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Scheduling High-Rate Unpredictable Traffic in IEEE 802.15.4 TSCH Networks

机译:计划IEEE 802.15.4 TSCH网络中的高速率不可预测的流量

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The upcoming Internet of Things (IoT) applications include real-time human activity monitoring with wearable sensors. Compared to the traditional environmental sensing with low-power wireless nodes, these new applications generate a constant stream of a much higher rate. Nevertheless, the wearable devices remain battery powered and therefore restricted to low-power wireless standards such as IEEE 802.15.4 or Bluetooth Low Energy (BLE). Our work tackles the problem of building a reliable autonomous schedule for forwarding this kind of dynamic data in IEEE 802.15.4 TSCH networks. Due to the a priori unpredictability of these data source locations, the quality of the wireless links, and the routing topology of the forwarding network, it is wasteful to reserve the number of slots required for the worst-case scenario, under conditions of high expected datarate, it is downright impossible. The solution we propose is a hybrid approach where dedicated TSCH cells and shared TSCH slots coexist in the same schedule. We show that under realistic assumptions of wireless link diversity, adding shared slots to a TSCH schedule increases the overall packet delivery rate and the fairness of the system.
机译:即将推出的物联网(IoT)应用程序包括使用可穿戴式传感器的实时人类活动监控。与具有低功率无线节点的传统环境感应相比,这些新应用程序会产生更高速率的恒定流。尽管如此,可穿戴设备仍由电池供电,因此仅限于低功耗无线标准,例如IEEE 802.15.4或低功耗蓝牙(BLE)。我们的工作解决了建立可靠的自主时间表以在IEEE 802.15.4 TSCH网络中转发这种动态数据的问题。由于这些数据源位置的先验不可预测性,无线链路的质量以及转发网络的路由拓扑,因此在期望值很高的情况下,保留最坏情况所需的插槽数量是浪费的数据速率,这是绝对不可能的。我们提出的解决方案是一种混合方法,其中专用TSCH小区和共享TSCH时隙以相同的时间表共存。我们表明,在无线链路分集的现实假设下,将共享时隙添加到TSCH调度中会增加整体数据包的传输速率和系统的公平性。

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