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LoRa_RFFI_dataset

Citation Author(s):
Guanxiong Shen (University of Liverpool)
Junqing Zhang (University of Liverpool)
Alan Marshall (University of Liverpool)
Submitted by:
Guanxiong Shen
Last updated:
DOI:
10.21227/qqt4-kz19
Research Article Link:
Average: 5 (1 vote)

Abstract

This LoRa-RFFI project builds a LoRa radio frequency fingerprint identification (RFFI) system based on deep learning techniques. The RF signals are collected from 60 commercial-off-the-shelf LoRa devices. The packet preamble part and device labels are provided. The dataset consists of 19 sub-datasets and please refer to the README document for more detailed collection settings for all the sub-datasets.

More details are available at https://github.com/gxhen/LoRa_RFFI. Please cite the paper 'Towards Scalable and Channel-Robust Radio Frequency Fingerprint Identification for LoRa', IEEE Trans. Inf. Forensics Security (TIFS), 2022. 

Instructions:

Please refer to the README documentation or https://github.com/gxhen/LoRa_RFFI.

Could you please explain how to collect these datasets in a practical way? Specifically, what software and hardware did you use during the data collection process, and what steps were involved in the collection?

Jahnavi Merugu Sun, 08/18/2024 - 18:21 Permalink

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