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Low-Latency In-Band Integration of Multiple Low-Power Wide-Area Networks

机译:多个低功耗广域网的低延迟带内集成

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Today, industrial and agricultural Internet of Things (IoT) are emerging in very large-scale and wide-area applications (e.g., oil-field management, smart farming) that may spread over hundreds of square miles (e.g., $45mathrm{m}mathrm{i}imes 12mathrm{m}mathrm{i}$ East Texas Oil-field). Although a single Low-Power Wide-Area Network (LPWAN) covers several miles, it faces coverage challenge in such extremely large-area IoT applications, specially in rural or remote areas with no/limited infrastructure, requiring an in-band integration of multiple LPWANs. To avoid the crowd in the limited ISM band and the cost of licensed band and infrastructure, SNOW (Sensor Network Over White spaces) is an LPWAN architecture over the TV white spaces. It offers high scalability through concurrent and bi-directional communication between a base station and numerous nodes. We consider a seamless integration of multiple SNOWs. Existing approach does not consider minimizing network latency and is less suitable for delay-sensitive or real-time applications. We propose the first scalable in-band integration of multiple SNOWs that minimizes network latency. By taking into account the impact of bandwidth on latency and base station power dissipation, we formulate lowlatency integration of multiple SNOWs as a constrained spectrum allocation problem. It is solved through a greedy algorithm by analyzing network latency and by adopting a latency- and traffic- aware bandwidth allocation along the links to achieve an integrated network. We have implemented the proposed integration both on SNOW hardware and in NS-3 simulator. Both physical experiments and simulations show a significant reduction (44% and 97%, resp.) in network latency under our approach compared to existing approach.
机译:如今,工业和农业互联网(物联网)在非常大规模和广域的应用(例如,油田管理,智能农业)中,可能遍布数百英里(例如,45美元 Mathrm {M } mathrm {i} times 12 mathrm {m} mathrm {i} $东德克萨斯油田)。虽然单个低功耗广域网(LPWAN)覆盖几英里,但它面临如此极大的IOT应用中的覆盖面挑战,特别是在没有/有限的基础设施的农村或偏远地区,需要多个频段集成洛珀斯。为避免在有限的ISM频段和许可乐队和基础设施的成本中的人群,雪(在白色空间上的传感器网络)是电视白色空间上的LPWAN架构。它通过基站和许多节点之间的并发和双向通信提供高可扩展性。我们考虑一下多个雪的无缝集成。现有方法不考虑最小化网络延迟,并且不太适合延迟敏感或实时应用程序。我们提出了最小化网络延迟的多个噪声的第一个可扩展的带内集成。通过考虑带宽对延迟和基站功耗的影响,我们将多个次次噪声的低曲程集成作为受限的频谱分配问题。通过分析网络延迟,通过沿链路沿着链接进行延迟和交通感知带宽分配来实现它通过贪婪算法来解决。我们已经在雪硬件和NS-3模拟器上实施了拟议的集成。与现有方法相比,物理实验和模拟显示出在网络延迟下的显着减少(44%和97%,A)。

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