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An auction-based strategy for distributed task allocation in wireless sensor networks

机译:无线传感器网络中基于拍卖的分布式任务分配策略

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Game theory provides a mathematical tool for the analysis of distributed decision making interactions between agents with conflicting interests. We apply game theory for distributed task allocation in wireless sensor networks (WSNs) where the decision makers in the game are the sensor nodes willing to perform the task to maximize their profits. They have to cope with limited resources (i.e., available energy levels) that imposes a conflict of interest. In resource-constrained wireless sensor networks, one of the fundamental challenges is to achieve a fair energy balance among nodes to maximize the overall network lifetime. Auction-based schemes, owing to their perceived fairness and allocation efficiency, are among the well-known game theoretic mechanisms for energy balanced distributed task allocation. In this paper, the real-time distributed task allocation problem is formulated as an incomplete information, incentive compatible and economically-robust reverse auction game. The main objective of this scheme is to maximize the overall network lifetime considering the application's deadline as the constraint. In the proposed game theoretic model, the distributed best response for bid updates globally converges to the unique Nash Equilibrium in a completely asynchronous manner. Another problem addressed in this paper is the winner determination problem. Given a distributed pool of bids from bidders (i.e., sensor nodes), a centralized winner determination protocol (WDP) would require costly message exchanges with high energy consumption and overhead. Hence, we propose the Energy and Delay Efficient Distributed Winner Determination Protocol (ED-WDP) for the reverse auction-based scheme. Our simulation results show a fairer energy balance achieved through this bid formulation in comparison to other well-known static schemes. Moreover, by utilizing the ED-WDP among the numerous distributed resources, the message exchange overhead, energy consumption and delay for winner determination are significantly reduced compared to a centralized WDP.
机译:博弈论为分析利益冲突的主体之间的分布式决策交互提供了一种数学工具。我们将博弈论应用于无线传感器网络(WSN)中的分布式任务分配,其中,游戏中的决策者是愿意执行任务以最大化其利润的传感器节点。他们必须应付造成利益冲突的有限资源(即,可用能量水平)。在资源受限的无线传感器网络中,基本挑战之一是在节点之间实现公平的能量平衡,以最大化整体网络寿命。基于拍卖的方案,由于其感知的公平性和分配效率,是用于能量平衡的分布式任务分配的著名博弈论机制。本文将实时分布式任务分配问题表述为信息不完全,激励兼容,经济上鲁棒的逆向拍卖游戏。该方案的主要目标是将应用程序的截止日期作为约束条件,以最大化整个网络寿命。在提出的博弈论模型中,针对出价更新的分布式最佳响应以完全异步的方式全局收敛到唯一的Nash均衡。本文解决的另一个问题是获胜者确定问题。给定来自投标者(即,传感器节点)的分布式投标池,集中的获胜者确定协议(WDP)将需要具有高能耗和开销的昂贵消息交换。因此,我们为基于反向拍卖的方案提出了能量和延迟有效的分布式赢家确定协议(ED-WDP)。我们的模拟结果显示,与其他知名的静态方案相比,通过此出价公式可实现更公平的能源平衡。此外,与集中式WDP相比,通过在众多分布式资源中利用ED-WDP,显着减少了消息交换开销,能耗和确定获胜者的延迟。

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