首页> 外文期刊>Geoscience and Remote Sensing Letters, IEEE >A SAR Autofocus Technique With MUSIC and Golden Section Search for Range Bins With Multiple Point Scatterers
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A SAR Autofocus Technique With MUSIC and Golden Section Search for Range Bins With Multiple Point Scatterers

机译:带有MUSIC和黄金分割搜索的SAR自动对焦技术,用于带多点散射器的测距箱

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摘要

Many synthetic aperture radar (SAR) autofocus techniques use range bins containing a single dominant point scatterer to estimate the phase error by maximizing or minimizing an objective function. We analytically show that some widely used objective functions do not give accurate phase error estimates if the objective function is constructed using a range bin containing multiple strong point scatterers (SPSs). Multiple SPSs are often observed in the range bins extracted from SAR images of urban areas containing many bright man-made objects. Such multiple SPSs do not allow us to obtain accurate estimates due to the interference between SPSs. To overcome this multiple scatterer problem, we propose the use of a combined entropy objective function with the local magnitudes of SPSs, along with the multiple-signal classification algorithm. Our experiment with actual SAR data confirms the superiority of the proposed approach.
机译:许多合成孔径雷达(SAR)自动对焦技术都使用包含单个优势​​点散射器的测距仓,通过最大化或最小化目标函数来估计相位误差。我们的分析表明,如果目标函数是使用包含多个强散射点(SPS)的测距盒构建的,则一些广泛使用的目标函数不能给出准确的相位误差估计。从包含许多明亮人造物体的城市地区的SAR图像中提取的测距箱中经常观察到多个SPS。由于SPS之间的干扰,这样的多个SPS不允许我们获得准确的估计。为了克服这个多重散射问题,我们建议结合使用带有局部SPS幅度的熵目标函数和多重信号分类算法。我们使用实际SAR数据进行的实验证实了该方法的优越性。

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