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Re_(M)GFE: A Multi-Scale Global Feature Embedding Spectrum Sensing Method Based on Relation Network
by
Wang, Jian
, Tan, Lizhuang
, Zhou, Fan
, Zhang, Peiying
, Wang, Jiayi
, Ren, Jinyang
, Liao, Shaolin
in
Algorithms
/ few-shot learning
/ meta-learning
/ Methods
/ Neural networks
/ relation network
/ spectrum sensing
2025
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Re_(M)GFE: A Multi-Scale Global Feature Embedding Spectrum Sensing Method Based on Relation Network
by
Wang, Jian
, Tan, Lizhuang
, Zhou, Fan
, Zhang, Peiying
, Wang, Jiayi
, Ren, Jinyang
, Liao, Shaolin
in
Algorithms
/ few-shot learning
/ meta-learning
/ Methods
/ Neural networks
/ relation network
/ spectrum sensing
2025
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Do you wish to request the book?
Re_(M)GFE: A Multi-Scale Global Feature Embedding Spectrum Sensing Method Based on Relation Network
by
Wang, Jian
, Tan, Lizhuang
, Zhou, Fan
, Zhang, Peiying
, Wang, Jiayi
, Ren, Jinyang
, Liao, Shaolin
in
Algorithms
/ few-shot learning
/ meta-learning
/ Methods
/ Neural networks
/ relation network
/ spectrum sensing
2025
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Re_(M)GFE: A Multi-Scale Global Feature Embedding Spectrum Sensing Method Based on Relation Network
Journal Article
Re_(M)GFE: A Multi-Scale Global Feature Embedding Spectrum Sensing Method Based on Relation Network
2025
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Overview
Currently, the increasing number of Internet of Things devices makes spectrum resource shortage prominent. Spectrum sensing technology can effectively solve this problem by conducting real-time monitoring of the spectrum. However, in practical applications, it is difficult to obtain a large number of labeled samples, which leads to the neural network model not being fully trained and affects the performance. Moreover, the existing few-shot methods focus on capturing spatial features, ignoring the representation forms of features at different scales, thus reducing the diversity of features. To address the above issues, this paper proposes a few-shot spectrum sensing method based on multi-scale global feature. To enhance the feature diversity, this method employs a multi-scale feature extractor to extract features at multiple scales. This improves the model’s ability to distinguish signals and avoids overfitting of the network. In addition, to make full use of the frequency features at different scales, a learnable weight feature reinforcer is constructed to enhance the frequency features. The simulation results show that, when SNR is under 0∼10 dB, the recognition accuracy of the network under different task modes all reaches above 81%, which is better than the existing methods. It realizes the accurate spectrum sensing under the few-shot conditions.
Publisher
MDPI AG
Subject
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