MASTER: Long-Term Stable Routing and Scheduling in Low-Power Wireless Networks

Laura Harms, O. Landsiedel
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引用次数: 11

Abstract

Wireless Sensor-Actuator Networks (WSANs) are an important driver for the Industrial Internet of Things (IIoT) as they easily retrofit existing industrial infrastructure. Industrial applications require these networks to provide stable communication with high reliability and guaranteed low latency. A common way is using a central scheduler to plan transmissions and routes so that all packets are delivered before a deadline. However, existing centralized schedulers are only able to achieve high reliability in the absence of interference. This limitation lowers the feasibility of using centralized schedulers in most environments susceptible to interference.This paper addresses the challenge of stable, centrally scheduled communication in low-power wireless networks susceptible to interference. We introduce MASTER, a centralized scheduler and router, for IEEE 802.15.4 TSCH (Time-Slotted Channel Hopping). MASTER uses Sliding Windows, a novel transmission strategy, which builds on flow-based retransmissions instead of link-based ones. We show in our experimental evaluation that MASTER with Sliding Windows achieves routing and scheduling stability for over 24 hours with end-to-end reliability of over 99.6%. Moreover, we show that MASTER outperforms Orchestra, a state-of-the-art autonomous scheduler, in terms of latency by a factor of 8 while achieving similar reliability under a slight duty-cycle increase.
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MASTER:低功耗无线网络中的长期稳定路由和调度
无线传感器-执行器网络(wsan)是工业物联网(IIoT)的重要驱动力,因为它们可以轻松改造现有的工业基础设施。工业应用需要这些网络提供稳定的通信,具有高可靠性和保证的低延迟。一种常见的方法是使用中央调度程序来计划传输和路由,以便在截止日期之前交付所有数据包。然而,现有的集中式调度程序只能在没有干扰的情况下实现高可靠性。这一限制降低了在大多数易受干扰的环境中使用集中式调度器的可行性。本文解决了在易受干扰的低功耗无线网络中实现稳定、集中调度通信的挑战。我们介绍了MASTER,一个用于IEEE 802.15.4 TSCH(时隙信道跳频)的集中式调度程序和路由器。MASTER使用滑动窗口,这是一种新颖的传输策略,它建立在基于流的重传之上,而不是基于链接的重传。我们在实验评估中表明,具有滑动窗口的MASTER实现了超过24小时的路由和调度稳定性,端到端可靠性超过99.6%。此外,我们表明MASTER在延迟方面优于Orchestra(一种最先进的自主调度程序)8倍,同时在稍微增加占空比的情况下实现类似的可靠性。
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