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Design principles of wireless sensor networks protocols for control applications

机译:用于控制应用的无线传感器网络协议的设计原理

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摘要

Control applications over wireless sensor networks (WSNs) require timely, reliable, and energy efficient communications. This is challenging because reliability and latency of delivered packets and energy are at odds, and resource constrained nodes support only simple algorithms. In this chapter, a new system-level design approach for protocols supporting control applications over WSNs is proposed. The approach suggests a joint optimization, or co-design, of the control specifications, networking layer, the medium access control layer, and physical layer. The protocol parameters are adapted by an optimization problem whose objective function is the network energy consumption, and the constraints are the reliability and latency of the packets as requested by the control application. The design method aims at the definition of simple algorithms that are easily implemented on resource constrained sensor nodes. These algorithms allow the network to meet the reliability and latency required by the control application while minimizing for energy consumption. The design method is illustrated by two protocols: Breath and TREnD, which are implemented on a test-bed and compared to some existing solutions. Experimental results show good performance of the protocols based on this design methodology in terms of reliability, latency, low duty cycle, and load balancing for both static and time-varying scenarios. It is concluded that a system-level design is the essential paradigm to exploit the complex interaction among the layers of the protocol stack and reach a maximum WSN efficiency.
机译:无线传感器网络(WSN)上的控制应用程序需要及时,可靠和节能的通信。这具有挑战性,因为传递的数据包和能量的可靠性和等待时间不一致,并且资源受限的节点仅支持简单的算法。在本章中,针对支持WSN上的控制应用程序的协议,提出了一种新的系统级设计方法。该方法建议对控制规范,网络层,媒体访问控制层和物理层进行联合优化或共同设计。协议参数通过优化问题进行调整,优化问题的目标功能是网络能耗,约束条件是控制应用程序请求的数据包的可靠性和等待时间。该设计方法旨在定义可在资源受限的传感器节点上轻松实现的简单算法。这些算法使网络能够满足控制应用程序所需的可靠性和延迟,同时将能耗降至最低。该设计方法由两种协议说明:Breath和TREnD,它们在测试台上实现,并与一些现有解决方案进行比较。实验结果表明,在静态和时变场景下,基于此设计方法的协议在可靠性,延迟,低占空比和负载平衡方面均具有良好的性能。结论是,系统级设计是利用协议栈各层之间的复杂交互并达到最大WSN效率的基本范例。

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