Abstract:
Automatic modulation recognition (AMR) plays an important role in modern wireless communication. In this letter, a novel framework for AMR is proposed. The ResNeXt networ...Show MoreMetadata
Abstract:
Automatic modulation recognition (AMR) plays an important role in modern wireless communication. In this letter, a novel framework for AMR is proposed. The ResNeXt network serves as the backbone, and four proposed adaptive attention mechanism modules are incorporated. The time-frequency representations of the received signals are utilized as the inputs of the proposed deep learning (DL) network, and a transfer learning strategy is adopted based on the pre-trained ResNeXt weakly supervised learning (WSL) model. The comparisons with several state-of-the-art techniques on the RadioML2016.10B and RadioML2018.01A datasets show that the proposed framework converges quickly and can achieve higher robustness and 2% to 8% higher accuracy than other state-of-the-art techniques.
Published in: IEEE Communications Letters ( Volume: 25, Issue: 9, September 2021)
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- IEEE Keywords
- Index Terms
- Attention Mechanism ,
- Automatic Recognition ,
- Weakly-supervised Learning ,
- Modulation Recognition ,
- Adaptive Attention Mechanism ,
- Wireless ,
- Transfer Learning ,
- Adaptive Modulation ,
- Transfer Learning Strategy ,
- Modern Wireless Communication ,
- Neural Network ,
- Convolutional Neural Network ,
- Deep Neural Network ,
- Cardinality ,
- Convolutional Layers ,
- Feature Maps ,
- Input Features ,
- Additive Noise ,
- Data Augmentation ,
- Recognition Accuracy ,
- Performance Of Framework ,
- Batch Normalization Layer ,
- High Signal-to-noise Ratio ,
- Modulation Modes ,
- Short-time Fourier Transform ,
- Channel Attention ,
- Channel Dimension ,
- Window Function ,
- Low Signal-to-noise Ratio ,
- Attention Module
- Author Keywords
Keywords assist with retrieval of results and provide a means to discovering other relevant content. Learn more.
- IEEE Keywords
- Index Terms
- Attention Mechanism ,
- Automatic Recognition ,
- Weakly-supervised Learning ,
- Modulation Recognition ,
- Adaptive Attention Mechanism ,
- Wireless ,
- Transfer Learning ,
- Adaptive Modulation ,
- Transfer Learning Strategy ,
- Modern Wireless Communication ,
- Neural Network ,
- Convolutional Neural Network ,
- Deep Neural Network ,
- Cardinality ,
- Convolutional Layers ,
- Feature Maps ,
- Input Features ,
- Additive Noise ,
- Data Augmentation ,
- Recognition Accuracy ,
- Performance Of Framework ,
- Batch Normalization Layer ,
- High Signal-to-noise Ratio ,
- Modulation Modes ,
- Short-time Fourier Transform ,
- Channel Attention ,
- Channel Dimension ,
- Window Function ,
- Low Signal-to-noise Ratio ,
- Attention Module
- Author Keywords