面向任务的无线传感器网络中基于效用的带宽自适应

S. Eswaran, Archan Misra, Flávio Bergamaschi, T. L. Porta
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引用次数: 21

摘要

针对面向任务的无线传感器网络环境中多个竞争任务的资源共享问题,提出了一种基于效用的优化框架。先前基于网络效用最大化(NUM)的优化工作主要集中在有线或无线网络中基于发送方的单播流。在这项工作中,我们开发了一个广义NUM模型,以考虑在以任务为中心的WSN环境中观察到的三个关键新特征:i)将单个任务(接收器)的效用定义为来自多个传感器源的数据的联合函数;Ii)多个任务对每个发送者(传感器)数据的消耗;以及iii)基于组播树的每个传感器数据流的传播,使用链路层广播来利用数据转发中的“无线广播优势”。我们展示了基于价格的分布式协议(WSN-NUM)如何在多个任务之间确保最佳和按比例公平的速率分配,而不需要在任务或传感器之间进行任何协调。我们还讨论了提高协议收敛速度的技术,这在像WSN这样动态的环境中是必不可少的。此外,我们使用固定无线网络的离散事件模拟分析了各种网络和协议参数对网络带宽利用率的影响。最后,我们通过802.11b网络的实现验证了基于仿真的WSN-NUM协议的性能结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Utility-based bandwidth adaptation in mission-oriented wireless sensor networks
This article develops a utility-based optimization framework for resource sharing by multiple competing missions in a mission-oriented wireless sensor network (WSN) environment. Prior work on network utility maximization (NUM) based optimization has focused on unicast flows with sender-based utilities in either wireline or wireless networks. In this work, we develop a generalized NUM model to consider three key new features observed in mission-centric WSN environments: i) the definition of the utility of an individual mission (receiver) as a joint function of data from multiple sensor sources; ii) the consumption of each sender's (sensor) data by multiple missions; and iii) the multicast-tree-based dissemination of each sensor's data flow, using link-layer broadcasts to exploit the “wireless broadcast advantage” in data forwarding. We show how a price-based, distributed protocol (WSN-NUM) can ensure optimal and proportionally fair rate allocation across multiple missions, without requiring any coordination among missions or sensors. We also discuss techniques to improve the speed of convergence of the protocol, which is essential in an environment as dynamic as the WSN. Further, we analyze the impact of various network and protocol parameters on the bandwidth utilization of the network, using a discrete-event simulation of a stationary wireless network. Finally, we corroborate our simulation-based performance results of the WSN-NUM protocol with an implementation of an 802.11b network.
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