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Tensor Algebra and Multidimensional Harmonic Retrieval in Signal Processing for MIMO Radar

机译:MIMO雷达信号处理中的张量代数和多维谐波检索

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Detection and estimation problems in multiple-input multiple-output (MIMO) radar have recently drawn considerable interest in the signal processing community. Radar has long been a staple of signal processing, and MIMO radar presents challenges and opportunities in adapting classical radar imaging tools and developing new ones. Our aim in this article is to showcase the potential of tensor algebra and multidimensional harmonic retrieval (HR) in signal processing for MIMO radar. Tensor algebra and multidimensional HR are relatively mature topics, albeit still on the fringes of signal processing research. We show they are in fact central for target localization in a variety of pertinent MIMO radar scenarios. Tensor algebra naturally comes into play when the coherent processing interval comprises multiple pulses, or multiple transmit and receive subarrays are used (multistatic configuration). Multidimensional harmonic structure emerges for far-field uniform linear transmit/receive array configurations, also taking into account Doppler shift; and hybrid models arise in-between. This viewpoint opens the door for the application and further development of powerful algorithms and identifiability results for MIMO radar. Compared to the classical radar-imaging-based methods such as Capon or MUSIC, these algebraic techniques yield improved performance, especially for closely spaced targets, at modest complexity.
机译:最近,多输入多输出(MIMO)雷达中的检测和估计问题引起了信号处理界的极大兴趣。雷达长期以来一直是信号处理的基础,而MIMO雷达在适应经典雷达成像工具和开发新工具方面带来了挑战和机遇。本文的目的是展示张量代数和多维谐波检索(HR)在MIMO雷达信号处理中的潜力。 Tensor代数和多维HR是相对成熟的话题,尽管仍处于信号处理研究的边缘。我们证明了它们实际上是各种相关MIMO雷达场景中目标定位的中心。当相干处理间隔包括多个脉冲或使用多个发送和接收子阵列(多静态配置)时,张量代数自然会发挥作用。考虑到多普勒频移,对于远场均匀线性发射/接收阵列配置,出现了多维谐波结构。混合模型就出现在两者之间。这种观点为MIMO雷达的应用和进一步开发强大的算法和可识别性结果打开了大门。与经典的基于雷达成像的方法(例如Capon或MUSIC)相比,这些代数技术以适度的复杂性提高了性能,特别是对于间隔很小的目标。

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