEC)已被广泛用于向网络边缘移动用户设备(UE)提供计算和存储资源,以改善移动应用程序的性能。在本文中,我们提出了一种基于区块链的新型MEC架构,UES可以将其计算任务卸载到MEC服务器。特别是,将区块链网络部署并托管在MEC平台上,作为一个区块链作为服务(BAA),该服务支持基于智能合约的资源交易和交易挖掘服务,用于移动任务卸载。为了提高区块链授权的MEC系统的性能,我们提出了一个计算卸载和区块链采矿的联合方案。因此,制定了优化问题,以最大程度地提高边缘服务收入和区块链挖掘奖励,同时最大程度地减少服务计算延迟的用户服务需求和哈希电力资源的约束。然后,我们建议使用双重深Q网络(DQN)算法来解决提出的问题,提出了一种新颖的深钢筋学习(DRL)方法。数值结果表明,所提出的方案在具有计算效率的更好的系统效用方面优于其他基线方法。实验结果还验证了交易合同设计具有低运营成本的有效效率,显示了拟议方案的可行性。

Recently, blockchain has gained momentum in the academic community thanks to its decentralization, immutability, transparency and security. As an emerging paradigm, Multi-access Edge Computing (MEC) has been widely used to provide computation and storage resources to mobile user equipments (UE) at the edge of the network for improving the performance of mobile applications. In this paper, we propose a novel blockchain-based MEC architecture where UEs can offload their computation tasks to the MEC servers. In particular, a blockchain network is deployed and hosted on the MEC platform as Blockchain as a Service (BaaS) that supports smart contract-based resource trading and transaction mining services for mobile task offloading. To enhance the performance of the blockchain-empowered MEC system, we propose a joint scheme of computation offloading and blockchain mining. Accordingly, an optimization problem is formulated to maximize edge service revenue and blockchain mining reward while minimizing the service computation latency with respect to constraints of user service demands and hash power resource. We then propose a novel Deep Reinforcement Learning (DRL) approach using a double deep Q-network (DQN) algorithm to solve the proposed problem. Numerical results demonstrate that the proposed scheme outperforms the other baseline methods in terms of better system utility with computational efficiency. Experiment results also verify that the trading contract design is efficient with low operation cost, showing the feasibility of the proposed scheme.

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