在传感器网络中启用可靠、异步和双向通信

Abusayeed Saifullah, Mahbubur Rahman, Dali Ismail, Chenyang Lu, Jie Liu, Ranveer Chandra
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引用次数: 36

摘要

低功耗广域网(LPWAN)预示着一种有前途的技术,可以克服传统无线传感器网络的范围限制和可扩展性挑战。由于电视频谱在远程通信中的可用性和优势,最近提出的白色空间传感器网络(SNOW)技术尤其具有吸引力。本文提出了一种异步、可靠、鲁棒的新SNOW设计方案。它代表了第一个在电视空白空间上高度可扩展的LPWAN,以支持众多传感器和基站之间的可靠、异步、双向和并发通信。这是通过一套新颖的技术实现的。这种新设计的SNOW具有基于OFDM的物理层,采用鲁棒调制方案,允许使用单个天线无线电的基站(1)同时向不同节点发送不同的数据,(2)异步接收传感器节点的并发传输。它有一个轻量级的MAC协议:(1)通过利用所采用的OFDM设计有效地实现异步传输的每次传输确认;(2)将CSMA/CA与位置感知频谱分配相结合,减轻了终端隐藏效应,增强了节点异步传输的灵活性。通过在三种无线电环境(大城市、农村地区和室内环境)中部署的硬件实验以及大规模模拟表明,新的SNOW设计在可伸缩性、能量和延迟方面大大优于其他LPWAN技术。
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Enabling Reliable, Asynchronous, and Bidirectional Communication in Sensor Networks over White Spaces
Low-Power Wide-Area Network (LPWAN) heralds a promising class of technology to overcome the range limits and scalability challenges in traditional wireless sensor networks. Recently proposed Sensor Network over White Spaces (SNOW) technology is particularly attractive due to the availability and advantages of TV spectrum in long-range communication. This paper proposes a new design of SNOW that is asynchronous, reliable, and robust. It represents the first highly scalable LPWAN over TV white spaces to support reliable, asynchronous, bi-directional, and concurrent communication between numerous sensors and a base station. This is achieved through a set of novel techniques. This new design of SNOW has an OFDM based physical layer that adopts robust modulation scheme and allows the base station using a single antenna-radio (1) to send different data to different nodes concurrently and (2) to receive concurrent transmissions made by the sensor nodes asynchronously. It has a lightweight MAC protocol that (1) efficiently implements per-transmission acknowledgments of the asynchronous transmissions by exploiting the adopted OFDM design; (2) combines CSMA/CA and location-aware spectrum allocation for mitigating hidden terminal effects, thus enhancing the flexibility of the nodes in transmitting asynchronously. Hardware experiments through deployments in three radio environments - in a large metropolitan city, in a rural area, and in an indoor environment - as well as large-scale simulations demonstrated that the new SNOW design drastically outperforms other LPWAN technologies in terms of scalability, energy, and latency.
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