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Majid Lafi Altamimi | د. ماجد لافي التميمي

Assistant Professor

Faculty

كلية الهندسة
2C14
publication
Conference Paper
2021

Deep learning radio frequency signal classification with hybrid images

In recent years, Deep Learning (DL) has been successfully applied to detect and classify Radio Frequency (RF) Signals. A DL approach is especially useful since it identifies the presence of a signal without needing full protocol information, and can also detect and/or classify non-communication waveforms, such as radar signals. This work focuses on the different pre-processing steps that can be used on the input training data, and tests the results on a fixed DL architecture. While previous works have mostly focused exclusively on either time-domain or frequency domain approaches, in this work a hybrid image is proposed that takes advantage of both time and frequency domain information, and tackles the classification as a Computer Vision problem. The initial results point out limitations to classical pre-processing approaches while also showing that it’s possible to build a classifier that can leverage the strengths of multiple signal representations.

Conference Name
2021 IEEE International Conference on Signal and Image Processing Applications (ICSIPA)
more of publication
publications

Smartphones manufactured at present are equipped with the new Wireless Local Area Network (WLAN) calibrated to IEEE standards on its interface, which supports the Multiple Input Multiple Output (…

by Jameel Ali, Majid Altamimi
2022
Published in:
Computer Communications
publications

Progress in optical wireless communication (OWC) has unleashed the potential to transmit data in an ultra-fast manner without incurring large investments and bulk infrastructure. OWC includes…

by Abderrahmen Trichili, Amr Ragheb, Dmitrii Briantcev, Maged A Esmail, Majid Altamimi, Islam Ashry, Boon S Ooi, Saleh Alshebeili, Mohamed-Slim Alouini
Published in:
IEEE Open Journal of the Communications Society
publications

In recent years, Deep Learning (DL) has been successfully applied to detect and classify Radio Frequency (RF) Signals. A DL approach is especially useful since it identifies the presence of a…

by Hilal Elyousseph, Majid L Altamimi
2021