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Adaptive multi-PHY IEEE802.15.4 TSCH in sub-GHz industrial wireless networks

机译:Sub-GHz工业无线网络中的自适应多PHY IEEE802.15.4 TSCH

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To provide wireless coverage in challenging industrial environments, IEEE802.15.4 Time-Slotted Channel Hopping (TSCH) presents a robust medium access protocol. Using multiple Physical Layers (PHYs) could improve TSCH even more in these heterogeneous environments. However, TSCH only defines one fixedduration timeslot structure allowing one packet transmission. Using multiple PHYs with various data rates therefore does not yield any improvements because of this single-packet limitation combined with a fixed slot duration. We therefore defined two alternative timeslot structures allowing multiple packets transmissions to increase the throughput for higher data rate PHYs while meeting a fixed slot duration. In addition, we developed a flexible Link Quality Estimation (LQE) technique to dynamically switch between PHYs depending on the current environment. This paper covers a theoretical evaluation of the proposed slot structures in terms of throughput, energy consumption and memory constraints backed with an experimental validation, using a proof-of-concept implementation, which includes topology and PHY switching. Our results show that a 153% higher net throughput can be obtained with 84% of the original energy consumption and confirm our theoretical evaluation with a 99 % accuracy. Additionally, we showed that in a real-life testbed of 33 nodes, spanning three floors and covering 2550 m(2), a compact multi-PHY TSCH network can be formed. By distinguishing between reliable and high throughput PHYs, a maximum hop count of three was achieved with a maximum throughput of 219 kbps. Consequently, using multiple (dynamic) PHYs in a single TSCH network is possible while still being backwards compatible to the original fixed slot duration TSCH standard.
机译:为了在具有挑战性的工业环境中提供无线覆盖,IEEE802.15.4时隙信道跳跃(TSCH)呈现了一种强大的介质访问协议。使用多个物理图层(Phys)可以在这些异构环境中提高TSCH。然而,TSCH仅定义一个允许一个分组传输的一个频率阵列结构。因此,使用具有各种数据速率的多个物理,因此由于这种单个数据包限制与固定的时隙持续时间相结合,因此不会产生任何改进。因此,我们定义了两个替代时隙结构,允许多个分组传输来增加更高数据速率的吞吐量,同时满足固定的插槽持续时间。此外,我们开发了一种灵活的链路质量估计(LQE)技术,可根据当前环境动态切换。本文涵盖了在使用概念验证的吞吐量,能耗和内存约束方面对所提出的插槽结构的理论评估,使用概念验证,包括概念验证,包括拓扑和PHY切换。我们的研究结果表明,净吞吐量较高的净吞吐量较高,占原始能耗的84%,并以99%的准确性证实我们的理论评估。另外,我们表明,在33个节点的真实寿命试验台上,跨越三层楼层并覆盖2550 m(2),可以形成紧凑的多PHY TSCH网络。通过区分可靠和高吞吐量的物理,通过219kbps的最大吞吐量实现了三个的最大跳数。因此,在单个TSCH网络中使用多个(动态)物理,同时仍然向后兼容原始固定时隙持续时间TSCH标准。

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