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A Three-Stage Inter-Channel Calibration Approach for Passive Radar on Moving Platforms Exploiting the Minimum Variance Power Spectrum

机译:移动平台上的一种三阶段间校准方法用于利用最小方差功率谱的移动平台

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摘要

Research in passive radar has moved its focus towards passive radar on moving platforms in recent years with the purpose of moving target indication and ground imaging via synthetic aperture radar. This is also fostered by the progress in hardware miniaturization, which alleviates the installation of the required hardware on moving platforms. Terrestrial transmitters, commonly known as illuminators of opportunity in the passive radar community, usually emit the signals in the Very High Frequency (VHF) or Ultra High Frequency (UHF) band. Due to the long wavelengths of the VHF/UHF band, there are constraints on the size of the used antenna elements, and therefore, the number of antenna elements to be employed is limited, especially as the platform carrying the passive radar system is intended to be small, potentially even an unmanned aerial vehicle. In order to detect moving targets hidden by Doppler shifted clutter returns, one common approach is to suppress the clutter returns by applying clutter suppression techniques that rely on spatial and temporal degrees of freedom, such as Displaced Phase Center Antenna (DPCA) or Space-Time Adaptive Processing. It has been shown that the DPCA approach is a meaningful technique to suppress the clutter if two antenna elements are employed. However, if the employed receiving channels are not carefully calibrated, the clutter suppression is shown to be not effective. Here, we suggest a three-stage calibration technique in order to perform the calibration of two receiving channels, which involves the exploitation of the direct signal, a data-adaptive amplitude calibration, and finally, a data-adaptive calibration of phase mismatches between both receiving channels by the estimation of the Minimum Variance Power Spectrum of the clutter. The validity of the proposed approach is shown with simulated data and demonstrated on real data from a fast ground moving platform, showing improved clutter cancellation capabilities.
机译:被动雷达的研究已经将其焦点朝着近年来移动平台上的被动雷达,目的是通过合成孔径雷达移动目标指示和地面成像。这也促进了硬件小型化的进展,这减轻了在移动平台上安装所需的硬件。陆地发射器,通常称为被动雷达社区中机会的照明器,通常在非常高频(VHF)或超高频(UHF)频带中发出信号。由于VHF / UHF频带的长波长,在二手天线元件的尺寸上存在约束,因此,要采用的天线元件的数量是有限的,特别是随着承载被动雷达系统的平台旨在小,甚至是一个无人驾驶飞行器。为了检测由多普勒偏移杂波返回隐藏的移动目标,一种常见的方法是通过施加依赖于空间和时间的自由度的杂波抑制技术来抑制杂波返回,例如位移的相位中心天线(DPCA)或空间时间自适应处理。已经表明,如果采用两个天线元件,则DPCA方法是抑制杂波的有意义的技术。然而,如果没有仔细校准所采用的接收通道,则显示杂波抑制是无效的。在这里,我们建议进行三阶段校准技术,以便执行两个接收通道的校准,这涉及利用直接信号,数据 - 自适应幅度校准,最后,两者之间的相位不匹配的数据自适应校准通过估计杂波的最小方差功率谱来接收信道。所提出的方法的有效性以模拟数据显示,并在快速地移动平台上展示了​​实际数据,显示出改善的杂波取消能力。

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