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Comparative Analysis of Artificial Intelligence Methods for Unmanned Aerial Vehicle (UAV) Recognition and Identification Using Micro-Doppler Signatures

Onderzoeksoutput: Hoofdstuk in Boek/Rapport/CongresprocedureConferentiebijdragepeer review

3 Citaten (Scopus)
2 Downloads (Pure)

Samenvatting

The significance of small Unmanned Aerial Vehicles (UAV) in modern warfare, highlighted by recent conflicts such as those between Russia and Ukraine, necessitates urgent measures to address their diverse and persistent threats [1]. Efforts must prioritize the enhancement of UAV recognition and identification capabilities to effectively counter their impact on the battlefield. In this work, we introduce a novel methodology for UAV classification leveraging their unique micro-Doppler signatures (mDs). Our approach involves the direct application of Recurrent Neural Network (RNN) techniques to temporal micro-Doppler signals. Specifically, we have constructed neural network architectures incorporating Gated Recurrent Unit (GRU) layers, resulting in classification accuracies surpassing 98%. To comprehensively evaluate our methodology, we compare our findings with two alternative approaches for UAV classification: one employing RNN-based methods applied using mDs representations like spectrograms, and another utilizing Convolutional Neural Networks (CNN)-based networks where mDs are represented as spectrograms transformed into images.

Originele taal-2Engels
TitelInternational Radar Conference
SubtitelSensing for a Safer World, RADAR 2024
UitgeverijInstitute of Electrical and Electronics Engineers
Aantal pagina's6
ISBN van elektronische versie9798350362381
DOI's
StatusGepubliceerd - 2024
Evenement2024 International Radar Conference, RADAR 2024 - Rennes, Frankrijk
Duur: 21 okt 202425 okt 2024

Publicatie series

NaamProceedings of the IEEE Radar Conference
ISSN van geprinte versie1097-5764
ISSN van elektronische versie2375-5318

Congres

Congres2024 International Radar Conference, RADAR 2024
Land/RegioFrankrijk
StadRennes
Periode21/10/2425/10/24

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