tv white spaces
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Author(s):  
Yaciro Cabezas Burbano ◽  
Hernan Paz Penagos

2021 ◽  
Vol 20 (4) ◽  
pp. 1-26
Author(s):  
Mahbubur Rahman ◽  
Dali Ismail ◽  
Venkata P. Modekurthy ◽  
Abusayeed Saifullah

Low-Power Wide-Area Network (LPWAN) is an enabling Internet-of-Things technology that supports long-range, low-power, and low-cost connectivity to numerous devices. To avoid the crowd in the limited ISM band (where most LPWANs operate) and cost of licensed band, the recently proposed Sensor Network over White Spaces (SNOW) is a promising LPWAN platform that operates over the TV white spaces. As it is a very recent technology and is still in its infancy, the current SNOW implementation uses the Universal Software Radio Peripheral devices as LPWAN nodes, which has high costs (≈$750 USD per device) and large form-factors, hindering its applicability in practical deployment. In this article, we implement SNOW using low-cost, low form-factor, low-power, and widely available commercial off-the-shelf (COTS) devices to enable its practical and large-scale deployment. Our choice of the COTS device (TI CC13x0: CC1310 or CC1350) consequently brings down the cost and form-factor of a SNOW node by 25× and 10×, respectively. Such implementation of SNOW on the CC13x0 devices, however, faces a number of challenges to enable link reliability and communication range. Our implementation addresses these challenges by handling peak-to-average power ratio problem, channel state information estimation, carrier frequency offset estimation, and near-far power problem. Our deployment in the city of Detroit, Michigan, demonstrates that CC13x0-based SNOW can achieve uplink and downlink throughputs of 11.2 and 4.8 kbps per node, respectively, over a distance of 1 km. Also, the overall throughput in the uplink increases linearly with the increase in the number of SNOW nodes.


Author(s):  
Gabriel Carvalho Ferreira ◽  
Luís Belém Pacheco ◽  
Priscila Solis Barreto ◽  
Marcos Fagundes Caetano ◽  
Eduardo Pelinson Alchieri ◽  
...  
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Este trabalho apresenta o COLAB-5, uma ferramenta desenvolvida para o simulador de sistema NS-3, que permite a simulação de diversos cenários em redes 5G. A ferramenta foi modelada ao seguir uma abordagem modular que permite a incorporação de características da camada física no simulador mediante uma interface pré-definida e a tecnologia JSON. Os resultados produzidos por um simulador de nível de enlace físico - neste caso de 5G para áreas remotas - são incorporados no simulador NS-3. Essa abordagem permite a simulação de cenários variados no NS-3 e reduz a complexidade computacional ao simular diversos cenários. O COLAB-5 também implementa técnicas de RC (Radios Cognitivos) na camada MAC do NS-3, baseadas no sensoriamento colaborativo que permitem o uso oportunístico do espectro eletromagnético. Neste artigo, o funcionamento do COLAB-5 é ilustrado em um ambiente de 5G para áreas remotas, que utiliza frequências entre 170MHZ a 700MHz e executa acesso oportunístico em canais de TVWS (TV White Spaces).


2020 ◽  
Vol 75 (1) ◽  
pp. 109-139
Author(s):  
Ajit Singh ◽  
K. Krishna Naik ◽  
C. R. Suthikshn Kumar

Author(s):  
Anjali Askhedkar ◽  
Bharat Chaudhari ◽  
Marco Zennaro ◽  
Ermanno Pietrosemoli

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