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Noncausal Adaptive Spatial Clutter Mitigation in Monostatic MIMO Radar: Fundamental Limitations

机译:单基地MIMO雷达中的非因果自适应空间杂波缓解:基本限制

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The problem of a point target detection masked by clutter distributed over range and Doppler, including the range and Doppler of the target, is considered for a multimode propagation scenario commonly encountered in quasimonostatic HF over-the-horizon radars (OTHR). Here, a clutter signal spread in Doppler frequency due to propagation via a disturbed ionospheric layer competes with a target and narrowband clutter returns propagating via a stable ionospheric layer with the same group delay (radar range). Mitigation over all ranges of spread clutter propagating via a “mixed mode” path with indistinguishable direction-of-arrival (DoA) relative to the target requires (potentially adaptive) transmit beamforming to exploit the direction-of-departure (DoD) difference, which varies as a function of radar range. This range-dependent beamforming can be implemented only via the use of multiple-input multiple-output radar technology. In this paper, we explore the fundamental limitations that exist for the maximal dimension of the area in range-Doppler space occupied by spread clutter and the required properties (cardinality) of the orthogonal waveform set for efficient spread clutter mitigation.
机译:对于准单静态HF超视距雷达(OTHR)中常见的多模传播场景,考虑了在整个范围和多普勒(包括目标的范围和多普勒)上分布的杂波掩盖的点目标检测问题。在此,由于经由受干扰的电离层的传播而在多普勒频率中扩展的杂波信号与目标竞争,并且窄带杂波返回以相同的群延迟(雷达范围)经由稳定的电离层传播。通过“混合模式”路径以相对于目标无法区分的到达方向(DoA)进行传播的所有范围杂波的缓解,都需要(潜在自适应)传输波束成形以利用离开方向(DoD)的差异,随雷达范围的变化而变化。只能通过使用多输入多输出雷达技术来实现这种与距离相关的波束成形。在本文中,我们探讨了由扩展杂波占据的距离多普勒空间中的区域的最大尺寸以及有效缓解杂散的正交波形集所需的属性(基数)所存在的基本限​​制。

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