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Integrating Low-Power Wide-Area Networks for Enhanced Scalability and Extended Coverage

机译:集成低功耗广域网以增强可扩展性和扩展覆盖范围

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Low-Power Wide-Area Networks (LPWANs) are evolving as an enabling technology for Internet-of-Things (IoT) due to their capability of communicating over long distances at very low transmission power. Existing LPWAN technologies, however, face limitations in meeting scalability and covering very wide areas which make their adoption challenging for future IoT applications, especially in infrastructure-limited rural areas. To address this limitation, in this paper, we consider achieving scalability and extended coverage by integrating multiple LPWANs. SNOW (Sensor Network Over White Spaces), a recently proposed LPWAN architecture over the TV white spaces, has demonstrated its advantages over existing LPWANs in performance and energy-efficiency. In this paper, we propose to scale up LPWANs through a seamless integration of multiple SNOWs which enables concurrent inter-SNOW and intra-SNOW communications. We then formulate the tradeoff between scalability and inter-SNOW interference as a constrained optimization problem whose objective is to maximize scalability by managing white space spectrum sharing across multiple SNOWs. We also prove the NP-hardness of this problem. To this extent, We propose an intuitive polynomial-time heuristic algorithm for solving the scalability optimization problem which is highly efficient in practice. For the sake of theoretical bound, we also propose a simple polynomial-time $rac {1}{2}$ -approximation algorithm for the scalability optimization problem. Hardware experiments through deployment in an area of ( $25imes 15$ )km(2) as well as large scale simulations demonstrate the effectiveness of our algorithms and feasibility of achieving scalability through seamless integration of SNOWs with high reliability, low latency, and energy efficiency.
机译:低功耗广域网(LPWAN)正在发展成为物联网(IoT)的使能技术,因为它们具有以非常低的传输功率进行长距离通信的能力。但是,现有的LPWAN技术在满足可扩展性和覆盖非常广阔的领域方面面临着局限性,这使得它们的采用对于未来的物联网应用(尤其是在基础设施受限的农村地区)具有挑战性。为了解决这个限制,在本文中,我们考虑通过集成多个LPWAN来实现可扩展性和扩展的覆盖范围。 SNOW(白色空间传感器网络)是最近在电视空白空间上提出的LPWAN架构,已经证明了其在性能和能效方面优于现有LPWAN的优势。在本文中,我们建议通过多个SNOW的无缝集成来扩展LPWAN,以实现并发的SNOW之间和SNOW内部通信。然后,我们将可伸缩性和SNOW之间的干扰之间的折衷公式化为约束优化问题,其目标是通过管理多个SNOW之间的空白频谱共享来最大化可伸缩性。我们还证明了此问题的NP难度。为此,我们提出了一种直观的多项式时间启发式算法来解决可伸缩性优化问题,该算法在实践中非常高效。出于理论上的考虑,我们还针对可伸缩性优化问题提出了一种简单的多项式时间$ frac {1} {2} $-逼近算法。通过在($ 25 乘以15 $)km(2)区域内进行部署进行的硬件实验以及大规模仿真证明了我们算法的有效性,以及通过无缝集成具有高可靠性,低延迟和能量的SNOW实现可扩展性的可行性效率。

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