Analysis of LoRaWAN Uplink with Multiple Demodulating Paths and Capture Effect
February 07, 2019 Β· Declared Dead Β· π ICC 2019 - 2019 IEEE International Conference on Communications (ICC)
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Authors
RenΓ© Brandborg SΓΈrensen, Nasrin Razmi, Jimmy Jessen Nielsen, Petar Popovski
arXiv ID
1902.02866
Category
cs.NI: Networking & Internet
Citations
36
Venue
ICC 2019 - 2019 IEEE International Conference on Communications (ICC)
Last Checked
6 months ago
Abstract
Low power wide area networks (LPWANs), such as the ones based on the LoRaWAN protocol, are seen as enablers of large number of IoT applications and services. In this work, we assess the scalability of LoRaWAN by analyzing the frame success probability (FSP) of a LoRa frame while taking into account the capture effect and the number of parallel demodulation paths of the receiving gateway. We have based our model on the commonly used {SX1301 gateway chipset}, which is capable of demodulating {up to} eight frames simultaneously; however, the results of the model can be generalized to architectures with arbitrary number of demodulation paths. We have also introduced and investigated {three} policies for Spreading Factor (SF) allocation. Each policy is evaluated in terms of coverage {probability}, {FSP}, and {throughput}. The overall conclusion is that the presence of multiple demodulation paths introduces a significant change in the analysis and performance of the LoRa random access schemes.
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