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Game Theory Framework for MAC Parameter Optimization in Energy-Delay Constrained Sensor Networks

机译:能量延迟约束传感器网络中MAC参数优化的博弈框架

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摘要

Optimizing energy consumption and end-to-end (e2e) packet delay in energy-constrained, delay-sensitive wireless sensor networks is a conflicting multiobjective optimization problem. We investigate the problem from a game theory perspective, where the two optimization objectives are considered as game players. The cost model of each player is mapped through a generalized optimization framework onto protocol-specific MAC parameters. From the optimization framework, a game is first defined by the Nash bargaining solution (NBS) to assure energy consumption and e2e delay balancing. Secondy, the Kalai-Smorodinsky bargaining solution (KSBS) is used to find an equal proportion of gain between players. Both methods offer a bargaining solution to the duty-cycle MAC protocol under different axioms. As a result, given the two performance requirements (i.e., the maximum latency tolerated by the application and the initial energy budget of nodes), the proposed framework allows to set tunable system parameters to reach a fair equilibrium point that dually minimizes the system latency and energy consumption. For illustration, this formulation is applied to six state-of-the-art wireless sensor network (WSN) MAC protocols: B-MAC, X-MAC, RI-MAC, SMAC, DMAC, and LMAC. The article shows the effectiveness and scalability of such a framework in optimizing protocol parameters that achieve a fair energy-delay performance trade-off under the application requirements.
机译:在能量受限,对延迟敏感的无线传感器网络中优化能耗和端到端(e2e)数据包延迟是一个相互冲突的多目标优化问题。我们从博弈论的角度研究该问题,其中两个优化目标被视为博弈者。每个参与者的成本模型通过通用优化框架映射到特定于协议的MAC参数上。在优化框架中,首先由Nash讨价还价解决方案(NBS)定义游戏,以确保能源消耗和端到端延迟平衡。其次,使用Kalai-Smorodinsky讨价还价解决方案(KSBS)来发现玩家之间的收益比例相等。两种方法都为不同公理下的占空比MAC协议提供了讨价还价的解决方案。结果,给定两个性能要求(即,应用程序可忍受的最大延迟和节点的初始能量预算),所提出的框架允许设置可调系统参数以达到公平的平衡点,从而将系统延迟和能源消耗。为了说明起见,此公式适用于六个最新的无线传感器网络(WSN)MAC协议:B-MAC,X-MAC,RI-MAC,SMAC,DMAC和LMAC。本文展示了这种框架在优化协议参数方面的有效性和可扩展性,这些协议参数可在应用程序要求下实现合理的能源延迟性能折衷。

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