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Hybrid Conv-Attention Networks for Synthetic Aperture Radar Imagery-based Target Recognitionopen access

Authors
Yoon, JiseokSong, JeongheonHussain, TanveerKhowaja, Sunder AliMuhammad, KhanLee, Ik Hyun
Issue Date
2024
Publisher
Institute of Electrical and Electronics Engineers Inc.
Keywords
Convolutional Neural Networks (CNNs); Deep learning; Synthetic Aperture Radar (SAR); Target recognition; Transfer learning; Transformers
Citation
IEEE Access, v.12, pp 1 - 1
Pages
1
Indexed
SCIE
SCOPUS
Journal Title
IEEE Access
Volume
12
Start Page
1
End Page
1
URI
https://scholarx.skku.edu/handle/2021.sw.skku/110682
DOI
10.1109/ACCESS.2024.3387314
ISSN
2169-3536
Abstract
In this study, we propose hybrid conv-attention networks that combine convolutional neural networks (CNNs) and transformers to recognize targets from SAR images automatically. The proposed model is designed to obtain robust features from global and local patterns in the SAR image, utilizing the weights of a pre-trained backbone model with self-attention structures. Furthermore, we adopted pre-processing and training methods optimized for transfer learning to enhance performance. By comparing and analyzing the performance between the proposed model and conventional models using the OpenSARShip and MSTAR dataset, we found that our system significantly outperforms conventional approaches, with a performance improvement of 24.06%. This considerable enhancement is attributed to the ability of the model to leverage the 2D kernel-based approach of CNNs and the sequence vector-based approach of transformers, offering a comprehensive method for SAR image target recognition. Authors
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