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Kalman Filter Disciplined Phase Gradient Autofocus for Stripmap SAR

机译:Kalman筛选STRILMAP SAR的纪律阶段渐变自动聚焦

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The phase gradient autofocus (PGA) and its improvements have been aimed to estimate the phase error exclusively from the phase of raw data. In this article, we introduced the Kalman filter (KF) into stripmap PGA (or phase curvature autofocus) by taking advantage of the continuous movement of the aircraft. The fundamental principle is to build a kinematic model and a measurement model to predict the phase curvature of the next subaperture, and to correct the measurement (phase curvature) of the current subaperture. The advantages of employing KF are as follows: 1) the inaccurate PGA estimation due to wrong target selection, serious phase error, or low signal-to-clutter ratio can be corrected by a well-maintained KF; 2) the prediction of the KF can be applied to the data of the next subaperture before phase estimation, to decrease the algorithm converge time, and to increase the estimation accuracy; and 3) KF disciplined PGA naturally fits the sequential processing needs and is capable of generating good phase error estimation in one execution. This helps real-time synthetic aperture radar (SAR) autofocus and motion compensation. The disciplining of the autofocus using KF is not restricted to PGA-based algorithm. It can be applied to other subaperture-based autofocus algorithms.
机译:相位梯度自动对焦(PGA)及其改进旨在专门从原始数据的阶段估计相位误差。在本文中,我们通过利用飞机的连续运动将卡尔曼滤波器(KF)引入TILLMAP PGA(或相位曲率自动对焦)。基本原理是建立一个运动模型和测量模型,以预测下一个子射流的相位曲率,并校正当前子射流的测量(相曲率)。采用KF的优点如下:1)通过良好维持的KF可以校正由于错误的目标选择,严重的相位误差或低信号到杂波比引起的不准确的PGA估计; 2)KF的预测可以应用于相位估计之前的下一个子孔节的数据,以减少算法汇聚时间,并提高估计精度; 3)KF纪律限制PGA自然适合顺序处理需求,并且能够在一次执行中产生良好的相位误差估计。这有助于实时合成孔径雷达(SAR)自动对焦和运动补偿。使用KF的自动对焦的纪律不限于基于PGA的算法。它可以应用于其他基于子孔节的自动对焦算法。

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