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首页> 外文期刊>Radar, Sonar & Navigation, IET >Effect of sparsity-aware time–frequency analysis on dynamic hand gesture classification with radar micro-Doppler signatures
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Effect of sparsity-aware time–frequency analysis on dynamic hand gesture classification with radar micro-Doppler signatures

机译:稀疏感知时频分析对带雷达微多普勒信号的动态手势分类的影响

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摘要

Dynamic hand gesture recognition is of great importance in human-computer interaction. In this study, the authors investigate the effect of sparsity-driven time-frequency analysis on hand gesture classification. The time-frequency spectrogram is first obtained by sparsity-driven time-frequency analysis. Then three empirical micro-Doppler features are extracted from the time-frequency spectrogram and a support vector machine is used to classify six kinds of dynamic hand gestures. The experimental results on measured data demonstrate that, compared to traditional time-frequency analysis techniques, sparsity-driven time-frequency analysis provides improved accuracy and robustness in dynamic hand gesture classification.
机译:动态手势识别在人机交互中非常重要。在这项研究中,作者研究了稀疏驱动的时频分析对手势分类的影响。首先通过稀疏驱动时频分析获得时频频谱图。然后从时频频谱图中提取三个经验性微多普勒特征,并使用支持向量机对六种动态手势进行分类。测量数据的实验结果表明,与传统的时频分析技术相比,稀疏驱动的时频分析在动态手势分类中提供了更高的准确性和鲁棒性。

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