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Over the Air Deep Learning Based Radio Signal Classification

2017-12-13 · Timothy J. O'Shea, Tamoghna Roy, T. Charles Clancy

We conduct an in depth study on the performance of deep learning based radio signal classification for radio communications signals. We consider a rigorous baseline method using higher order moments and strong boosted gradient tree classification and compare performance between the two approaches across a range of configurations and channel impairments. We consider the effects of carrier frequency offset, symbol rate, and multi-path fading in simulation and conduct over-the-air measurement of radio classification performance in the lab using software radios and compare performance and training strategies for both. Finally we conclude with a discussion of remaining problems, and design considerations for using such techniques.

📄 PDF Abstract BibTeX arXiv:1712.04578

Code (5)

ITU-AI-ML-in-5G-Challenge/ITU-ML5G-PS-007-BacalhauNet pytorch
Liu-1994/DL_based_RSC tf
ernestkck/RML2018
kolbrak/Modulation_Classification
nikulshr/resnet_fpga pytorch

Tasks

Deep LearningGeneral Classification

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