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Parameter Estimation Algorithms Based on a Physics-based HRR MOving Target Model

机译:基于物理的HRR移动目标模型的参数估计算法

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In contras to Synthetic Aperture Radar (SAR), High Range Resolution (HRR) radar may economically proivde satisfactory target resolution when applied to moving targets scenarios. We have devised a series of new physics-based HRR moving target models with different degrees of simplification. These models represent the scatterers from both targets and clutter equally. By employing these models, we can unify the studies of both clutter suppression and target feature extraction into a single topic of model parameter estimation. Therefor, finding reliable parameter estimation algorithms based on these models becomes an important otopic for target identification using HRR signatures. This paper derives and presents two feasible parameter estimatioon algorithms. The first algorithm (1DPE) reduces the 2D-estimation problem to two 1D-estimation problems, and solves the problems by employing some mauture 1D-estimation algorithms. The second algorithm (2DFT) utilizes the 2D Discrete Fourier Trransform (DFT) to estimate the model parameters by simply applying the 2D DFT to the HRR data, and obtaining the estimation of model parameters from the peaks of the 2D DFT. In order to verify the performance of these algorithms, we performed a series of simulation experiments and the experimental results are presented in this paper. Finally, a brief comparison of these two algoprithms is also proesented.
机译:与合成孔径雷达(SAR)相反,当应用于移动目标场景时,高范围分辨率(HRR)雷达可能经济地进行令人满意的目标分辨率。我们设计了一系列新的基于物理的HRR移动目标模型,具有不同程度的简化。这些模型代表了来自目标和杂波的散射体。通过采用这些模型,我们可以统一对模型参数估计的单个主题的杂波抑制和目标特征提取的研究。因此,基于这些模型找到可靠的参数估计算法成为使用HRR签名的目标识别的重要otopic。本文得出了两个可行的参数估算算法。第一算法(1DPE)将2D估计问题降低到两个1D估计问题,并通过采用一些Mauture 1D估计算法来解决问题。第二算法(2DFT)利用2D离散的傅里叶交叉变换(DFT)来通过简单地将2D DFT应用于HRR数据来估计模型参数,并从2D DFT的峰值获得模型参数的估计。为了验证这些算法的性能,我们进行了一系列仿真实验,本文提出了实验结果。最后,还研究了这两种藻类术的简要比较。

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