Geometry-Aware Contrastive Learning for Few-Shot Automatic Modulation Recognition
guanqun zhao, Yitong liu, Jiaxuan Fang, Yufei Mao, Hongwen Yang
摘要
Standard Self-Supervised Learning (SSL) for Automatic Modulation Recognition (AMR) struggles with ineffective isotropic augmentations, spectral instability, and semantic drift. To address these challenges, we propose Dynamic-Consistency Contrastive Learning (DyCo-CL), a geometry-aware framework that couples Virtual Adversarial Augmentation (VAA) with a semantic consistency loss. We provide a theoretical analysis indicating that this strategy acts as an implicit spectral regularizer for the encoder, enabling stable manifold exploration. Complementing this, our Signal-Adaptive Swin Backbone with fixed-window attention improves structural stability by constraining attention locality, while a Hybrid Knowledge Fusion module anchors representations with physical priors. Experiments on RML benchmarks show that DyCo-CL achieves a 6.27% accuracy gain in 1-shot settings over prior methods.
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- A Simple Framework for Contrastive Learning of Visual RepresentationsTing Chen, Simon Kornblith, Mohammad Norouzi, Geoffrey E. HintonICML 2020 · 被引用 24,064 次
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- The Lipschitz Constant of Self-AttentionHyunjik Kim, George Papamakarios, Andriy MnihICML 2021 · 被引用 208 次
- Robust Automatic Modulation Classification with Fuzzy RegularizationXinyan Liang, Ruijie Sang, Yuhua Qian, Qian Guo 等ICML 2025
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