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Extracting Markov chain models from protocol execution traces for end to end delay evaluation in wireless sensor networks

机译:从协议执行跟踪中提取Markov链模型,以结束无线传感器网络的结束延迟评估

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Many WSN industrial applications impose requirements in terms of end to end delay. However, the end to end delay estimation in WSNs is not a simple task because of the high dynamic of networks, the use of duty-cycled MAC protocols as well as the impact of the routing protocols. Markov-based modelling is an interesting approach to deal with this problem aiming to provide an analytical model useful for understanding protocol's behavior and to estimate the end to end delay, among other performance parameters. However, existing Markov-based analytic models abstract the reality simplifying the analysis and thus resulting models are not accurate enough for estimating the end to end delay. Furthermore, establishing an accurate Markov model using classic approaches is very difficult considering the highly dynamic behavior of the sensor nodes. In this paper, we propose a novel approach to obtain the Markov chain model of sensor nodes by means of Process Mining techniques through the code execution trace. End to end delay is then computed based on this Markov chain. Experimentations were done using IoT-LAB testbed platform. Comparisons in terms of delay are presented for two different metrics of the RPL protocol (hop count and ETX).
机译:许多WSN工业应用在终端延迟方面施加了要求。然而,由于网络的高动态,使用占空移循环MAC协议以及路由协议的影响,WSN中的最终延迟估计不是一个简单的任务。基于Markov的建模是一种有趣的方法,可以解决这个问题,该问题旨在为理解协议的行为提供一个有用的分析模型,并在其他性能参数中估算结束延迟。然而,现有的基于Markov的分析模型摘要简化了分析的现实,因此产生的模型不足以估计结束到最终延迟。此外,考虑到传感器节点的高动态行为,使用经典方法建立准确的马尔可夫模型非常困难。在本文中,我们提出了一种新的方法来通过通过代码执行跟踪通过处理挖掘技术获得传感器节点的马尔可夫链模型。然后基于此马尔可夫链计算结束到端延迟。使用IoT-Lab测试平台进行了实验。延迟的比较是针对RPL协议(跳数和ETX)的两个不同度量。

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