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Classification and Detection of Multiple UAVs using Rational Gaussian Wavelet Neural Networks

Ungvári, Gergő and Braun, Ferenc and Ámon, Attila and Kackstädter, Péter and Volk, János and Kovács, Péter and Dózsa, Tamás (2026) Classification and Detection of Multiple UAVs using Rational Gaussian Wavelet Neural Networks. JOURNAL OF INTELLIGENT & ROBOTIC SYSTEMS. ISSN 0921-0296 (In Press)

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Abstract

The detection of unmanned aerial vehicles (UAVs) is important for the protection of civilian and military infrastructure. In this paper we propose a cost effective UAV detection system using sound signals obtained from microphones. The recorded signals are passed through a signal processing pipeline which employs interpretable adaptive feature extractors using so-called rational Gaussian wavelets. These adaptive wavelet transformations are embedded into and trained together with an underlying small neural network which detects and classifies UAVs based on the obtained features. This leads to a physically interpretable machine learning algorithm that in addition to classifying UAVs is also capable of detecting UAV swarms. We demonstrate our results using data collected in indoor studio and noisy outdoor environments. Our experiments show that our method is able to detect different types of UAVs with over 90% accuracy, even in a noisy environment. We conclude that the proposed method outperforms traditional machine learning approaches for detecting and classifying single UAVs as well as drone swarms, while retaining a high degree of interpretability. Our implementation of the proposed methods is made publicly available for reproducibility.

Item Type: Article
Uncontrolled Keywords: Drones, wavelets, machine learning, explainability, neural networks
Subjects: Q Science / természettudomány > QA Mathematics / matematika
Q Science / természettudomány > QA Mathematics / matematika > QA75 Electronic computers. Computer science / számítástechnika, számítógéptudomány
SWORD Depositor: MTMT SWORD
Depositing User: MTMT SWORD
Date Deposited: 08 Sep 2026 08:57
Last Modified: 08 Sep 2026 08:57
URI: https://real.mtak.hu/id/eprint/245788

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