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Taming Uncertainties In Real-Time Routing For Wireless Networked Sensing And Control

机译:用于无线网络传感和控制的实时路由中的驯服不确定性

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摘要

Real-time routing is a basic element of closed-loop, real-time sensing and control, but it is challenging due to dynamic, uncertain link/path delays.The probabilistic nature of link/path delays makes the basic problem of computing the probabilistic distribution of path delays NP-hard, yet quantifying probabilistic path delays is a basic element of real-time routing and may well have to be executed by resource-constrained devices in a distributed manner;the highly-varying nature of link/path delays makes it necessary to adapt to in-situ delay conditions in real-time routing, but it has been observed that delay-based routing can lead to instability, estimation error, and low data delivery performance in general.To address these challenges, we propose the emph{Multi-Timescale Estimation (MTE)} method; by accurately estimating the mean and variance of per-packet transmission time and by adapting to fast-varying queueing in an accurate, agile manner, MTE enables accurate, agile, and efficient estimation of probabilistic path delay bounds in a distributed manner.Based on MTE, we propose the emph{Multi-Timescale Adaptation (MTA)} routing protocol; MTA integrates the stability of an ETX-based directed-acyclic-graph (DAG) with the agility of spatiotemporal data flow control within the DAG to ensure real-time data delivery in the presence of dynamics and uncertainties.We also address the challenges of implementing MTE and MTA in resource-constrained devices such as TelosB motes.We evaluate the performance of MTA using the NetEye and Indriya sensor network testbeds. We find that MTA significantly outperforms existing protocols, e.g., improving deadline success ratio by 89% and reducing transmission cost by a factor of 9.7.
机译:实时路由是闭环,实时传感和控制的基本要素,但由于动态,不确定的链路/路径延迟而具有挑战性。链路/路径延迟的概率性质使计算概率的基本问题成为可能。路径延迟的分布NP-hard,但量化概率路径延迟是实时路由的基本元素,可能必须由资源受限的设备以分布式方式执行;链路/路径延迟的高度变化特性使得有必要适应实时路由中的原地延迟条件,但是已经发现基于延迟的路由通常会导致不稳定性,估计误差和较低的数据传递性能。为解决这些挑战,我们提出了emph {多时标估计(MTE)}方法;通过准确估算每个数据包传输时间的均值和方差,并以准确,敏捷的方式适应快速变化的排队,MTE可以以分布式方式准确,敏捷,高效地估计概率路径延迟范围。 ,我们提出了emph {Multi-Timescale Adaptation(MTA)}路由协议; MTA将基于ETX的有向无环图(DAG)的稳定性与DAG内时空数据流控制的敏捷性相集成,以确保在存在动态和不确定性的情况下实时传递数据,我们还解决了实施方面的挑战资源受限的设备(例如TelosB微粒)中的MTE和MTA。我们使用NetEye和Indriya传感器网络测试平台评估MTA的性能。我们发现MTA明显优于现有协议,例如,将截止日期成功率提高了89%,传输成本降低了9.7倍。

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    Liu, Xiaohui;

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  • 年度 2014
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