Autoencoder based framework for drone RF signal classification and novelty detection

Sanjoy Basak, Sreeraj Rajendran, Sofie Pollin, Bart Scheers

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Résumé

The increasing use of Unmanned Aerial Vehicles (UAVs) in modern civilian and military applications shows the urgency of having a robust drone detector that detects unseen drone RF signals. Ideally, the system can also classify known RF signals from known drones. This study aims to develop an incremental-learning framework which can classify the known RF signals, and further detect novel RF signals. We propose DE-FEND: A Deep residual network-based autoEncoder FramEwork for known drone signal classification, Novelty Detection, and clustering. The known signal classification and novelty detection are performed in a semi-supervised and unsupervised manner, respectively. We used commercial drone RF signals to evaluate the performance of our framework. With our framework, we obtained 100% novelty detection accuracy at 1.04% False Alarm Rate (FAR) and 97.4% classification accuracy with only 10% labelled samples. Furthermore, we show that our framework outperforms the state-of-The-Art (SoA) algorithms in terms of novelty detection performance.

langue originaleAnglais
titre25th International Conference on Advanced Communications Technology
Sous-titreNew Cyber Security Risks for Enterprise Amidst COVID-19 Pandemic!!, ICACT 2023
EditeurInstitute of Electrical and Electronics Engineers Inc.
Pages218-225
Nombre de pages8
ISBN (Electronique)9791188428106
Les DOIs
étatPublié - 2023
Evénement25th International Conference on Advanced Communications Technology, ICACT 2023 - Pyeongchang, Corée du Sud
Durée: 19 févr. 202322 févr. 2023

Série de publications

NomInternational Conference on Advanced Communication Technology, ICACT
Volume2023-February
ISSN (imprimé)1738-9445

Une conférence

Une conférence25th International Conference on Advanced Communications Technology, ICACT 2023
Pays/TerritoireCorée du Sud
La villePyeongchang
période19/02/2322/02/23

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