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Enabling Wireless Closed Loop Communication: Optimal Scheduling Over IEEE 802.11ah Networks

机译:启用无线闭环通信:通过IEEE 802.11ah网络优化调度

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摘要

Industry 4.0 is being enabled by a number of new wireless technologies that emerged in the last decade, aiming to ultimately alleviate the need for wires in industrial use cases. However, wireless solutions are still neither as reliable nor as fast as their wired counterparts. Closed loop communication, a representative industrial communication scenario, requires high reliability (over 99%) and hard real-time operation, having very little tolerance for delays. Additionally, connectivity must be provided over an entire industrial side extending across hundreds of meters. IEEE 802.11ah fits this puzzle in terms of data rates and range, but it does not guarantee deterministic communication by default. Its Restricted Access Window (RAW), a new configurable medium access feature, enables flexible scheduling in dense, large-scale networks. However, the standard does not define how to configure RAW. The existing RAW configuration strategies assume uplink traffic only and are dedicated exclusively to sensors nodes. In this article, we present an integer nonlinear programming problem formulation for optimizing RAW configuration in terms of latency in closed loop communication between sensors and actuators, taking into account both uplink and downlink traffic. The model results in less than 1% of missed deadlines without any prior knowledge of the network parameters in heterogeneous time-changing networks.
机译:业内人士4.0正在过去十年中出现的许多新的无线技术,旨在最终减轻工业用例中对电线的需求。然而,无线解决方案仍然是可靠的,也不是其有线对应物。闭环通信是代表性的工业通信场景,需要高可靠性(超过99%)和硬实时操作,对延迟具有很少的宽容。此外,必须在延伸数百米的整个工业方面提供连接。 IEEE 802.11ah在数据速率和范围方面适合此拼图,但默认情况下不保证确定性通信。其受限制的访问窗口(RAW)是一种新的可配置介质访问功能,可在密集,大规模网络中灵活调度。但是,标准没有定义如何配置RAW。现有的原始配置策略仅采用上行链路流量,并专用于传感器节点。在本文中,我们提出了一个整数非线性编程问题,用于在传感器和执行器之间的闭环通信中优化原始配置,考虑到上行链路和下行链路流量。该模型导致未错过的截止日期的不到1%而无需在异构时代网络中的网络参数的任何先验知识。

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