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Target recognition with adaptive waveforms in cognitive radar using practical target RCS responses

机译:使用实际目标RCS响应的认知雷达中的目标识别与认知雷达中的自适应波形

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In this paper, we utilize high-fidelity electromagnetic-simulated RCS responses in a cognitive radar (CRr) platform performing target recognition. Previous works used arbitrarily generated target responses consisting of a few frequency resonances which are distinct across different targets. However, realistic target responses contain rich frequency components characterized by physical scattering centers of the target. It is therefore imperative to build on prior works by considering practical target responses. We utilize an improved waveform design technique known as probability-weighted energy (PWE) over classical spectral variance methods such as probability-weighted spectral variance (PWSV). Our results showed an improvement in classification performance of SNR and mutual information (MI)-based waveforms used in conjunction with PWE and PWSV update methods over receiver-adaptive wideband pulsed waveform using a CRr platform. In this work, we also consider a more complex case where the target's azimuth angle has some deviation such that the response from that target is not deterministic but rather from an ensemble of different responses as dictated by aspect angle uncertainty.
机译:在本文中,我们利用了执行目标识别的认知雷达(CRR)平台中的高保真电磁模拟RCS响应。以前的作品使用由少量频率共振组成的任意产生的目标响应,这些响应在不同的目标上不同。然而,现实的目标响应包含富频分量,其特征在于目标的物理散射中心。因此,通过考虑实际的目标响应,必须在先前的作用上建立。我们利用改进的波形设计技术,以概率加权能量(PWE)的改进的波形设计技术,例如概率加权光谱方差(PWSV)。我们的结果表明,使用CRR平台,与PWE和PWSV更新方法结合使用的SNR和相互信息(MI)的相互信息(MI)的分类性能提高。在这项工作中,我们还考虑了一个更复杂的情况,目标的方位角具有一些偏差,使得来自该目标的响应不是确定的,而是来自由宽方角不确定性的不同响应的集合。

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