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Matrix Information Geometry for Spectral-Based SPD Matrix Signal Detection with Dimensionality Reduction

机译:基于频谱的基于SPD矩阵信号检测的矩阵信息几何测量减少

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摘要

In this paper, a novel signal detector based on matrix information geometric dimensionality reduction (DR) is proposed, which is inspired from spectrogram processing. By short time Fourier transform (STFT), the received data are represented as a 2-D high-precision spectrogram, from which we can well judge whether the signal exists. Previous similar studies extracted insufficient information from these spectrograms, resulting in unsatisfactory detection performance especially for complex signal detection task at low signal-noise-ratio (SNR). To this end, we use a global descriptor to extract abundant features, then exploit the advantages of matrix information geometry technique by constructing the high-dimensional features as symmetric positive definite (SPD) matrices. In this case, our task for signal detection becomes a binary classification problem lying on an SPD manifold. Promoting the discrimination of heterogeneous samples through information geometric DR technique that is dedicated to SPD manifold, our proposed detector achieves satisfactory signal detection performance in low SNR cases using the K distribution simulation and the real-life sea clutter data, which can be widely used in the field of signal detection.
机译:在本文中,提出了一种基于矩阵信息几何维度减少(DR)的新型信号检测器,其受到谱图处理的启发。通过短时间傅里叶变换(STFT),所接收的数据表示为2-D高精度频谱图,我们可以从中判断是否存在信号。以前类似的研究从这些谱图中提取了不充分的信息,从而产生不令人满意的检测性能,尤其是在低信噪比(SNR)处的复杂信号检测任务。为此,我们使用全局描述符来提取丰富的特征,然后利用矩阵信息几何技术的优点来构造作为对称正定(SPD)矩阵的高维特征。在这种情况下,我们对信号检测的任务成为位于SPD歧管上的二进制分类问题。通过专用于SPD歧管的信息几何DR技术促进异构样本的辨别,我们所提出的探测器使用K分布模拟和现实生活海杂波数据在低SNR盒中实现了令人满意的信号检测性能,可以广泛使用信号检测领域。

著录项

  • 期刊名称 Entropy
  • 作者单位
  • 年(卷),期 2020(22),9
  • 年度 2020
  • 页码 914
  • 总页数 13
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:减少维度;信号检测;SPD歧管;谱图处理;

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